—°F Boise, ID
◈ Cross-Vertical Intelligence · Treasure Valley · Boise Standard

Energy Utilities ↔ relates to ↔ Home Services

23 Wikipedia bridge articles confirmed in both vertical ledgers. 270 deterministic cross-vertical edges. 7,023 external source links harvested. Every edge provenance-stamped. Every claim auditable.

23 QID Bridge Articles
270 Cross Edges
7,023 External Sources
340 Wikipedia Articles
24 🌲 Evergreen
154 🌿 Branch
HIGH SIGNAL · refinery-treasurevalley-v1.0.0
◈ Machine-Readable Schema
Deterministic Cross-Vertical Summary
PASS 2 · ZERO LLM
Entities Compared
Energy Utilities
× Home Services
QID Bridge Articles
23
confirmed Wikipedia overlap
Total Cross Edges
270
External Sources Harvested
7,023
from Wikipedia external links
Geography
Treasure Valley, Ada County, Canyon County, Idaho, United States
Gate Tier
high
Haiku FAQ generated
Strongest Edge
Idaho Public Utilities Commission
score: 1.0500  ·  type: exact_title_cross  ·  10 shared tokens
QID Bridge Titles (20)
Idaho Public Utilities CommissionElectricianNet meteringSolar powerWellDistributed generationHeat pumpIdaho PowerAda County, IdahoTreasure ValleyWater distribution systemBattery energy storage systemBuilding codeHeating, ventilation, and air conditioningSolar inverterBoise, IdahoNampa, IdahoSeptic tankCanyon County, IdahoCaldwell, Idaho
Shared Semantics (20 tokens)
idahoboisepowerelectricalpopulationsystemenergysystemsgaswaterelectricrequiresolaradatypewindlargestdistrictlocalutility
Pipeline
refinery-treasurevalley-v1.0.0
Generated
2026-07-17 20:39:36 UTC
Content Hash
def4d1dbed91202c
◈ Wikipedia Bridge Articles
QID Overlap — Confirmed in Both Vertical Ledgers
23 BRIDGES
I
Q5987408 EXACT TITLE 1.050
QID OVERLAP: Q5987408 in energy_utilities (tier:evergreen) and home_services (tier:evergreen). | SHARED TOKENS (10): "commission", "gas", "idaho", "operated", "owned", "power", "public", "utilities", "utility", "water". | URL->A (1): https://puc.idaho.gov/. | URL->B (1): https://puc.idaho.gov/. | EXACT TITLE in energy_utilities: "Idaho Public Utilities Commission". | EXACT TITLE in home_services: "Idaho Public Utilities Commission".
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The Idaho Public Utilities Commission is a public utilities commission, a quasi-judicial tribunal, which regulates investor-owned or privately owned utilities that provide gas, water, electricity, or telephone service for profit in the U.S.
st, and United Water of Idaho. The Commission does not regulate utility cooperatives (owned by customers) or utilities operated by municipalities. References External links Idaho Public Utilities Commission Website Office of the Administrative Rules Coordinator Bloomberg Markets
Electrician
Q165029 EXACT TITLE 1.010
QID OVERLAP: Q165029 in energy_utilities (tier:evergreen) and home_services (tier:branch). | SHARED TOKENS (8): "data", "electrical", "equipment", "existing", "installation", "lines", "maintenance", "repair". | URL->A (1): http://www.bls.gov/ooh/construction-and-extraction/electricians.htm. | EXACT TITLE in energy_utilities: "Electrician".
dataelectricalequipmentexistinginstallationlinesmaintenancerepair
n of new electrical components or the maintenance and repair of existing electrical infrastructure. Electricians may also specialize in wiring ships, airplanes, and other mobile platforms, as well as data and cable lines. Terminology Electricians were originally people who demonstrated or studied the principles of electricity, often electrostatic generators of one form or another. In the United States, electricians are divided into two primary categories: lineperson, who work on electric utility company distribution systems at higher voltages, and wiremen, who work with the lower voltages utilized inside buildings. Wiremen are generally trained in one of five primary specialties: commercial, residential, light industrial, industrial, and low-voltage wiring, more commonly known as Voice-Data-Video, or VDV. Other sub-specialties such as control wiring and fire-alarm may be performed by specialists trained in the devices being installed, or by inside wiremen. Electricians are trained to one of three levels: Apprentice, Journeyperson, and Master Electrician. In the US and Canada, apprentices work and receive a reduced compensation while learning their trade. They generally take several hundred hours of classroom instruction and are contracted to follow apprenticeship standards for a period of between three and six years, during which time they are paid as a percentage of the Journeyperson's pay. Journeymen are electricians who have completed their Apprenticeship and who have been found by the local, State, or National licensing body to be competent in the electrical trade. Master Electricians have performed well in the trade for a period of time, often seven to ten years, and have passed an exam to demonstrate superior knowledge of the National Electrical Code, or NEC. Service electricians are tasked to respond to requests for isolated repairs and upgrades. They have skills troubleshooting wiring problems, installing wiring in existing buildings, and making repairs. Construction electricians primarily focus on larger projects, such as installing all new electrical system for an entire building, or upgrading an entire floor of an office building as part of a remodeling process. Other specialty areas are marine electricians, research electricians and hospital electricians. "Electrician" is also used as the name of a role in stagecraft, where electricians are tasked primarily with hanging, focusing, and operating stage lighting. In this context, the Master Electrician is the show's chief electrician. Although theater electricians routinely perform electrical work on stage lighting instruments and equipment, they are not part of the electrical trade and have a different set of skills and qualifications from the electricians that work on building wiring. In the film industry and on a television crew the head electrician is referred to as a Gaffer. Electrical contractors are businesses that employ electricians to design, install, and maintain electrical systems.
Terminology Electricians were originally people who demonstrated or studied the principles of electricity, often electrostatic generators of one form or another. In the United States, electricians are divided into two primary categories: lineperson, who work on electric utility company distribution systems at higher voltages, and wiremen, who work with the lower voltages utilized inside buildings. Wiremen are generally trained in one of five primary specialties: commercial, residential, light industrial, industrial, and low-voltage wiring, more commonly known as Voice-Data-Video, or VDV. Other sub-specialties such as control wiring and fire-alarm may be performed by specialists trained in the devices being installed, or by inside wiremen. Electricians are trained to one of three levels: Apprentice, Journeyperson, and Master Electrician. In the US and Canada, apprentices work and receive a reduced compensation while learning their trade. They generally take several hundred hours of classroom instruction and are contracted to follow apprenticeship standards for a period of between three and six years, during which time they are paid as a percentage of the Journeyperson's pay. Journeymen are electricians who have completed their Apprenticeship and who have been found by the local, State, or National licensing body to be competent in the electrical trade. Master Electricians have performed well in the trade for a period of time, often seven to ten years, and have passed an exam to demonstrate superior knowledge of the National Electrical Code, or NEC. Service electricians are tasked to respond to requests for isolated repairs and upgrades. They have skills troubleshooting wiring problems, installing wiring in existing buildings, and making repairs. Construction electricians primarily focus on larger projects, such as installing all new electrical system for an entire building, or upgrading an entire floor of an office building as part of a remodeling process. Other specialty areas are marine electricians, research electricians and hospital electricians. "Electrician" is also used as the name of a role in stagecraft, where electricians are tasked primarily with hanging, focusing, and operating stage lighting. In this context, the Master Electrician is the show's chief electrician. Although theater electricians routinely perform electrical work on stage lighting instruments and equipment, they are not part of the electrical trade and have a different set of skills and qualifications from the electricians that work on building wiring. In the film industry and on a television crew the head electrician is referred to as a Gaffer. Electrical contractors are businesses that employ electricians to design, install, and maintain electrical systems.
Australia An electrician's license entitles the holder to carry out all types of electrical installation work in Australia without supervision. However, to contract, or offer to contract, to carry out electrical installation work, a licensed electrician must also be registered as an electrical contractor. Under Australian law, electrical work that involves fixed wiring is strictly regulated and must almost always be performed by a licensed electrician or electrical contractor. A local electrician can handle a range of work including air conditioning, light fittings and installation, safety switches, smoke alarm installation, inspection and certification and testing and tagging of electrical appliances. To provide data, structured cabling systems, home automation & theatre, LAN, WAN and VPN data solutions or phone points, an installer must be licensed as a Telecommunications Cable Provider under a scheme controlled by Australian Communications and Media Authority Electrical licensing in Australia is regulated by the individual states. In Western Australia, the Department of Commerce tracks licensee's and allows the public to search for individually named/licensed Electricians. Currently in Victoria the apprenticeship lasts for four years, during three of those years the apprentice attends trade school in either a block release of one week each month or one day each week. At the end of the apprenticeship the apprentice is required to pass three examinations, one of which is theory based with the other two practically based. Upon successful completion of these exams, providing all other components of the apprenticeship are satisfactory, the apprentice is granted an A Class licence on application to Energy Safe Victoria (ESV). An A Class electrician may perform work unsupervised but is unable to work for profit or gain without having the further qualifications necessary to become a Registered Electrical Contractor (REC) or being in the employment of a person holding REC status. However, some exemptions do exist. In most cases a certificate of electrical safety must be submitted to the relevant body after any electrical works are performed. Safety equipment used and worn by electricians in Australia (including insulated rubber gloves and mats) needs to be tested regularly to ensure it is still protecting the worker. Because of the high risk involved in this trade, this testing needs to be performed regularly and regulations vary according to state.
Net metering
Q2685471 EXACT TITLE 1.000
QID OVERLAP: Q2685471 in energy_utilities (tier:branch) and home_services (tier:evergreen). | SHARED TOKENS (16): "billing", "electric", "energy", "metering", "net", "policy", "power", "private", "require", "requires", "single", "small", "solar", "storage", "type", "wind". | EXACT TITLE in home_services: "Net metering".
billingelectricenergymeteringnetpolicypowerprivaterequirerequiressinglesmallsolarstoragetypewind
Net metering (or net energy metering, NEM) is an electricity billing mechanism that allows consumers who generate some or all of their own electricity to use that electricity anytime, instead of when it is generated. This is particularly important with renewable energy sources like wind and solar, which are non-dispatchable (when not coupled to storage). Monthly net metering allows consumers to use solar power generated during the day at night, or wind from a windy day later in the month. Annual net metering rolls over a net kilowatt-hour (kWh) credit to the following month, allowing solar power that was generated in July to be used in December, or wind power from March in August. Net metering policies can vary significantly by country and by state or province: if net metering is available, if and how long banked credits can be retained, and how much the credits are worth (retail/wholesale). Most net metering laws involve monthly rollover of kWh credits, a small monthly connection fee, require a monthly payment of deficits (i.e. normal electric bill), and annual settlement of any residual credit.
History Net metering originated in the United States, where small wind turbines and solar panels were connected to the electrical grid, and consumers wanted to be able to use the electricity generated at a different time or date from when it was generated. The first two projects to use net metering were an apartment complex and a solar test house in Massachusetts in 1979. Minnesota is commonly cited as passing the first net metering law, in 1983, and allowed anyone generating less than 40 kW to either roll over any credit to the next month, or be paid for the excess. In 2000 this was amended to compensation "at the average retail utility energy rate". This is the simplest and most general interpretation of net metering, and in addition allows small producers to sell electricity at the retail rate. Utilities in Idaho adopted net metering in 1980, and in Arizona in 1981. Massachusetts adopted net metering in 1982. By 1998, 22 states or utilities therein had adopted net metering. Two California utilities initially adopted a monthly "net metering" charge, which included a "standby charge", until the Public Utilities Commission (PUC) banned such charges. In 2005, all U.S. utilities were required to consider adopting rules offering net metering "upon request" by the Energy Policy Act of 2005. Excess generation is not addressed. As of 2013, 43 U.S. states have adopted net metering, as well as utilities in 3 of the remaining states, leaving only 4 states without any established procedures for implementing net metering. However, a 2017 study showed that only 3% of U.S. utilities offer full retail compensation for net metering with the remainder offering less than retail rates, having credit expire annually, or some form of indefinite rollover. Net metering was slow to be adopted in Europe, especially in the United Kingdom, because of confusion over how to address the value added tax (VAT). Only one utility company in Great Britain offers net metering. The United Kingdom government is reluctant to introduce the net metering principle because of complications in paying and refunding the value added tax that is payable on electricity, but pilot projects are underway in some areas. In Canada, some provinces have net metering programs. In the Philippines, Net Metering scheme is governed by Republic Act 9513 (Renewable Energy Act of 2008) and its implementing rules and regulation (IRR). The implementing body is the Energy Regulatory Commission (ERC) in consultation with the National Renewable Energy Board (NREB). Unfortunately, the scheme is not a true net metering scheme but in reality a net billing scheme. As the Dept of Energy's Net Metering guidelines say, "Net-metering allows customers of Distribution Utilities (DUs) to install an on-site Renewable Energy (RE) facility not exceeding 100 kilowatts (kW) in capacity so they can generate electricity for their own use. Any electricity generated that is not consumed by the customer is automatically exported to the DU's distribution system.
Post-net metering successor tariffs On a nationwide basis, energy officials have debated replacement programs for net metering for several years. As of 2018, a few "replicable models" have emerged. Utility companies have always contended that customers with solar get their bills reduced by too much under net metering, and as a result, that shifts costs for keeping up the grid infrastructure to the rest of the non-solar customers. "The policy has led to heated state-level debates since 2003 over whether — and how — to construct a successor to the policy," according to Utility Dive. The key challenge to constructing pricing and rebate schemes in a post-net metering environment is how to compensate rooftop solar customers fairly while not imposing costs on non-solar customers. Experts have said that a good "successor tariff," as the post-net metering policies have been called, is one that supports the growth of distributed energy resources in a way where customers and the grid get benefits from it. Thirteen states swapped successor tariffs for retail rate net metering programs in 2017. In 2018, three more states made similar changes. For example, compensation in Nevada will go down over time, but today the compensation is at the retail rate (meaning, solar customers who send energy to the grid get compensated at the same rate they pay for electricity). In Arizona, the new solar rate is ten percent below the retail rate. The two most common successor tariffs are called "net billing" and "buy-all-sell-all" (BASA). "Net billing pays the retail rate for customer-consumed PV generation and a below retail rate for exported generation.
Solar power
Q1483757 EXACT TITLE 1.000
QID OVERLAP: Q1483757 in energy_utilities (tier:branch) and home_services (tier:evergreen). | SHARED TOKENS (28): "applications", "built", "capacity", "commercial", "cost", "directly", "electric", "energy", "financing", "homes", "installations", "installer", "integration", "international", "large", "largest", "mitigation", "policy", "power", "primary".... | EXACT TITLE in home_services: "Solar power".
applicationsbuiltcapacitycommercialcostdirectlyelectricenergyfinancinghomesinstallationsinstallerintegrationinternationallargelargestmitigationpolicypowerprimaryregulationsinglesmallsolarsourcesystemsystemswind
r tracking systems to focus a large area of sunlight to a hot spot, often to drive a steam turbine. Photovoltaics (PV) were initially solely used as a source of electricity for small and medium-sized applications, from the calculator powered by a single solar cell to remote homes powered by an off-grid rooftop PV system. Commercial concentrated solar power plants were first developed in the 1980s. Since then, as the cost of solar panels has fallen, grid-connected solar PV systems' capacity and production have doubled about every three years. Three-quarters of new generation capacity is solar, with both millions of rooftop installations and gigawatt-scale photovoltaic power stations continuing to be built. In 2025, solar power generated 9% of global electricity. In 2024, solar generated over 1% of primary energy (2.7% by the substitution method), adding twice as much new electricity as coal. Along with onshore wind power, utility-scale solar is the source with the cheapest levelised cost of electricity for new installations in most countries. Almost half the solar power installed in 2022 was mounted on rooftops. China is currently the largest producer and installer of solar power capacity; globally, it produces 98% of solar wafers, 92% of solar cells and 85% of solar panels, and accounted for more than 55% of global installed solar capacity in the first half of 2025. Much more low-carbon power is needed for electrification and to limit climate change. The International Energy Agency said in 2022 that more effort was needed for grid integration and the mitigation of policy, regulation and financing challenges. Nevertheless solar may greatly cut the cost of energy.
The photovoltaic effect in solar cells converts light into electric current. The first solar cell was constructed by Charles Fritts in the 1880s. The German industrialist Ernst Werner von Siemens was among those who recognized the importance of this discovery. In 1931, the German engineer Bruno Lange developed a photo cell using silver selenide in place of copper oxide, although the prototype selenium cells converted less than 1% of incident light into electricity. Following the work of Russell Ohl in the 1940s, researchers Gerald Pearson, Calvin Fuller and Daryl Chapin created the silicon solar cell in 1954. These early solar cells cost US$286/watt and reached efficiencies of 4.5–6%. In 1957, Mohamed M. Atalla developed the process of silicon surface passivation by thermal oxidation at Bell Labs. The surface passivation process has since been critical to solar cell efficiency. As of 2022 over 90% of the market is crystalline silicon. Other types of solar cell include thin-film solar cells, made by depositing one or more thin layers, or thin film (TF) of photovoltaic material on a substrate, such as glass, plastic or metal. The array of a photovoltaic system, or PV system, produces direct current (DC) power which fluctuates with the sunlight's intensity. For practical use this usually requires conversion to alternating current (AC), through the use of inverters. Multiple solar cells are connected inside panels. Panels are wired together to form arrays, then tied to an inverter, which produces power at the desired voltage, and for AC, the desired frequency/phase. Many residential PV systems are connected to the grid when available, especially in developed countries with large markets. In these grid-connected PV systems energy storage is optional. In certain applications such as satellites, lighthouses, or in developing countries, batteries or additional power generators are often added as back-ups.
Variability The overwhelming majority of electricity produced worldwide is used immediately because traditional generators can adapt to demand and storage is generally more expensive. Both solar power and wind power are sources of variable renewable power, meaning that all available output must be used locally, transmitted elsewhere to be used, or stored (e.g., in a battery). Since solar energy is not available at night, storing it so as to have continuous electricity availability is potentially an important issue, particularly in off-grid applications and for future 100% renewable energy scenarios. As solar power is intermittent and depends on both daylight and weather conditions, countries following net-zero pathways that rely heavily on solar energy typically need to integrate it with large-scale battery storage, pumped hydroelectric energy storage, or long-distance power transmission to help maintain grid reliability. Solar power can be forecast to some extent by time based on the time of day, location, and seasons, although short-term generation also depends on weather conditions. The challenge of integrating solar power in any given electric utility varies significantly.
Well
Q43483 EXACT TITLE 1.000
QID OVERLAP: Q43483 in energy_utilities (tier:evergreen) and home_services (tier:evergreen). | SHARED TOKENS (17): "construction", "create", "drilling", "falls", "oldest", "pipe", "pump", "require", "resources", "rural", "site", "structure", "surface", "treatment", "water", "wells", "world". | EXACT TITLE in energy_utilities: "Well". | EXACT TITLE in home_services: "Well".
constructioncreatedrillingfallsoldestpipepumprequireresourcesruralsitestructuresurfacetreatmentwaterwellsworld
ts that are raised mechanically or by hand. Water can also be injected back into the aquifer through the well. Wells were first constructed at least eight thousand years ago and historically vary in construction from a sediment of a dry watercourse to the qanats of Iran, and the stepwells and sakiehs of India. Placing a lining in the well shaft helps create stability, and linings of wood or wickerwork date back at least as far as the Iron Age. Wells have traditionally been sunk by hand digging, as is still the case in rural areas of the developing world. These wells are inexpensive and low-tech as they use mostly manual labour, and the structure can be lined with brick or stone as the excavation proceeds. A more modern method called caissoning uses pre-cast reinforced concrete well rings that are lowered into the hole. Driven wells can be created in unconsolidated material with a well hole structure, which consists of a hardened drive point and a screen of perforated pipe, after which a pump is installed to collect the water. Deeper wells can be excavated by hand drilling methods or machine drilling, using a bit in a borehole. Drilled wells are usually cased with a factory-made pipe composed of steel or plastic. Drilled wells can access water at much greater depths than dug wells. Two broad classes of well are shallow or unconfined wells completed within the uppermost saturated aquifer at that location, and deep or confined wells, sunk through an impermeable stratum into an aquifer beneath. A collector well can be constructed adjacent to a freshwater lake or stream with water percolating through the intervening material. The site of a well can be selected by a hydrogeologist, or groundwater surveyor. Water may be pumped or hand drawn. Impurities from the surface can easily reach shallow sources and contamination of the supply by pathogens or chemical contaminants needs to be avoided. Well water typically contains more minerals in solution than surface water and may require treatment before being potable. Soil salination can occur as the water table falls and the surrounding soil begins to dry out.
Until recent centuries, all artificial wells were pumpless hand-dug wells of varying degrees of sophistication, and they remain a very important source of potable water in some rural developing areas, where they are routinely dug and used today. Their indispensability has produced a number of literary references, literal and figurative, including the reference to the incident of Jesus meeting a woman at Jacob's well (John 4:6) in the Bible and the "Ding Dong Bell" nursery rhyme about a cat in a well. Hand-dug wells are excavations with diameters large enough to accommodate one or more people with shovels digging down to below the water table. The excavation is braced horizontally to avoid landslide or erosion endangering the people digging. They can be lined with stone or brick; extending this lining upwards above the ground surface to form a wall around the well serves to reduce both contamination and accidental falls into the well. A more modern method called caissoning uses reinforced concrete or plain concrete pre-cast well rings that are lowered into the hole. A well-digging team digs under a cutting ring and the well column slowly sinks into the aquifer, whilst protecting the team from collapse of the well bore. Hand-dug wells are inexpensive and low tech (compared to drilling) and they use mostly manual labour to access groundwater in rural locations of developing countries. They may be built with a high degree of community participation, or by local entrepreneurs who specialize in hand-dug wells. They have been successfully excavated to 60 metres (200 ft). They have low operational and maintenance costs, in part because water can be extracted by hand, without a pump. The water often comes from an aquifer or groundwater, and can be easily deepened, which may be necessary if the ground water level drops, by telescoping the lining further down into the aquifer. The yield of existing hand dug wells may be improved by deepening or introducing vertical tunnels or perforated pipes. Drawbacks to hand-dug wells are numerous. It can be impractical to hand dig wells in areas where hard rock is present, and they can be time-consuming to dig and line even in favourable areas. Because they exploit shallow aquifers, the well may be susceptible to yield fluctuations and possible contamination from surface water, including sewage. Hand dug well construction generally requires the use of a well trained construction team, and the capital investment for equipment such as concrete ring moulds, heavy lifting equipment, well shaft formwork, motorized de-watering pumps, and fuel can be large for people in developing countries. Construction of hand dug wells can be dangerous due to collapse of the well bore, falling objects and asphyxiation, including from dewatering pump exhaust fumes. The Woodingdean Water Well, hand-dug between 1858 and 1862, is the deepest hand-dug well at 392 metres (1,285 ft). The Big Well in Greensburg, Kansas, is billed as the world's largest hand-dug well, at 109 feet (33 m) deep and 32 feet (9.8 m) in diameter. However, the Well of Joseph in the Cairo Citadel at 280 feet (85 m) deep and the Pozzo di San Patrizio (St.
The quality of the well water can be significantly increased by lining the well, sealing the well head, fitting a self-priming hand pump, constructing an apron, ensuring the area is kept clean and free from stagnant water and animals, moving sources of contamination (pit latrines, garbage pits, on-site sewer systems) and carrying out hygiene education. The well should be cleaned with 1% chlorine solution after construction and periodically every 6 months. Well holes should be covered to prevent loose debris, animals, animal excrement, and wind-blown foreign matter from falling into the hole and decomposing. The cover should be able to be in place at all times, including when drawing water from the well. A suspended roof over an open hole helps to some degree, but ideally the cover should be tight fitting and fully enclosing, with only a screened air vent. Minimum distances and soil percolation requirements between sewage disposal sites and water wells need to be observed.
Distributed generation
Q861135 EXACT TITLE 1.000
QID OVERLAP: Q861135 in energy_utilities (tier:evergreen) and home_services (tier:branch). | SHARED TOKENS (23): "district", "electric", "electrical", "energy", "gas", "integration", "makes", "managed", "means", "multiple", "network", "operate", "power", "pressure", "require", "requires", "resources", "small", "solar", "storage".... | EXACT TITLE in energy_utilities: "Distributed generation".
districtelectricelectricalenergygasintegrationmakesmanagedmeansmultiplenetworkoperatepowerpressurerequirerequiresresourcessmallsolarstoragesystemsystemswind
Distributed generation, also distributed energy, on-site generation (OSG), or district/decentralized energy, is electrical generation and storage performed by a variety of small, grid-connected or distribution system-connected devices referred to as distributed energy resources (DER). Conventional power stations, such as coal-fired, gas, and nuclear powered plants, as well as hydroelectric dams and large-scale solar power stations, are centralized and often require electric energy to be transmitted over long distances. By contrast, DER systems are decentralized, modular, and more flexible technologies that are located close to the load they serve, albeit having capacities of only 10 megawatts (MW) or less. These systems can comprise multiple generation and storage components; in this instance, they are referred to as hybrid power systems. DER systems typically use renewable energy sources, including small hydro, biomass, biogas, solar power, wind power, and geothermal power, and increasingly play an important role for the electric power distribution system. A grid-connected device for electricity storage can also be classified as a DER system and is often called a distributed energy storage system (DESS). By means of an interface, DER systems can be managed and coordinated within a smart grid. Distributed generation and storage enables the collection of energy from many sources and may lower environmental impacts and improve the security of supply. One of the major issues with the integration of the DER such as solar power, wind power, etc. is the uncertain nature of such electricity resources. This uncertainty can cause a few problems in the distribution system: (i) it makes the supply-demand relationships extremely complex, and requires complicated optimization tools to balance the network, and (ii) it puts higher pressure on the transmission network, and (iii) it may cause reverse power flow from the distribution system to transmission system. Microgrids are modern, localized, small-scale grids, contrary to the traditional, centralized electricity grid (macrogrid). Microgrids can disconnect from the centralized grid and operate autonomously, strengthen grid resilience, and help mitigate grid disturbances. They are typically low-voltage AC grids, often use diesel generators, and are installed by the community they serve.
Overview Historically, central plants have been an integral part of the electric grid, in which large generating facilities are specifically located either close to resources or otherwise located far from populated load centers. These, in turn, supply the traditional transmission and distribution (T&D) grid that distributes bulk power to load centers and from there to consumers. These were developed when the costs of transporting fuel and integrating generating technologies into populated areas far exceeded the cost of developing T&D facilities and tariffs. Central plants are usually designed to take advantage of available economies of scale in a site-specific manner, and are built as "one-off", custom projects. These economies of scale began to fail in the late 1960s and, by the start of the 21st century, Central Plants could arguably no longer deliver competitively cheap and reliable electricity to more remote customers through the grid, because the plants had come to cost less than the grid and had become so reliable that nearly all power failures originated in the grid. Thus, the grid had become the main driver of remote customers' power costs and power quality problems, which became more acute as digital equipment required extremely reliable electricity. Efficiency gains no longer come from increasing generating capacity, but from smaller units located closer to sites of demand. For example, coal power plants are built away from cities to prevent their heavy air pollution from affecting the populace. In addition, such plants are often built near collieries to minimize the cost of transporting coal. Hydroelectric plants are by their nature limited to operating at sites with sufficient water flow. Low pollution is a crucial advantage of combined cycle plants that burn natural gas. The low pollution permits the plants to be near enough to a city to provide district heating and cooling. Distributed energy resources are mass-produced, small, and less site-specific. Their development arose out of: concerns over perceived externalized costs of central plant generation, particularly environmental concerns; the increasing age, deterioration, and capacity constraints upon T&D for bulk power; the increasing relative economy of mass production of smaller appliances over heavy manufacturing of larger units and on-site construction; Along with higher relative prices for energy, higher overall complexity and total costs for regulatory oversight, tariff administration, and metering and billing. Capital markets have come to realize that right-sized resources, for individual customers, distribution substations, or microgrids, are able to offer important but little-known economic advantages over central plants. Smaller units achieved greater economic benefits through mass-production than larger units gained from their size alone. The increased value of these resources—resulting from improvements in financial risk, engineering flexibility, security, and environmental quality—often outweighs their apparent cost disadvantages. Distributed generation (DG), vis-à-vis central plants, must be justified on a life-cycle basis. Unfortunately, many of the direct, and virtually all of the indirect, benefits of DG are not captured within traditional utility cash-flow accounting. While the levelized cost of DG is typically more expensive than conventional, centralized sources on a kilowatt-hour basis, this does not consider negative aspects of conventional fuels. The additional premium for DG is rapidly declining as demand increases and technology progresses, and sufficient and reliable demand may bring economies of scale, innovation, competition, and more flexible financing, that could make DG clean energy part of a more diversified future. DG reduces the amount of energy lost in transmitting electricity because the electricity is generated very near where it is used, perhaps even in the same building. This also reduces the size and number of power lines that must be constructed. Typical DER systems in a feed-in tariff (FIT) scheme have low maintenance, low pollution and high efficiencies. In the past, these traits required dedicated operating engineers and large complex plants to reduce pollution. However, modern embedded systems can provide these traits with automated operation and renewable energy, such as solar, wind and geothermal.
esources (DER). Conventional power stations, such as coal-fired, gas, and nuclear powered plants, as well as hydroelectric dams and large-scale solar power stations, are centralized and often require electric energy to be transmitted over long distances. By contrast, DER systems are decentralized, modular, and more flexible technologies that are located close to the load they serve, albeit having capacities of only 10 megawatts (MW) or less. These systems can comprise multiple generation and storage components; in this instance, they are referred to as hybrid power systems. DER systems typically use renewable energy sources, including small hydro, biomass, biogas, solar power, wind power, and geothermal power, and increasingly play an important role for the electric power distribution system. A grid-connected device for electricity storage can also be classified as a DER system and is often called a distributed energy storage system (DESS). By means of an interface, DER systems can be managed and coordinated within a smart grid. Distributed generation and storage enables the collection of energy from many sources and may lower environmental impacts and improve the security of supply. One of the major issues with the integration of the DER such as solar power, wind power, etc. is the uncertain nature of such electricity resources. This uncertainty can cause a few problems in the distribution system: (i) it makes the supply-demand relationships extremely complex, and requires complicated optimization tools to balance the network, and (ii) it puts higher pressure on the transmission network, and (iii) it may cause reverse power flow from the distribution system to transmission system. Microgrids are modern, localized, small-scale grids, contrary to the traditional, centralized electricity grid (macrogrid). Microgrids can disconnect from the centralized grid and operate autonomously, strengthen grid resilience, and help mitigate grid disturbances. They are typically low-voltage AC grids, often use diesel generators, and are installed by the community they serve.
Heat pump
EXACT TITLE 1.000
QID OVERLAP: Q131313 in energy_utilities (tier:evergreen) and home_services (tier:branch). | SHARED TOKENS (28): "air", "building", "cost", "district", "electric", "electrical", "energy", "falls", "gas", "generates", "ground", "heating", "means", "mechanical", "mitigation", "move", "natural", "operates", "power", "pressure".... | EXACT TITLE in energy_utilities: "Heat pump".
airbuildingcostdistrictelectricelectricalenergyfallsgasgeneratesgroundheatingmeansmechanicalmitigationmovenaturaloperatespowerpressurepumpsalessourcesystemsystemstransferswaterwinter
temperature of the gas falls. Now colder than the temperature of the outdoor space being used as a heat source, it can again take up energy from the heat source, be compressed, and repeat the cycle. Air source heat pumps are the most common models, while other types include ground source heat pumps, water source heat pumps, and exhaust air heat pumps. Large-scale heat pumps are also used in district heating systems. Because of their high efficiency and the increasing share of fossil-free sources in electrical grids, heat pumps are playing a role in climate change mitigation. At a cost of 1 kWh of electricity, they can transfer 1 to 4.5 kWh of thermal energy into a building. The carbon footprint of heat pumps depends on how electricity is generated, but they usually reduce emissions. Heat pumps could satisfy over 80% of global space and water heating needs with a lower carbon footprint than gas-fired condensing boilers: however, in 2021 they only met 10%, the boycott of Russian natural gas has accelerated the need to shift toward alternatives; 3 million European heat pumps were sold in 2023. Although sales have grown significantly, adoption remains limited.
y from the heat source, be compressed, and repeat the cycle. Air source heat pumps are the most common models, while other types include ground source heat pumps, water source heat pumps, and exhaust air heat pumps. Large-scale heat pumps are also used in district heating systems. Because of their high efficiency and the increasing share of fossil-free sources in electrical grids, heat pumps are playing a role in climate change mitigation. At a cost of 1 kWh of electricity, they can transfer 1 to 4.5 kWh of thermal energy into a building. The carbon footprint of heat pumps depends on how electricity is generated, but they usually reduce emissions. Heat pumps could satisfy over 80% of global space and water heating needs with a lower carbon footprint than gas-fired condensing boilers: however, in 2021 they only met 10%, the boycott of Russian natural gas has accelerated the need to shift toward alternatives; 3 million European heat pumps were sold in 2023. Although sales have grown significantly, adoption remains limited.
3 million European heat pumps were sold in 2023. Although sales have grown significantly, adoption remains limited. In 2025, REPowerEU provides a roadmap to transition to this efficient and flexible air conditioning system. Operation Heat flows spontaneously from a region of higher temperature to a region of lower temperature. Heat does not flow spontaneously from lower temperature to higher, but it can be made to flow in this direction if work is performed. The work required to transfer a given amount of heat is usually much less than the amount of heat gained; this is the motivation for using heat pumps in applications such as the heating of water and the interior of buildings. The heat pump works by the use of reverse cycle conditioning. Liquid refrigerant flows through coils in the cooling unit and absorbs heat, becoming a gas which is then compressed to further raise the temperature. This gaseous refrigerant is pumped into more coils in the heating unit, where a fan blows air over the coil to absorb the heat and liquefy the refrigerant. Most heat pumps are capable of transferring heat in both directions, meaning, for example, that they can heat and cool a space.
I
Q3147780 EXACT TITLE 0.920
QID OVERLAP: Q3147780 in energy_utilities (tier:evergreen) and home_services (tier:evergreen). | SHARED TOKENS (11): "around", "business", "electrical", "gas", "idaho", "natural", "operates", "power", "solar", "utility", "wind". | EXACT TITLE in energy_utilities: "Idaho Power". | EXACT TITLE in home_services: "Idaho Power".
aroundbusinesselectricalgasidahonaturaloperatespowersolarutilitywind
mission and distribution of electricity in eastern Oregon and southern Idaho. It is a subsidiary of IDACORP, Inc. The company's 24,000-square-mile (62,000 km2) service area generally follows the area around the Snake River and its tributaries. Idaho Power owns and operates 17 hydroelectric dams and three natural gas power plants.
The company's 24,000-square-mile (62,000 km2) service area generally follows the area around the Snake River and its tributaries. Idaho Power owns and operates 17 hydroelectric dams and three natural gas power plants.
History Idaho Power Company originally filed for incorporation in Maine on May 6, 1915. It was reincorporated in Idaho as a subsidiary of IDACORP, Inc on October 1, 1998. This was followed by the purchase of the assets of five small southern Idaho power companies: Idaho-Oregon Light & Power; Great Shoshone and Twin Falls Water Power; Idaho Railway, Light & Power; Idaho Power & Light; and Southern Idaho Water Power Company. In 2018 Idaho Power sponsored the annual "Drive Electric Week" car show event at the state capitol. At the show people can learn about electric vehicles. Interest in electric vehicles has increased because of changing gas prices, improvements in battery technology, concerns for the environment and federal tax incentives for buying electric vehicles. To respond to customer interest, Idaho Power added tools to its website to guide customers investigating purchasing an electric vehicle. In 2019, Idaho Power set a goal to provide 100-percent clean energy by 2045. In addition to its hydropower facilities, which typically meet almost half its customers’ energy demands, Idaho Power plans additional investments in wind, solar and other clean sources. Clean energy resources are becoming more affordable, which could help Idaho Power accomplish its goal while keeping prices fair. Grid upgrades and battery-storage technology should help maintain Idaho Power's impressive reliability while moving the company closer to its goal. Continued energy efficiency efforts will help. Clean energy initiatives are not new to Idaho Power. In 2009, the company adopted a resolution to reduce carbon emissions. Idaho Power has reduced its carbon emissions intensity — measured in pounds of carbon dioxide (CO2) per megawatt-hour — by almost 50 percent since 2005.
Ada County, Idaho
Q109820 QID OVERLAP 0.890
QID OVERLAP: Q109820 in energy_utilities (tier:branch) and home_services (tier:evergreen). | SHARED TOKENS (12): "ada", "boise", "cascade", "district", "home", "idaho", "jurisdiction", "largest", "local", "northwest", "population", "private". | URL->B (1): https://adacounty.id.gov/Assessor.
adaboisecascadedistricthomeidahojurisdictionlargestlocalnorthwestpopulationprivate
Ada County is located in the southwestern part of Idaho, United States. As of the 2020 census, the county had a population of 494,967, which by 2025 was estimated to have risen to 546,141. Ada County is by far the state's most populous county; it is home to 26.8% of the state's population. The county seat and largest city is Boise, which is also the state capital. Ada County is included in the Boise metropolitan area. The Ada County Highway District has jurisdiction over all the local county and city streets, except for private roads and state roads.
populous county; it is home to 26.8% of the state's population. The county seat and largest city is Boise, which is also the state capital. Ada County is included in the Boise metropolitan area. The Ada County Highway District has jurisdiction over all the local county and city streets, except for private roads and state roads.
ea. The Ada County Highway District has jurisdiction over all the local county and city streets, except for private roads and state roads. In the interior Pacific Northwest east of the Cascade Range, Ada County ranks second in population, behind Spokane County, Washington. History Ada County was created by the Idaho Territory legislature on December 22, 1864, partitioned from Boise County. It is named for Ada Riggs, the daughter of H. C. Riggs, a member of the legislature; he established the county and was a co-founder of Boise.
Treasure Valley
Q7836726 EXACT TITLE 0.880
QID OVERLAP: Q7836726 in energy_utilities (tier:evergreen) and home_services (tier:evergreen). | SHARED TOKENS (9): "association", "boise", "idaho", "local", "resources", "rural", "treasure", "valley", "western". | EXACT TITLE in energy_utilities: "Treasure Valley". | EXACT TITLE in home_services: "Treasure Valley".
associationboiseidaholocalresourcesruraltreasurevalleywestern
ern Oregon to Boise, and is the most populated area in Idaho. Historically, the valley had been known as the Lower Snake River Valley or the Boise River Valley. Pete Olesen, president of the valley's association of local Chambers of Commerce, coined the name "Treasure Valley" in 1959 to reflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas.
The Treasure Valley is a valley in the western United States, primarily in southwestern Idaho, where the Payette, Boise, Weiser, Malheur, and Owyhee rivers drain into the Snake River. It includes all the lowland areas from Vale in rural eastern Oregon to Boise, and is the most populated area in Idaho. Historically, the valley had been known as the Lower Snake River Valley or the Boise River Valley. Pete Olesen, president of the valley's association of local Chambers of Commerce, coined the name "Treasure Valley" in 1959 to reflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas.
eflect the treasure chest of resources and opportunities that the region offered. The valley has a very diverse terrain, from sage flatlands, to mesas, agricultural areas, and urbanized areas. As the Boise Metropolitan Area grows, more and more undeveloped and agricultural land is being urbanized. History Settling the region The tribes that roamed the area, specifically, were the Northern Paiute and Shoshone. In 1834, Thomas McKay built the original Fort Boise, in the area near present-day Parma, which was run for a time by Francois Payette. It later was moved because of flooding troubles and was abandoned in 1854. The Oregon Trail runs through the Treasure Valley. The valley was settled for the most part by ranchers and farmers, initially to supply the gold and silver mining communities in the higher elevations nearby: Idaho City in the Boise Basin and Silver City in the Owyhees. A new Fort Boise was constructed by the U.S. Army in 1863 in present-day Boise, from which the city grew.
Water distribution system
Q2551228 EXACT TITLE 0.880
QID OVERLAP: Q2551228 in energy_utilities (tier:evergreen) and home_services (tier:branch). | SHARED TOKENS (9): "commercial", "fire", "industrial", "network", "residential", "system", "treatment", "water", "wells". | EXACT TITLE in energy_utilities: "Water distribution system".
commercialfireindustrialnetworkresidentialsystemtreatmentwaterwells
A water distribution system is a part of water supply network with components that carry potable water from a centralized treatment plant or wells to consumers to satisfy residential, commercial, industrial and fire fighting requirements. Definitions Water distribution network is the term for the portion of a water distribution system up to the service points of bulk water consumers or demand nodes where many consumers are lumped together.
A water distribution system consists of pipelines, storage facilities, pumps, and other accessories. Pipelines laid within public right of way called water mains are used to transport water within a distribution system. Large diameter water mains called primary feeders are used to connect between water treatment plants and service areas. Secondary feeders are connected between primary feeders and distributors. Distributors are water mains that are located near the water users, which also supply water to individual fire hydrants. A service line is a small diameter pipe used to connect from a water main through a small tap to a water meter at user's location. There is a service valve (also known as curb stop) on the service line located near street curb to shut off water to the user's location. Storage facilities, or distribution reservoirs, provide clean drinking water storage (after required water treatment process) to ensure the system has enough water to service in response to fluctuating demands (service reservoirs), or to equalize the operating pressure (balancing reservoirs). They can also be temporarily used to serve fire fighting demands during a power outage.
Internal corrosion control Water quality can deteriorate due to corrosion of metal pipe surfaces and connections in distribution systems. Pipe corrosion shows in water as color, taste and odor, any of which may cause health concerns. Health issues relate to releases of trace metals such as lead, copper or cadmium into the water. Lead exposure can cause delays in physical and mental development in children. Long term exposure to copper may cause liver and kidney damage. High or long term exposure of cadmium may cause damage to various organs. Corrosion of iron pipes causes rusty or red water. Corrosion of zinc and iron pipes can cause metallic taste. Various techniques can be used to control internal corrosion, for example, pH level adjustment, adjustment of carbonate and calcium to create calcium carbonate as a pipe surface coating, and applying a corrosion inhibitor. For example, phosphate products that form films over pipe surfaces is a type of corrosion inhibitor. This reduces the chance of leaching of trace metals from the pipe materials into the water. Hydrant flushing Hydrant flushing is the scheduled release of water from fire hydrants or special flushing hydrants to purge iron and other mineral deposits from a water main. Another benefit of using fire hydrants for water main flushing is to test whether water is supplied to fire hydrants at adequate pressure for fire fighting.
Battery energy storage system
Q810924 QID OVERLAP 0.800
QID OVERLAP: Q810924 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (24): "active", "around", "battery", "capacity", "control", "cost", "customer", "demand", "electric", "electrical", "energy", "full", "gas", "large", "largest", "operating", "power", "require", "source", "storage"....
activearoundbatterycapacitycontrolcostcustomerdemandelectricelectricalenergyfullgaslargelargestoperatingpowerrequiresourcestoragesystemsystemstypeworld
-term peak power demand and for ancillary services, such as providing operating reserve and frequency control to minimize the chance of power outages. They are often installed at, or close to, other active or disused power stations and may share the same grid connection to reduce costs. Since battery storage plants require no deliveries of fuel, are compact compared to generating stations and have no chimneys or large cooling systems, they can be rapidly installed and placed if necessary within urban areas, close to customer load, or even inside customer premises. As of 2021, the power and capacity of the largest individual battery storage system is an order of magnitude less than that of the largest pumped-storage power plants, the most common form of grid energy storage. For example, the Bath County Pumped Storage Station, the second largest in the world, can store 24 GWh of electricity and dispatch 3 GW while the first phase of Vistra Energy's Moss Landing Energy Storage Facility can store 1.2 GWh and dispatch 300 MW. However, grid batteries do not have to be large — a high number of smaller ones (often as hybrid power) can be widely deployed across a grid for greater redundancy and large overall capacity. By 2025, global power capacity was 267 GW with 610 GWh energy capacity. As of 2019, battery power storage is typically cheaper than open cycle gas turbine power for use up to two hours, and there was around 365 GWh of battery storage deployed worldwide, growing rapidly. Levelized cost of storage (LCOS) has fallen rapidly. From 2014 to 2024, cost halving time was 4.1 years.
By 2025, global grid battery power capacity was 267 GW with 610 GWh energy capacity, compared to the other major form of grid storage, pumped-storage hydroelectricity with 200 GW power and 9000 GWh energy storage worldwide as of 2025 according to International Hydropower Association. The battery market had thus surpassed the power generation capacity of pumped-storage, but remained far smaller in terms of energy capacity. Relative to 2010, batteries and photovoltaics have followed roughly the same downward price curve due to experience curve effects. Cells are the major cost component, costing 30-40% of a full system. Batteries' rapid increase occurred as price drops, with over 100 GW added (mostly LFP) in 2025, up from 10 GW in 2021. In 2025, solar power added was down to 6 times bigger than battery power added, as battery increased much faster than solar. Average world system price was around $120/kWh in 2025. The amount of batteries and their associated operational money flow became an investible asset class by 2026, pooling several separate batteries into centrally controlled portfolios. This allows small developers with low funds to partner with groups of institutional investors without practical knowledge of the electricity business, to the benefit of both. This is a contrast to the usual single energy company approach of developing, owning and operating an electricity facility. By mid-2025, China passed 100 GW batteries (164 GW total storage) and added capacity market payments. As of May 2025, China’s cumulative BESS installations were reported at 106.9 GW and 240.3 GWh, with global battery storage deployment of nearly 9 GWh in April 2025. At the end of 2024, China had 62 GW / 141 GWh of battery power stations. In 2020, China added 1,557 MW to its battery storage capacity, while storage facilities for photovoltaics projects accounting for 27% of the capacity, to the total 3,269 MW of electrochemical energy storage capacity. The United States installed 57.6 GWh in 2025, and 12.3 GW / 37.1 GWh of batteries in 2024. USA had 70 GWh production capacity in 2025, roughly corresponding to domestic market size. In 2022, US capacity doubled to 9 GW / 25 GWh. At the end of 2021, the capacity grew to 4,588 MW. The 2021 price of a 60 MW / 240 MWh (4-hour) battery installation in the United States was US$379/usable kWh, or US$292/nameplate kWh, a 13% drop from 2020. In 2010, the United States had 59 MW of battery storage capacity from 7 battery power plants. This increased to 49 plants comprising 351 MW of capacity in 2015. In 2018, the capacity was 869 MW from 125 plants, capable of storing a maximum of 1,236 MWh of generated electricity. By the end of 2020, the battery storage capacity reached 1,756 MW. The US market for storage power plants in 2015 increased by 243% compared to 2014. In June 2024 the capacity was 4.6 GW of power and 5.9 GWh of energy in the United Kingdom. In 2022, UK capacity grew by 800 MWh, ending at 2.4 GW / 2.6 GWh. As of May 2021, 1.3 GW of battery storage was operating, with 16 GW of projects in the pipeline potentially deployable over the next few years. As of the end of 2024, Europe had reached 61 GWh of installed battery energy storage capacity, after adding 21 GWh that year. Germany and Italy each contributed approximately 6 GWh to this growth. The average installation cost during 2024 ranged between €300 and €400 per kilowatt-hour. By comparison, Europe deployed 1.9 GW of new battery capacity in 2022. Developments in Germany are closely monitored by RWTH Aachen University site battery-charts.de, reporting in September 2025 15 GW and 22 GWh mostly in over 2 million home-based systems, while 1.84 Mio. registered Battery Electric Vehicles (BEVs) in Germany have an estimated energy capacity of over 115 GWh. Japan’s energy sector has also undergone significant growth in renewable energy capacity. expanding by over 30% within five years, which has contributed to a sharp increase in demand for battery energy storage systems (BESS). More than half of the 2.4 GW of BESS capacity awarded in recent long-term low-carbon power auctions was allocated to foreign-owned companies or consortia. Projects approved in 2024 alone comprise more than 1.37 GW of power capacity and over 6.7 GWh of energy capacity. The country’s Long-Term Decarbonization Power Source Auction supports BESS deployment by guaranteeing fixed cost recovery over a 20-year period. However, constraints such as limited price volatility and a price floor in Japan’s power market may limit investment returns for storage operators, signaling the need for further regulatory reform. Worldwide in 2024, suppliers CRRC had 8% market share, Sungrow 14%, and Tesla Energy 15%. Some developers are also utilizing retired electric vehicle batteries to build second-life storage systems, with costs potentially 50% lower than those of new battery installations. Nonetheless, due to the declining cost of new batteries, buyers of second-life systems may only be willing to pay around 10% of the original cost. In 2024, a 53 MWh battery storage facility built from approximately 900 used electric vehicle batteries was commissioned in Texas. The major 2025 Iberian Peninsula blackout severed the Iberian grid from the rest of Europe on 28 April and then collapsed to a complete blackout in just five seconds, then caused some deaths plus economic losses estimated at up to €4.5 billion. The importance of system resilience has become increasingly prominent in Spain. Battery Energy Storage Systems were at a very low level at around 20 MW, but are now regarded as a key pillar of the Spanish energy transition. Major utilities such as Iberdrola and Solaria are now actively developing hybrid solar-plus-storage projects to mitigate the impact of solar overproduction and declining market prices. Solaria alone has launched eight new BESS installations in Castilla y León and Castilla-La Mancha.
By 2025, global power capacity was 267 GW with 610 GWh energy capacity. As of 2019, battery power storage is typically cheaper than open cycle gas turbine power for use up to two hours, and there was around 365 GWh of battery storage deployed worldwide, growing rapidly. Levelized cost of storage (LCOS) has fallen rapidly. From 2014 to 2024, cost halving time was 4.1 years.
Building code
Q2333573 QID OVERLAP 0.800
QID OVERLAP: Q2333573 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (24): "building", "code", "construction", "control", "design", "district", "electrical", "estate", "international", "jurisdiction", "law", "local", "managers", "mechanical", "national", "plumbing", "private", "public", "real", "require"....
buildingcodeconstructioncontroldesigndistrictelectricalestateinternationaljurisdictionlawlocalmanagersmechanicalnationalplumbingprivatepublicrealrequireresidentialsafetystandardswork
A building code (also building control or building regulations) is a set of rules that specify the standards for construction objects such as buildings and non-building structures. Buildings must conform to the code to obtain planning permission, usually from a local council. The main purpose of building codes is to protect public health, safety and general welfare as they relate to the construction and occupancy of buildings and structures — for example, the building codes in many countries require engineers to consider the effects of soil liquefaction in the design of new buildings. The building code becomes law of a particular jurisdiction when formally enacted by the appropriate governmental or private authority. Building codes are generally intended to be applied by architects, engineers, interior designers, constructors and regulators but are also used for various purposes by safety inspectors, environmental scientists, real estate developers, subcontractors, manufacturers of building products and materials, insurance companies, facility managers, tenants, and others. Codes regulate the design and construction of structures where adopted into law. Examples of building codes began in ancient times. In the USA the main codes are the International Building Code or International Residential Code [IBC/IRC], electrical codes and plumbing, mechanical codes. Fifty states and the District of Columbia have adopted the I-Codes at the state or jurisdictional level. In Canada, national model codes are published by the National Research Council of Canada. In the United Kingdom, compliance with Building Regulations is monitored by building control bodies, either Approved Inspectors or Local Authority Building Control departments.
btain planning permission, usually from a local council. The main purpose of building codes is to protect public health, safety and general welfare as they relate to the construction and occupancy of buildings and structures — for example, the building codes in many countries require engineers to consider the effects of soil liquefaction in the design of new buildings. The building code becomes law of a particular jurisdiction when formally enacted by the appropriate governmental or private authority. Building codes are generally intended to be applied by architects, engineers, interior designers, constructors and regulators but are also used for various purposes by safety inspectors, environmental scientists, real estate developers, subcontractors, manufacturers of building products and materials, insurance companies, facility managers, tenants, and others. Codes regulate the design and construction of structures where adopted into law. Examples of building codes began in ancient times. In the USA the main codes are the International Building Code or International Residential Code [IBC/IRC], electrical codes and plumbing, mechanical codes. Fifty states and the District of Columbia have adopted the I-Codes at the state or jurisdictional level. In Canada, national model codes are published by the National Research Council of Canada. In the United Kingdom, compliance with Building Regulations is monitored by building control bodies, either Approved Inspectors or Local Authority Building Control departments.
the effects of soil liquefaction in the design of new buildings. The building code becomes law of a particular jurisdiction when formally enacted by the appropriate governmental or private authority. Building codes are generally intended to be applied by architects, engineers, interior designers, constructors and regulators but are also used for various purposes by safety inspectors, environmental scientists, real estate developers, subcontractors, manufacturers of building products and materials, insurance companies, facility managers, tenants, and others. Codes regulate the design and construction of structures where adopted into law. Examples of building codes began in ancient times. In the USA the main codes are the International Building Code or International Residential Code [IBC/IRC], electrical codes and plumbing, mechanical codes. Fifty states and the District of Columbia have adopted the I-Codes at the state or jurisdictional level. In Canada, national model codes are published by the National Research Council of Canada. In the United Kingdom, compliance with Building Regulations is monitored by building control bodies, either Approved Inspectors or Local Authority Building Control departments.
Heating, ventilation, and air conditioning
Q1798773 QID OVERLAP 0.800
QID OVERLAP: Q1798773 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (19): "air", "building", "control", "design", "electrical", "energy", "green", "heaters", "heating", "hvac", "maintenance", "mechanical", "modeling", "operating", "plumbing", "pump", "quality", "systems", "water".
airbuildingcontroldesignelectricalenergygreenheatersheatinghvacmaintenancemechanicalmodelingoperatingplumbingpumpqualitysystemswater
Heating, ventilation, and air conditioning (HVAC ) systems regulate temperature, humidity, and indoor air quality in vehicles and buildings. They are designed to provide thermal comfort and to control airborne contaminants through heating, cooling, ventilation, filtration, and humidity control. HVAC design considerations include energy efficiency, indoor air quality, maintenance, and environmental impact, particularly in green building projects. In building design, mechanical, electrical, and plumbing engineers may integrate HVAC systems with other building systems (i.e.
nce, and environmental impact, particularly in green building projects. In building design, mechanical, electrical, and plumbing engineers may integrate HVAC systems with other building systems (i.e. air-source heat pump water heaters) and use energy modeling to evaluate performance and operating costs. Summary The three major functions of heating, ventilation, and air conditioning are intertwined. HVAC systems can provide ventilation and maintain pressure relationships between spaces.
other building systems (i.e. air-source heat pump water heaters) and use energy modeling to evaluate performance and operating costs. Summary The three major functions of heating, ventilation, and air conditioning are intertwined. HVAC systems can provide ventilation and maintain pressure relationships between spaces.
Solar inverter
Q129316 QID OVERLAP 0.780
QID OVERLAP: Q129316 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (14): "commercial", "component", "direct", "electrical", "equipment", "local", "network", "panel", "power", "protection", "solar", "system", "type", "utility".
commercialcomponentdirectelectricalequipmentlocalnetworkpanelpowerprotectionsolarsystemtypeutility
(PV) inverter is a type of power inverter which converts the variable direct current (DC) output of a photovoltaic solar panel into a utility frequency alternating current (AC) that can be fed into a commercial electrical grid or used by a local, off-grid electrical network. It is a critical balance of system (BOS)–component in a photovoltaic system, allowing the use of ordinary AC-powered equipment.
Disadvantages The primary disadvantage of the three-phase inverter concept is that only sites with three-phase power can take advantage of these systems. Three-phase is easily available at utility-scale and commercial sites, and it was to these markets that the systems were aimed. However, the main advantages of the microinverter concept involve issues of shading and panel orientation, and in the case of large systems, these are easily addressed by simply moving the panels around. The benefits of the three-phase micro are very limited compared to the residential case, with limited space to work in. As of 2014, observers believed that three-phase micros had not yet managed to reach the price point where their advantages appeared worthwhile.
Three-phase microinverters Efficient conversion of DC power to AC requires the inverter to store energy from the panel while the grid's AC voltage is near zero, and then release it again when it rises. This requires considerable amounts of energy storage in a small package. The lowest-cost option for the required amount of storage is the electrolytic capacitor, but these have relatively short lifetimes, normally measured in years, and those lifetimes are shorter when operated hot, like on a rooftop solar panel. This has led to considerable development effort on the part of microinverter developers, who have introduced a variety of conversion topologies with lowered storage requirements, some using the much less capable but far longer lived thin film capacitors where possible. Three-phase electric power represents another solution to the problem. In a three-phase circuit, the power does not vary between (say) +120 to -120 V between two lines, but instead varies between 60 and +120 or -60 and -120 V, and the periods of variation are much shorter. Inverters designed to operate on three-phase systems require much less storage. A three-phase microinverter, using zero-voltage switching, can also offer higher circuit density and lower cost components, while improving conversion efficiency to over 98%, better than the typical one-phase peak around 96%. Three-phase systems, however, are generally only seen in industrial and commercial settings. These markets normally install larger arrays, where price sensitivity is the highest.
Boise, Idaho
Q35775 QID OVERLAP 0.700
QID OVERLAP: Q35775 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (10): "ada", "boise", "counties", "home", "idaho", "locally", "north", "population", "treasure", "valley".
adaboisecountieshomeidaholocallynorthpopulationtreasurevalley
Boise (locally also ) is the capital and most populous city in the U.S. state of Idaho. It is the county seat of Ada County. The population of the city was 235,685 at the 2020 census. The Boise metropolitan area, located in the Treasure Valley, includes five counties of Idaho with an estimated population of 846,000, the most populous metropolitan area in Idaho and 95th-most populous in the United States. Located on the Boise River in southwestern Idaho, it is 41 miles (66 km) east of the Oregon border and 110 miles (177 km) north of the Nevada border. Downtown Boise's elevation is 2,704 feet (824 m) above sea level. Boise is home to major employers in the technology, manufacturing, and service sectors, including companies such as Micron Technology and Hewlett-Packard.
an area in Idaho and 95th-most populous in the United States. Located on the Boise River in southwestern Idaho, it is 41 miles (66 km) east of the Oregon border and 110 miles (177 km) north of the Nevada border. Downtown Boise's elevation is 2,704 feet (824 m) above sea level. Boise is home to major employers in the technology, manufacturing, and service sectors, including companies such as Micron Technology and Hewlett-Packard.
...that the military should continue killing Indians 'until the last Indian in the Territories was either on his reservation or enriched the sagebrush with his decaying carcass.' ...if the Indians refused to move there, 'they will be killed or put on the reservation by force, and certainly shot if they don't stay there.' Furthermore, the editor continues, 'The idea that the Indians have any right to the soil is ridiculous. ...They have no more rights to the soil of the Territories of the United States than wolves or coyotes...' This would be our plan of establishing friendship upon an eternal basis with our Indians: Let all the hostile bands of Idaho Territory be called in (they will not be caught in any other manner) to attend a grand treaty; plenty of blankets and nice little trinkets distributed among them; plenty of grub on hand; have a real jolly time with them; then just before the big feast put strychnine in their meat and poison to death the last mother's son of them. At the same time, native warriors around the valley, under the leadership of Howluck also known as "Bigfoot" among white settlers, among others, waged an escalating and intensified guerrilla campaign of harassment of passerby caravans along the Oregon Trail. The United States Army also escalated and intensified "punitive expeditions" against formations of warriors and against civilian communities as well. This marked the start of the "unofficial" Snake War in 1866. This war lasted until 1868, and is statistically the deadliest of the Indian Wars in the West in terms of casualties. In the end, 1,762 men were counted as the casualties of this war from both sides. In 1868, Fort Hall Indian Reservation was established in Southeastern Idaho, about 220 miles upstream, according to the terms of Fort Bridger Treaty. The Boise Valley Shoshone and Bannock Tribes were not party to this treaty. Nevertheless, in April 1869, the United States Military embarked on a campaign of "Removal, rounding up of natives in the region including in and around Boise, and expelling them with cavalry escort to Fort Hall Indian Reservation. This period is known among the Shoshone and Bannock people as Idaho's Trail of Tears. Some of the natives managed to escape, and they ran to either Duck Valley or Fort McDermitt in Nevada. Incorporation and growth Boise's early growth was significantly driven by its role in supplying the nearby gold towns that sprung up in the 1860s northeast and then southwest of the town. Miners sometimes wintered in Boise and a number of early prominent businessmen were miners who settled in town in the years after the gold rush waned. By 1864 substantial agricultural production was underway on easily irrigated lands near the river and three canal companies had been incorporated. Early transportation improvements were largely a result of toll road franchises awarded by the territorial legislature starting in the 1860s. These first ran from Fort Boise to the mining centers in the Boise Basin and east to Rocky Bar and to Rattlesnake Station where they connected to the Oregon Trail. Territorial census records from a special 1864 enumeration list the population of Boise as 1,658, and an act of December 12, 1864, was the first attempt by the Idaho Territorial Legislature to incorporate the city. This was rejected by voters the following March. Two more unsuccessful attempts were made to organize a city administration by election before the 1866 version of the city charter was approved by voters on January 6, 1868. The growing number of homes and businesses, for which owners wanted proper legal title, may have contributed to the eventual success of incorporation. All of these rejected efforts to incorporate the city came after Boise had been controversially made the state capital in 1864 over strong opposition from northern Idaho interests. This decision reflected the rapid shift of population growth from north to south after the discovery of gold in southern Idaho. By 1868 Boise had over 400 permanent buildings with a wide range of commercial services. 1868 also marked the formal beginning of a long advocacy for railroad connections to other Idaho communities and, just as importantly, to other growing cities in the west such as Portland, Oregon. Competing railroad and western state government interests frustrated these efforts for many years. Designed by Alfred B. Mullett, the U.S. Assay Office at 210 Main Street was built in 1871 and today is a National Historic Landmark. It first began accepting gold and silver for purchase on March 2, 1872, largely eliminating the need to transport ore to the mint in San Francisco. A territorial penitentiary, now known as the Old Idaho State Penitentiary, opened the same month several miles east of town. Mining continued to be important to Boise's economic growth and periodic booms contributed to population growth as well, though production of gold and silver probably peaked in the 1860s. 1882's gold and silver production of $3,500,000 declined to $1,488,315 (including lead) by 1899. Boise began to earn its City of Trees nickname in this period with a popular focus on a range of tree planting projects. Thomas J. Davis planted several thousand fruit trees in 1864 and several other early businessmen either founded nurseries or orchards of their own. In the 1870s tree planting began in earnest in downtown Boise led by prominent hotels as well as businessmen and residents. In 1907 Davis donated 43 acres of his orchard property to the city for use as a park in the name of his wife Julia. Commercial agriculture continued to expand, but was slowed by the lack of reliable rail links to regional and national markets and by a lack of large scale irrigation projects, which themselves were often tied to hoped-for railroad projects for financing. A.D. Foote, a successful mining engineer, drew up plans to irrigate up to 500,000 acres immediately south of Boise in 1882, but progress was halting and smaller farms were the norm until after the turn of the century with most located near to the river bottom where soil was productive and irrigation more easily achieved. Fruit orchards proliferated and sugar beets, still an important agricultural industry in Idaho, began to be widely cultivated in the 1890s. Cattle and sheep farming became increasingly important as the century closed. With the exception of dairy, most livestock products were exported from Idaho, unlike other agricultural products which were still largely scaled to support local markets. The timber industry also increasingly thrived in the Boise market in the 1880s and 1890s. Large quantities of timber were exported from elsewhere in Idaho, but a growing Boise supported the expansion of Alexander Rossi's sawmill, first established in 1865. Prominent early Boisean William Ridenbaugh had inherited control of the canal now bearing his name from his uncle William Morris in 1878 and later partnered with Rossi to expand the sawmill capacity under the name Rossi and Ridenbaugh Lumber Company. Their materials supported bridge building and the rapid expansion of Boise in the 1890s. As with many early infrastructure ventures, electrification succeeded only after at least one false start. July 4, 1887, marked the start of electrical transmission from a plant located on the Bench. William Ridenbaugh provided expertise and manpower for the water supply and several months were spent rigging poles and lines from the Bench to the service area across the river. Additional electrical supplies allowed the building of an electric streetcar line in 1891. This ran without interruption until buses replaced the lines in 1927, tracking—and sometimes driving—the development of Boise and nearby communities. This system expanded over several decades, reaching into the North End, South Boise and across the river on Front St. A loop line, completed in 1912, ran as far as Caldwell and Nampa, providing transport throughout the valley. Three early trolley companies merged in 1912 to form the Idaho Traction Company with a depot at 7th and Bannock Streets downtown. Additional services and urban amenities arrived in the 1890s as Boise grew. Exploratory drilling for hot water was successful in 1890 and by the end of the decade many homes along Warm Springs avenue were being heated by this source. A natatorium was built in 1892 close to the source of the hot water near the Idaho State Penitentiary. Churches serving several denominations, a Jewish synagogue, a major hardware store and department store, a Masonic hall, the Columbia Theater, Saint Alphonsus' Hospital, a number of parochial and secular schools, a City Hall and a new Union Pacific passenger station, constructed when service was finally extended to downtown, were all built during the 1890s. Falk's Department Store sponsored a semi-professional baseball team representing Boise from at least 1892 and the city supported other organized sports as they became popular.
Nampa, Idaho
Q622633 QID OVERLAP 0.700
QID OVERLAP: Q622633 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (10): "boise", "canyon", "home", "idaho", "meridian", "nampa", "northwest", "population", "west", "western".
boisecanyonhomeidahomeridiannampanorthwestpopulationwestwestern
pa ( ) is the most populous city in Canyon County, Idaho, United States. The population was 100,200 at the 2020 census. It is Idaho's third-most populous city. Nampa is about 20 miles (32 km) west of Boise along Interstate 84, and 6 miles (9.7 km) west of Meridian. It is the second principal city of the Boise metropolitan area. The name "Nampa" may have come from a Shoshoni word meaning 'moccasin' or 'footprint'. According to toponymist William O. Bright, the name comes from the Shoshoni word /nampai/, meaning "foot".
History Nampa had its beginnings in the early 1880s when the Oregon Short Line Railroad built a line from Granger, Wyoming, to Huntington, Oregon, that passed through Nampa. In Nampa there is a history museum that marks the railroad's significance. More railroad lines sprang up through Nampa, making it an important railroad town. Alexander and Hannah Duffes established one of the town's first homesteads, eventually forming the Nampa Land and Improvement Company with the help of their friend and co-founder, James McGee. Despite the name, many early settlers called the town "New Jerusalem" because of its citizens' strong religious focus. After only a year the town grew from 15 homes to 50. As amenities were added, Nampa continued to grow, and it was incorporated in 1891. Downtown Nampa's street grid is oriented with the railroad tracks, which run northwest–southeast; this was done intentionally by Alexander Duffes to prevent accidents like one that occurred earlier in a town he had platted near Toronto, where a woman and her two children were killed by a train when their buggy wheel got stuck as they crossed the tracks. As the Oregon Short Line railroad originally bypassed Boise, Nampa has the fanciest of many railroad depots built in the area. Nampa gained attention in 1889 due to a purported archaeological discovery known as the Nampa figurine. George Frederick Wright wrote up details that year for the Boston Society of Natural History. The first elementary school was built in the 1890s. Lakeview School was on a hill on 6th Street and 12th Avenue North, with a view of Lake Ethel. Just after the school's centennial celebration, it was condemned as a school and sold to the First Mennonite Church. In 2008 the building was refurbished, and it is now used by the Idaho Arts Charter School. Lake Ethel, an irrigation reservoir, had long been the site of community picnics, and many citizens fished, swam, boated, and even hunted on it and its surrounding property. But the hunting didn't last long, as O. F. Persons, owner of the adjoining homestead, took offense when local hunters started shooting his pet ducks. The city later auctioned off the lake. E. H. Dewey (a former Nampa mayor) was the only bidder. But occasional flooding led to a series of lawsuits from neighbors. Dewey eventually drained Lake Ethel. Not long after, the city council became interested in buying back the Fritz Miller property as well as the Dewey home. Pressure had been building for more than four years. Nampa citizens wanted another park. On August 7, 1924, the city council passed an ordinance to purchase the Miller property and name it Lakeview Park. A bandstand was completed in 1928, and the municipal swimming pool opened on August 13, 1934. It is Nampa's largest park and many community celebrations are held there. Colonel William H. Dewey, a man who made a fortune mining in Silver City, built the Dewey Palace Hotel in 1902 for $250,000. He died in his hotel in 1903, leaving his son $1 million. The hotel survived the great fire of 1909, which burned several blocks of downtown Nampa, but was razed in 1963 after redevelopment plans failed. Relics from the hotel such as the chandelier and the hotel safe can be found at the Canyon County Historical Museum, which is in the old train depot on Front Street and Nampa City Hall. After demolition the location on First Street between 11th and 12th Ave. South was sold to private enterprise, including a bank and tire store, replacing this building with modern structures. A public-use postage stamp sized park was later placed across the street from the old palace property as a collaboration between the Downtown Alliance of Nampa (the local business council) and an Eagle Scout Project for the Boy Scouts of America. The park includes a large mural/wall sculpture of running horses commissioned for the project. A Carnegie library was built downtown in 1908; it burned down after the library moved in 1966. Nampa Public Library was then on the corner of 1st Street and 11th Avenue South in the old bank building. A new library, on 12th Avenue South, opened in 2015. Deer Flat Reservoir, an offstream irrigation storage reservoir, was constructed by the United States Bureau of Reclamation between 1906 and 1911. Known locally as Lake Lowell, it is surrounded by the Deer Flat National Wildlife Refuge, established in 1909 by President Theodore Roosevelt. The refuge is administered by the U.S. Fish and Wildlife Service. Lake Lowell is filled by the concrete New York Canal; the water is diverted from the Boise River a few miles below Lucky Peak Dam. In 1910, the Idaho State School and Hospital was built northwest of Nampa for the state's developmentally challenged population. It opened in 1918. The institution was largely self-sufficient, with a large farm staffed by the residents. The higher-functioning residents also cared for residents who could not care for themselves. The land for the farm was sold and is now golf courses (Centennial and Ridgecrest), and the residents no longer give primary care to other residents. The institution is modernized and remains in operation, though a few of the oldest buildings now house juvenile offenders. Nampa held an annual harvest festival and farmers' market from about 1908, a time of celebration and community fun. From this festival emerged the Snake River Stampede Rodeo in 1937, which continues to this day. It is one of the top 12 rodeos in the pro rodeo circuits. In 1913, a local congregation of the Church of the Nazarene built a small elementary school, which became to Northwest Nazarene College in 1915 and finally Northwest Nazarene University. As of 2025, the university has approximately 1,800 undergraduate and graduate students. Karcher Mall opened in 1965, the first enclosed shopping mall in the Treasure Valley. It was "the place to gather" for several decades until the Boise Towne Square mall was built in Boise in 1988, drawing business away. Karcher Mall was renamed District 208 in 2022. The Idaho Press-Tribune is the local newspaper for the Canyon County area.
Idaho Hispanic Community Center (IH2C) In 2003, the Hispanic Cultural Center of Idaho (HCCI) opened thanks to community support. It has recently transitioned back to the City of Nampa and was renamed the Idaho Hispanic Community Center (IH2C) and is home to the Idaho Hispanic Foundation. It hosts events, classes, and festivals, including Día de los Muertos, Hispanic Heritage Month, and Día Internacional de la Mujer. It serves as a meeting place for associations and groups. Displays of cultural history are available to the public. Nampa Train Depot Museum The Nampa Train Depot Museum is a historical depot with displays and archives of the area's railroad and cultural history. The Canyon County Historical Society saved the depot from demolition in 1972. Annual Festival of the Arts Nampa's Festival of the Arts, which began in 1987, is held in Lakeview Park every year and includes local art, music, dance, and food.
Septic tank
Q386300 QID OVERLAP 0.680
QID OVERLAP: Q386300 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (9): "environment", "primary", "rate", "rural", "system", "systems", "treatment", "type", "units".
environmentprimaryrateruralsystemsystemstreatmenttypeunits
uent is commonly disposed in a septic drain field, which provides further treatment. Nonetheless, groundwater pollution may occur and is a problem. The term "septic" refers to the anaerobic bacterial environment that develops in the tank that decomposes or mineralizes the waste discharged into the tank. Septic tanks can be coupled with other onsite wastewater treatment units such as biofilters or aerobic systems involving artificially forced aeration. The rate of accumulation of sludge—also called septage or fecal sludge—is faster than the rate of decomposition.
Waste that is not decomposed by the anaerobic digestion must eventually be removed from the septic tank. Otherwise the septic tank fills up and wastewater containing undecomposed material discharges directly to the drainage field. Not only is this detrimental for the environment but, if the sludge overflows the septic tank into the leach field, it may clog the leach field piping or decrease the soil porosity itself, requiring expensive repairs. When a septic tank is emptied, the accumulated sludge (septage, also known as fecal sludge) is pumped out of the tank by a vacuum truck. How often the septic tank must be emptied depends on the volume of the tank relative to the input of solids, the amount of indigestible solids, and the ambient temperature (because anaerobic digestion occurs more efficiently at higher temperatures), as well as usage, system characteristics and the requirements of the relevant authority. Some health authorities require tanks to be emptied at prescribed intervals, while others leave it up to the decision of an inspector. Some systems require pumping every few years or sooner, while others may be able to go 10–20 years between pumpings. An older system with an undersize tank that is being used by a large family will require much more frequent pumping than a new system used by only a few people. Anaerobic decomposition is rapidly restarted when the tank is refilled. An empty tank may be damaged by hydrostatic pressure causing the tank to partially "float" out of the ground, especially in flood situations or very wet ground conditions. Another option is "scheduled desludging" of septic tanks which has been initiated in several Asian countries including the Philippines, Malaysia, Vietnam, Indonesia, and India.
Septic tank additives have been promoted by some manufacturers with the aim to improve the effluent quality from septic tanks, reduce sludge build-up and to reduce odors. These additives—which are commonly based on "effective microorganisms"—are usually costly in the longer term and fail to live up to expectations. It has been estimated that in the U.S. more than 1,200 septic system additives were available on the market in 2011. Very little peer-reviewed and replicated field research exists regarding the efficacy of these biological septic tank additives. Environmental concerns While a properly maintained and located septic tank poses no higher amount of environmental problems than centralized municipal sewage treatment, certain problems could arise with a septic tank in an unsuitable location, and septic tank failures are typically more expensive to fix or replace than municipal sewer.
Canyon County, Idaho
Q486078 QID OVERLAP 0.640
QID OVERLAP: Q486078 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (7): "boise", "caldwell", "canyon", "idaho", "largest", "nampa", "population".
boisecaldwellcanyonidaholargestnampapopulation
105, which by 2025 was estimated to have risen to 275,123, making it the second-most populous county in Idaho. The county seat is Caldwell, and its largest city is Nampa. Canyon County is part of the Boise metropolitan area. History Hudson's Bay Company established Fort Boise in 1834 near what is now Parma, but abandoned it in 1855. Emigrants traveled through Canyon County on the Oregon Trail. Discovery of gold in the Boise Basin in 1862 brought settlement to the region again. The lower Boise River was fully contained within Boise County from 1863 until the formation of Ada County in 1864. Settlement of the lower Boise River west of Boise City was limited prior to the completion of the Oregon Short Line Railroad. Middleton was the first European settlement of Canyon County, starting in 1863. The 1870 Census for Ada County listed 76 residents of the Boise Valley, excluding Boise City and the 1880 Census listed 44 residents at Middleton. The arrival of the railroad at Caldwell led to the establishment of a town there as of August 1883. Businessmen James A. McGee and Alexander Duffes filed the plat for nearby Nampa in 1886. Parma was settled around the same time, with the Old Fort Boise post office being moved to the town's location; it was incorporated in 1904. Ada County established precincts for each of the settlements with a combined 1890 Census population of 2,311. Significant settlement of Greenleaf and Notus started around 1904 with the two settlements listed as precincts at the 1910 census. Notus was incorporated in 1921 while Greenleaf was incorporated prior to 1980. Melba was incorporated in 1912 while Wilder was incorporated in 1919. The City of Star annexed a portion of territory in northeast Canyon County prior to 2007, becoming the county's ninth incorporated city. The majority of Star is located within Ada County. The Idaho Legislature created Canyon County from Ada County in an act approved March 7, 1891, effective at the November 26, 1892, election. Caldwell was established as the county seat. The county originally contained all of Canyon and Payette counties and part of Gem; Gem County formed in 1915 and Payette County in 1917.
History Hudson's Bay Company established Fort Boise in 1834 near what is now Parma, but abandoned it in 1855. Emigrants traveled through Canyon County on the Oregon Trail. Discovery of gold in the Boise Basin in 1862 brought settlement to the region again. The lower Boise River was fully contained within Boise County from 1863 until the formation of Ada County in 1864. Settlement of the lower Boise River west of Boise City was limited prior to the completion of the Oregon Short Line Railroad. Middleton was the first European settlement of Canyon County, starting in 1863. The 1870 Census for Ada County listed 76 residents of the Boise Valley, excluding Boise City and the 1880 Census listed 44 residents at Middleton. The arrival of the railroad at Caldwell led to the establishment of a town there as of August 1883. Businessmen James A. McGee and Alexander Duffes filed the plat for nearby Nampa in 1886. Parma was settled around the same time, with the Old Fort Boise post office being moved to the town's location; it was incorporated in 1904. Ada County established precincts for each of the settlements with a combined 1890 Census population of 2,311. Significant settlement of Greenleaf and Notus started around 1904 with the two settlements listed as precincts at the 1910 census. Notus was incorporated in 1921 while Greenleaf was incorporated prior to 1980. Melba was incorporated in 1912 while Wilder was incorporated in 1919. The City of Star annexed a portion of territory in northeast Canyon County prior to 2007, becoming the county's ninth incorporated city. The majority of Star is located within Ada County. The Idaho Legislature created Canyon County from Ada County in an act approved March 7, 1891, effective at the November 26, 1892, election. Caldwell was established as the county seat. The county originally contained all of Canyon and Payette counties and part of Gem; Gem County formed in 1915 and Payette County in 1917.
2000 census As of the 2000 census, there were 131,441 people, 45,018 households and 33,943 families living in the county. The population density was 223 people per square mile (86 people/km2). There were 47,965 housing units at an average density of 81 units per square mile (31 units/km2). The racial makeup of the county was 83.10% White, 0.32% Black or African American, 0.85% Native American, 0.80% Asian, 0.13% Pacific Islander, 12.17% from other races, and 2.62% from two or more races. Hispanic or Latino of any race were 18.61% of the population. 15.9% were of German, 12.7% English, 10.3% American and 7.6% Irish ancestry. There were 45,018 households, of which 39.80% had children under the age of 18 living with them, 60.70% were married couples living together, 10.10% had a female householder with no husband present, and 24.60% were non-families. 19.80% of all households were made up of individuals, and 8.40% had someone living alone who was 65 years of age or older. The average household size was 2.85 and the average family size was 3.28. 30.90% of the population were under the age of 18, 10.70% from 18 to 24, 28.30% from 25 to 44, 19.10% from 45 to 64, and 11.00% who were 65 years of age or older. The median age was 30 years. For every 100 females, there were 98.70 males. For every 100 females age 18 and over, there were 96.30 males. The median household income was $35,884 and the median family income was $40,377. Males had a median income of $29,418 compared with $22,044 for females. The per capita income for the county was $15,155. About 8.70% of families and 12.00% of the population were below the poverty line, including 14.50% of those under age 18 and 10.70% of those age 65 or over. Communities Cities Unincorporated communities Bowmont Huston Roswell Sunnyslope Walters Ferry, Idaho Politics Like the majority of Idaho, Canyon County is reliably Republican by comfortable margins. The last time a Democratic candidate carried the county was in 1936 by Franklin D. Roosevelt.
Caldwell, Idaho
Q849592 QID OVERLAP 0.640
QID OVERLAP: Q849592 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (7): "boise", "caldwell", "canyon", "idaho", "locally", "population", "west".
boisecaldwellcanyonidaholocallypopulationwest
the county seat of Canyon County, Idaho, United States. Caldwell is the 5th most populous city in Idaho. As of the 2020 census, Caldwell had a population of 59,996. Caldwell is considered part of the Boise metropolitan area, and is the location of the College of Idaho. The city is located approximately 24 miles (39 km) west of Boise, and approximately 17 miles (27 km) east of the Oregon border. History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
location of the College of Idaho. The city is located approximately 24 miles (39 km) west of Boise, and approximately 17 miles (27 km) east of the Oregon border. History The present-day location of Caldwell is along a natural passageway to the Inland and Pacific Northwest. Native American tribes from the west coast, north Idaho and as far away as Colorado came to the banks of the Boise River for annual trading fairs, or rendezvous. European and some Hawaiian explorers and traders soon followed the paths left by Native Americans and hopeful emigrants later forged the Oregon Trail and followed those paths to seek a better life in the Oregon Territory. Pioneers of the Trail traveled along the Boise River to Canyon Hill and forded the river close to the Silver Bridge on Plymouth Street. During the Civil War, the discovery of gold in Idaho's mountains brought a variety of new settlers into the area. Many never made it to the mines but settled along the Boise River and run ferries, stage stations, and freighting businesses. These early entrepreneurs created small ranches and farms in the river valleys. Caldwell's inception occurred largely as a result of the construction of the Oregon Short Line Railroad, which connected Wyoming to Oregon through Idaho. Robert E. Strahorn came to the Boise River Valley in 1883 to select a route for the railroad. He rejected the grade into Boise City as too steep and chose a site 30 miles to the west. He drove a stake into an alkali flat of sagebrush and greasewood and the City of Caldwell was platted. Caldwell was named after one of Strahorn's business partners, Alexander Caldwell, a former senator from Kansas. When Caldwell was platted in August 1883, its founder, the Idaho and Oregon Land Improvement Company, started persuading settlers and businessmen to move to the area. Within four months, Caldwell had 600 residents living in 150 dwellings, 40 businesses, a school, a telephone exchange, and two newspapers. On January 15, 1890, the Board of Commissioners of Ada County issued a handwritten order incorporating the City of Caldwell. The College of Idaho was founded in Caldwell in 1891. In 1892, Canyon County was established from a portion of Ada County, and Caldwell was named the county seat. Irrigation canals and waterways were constructed throughout Canyon County, providing the foundation for an agricultural economy. The Oregon Short Line Railroad became part of the larger Union Pacific Railroad network and in 1906 the Caldwell freight and passenger depot was constructed. Caldwell experienced moderate growth as an agricultural processing, commercial retail and educational center during the 20th century. In 2009, the City of Caldwell completed a revitalization project to restore Indian Creek, which runs through downtown Caldwell, but had been used for sewage disposal by local industries and been covered over.
Kuna, Idaho
Q1515177 QID OVERLAP 0.620
QID OVERLAP: Q1515177 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (6): "ada", "boise", "idaho", "kuna", "nearly", "population".
adaboiseidahokunanearlypopulation
Kuna ( KYOO-nə) is a city in Ada County, Idaho. It is part of the Boise metropolitan area. The population was 24,011 at the time of the 2020 census. Kuna is one of the fastest-growing areas in Idaho, having nearly tripled in population between 2000 and 2010 and a nearly additional 60 percent gain between 2010 and 2020.
History Kuna originated as a railroad stop with coach transport to Boise. It is popularly believed, as cited by the Kuna Chamber of Commerce, that the translation of the name "Kuna" means "the end of the trail", but Charles S. Walgamott cites the origin of the name as a Shoshone Indian word meaning "green leaf, good to smoke." The Western Heritage Historic Byway, designated as a national as well as a state scenic byway, travels around a number of historic sites in the area. Geography Kuna's business center is approximately 18 miles (29 km) southwest of downtown Boise, the state capital. According to the United States Census Bureau, the city has a total area of 18.18 square miles (47.09 km2), of which 18.08 square miles (46.83 km2) is land and 0.10 square miles (0.26 km2) is water. South of Kuna is the Kuna Caves, a lava tube. A small seasonal creek, Indian Creek, runs through the city. It is now used as an irrigation canal, filled by the New York Canal from the Boise River Diversion Dam.
Geography Kuna's business center is approximately 18 miles (29 km) southwest of downtown Boise, the state capital. According to the United States Census Bureau, the city has a total area of 18.18 square miles (47.09 km2), of which 18.08 square miles (46.83 km2) is land and 0.10 square miles (0.26 km2) is water. South of Kuna is the Kuna Caves, a lava tube. A small seasonal creek, Indian Creek, runs through the city. It is now used as an irrigation canal, filled by the New York Canal from the Boise River Diversion Dam. One of the few small floatable waterways in the region, Indian Creek is a favorite swimming spot for local residents. Demographics 2020 census As of the 2020 census, Kuna had a population of 24,011. The median age was 30.9 years. 31.8% of residents were under the age of 18 and 8.1% of residents were 65 years of age or older. For every 100 females there were 97.8 males, and for every 100 females age 18 and over there were 96.2 males age 18 and over. 97.1% of residents lived in urban areas, while 2.9% lived in rural areas. There were 7,736 households in Kuna, of which 48.2% had children under the age of 18 living in them. Of all households, 62.3% were married-couple households, 11.6% were households with a male householder and no spouse or partner present, and 17.4% were households with a female householder and no spouse or partner present. About 13.9% of all households were made up of individuals and 4.6% had someone living alone who was 65 years of age or older. There were 7,948 housing units, of which 2.7% were vacant. The homeowner vacancy rate was 0.8% and the rental vacancy rate was 5.9%. As of the 2020 census, the median income for a household in the city was $68,017. Families had a median income of $75,296 versus $91,364 for married-couple families and $33,512 for nonfamily households.
Meridian, Idaho
Q1085274 QID OVERLAP 0.620
QID OVERLAP: Q1085274 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (6): "ada", "among", "boise", "idaho", "meridian", "population".
adaamongboiseidahomeridianpopulation
Meridian is a city located in Ada County, Idaho, United States. The population was 117,635 at the 2020 census, making it the second most populous city in the county and Idaho, after Boise, the state capital.
Rail transportation (1908–28) Following the raising of $4,000 to lay the Interurban rail line from Onweiler (Meridian and Ustick Roads), the tracks were completed into the village center. Turning east on Broadway and ending at East Second, the last car would spend the night in Meridian before returning to Boise early the next morning with passengers and freight. The interurban Station and Generator building (west one-third of the old library at Meridian and Idaho Streets) was built in 1912, and the line continued on to Nampa via Meridian. The tracks down Broadway were not used after 1912. The Interurban Company entered into receivership and closed in 1928 after 20 years of providing continuous transportation to neighboring towns. It was Meridian's main connection to the area outside the local community. The Union Pacific Railroad spur opened in 1900 and is currently operated by the Boise Valley Railroad. Many industrial customers continue to ship forest, agricultural, and chemical products along this corridor. Creamery (1929–70) The city's official website describes the history of the Ada County Dairymen's cooperative creamery as follows:The lowest days of the Great Depression brightened for area dairymen when the Ada County Dairymen's cooperative creamery began operation in 1929. It provided milk checks to those who were members of the cooperative, enabling them to pay their taxes and provide food for their families. Other community members hauled milk to the creamery and were employed by the creamery, whose product was Challenge Butter. The creamery ran seven days a week for 40 years. Additions and improvements were made while the plant was in full operation. Later years saw the Wyeth Laboratories affiliate with the creamery to manufacture SMA baby formula.
Creamery (1929–70) The city's official website describes the history of the Ada County Dairymen's cooperative creamery as follows:The lowest days of the Great Depression brightened for area dairymen when the Ada County Dairymen's cooperative creamery began operation in 1929. It provided milk checks to those who were members of the cooperative, enabling them to pay their taxes and provide food for their families. Other community members hauled milk to the creamery and were employed by the creamery, whose product was Challenge Butter. The creamery ran seven days a week for 40 years. Additions and improvements were made while the plant was in full operation. Later years saw the Wyeth Laboratories affiliate with the creamery to manufacture SMA baby formula.
Eagle, Idaho
Q1516870 QID OVERLAP 0.620
QID OVERLAP: Q1516870 in energy_utilities (tier:branch) and home_services (tier:branch). | SHARED TOKENS (6): "ada", "boise", "eagle", "idaho", "northwest", "population".
adaboiseeagleidahonorthwestpopulation
Eagle is a city in Ada County, Idaho, ten miles (16 km) northwest of downtown Boise. The population was 30,346 at the 2020 census. History 19th century Eagle Island in Idaho was settled in 1863 by Truman Coe Catlin, who later shifted from crop farming to dairy farming, starting the island's dairy tradition. He also pioneered irrigation in the area by constructing a wide irrigation ditch. The most notable early community developer was Thomas Hugh Aiken, a Canadian surveyor, who helped establish the Eagle community in the 1870s.
Parks and recreation The city features numerous parks, including Arboretum Park, Friendship Park, Heritage Park, Orval Krasen Park, Reid W. Merrill Sr. Community Park, and Stephen C. Guerber Park, among others. The Parks and Recreation department offers youth sports leagues, camps, special events (such as Eagle Fun Days), and maintains extensive trails. Nearby Eagle Island State Park provides a swimming beach, trails, disc golf, and winter sports. Education Most of Eagle is in the West Ada School District, with a small portion in the Boise School District.
20th century The Eagle Fish Hatchery, established in the late 1940s in Idaho, was originally part of a trout program until the 1980s. In 1991, it was restructured to support the conservation of Snake River sockeye salmon, an endangered species listed that year. The hatchery's mission shifted to preserving the species and its genetic diversity through the development of eight broodstocks derived from smolts, anadromous adults, and residual populations.
◈ Cross-Vertical Edge Ledger
All Additional Edges — Deterministic Matching
247 EDGES
◈ ADDITIONAL CROSS EDGES · NON-OVERLAP247 edges
🌲 EVERGREEN1 edges
0.630
adaboisecanalcanyoncapacityidahoirrigationmultiplesystemtreasurevalleywaterwesternyork
SHARED TOKENS (14): "ada", "boise", "canal", "canyon", "capacity", "idaho", "irrigation", "multiple", "system", "treasure", "valley", "water", "western", "york". | URL->A (1): https://www.usbr.gov/projects/index.php?id=338. | EXACT TITLE in energy_utilities: "New York Canal".
🌿 BRANCH154 edges
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aircasesenergyfailuregasgrowthheatinghvacinternationallargemechanicalsinglesmallsourcesystemsunits
SHARED TOKENS (16): "air", "cases", "energy", "failure", "gas", "growth", "heating", "hvac", "international", "large", "mechanical", "single", "small", "source", "systems", "units". | EXACT TITLE in energy_utilities: "Air conditioning".
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Natural gas ↗ Q40858 EXACT TITLE
airassessmentcommercialdemandenergyextractiongasindustrylargestlong-termnaturalnaturallypressuresmallstandardstoragewater
SHARED TOKENS (17): "air", "assessment", "commercial", "demand", "energy", "extraction", "gas", "industry", "largest", "long-term", "natural", "naturally", "pressure", "small", "standard", "storage", "water". | EXACT TITLE in energy_utilities: "Natural gas".
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builtdepartmentfederalirrigationlargestlawmanagementoperationpowerproduceprogramresourcesourcestoragewaterwestern
SHARED TOKENS (16): "built", "department", "federal", "irrigation", "largest", "law", "management", "operation", "power", "produce", "program", "resource", "source", "storage", "water", "western". | EXACT TITLE in energy_utilities: "Bureau of Reclamation".
0.500
agenciesdistinctelectricalemergencyenvironmentgreenindustrialindustryinternationallawmanagementnetworksphysicalpolicyprivateprogramspublicservingstandardssystems
SHARED TOKENS (22): "agencies", "distinct", "electrical", "emergency", "environment", "green", "industrial", "industry", "international", "law", "management", "networks", "physical", "policy", "private", "programs", "public", "serving", "standards", "systems".... | EXACT TITLE in energy_utilities: "Infrastructure".
0.500
aircapacitycleancompetitivecostenergyextractionfinancialgasgreeninstallationsinternationallargelocalmovenaturalnetpowerproviderspublic
SHARED TOKENS (30): "air", "capacity", "clean", "competitive", "cost", "energy", "extraction", "financial", "gas", "green", "installations", "international", "large", "local", "move", "natural", "net", "power", "providers", "public".... | EXACT TITLE in energy_utilities: "Renewable energy".
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Dam ↗ Q12323 EXACT TITLE
aroundbuildingbuiltcleanconstructiondesignfloodhouseholdindustrialirrigatedirrigationlargemaintenancemanagementmigrationprojectsafetysourcestructurevalley
SHARED TOKENS (22): "around", "building", "built", "clean", "construction", "design", "flood", "household", "industrial", "irrigated", "irrigation", "large", "maintenance", "management", "migration", "project", "safety", "source", "structure", "valley".... | EXACT TITLE in energy_utilities: "Dam". | EXACT TITLE in home_services: "Dam".
0.500
Fire ↗ Q3196 EXACT TITLE
agriculturedirectlyfiregrowthhomelong-termnaturalphysicalproduceprofessionalpropertyrapidsystemstypewater
SHARED TOKENS (15): "agriculture", "directly", "fire", "growth", "home", "long-term", "natural", "physical", "produce", "professional", "property", "rapid", "systems", "type", "water". | EXACT TITLE in energy_utilities: "Fire". | EXACT TITLE in home_services: "Fire".
0.500
Substation ↗ Q174814 EXACT TITLE
commercialcomponentconsumercontrolcustomerelectricelectricalenergyindustrialinterconnectionlargeoperatedownedpowersystemutility
SHARED TOKENS (16): "commercial", "component", "consumer", "control", "customer", "electric", "electrical", "energy", "industrial", "interconnection", "large", "operated", "owned", "power", "system", "utility". | EXACT TITLE in energy_utilities: "Substation".
0.500
Lineworker ↗ Q691225 EXACT TITLE
commercialelectricelectricalemergencyenergygroundindustrialinstallationsinstallslinesmaintainsresidentialstormwindwork
SHARED TOKENS (15): "commercial", "electric", "electrical", "emergency", "energy", "ground", "industrial", "installations", "installs", "lines", "maintains", "residential", "storm", "wind", "work". | EXACT TITLE in energy_utilities: "Lineworker".
0.500
Microgrid ↗ Q5762595 EXACT TITLE
buildingcontroldownelectricelectricalemergencyenergyheatinglocalmultipleoperateoperatedoperatesoperationpowerprotectionruralsinglesmallsolar
SHARED TOKENS (25): "building", "control", "down", "electric", "electrical", "emergency", "energy", "heating", "local", "multiple", "operate", "operated", "operates", "operation", "power", "protection", "rural", "single", "small", "solar".... | EXACT TITLE in energy_utilities: "Microgrid".
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Spider ↗ Q1357 EXACT TITLE
activeamongaroundbuildingcasescombinationdivisiondownjanuarylargelargestmeansnearlyorderspressureproduceshapesmallsystems
SHARED TOKENS (19): "active", "among", "around", "building", "cases", "combination", "division", "down", "january", "large", "largest", "means", "nearly", "orders", "pressure", "produce", "shape", "small", "systems". | EXACT TITLE in home_services: "Spider".
0.500
businessconstructioncontractordesigndirectlyelectricalhomeinstallationlicensesmaintenanceoperateownersprofessionalsystemswork
SHARED TOKENS (15): "business", "construction", "contractor", "design", "directly", "electrical", "home", "installation", "licenses", "maintenance", "operate", "owners", "professional", "systems", "work". | EXACT TITLE in energy_utilities: "Electrical contractor".
0.500
agreementapplianceappliancescasescomheatinghomehttpslegalmaintenancerepairreplacementstructuralsystemswarrantywww
SHARED TOKENS (16): "agreement", "appliance", "appliances", "cases", "com", "heating", "home", "https", "legal", "maintenance", "repair", "replacement", "structural", "systems", "warranty", "www". | EXACT TITLE in home_services: "Home warranty".
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cannotcleanclearcommissioncontrolenergyfederalgaslargelineslocalmaintainsmarketmultiplenaturaloperatesproducepublicregulationrepresents
SHARED TOKENS (27): "cannot", "clean", "clear", "commission", "control", "energy", "federal", "gas", "large", "lines", "local", "maintains", "market", "multiple", "natural", "operates", "produce", "public", "regulation", "represents".... | EXACT TITLE in energy_utilities: "Public utility".
0.500
addresscleancontrolcoordinationdirectlyfederalimprovementlawownedphysicalprimaryprotectionqualityresourcetreatmentwater
SHARED TOKENS (16): "address", "clean", "control", "coordination", "directly", "federal", "improvement", "law", "owned", "physical", "primary", "protection", "quality", "resource", "treatment", "water". | EXACT TITLE in energy_utilities: "Clean Water Act".
0.500
cannotcleancleaningconsumercreateshouseholdindustriallinesmechanicalpowerpressureproducepumprapidratesinglesurfacesystemsvolumewater
SHARED TOKENS (20): "cannot", "clean", "cleaning", "consumer", "creates", "household", "industrial", "lines", "mechanical", "power", "pressure", "produce", "pump", "rapid", "rate", "single", "surface", "systems", "volume", "water". | EXACT TITLE in home_services: "Pressure washing".
0.500
businesscertificationconsumercreatescustomergrowthinspectionslawlicenselicensedlicensingmarketoccupationalprofessionalprotectionpublicqualityregulationregulatoryreview
SHARED TOKENS (24): "business", "certification", "consumer", "creates", "customer", "growth", "inspections", "law", "license", "licensed", "licensing", "market", "occupational", "professional", "protection", "public", "quality", "regulation", "regulatory", "review".... | EXACT TITLE in energy_utilities: "Occupational licensing".
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Irrigation ↗ Q11453 EXACT TITLE
agriculturecontroldirectlydrainagefullgrowthinstallationirrigationmanagementnaturalnetworkoldestoperationpressurequalitysmallsupportsurfacesystemwater
SHARED TOKENS (22): "agriculture", "control", "directly", "drainage", "full", "growth", "installation", "irrigation", "management", "natural", "network", "oldest", "operation", "pressure", "quality", "small", "support", "surface", "system", "water".... | EXACT TITLE in energy_utilities: "Irrigation". | EXACT TITLE in home_services: "Irrigation".
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Storm ↗ Q81054 EXACT TITLE
airamongcombinationcreateenvironmentgroundmovenaturalpressurepropertysmallstormsystemsystemswind
SHARED TOKENS (15): "air", "among", "combination", "create", "environment", "ground", "move", "natural", "pressure", "property", "small", "storm", "system", "systems", "wind". | EXACT TITLE in energy_utilities: "Storm". | EXACT TITLE in home_services: "Storm".
0.500
Handyman ↗ Q1552579 EXACT TITLE
aroundbuildingbusinessdivisionelectricelectricalequipmentexteriorhomehomeownersmaintenanceplumbingpropertyrepairstructuretradework
SHARED TOKENS (17): "around", "building", "business", "division", "electric", "electrical", "equipment", "exterior", "home", "homeowners", "maintenance", "plumbing", "property", "repair", "structure", "trade", "work". | EXACT TITLE in home_services: "Handyman".
0.500
Tariff ↗ EXACT TITLE
americanamongcallconsumerexportfallsgrowthindustrylocalmeansnationalpolicypressureregulationsourcetrade
SHARED TOKENS (16): "american", "among", "call", "consumer", "export", "falls", "growth", "industry", "local", "means", "national", "policy", "pressure", "regulation", "source", "trade". | EXACT TITLE in energy_utilities: "Tariff".
0.500
Groundwater ↗ Q161598 EXACT TITLE
agriculturecapacitycleanextractiongroundhouseholdindustriallargestmovementmultiplenaturallyoperatingprimarypublicsourcestoragesurfacesystemsvalleywater
SHARED TOKENS (22): "agriculture", "capacity", "clean", "extraction", "ground", "household", "industrial", "largest", "movement", "multiple", "naturally", "operating", "primary", "public", "source", "storage", "surface", "systems", "valley", "water".... | EXACT TITLE in energy_utilities: "Groundwater".
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Pipeline ↗ Q25471856 EXACT TITLE
constructiondesigngasindustryirrigationlong-distancemarketmovenaturalnetworknorthpipepressurepumpsystemsystemswaterwork
SHARED TOKENS (18): "construction", "design", "gas", "industry", "irrigation", "long-distance", "market", "move", "natural", "network", "north", "pipe", "pressure", "pump", "system", "systems", "water", "work". | EXACT TITLE in energy_utilities: "Pipeline".
0.500
businesseselectricalfailurefloodgreengrowthlargepolicyprogrampropertiespropertypublicpumpresidentialsurfacesystemwater
SHARED TOKENS (17): "businesses", "electrical", "failure", "flood", "green", "growth", "large", "policy", "program", "properties", "property", "public", "pump", "residential", "surface", "system", "water". | EXACT TITLE in home_services: "Water damage".
0.500
capacitycombinationcommercialcostcustomerdemandelectricelectricalenergyheatingindustrialmanagementoperatingpowerrepresentssingleutilitiesutility
SHARED TOKENS (18): "capacity", "combination", "commercial", "cost", "customer", "demand", "electric", "electrical", "energy", "heating", "industrial", "management", "operating", "power", "represents", "single", "utilities", "utility". | EXACT TITLE in energy_utilities: "Peak demand".
0.500
Solar panel ↗ EXACT TITLE
cleancleaningcommercialdirectelectricenergygasindustrialmultiplepanelpowerproducerequireresidentialsolarsourcesystemsystems
SHARED TOKENS (18): "clean", "cleaning", "commercial", "direct", "electric", "energy", "gas", "industrial", "multiple", "panel", "power", "produce", "require", "residential", "solar", "source", "system", "systems". | EXACT TITLE in energy_utilities: "Solar panel". | EXACT TITLE in home_services: "Solar panel".
0.500
Snake River ↗ Q272074 EXACT TITLE
agenciesamericancanyoncommercialconstructioncontrolfallsfloodidahoirrigationlargelargestnationalnorthnorthwestpolicyprivateprogramspublicrapid
SHARED TOKENS (25): "agencies", "american", "canyon", "commercial", "construction", "control", "falls", "flood", "idaho", "irrigation", "large", "largest", "national", "north", "northwest", "policy", "private", "programs", "public", "rapid".... | EXACT TITLE in energy_utilities: "Snake River".
0.500
Sewage ↗ Q10966166 EXACT TITLE
applicationsbuildingcapacitycommercialcostdemandenvironmenthouseholdindustriallocalmanagementmeteringplumbingpressurepublicqualitysystemtreatmenttypeunits
SHARED TOKENS (21): "applications", "building", "capacity", "commercial", "cost", "demand", "environment", "household", "industrial", "local", "management", "metering", "plumbing", "pressure", "public", "quality", "system", "treatment", "type", "units".... | EXACT TITLE in energy_utilities: "Sewage". | EXACT TITLE in home_services: "Sewage".
0.500
Radon ↗ Q1133 EXACT TITLE
airamongassociationclearcommissiondistinctgasgroundinternationallocalmakesmitigationnaturallypropertiesprotectionqualitysourcetestwater
SHARED TOKENS (19): "air", "among", "association", "clear", "commission", "distinct", "gas", "ground", "international", "local", "makes", "mitigation", "naturally", "properties", "protection", "quality", "source", "test", "water". | EXACT TITLE in home_services: "Radon".
0.500
activeamericancascadeenergylargestmanagementnorthoperatedoperatesownedprotectionproviderrepublicresidentssitestoragetreatmentwaterwells
SHARED TOKENS (19): "active", "american", "cascade", "energy", "largest", "management", "north", "operated", "operates", "owned", "protection", "provider", "republic", "residents", "site", "storage", "treatment", "water", "wells". | EXACT TITLE in energy_utilities: "Republic Services".
0.500
airapplicationsaroundcapacitydirectenergygroundheatingprimarypumpsolarsourcesurfacewinterworld
SHARED TOKENS (15): "air", "applications", "around", "capacity", "direct", "energy", "ground", "heating", "primary", "pump", "solar", "source", "surface", "winter", "world". | EXACT TITLE in energy_utilities: "Geothermal heating".
0.500
Pipefitter ↗ Q5407416 EXACT TITLE
casescertifiedcommercialconstructionheatingindustrialinstallslicensedmaintainsmechanicalnationalpipepressurerequirerequiresresidentialstandardssystemstesttrade
SHARED TOKENS (23): "cases", "certified", "commercial", "construction", "heating", "industrial", "installs", "licensed", "maintains", "mechanical", "national", "pipe", "pressure", "require", "requires", "residential", "standards", "systems", "test", "trade".... | EXACT TITLE in energy_utilities: "Pipefitter".
0.500
Canal ↗ Q12284 EXACT TITLE
buildingbuiltcanalcasescontrolcreatedrainagefloodirrigationmanagementnaturalpressureresourcessourcesurfacevalleywater
SHARED TOKENS (17): "building", "built", "canal", "cases", "control", "create", "drainage", "flood", "irrigation", "management", "natural", "pressure", "resources", "source", "surface", "valley", "water". | EXACT TITLE in energy_utilities: "Canal". | EXACT TITLE in home_services: "Canal".
0.500
builtcapacitydataenergyinstallationsintegrationlocalnationaloperatingpowerprimaryproduceprojectregionalrequireruralscalesmall
SHARED TOKENS (18): "built", "capacity", "data", "energy", "installations", "integration", "local", "national", "operating", "power", "primary", "produce", "project", "regional", "require", "rural", "scale", "small". | EXACT TITLE in energy_utilities: "Small hydro".
0.500
adaboardboisecanyoncountiesfallidaholargenampanorthpopulationprimaryprogramspublicresidentstreasurevalleywestern
SHARED TOKENS (18): "ada", "board", "boise", "canyon", "counties", "fall", "idaho", "large", "nampa", "north", "population", "primary", "programs", "public", "residents", "treasure", "valley", "western". | EXACT TITLE in energy_utilities: "College of Western Idaho".
0.500
assessmentbuildingcodecommercialconsumerdesignestateexaminationhomeinspectioninspectionsprofessionalpropertyrealstructuresystems
SHARED TOKENS (16): "assessment", "building", "code", "commercial", "consumer", "design", "estate", "examination", "home", "inspection", "inspections", "professional", "property", "real", "structure", "systems". | EXACT TITLE in home_services: "Home inspection".
0.500
Fertilizer ↗ Q83323 EXACT TITLE
agriculturearoundcapacitycasescomponentdistinctequipmentgreengrowthindustrialindustrylargenaturalsystemsystemswaterworld
SHARED TOKENS (17): "agriculture", "around", "capacity", "cases", "component", "distinct", "equipment", "green", "growth", "industrial", "industry", "large", "natural", "system", "systems", "water", "world". | EXACT TITLE in home_services: "Fertilizer".
0.480
Concrete ↗ Q22657 EXACT TITLE
buildingconstructiondistinctlargemeansphysicalpropertiesrepairshapesmallstructuralunitswaterworld
SHARED TOKENS (14): "building", "construction", "distinct", "large", "means", "physical", "properties", "repair", "shape", "small", "structural", "units", "water", "world". | EXACT TITLE in home_services: "Concrete".
0.480
categorycomponentconstructiondirectlyelectricallong-termoperatorphysicalprivateprotectionpublicsafetytreatmentwater
SHARED TOKENS (14): "category", "component", "construction", "directly", "electrical", "long-term", "operator", "physical", "private", "protection", "public", "safety", "treatment", "water". | EXACT TITLE in energy_utilities: "Public works".
0.480
Tree care ↗ EXACT TITLE
builtcasesequipmentexperienceindustrylinesmakesmeanspowerprivateprofessionalpublicsafetystandards
SHARED TOKENS (14): "built", "cases", "equipment", "experience", "industry", "lines", "makes", "means", "power", "private", "professional", "public", "safety", "standards". | EXACT TITLE in home_services: "Tree care".
0.480
agenciesamericanbusinessescoordinationdatadepartmentfederallocalmanagementpublicqualityresourceservessystem
SHARED TOKENS (14): "agencies", "american", "businesses", "coordination", "data", "department", "federal", "local", "management", "public", "quality", "resource", "serves", "system". | EXACT TITLE in energy_utilities: "Bureau of Labor Statistics".
0.480
electricalenergyexistingexteriorhomeimprovementmaintenancemeansplumbingpropertyrepairroofingsafetywork
SHARED TOKENS (14): "electrical", "energy", "existing", "exterior", "home", "improvement", "maintenance", "means", "plumbing", "property", "repair", "roofing", "safety", "work". | EXACT TITLE in home_services: "Home improvement".
0.460
Stormwater ↗ Q1421263 EXACT TITLE
createdemanddirectlyfallslargenaturalpopulationresourcestormsurfacetreatmentvolumewater
SHARED TOKENS (13): "create", "demand", "directly", "falls", "large", "natural", "population", "resource", "storm", "surface", "treatment", "volume", "water". | EXACT TITLE in energy_utilities: "Stormwater".
0.460
Wasp ↗ Q9458574 EXACT TITLE
amongcompletecontrolequipmentlargestmakesnaturalrecordsinglesourcesystemwellsworld
SHARED TOKENS (13): "among", "complete", "control", "equipment", "largest", "makes", "natural", "record", "single", "source", "system", "wells", "world". | EXACT TITLE in home_services: "Wasp".
0.460
Ant ↗ Q7386 EXACT TITLE
casescontroldivisionfirelargenaturalnearlyoperateresourcessmallstructuresupportworld
SHARED TOKENS (13): "cases", "control", "division", "fire", "large", "natural", "nearly", "operate", "resources", "small", "structure", "support", "world". | EXACT TITLE in energy_utilities: "Ant". | EXACT TITLE in home_services: "Ant".
0.460
applicationscannotconstructionindustrialindustryinternationalnationalpipesmallstandardstandardsstructuralworld
SHARED TOKENS (13): "applications", "cannot", "construction", "industrial", "industry", "international", "national", "pipe", "small", "standard", "standards", "structural", "world". | EXACT TITLE in energy_utilities: "Pipe (fluid conveyance)". | EXACT TITLE in home_services: "Pipe (fluid conveyance)".
0.460
associationcertificationcontractorsfoundationgroundindustryinternationalnationaloperatesprogramspublictradewater
SHARED TOKENS (13): "association", "certification", "contractors", "foundation", "ground", "industry", "international", "national", "operates", "programs", "public", "trade", "water". | EXACT TITLE in energy_utilities: "National Ground Water Association".
0.460
Recycling ↗ Q132580 EXACT TITLE
aircomponentcontrolenergygashouseholdmanagementpropertiesrepresentsresourcestandardssystemwater
SHARED TOKENS (13): "air", "component", "control", "energy", "gas", "household", "management", "properties", "represents", "resource", "standards", "system", "water". | EXACT TITLE in energy_utilities: "Recycling".
0.440
agriculturecontrolenvironmenthomesintegratedmanagementmeansmechanicalnaturalphysicalregulationresponse
SHARED TOKENS (12): "agriculture", "control", "environment", "homes", "integrated", "management", "means", "mechanical", "natural", "physical", "regulation", "response". | EXACT TITLE in home_services: "Pest control".
0.440
Veolia ↗ Q1632461 EXACT TITLE
boardbusinessclearenergyenvironmentmanagedmanagementpublicsectorsingleutilitywater
SHARED TOKENS (12): "board", "business", "clear", "energy", "environment", "managed", "management", "public", "sector", "single", "utility", "water". | EXACT TITLE in energy_utilities: "Veolia".
0.440
Mold ↗ Q159341 EXACT TITLE
growthlargemultiplenaturalnetworkpropertyshapesinglestructuresurfaceunitswater
SHARED TOKENS (12): "growth", "large", "multiple", "natural", "network", "property", "shape", "single", "structure", "surface", "units", "water". | EXACT TITLE in home_services: "Mold".
0.440
Renovation ↗ Q2144402 EXACT TITLE
aroundcleaningcommercialenergyhomeimprovementpopulationresidentialresidentssafetystructureupgrades
SHARED TOKENS (12): "around", "cleaning", "commercial", "energy", "home", "improvement", "population", "residential", "residents", "safety", "structure", "upgrades". | EXACT TITLE in home_services: "Renovation".
0.440
federallawprimaryprivateprotectionpublicqualitystandardssystemsystemswaterwells
SHARED TOKENS (12): "federal", "law", "primary", "private", "protection", "public", "quality", "standards", "system", "systems", "water", "wells". | EXACT TITLE in energy_utilities: "Safe Drinking Water Act".
0.440
Lawn ↗ Q207766 EXACT TITLE
aroundcommercialcontrolgreenhouseholdlargelocalmaintenancemanagedsupportwaterworld
SHARED TOKENS (12): "around", "commercial", "control", "green", "household", "large", "local", "maintenance", "managed", "support", "water", "world". | EXACT TITLE in home_services: "Lawn".
0.440
Door ↗ Q36794 EXACT TITLE
airbuildingcasesexteriorfiremeansmovepanelparallelportalpresenceprimary
SHARED TOKENS (12): "air", "building", "cases", "exterior", "fire", "means", "move", "panel", "parallel", "portal", "presence", "primary". | EXACT TITLE in home_services: "Door".
0.440
Basement ↗ EXACT TITLE
buildingdepartmentelectricalgroundlargepanelpropertyresidentialstandardsystemutilitywater
SHARED TOKENS (12): "building", "department", "electrical", "ground", "large", "panel", "property", "residential", "standard", "system", "utility", "water". | EXACT TITLE in home_services: "Basement".
0.440
Plumbing ↗ Q3241671 EXACT TITLE
amongapplicationsheatinghvacplumbingpublicsystemsystemstradewaterworkworld
SHARED TOKENS (12): "among", "applications", "heating", "hvac", "plumbing", "public", "system", "systems", "trade", "water", "work", "world". | EXACT TITLE in energy_utilities: "Plumbing". | EXACT TITLE in home_services: "Plumbing".
0.420
commissiondepartmentenergyfederalgaslicensingnaturalregulatoryreviewsservingstorage
SHARED TOKENS (11): "commission", "department", "energy", "federal", "gas", "licensing", "natural", "regulatory", "reviews", "serving", "storage". | EXACT TITLE in energy_utilities: "Federal Energy Regulatory Commission".
0.420
Asbestos ↗ Q104085 EXACT TITLE
aroundbuildingconstructioncreateelectricalnaturallyphysicalpropertiessafetytypeworld
SHARED TOKENS (11): "around", "building", "construction", "create", "electrical", "naturally", "physical", "properties", "safety", "type", "world". | EXACT TITLE in home_services: "Asbestos".
0.420
agricultureamericanboisecountiesidahoirrigationnationaloperatedprimarywaterwestern
SHARED TOKENS (11): "agriculture", "american", "boise", "counties", "idaho", "irrigation", "national", "operated", "primary", "water", "western". | EXACT TITLE in energy_utilities: "Arrowrock Dam".
0.420
Compost ↗ Q212254 EXACT TITLE
agricultureaircommercialconstructiondowngreenmanagementphysicalpropertiesrequireswater
SHARED TOKENS (11): "agriculture", "air", "commercial", "construction", "down", "green", "management", "physical", "properties", "requires", "water". | EXACT TITLE in energy_utilities: "Compost".
0.400
energyenvironmentindustrialirrigationmaintenancequalityresourcesystemstreatmentwater
SHARED TOKENS (10): "energy", "environment", "industrial", "irrigation", "maintenance", "quality", "resource", "systems", "treatment", "water". | EXACT TITLE in energy_utilities: "Water treatment".
0.400
airbuildingcreatefiregasinspectsoperationpressurerequirestrade
SHARED TOKENS (10): "air", "building", "create", "fire", "gas", "inspects", "operation", "pressure", "requires", "trade". | EXACT TITLE in home_services: "Chimney sweep".
0.400
Roof ↗ Q83180 EXACT TITLE
buildingconstructiondesignlocalnationalprotectionroofroofingsupportwind
SHARED TOKENS (10): "building", "construction", "design", "local", "national", "protection", "roof", "roofing", "support", "wind". | EXACT TITLE in energy_utilities: "Roof". | EXACT TITLE in home_services: "Roof".
0.400
Floor ↗ Q217164 EXACT TITLE
americanbuildingbuiltelectricalmeansplumbingsafetystructuresupportsurface
SHARED TOKENS (10): "american", "building", "built", "electrical", "means", "plumbing", "safety", "structure", "support", "surface". | EXACT TITLE in home_services: "Floor".
0.380
agriculturedepartmentidaholicensingmanagementpolicyprogramsafetystandards
SHARED TOKENS (9): "agriculture", "department", "idaho", "licensing", "management", "policy", "program", "safety", "standards". | EXACT TITLE in home_services: "Idaho Department of Agriculture".
0.380
groundirrigationlawlegalphysicalsourcesurfacesystemswater
SHARED TOKENS (9): "ground", "irrigation", "law", "legal", "physical", "source", "surface", "systems", "water". | EXACT TITLE in energy_utilities: "Water right".
0.380
amongboisebusinessdivisionidahoprogramprogramspublicwest
SHARED TOKENS (9): "among", "boise", "business", "division", "idaho", "program", "programs", "public", "west". | EXACT TITLE in energy_utilities: "Boise State University".
0.360
Journeyman ↗ Q582096 EXACT TITLE
buildingbusinessexaminationexperiencelicensepublictradework
SHARED TOKENS (8): "building", "business", "examination", "experience", "license", "public", "trade", "work". | EXACT TITLE in energy_utilities: "Journeyman".
0.360
assessmentcontactphysicalqualitysafetystandardstreatmentwater
SHARED TOKENS (8): "assessment", "contact", "physical", "quality", "safety", "standards", "treatment", "water". | EXACT TITLE in energy_utilities: "Water quality".
0.360
Landfill ↗ Q152810 EXACT TITLE
activefinalfullmanagementoldestsitestoragetreatment
SHARED TOKENS (8): "active", "final", "full", "management", "oldest", "site", "storage", "treatment". | EXACT TITLE in energy_utilities: "Landfill".
0.360
casescertificationcompletelicenseprofessionalsystemtradetrades
SHARED TOKENS (8): "cases", "certification", "complete", "license", "professional", "system", "trade", "trades". | EXACT TITLE in energy_utilities: "Apprenticeship".
0.340
Wastewater ↗ Q336191 EXACT TITLE
applicationscombinationcommercialindustrialstormsurfacewater
SHARED TOKENS (7): "applications", "combination", "commercial", "industrial", "storm", "surface", "water". | EXACT TITLE in energy_utilities: "Wastewater".
0.340
Masonry ↗ Q272999 EXACT TITLE
affectbuildingconstructionqualitystructuretradesunits
SHARED TOKENS (7): "affect", "building", "construction", "quality", "structure", "trades", "units". | EXACT TITLE in home_services: "Masonry".
0.340
Aquifer ↗ Q208791 EXACT TITLE
environmenthomeindustrialpressuresourcewaterwells
SHARED TOKENS (7): "environment", "home", "industrial", "pressure", "source", "water", "wells". | EXACT TITLE in energy_utilities: "Aquifer".
0.340
canyonidahonationalnorthsmallwestwestern
SHARED TOKENS (7): "canyon", "idaho", "national", "north", "small", "west", "western". | EXACT TITLE in energy_utilities: "Hells Canyon".
0.340
buildingcomponentroofroofingstructuralsystemwater
SHARED TOKENS (7): "building", "component", "roof", "roofing", "structural", "system", "water". | EXACT TITLE in home_services: "Metal roof".
0.340
airdesignheatinghvacpressurequalitysystem
SHARED TOKENS (7): "air", "design", "heating", "hvac", "pressure", "quality", "system". | EXACT TITLE in energy_utilities: "Duct (flow)". | EXACT TITLE in home_services: "Duct (flow)".
0.320
Reservoir ↗ Q131681 EXACT TITLE
buildingbuiltexistingpowerstoragewater
SHARED TOKENS (6): "building", "built", "existing", "power", "storage", "water". | EXACT TITLE in energy_utilities: "Reservoir".
0.320
Drywall ↗ Q372852 EXACT TITLE
boardcombinationconstructionnorthpanelwater
SHARED TOKENS (6): "board", "combination", "construction", "north", "panel", "water". | EXACT TITLE in home_services: "Drywall".
0.320
agriculturecomponentcontrolgrowthnaturaltype
SHARED TOKENS (6): "agriculture", "component", "control", "growth", "natural", "type". | EXACT TITLE in home_services: "Weed control".
0.320
environmentindustrialindustrytreatmenttypewater
SHARED TOKENS (6): "environment", "industrial", "industry", "treatment", "type", "water". | EXACT TITLE in energy_utilities: "Wastewater treatment".
0.320
Pressure ↗ Q39552 EXACT TITLE
pressurestandardsurfacesystemsunitswater
SHARED TOKENS (6): "pressure", "standard", "surface", "systems", "units", "water". | EXACT TITLE in energy_utilities: "Pressure". | EXACT TITLE in home_services: "Pressure".
0.320
americanappliancescontractshomesystemswarranty
SHARED TOKENS (6): "american", "appliances", "contracts", "home", "systems", "warranty". | EXACT TITLE in home_services: "American Home Shield".
0.320
Tile ↗ Q468402 EXACT TITLE
applicationsconstructionrequireroofroofingunits
SHARED TOKENS (6): "applications", "construction", "require", "roof", "roofing", "units". | EXACT TITLE in home_services: "Tile".
0.320
Garage door ↗ Q627405 EXACT TITLE
applicationscommercialequipmentlargeoperatingresidential
SHARED TOKENS (6): "applications", "commercial", "equipment", "large", "operating", "residential". | EXACT TITLE in home_services: "Garage door".
0.320
constructioncontrolmanagementsitestormwater
SHARED TOKENS (6): "construction", "control", "management", "site", "storm", "water". | EXACT TITLE in energy_utilities: "Sediment control".
0.320
Arborist ↗ Q776268 EXACT TITLE
distinctmanagementprofessionalsafetyscopework
SHARED TOKENS (6): "distinct", "management", "professional", "safety", "scope", "work". | EXACT TITLE in home_services: "Arborist".
0.320
boisedepartmentfederalidahoqualityregional
SHARED TOKENS (6): "boise", "department", "federal", "idaho", "quality", "regional". | EXACT TITLE in energy_utilities: "Idaho Department of Environmental Quality".
0.320
designlightingnaturalrequiresshapewater
SHARED TOKENS (6): "design", "lighting", "natural", "requires", "shape", "water". | EXACT TITLE in home_services: "Landscaping".
0.300
Project finance ↗ KW CROSS HIGH
addressamongcomponentconstructioncontractscontrolfailurefinancialfinancingindustriallong-termmarketsmodelingmultipleoperationownedownerspowerprojectreal
SHARED TOKENS (23): "address", "among", "component", "construction", "contracts", "control", "failure", "financial", "financing", "industrial", "long-term", "markets", "modeling", "multiple", "operation", "owned", "owners", "power", "project", "real"....
0.300
appliancescleaningcombinationconsumercostdirectlydistrictelectricelectricalenergygasheatersheatinghomesindustrialindustryinstallationsnaturalnaturallypower
SHARED TOKENS (30): "appliances", "cleaning", "combination", "consumer", "cost", "directly", "district", "electric", "electrical", "energy", "gas", "heaters", "heating", "homes", "industrial", "industry", "installations", "natural", "naturally", "power"....
0.300
applicationscapacitycostdemanddistrictelectricenergyfullgrowthheatingintegratedlawlong-termmeanspowerpublicrequiresresourceutilitiesutility
SHARED TOKENS (20): "applications", "capacity", "cost", "demand", "district", "electric", "energy", "full", "growth", "heating", "integrated", "law", "long-term", "means", "power", "public", "requires", "resource", "utilities", "utility".
0.300
americanamongassociationconstructioncontractsdepartmentfederalirrigatedirrigationlawmaintenancemeridiannationalnearlyprogramprojectpublicratessaleswater
SHARED TOKENS (22): "american", "among", "association", "construction", "contracts", "department", "federal", "irrigated", "irrigation", "law", "maintenance", "meridian", "national", "nearly", "program", "project", "public", "rates", "sales", "water"....
0.300
Lawn mower ↗ Q260521 KW CROSS HIGH
commercialcontroldesignelectricelectricallargelargestmovemultipleoperateoperatorpowerresidentialscalesinglesmallsourcesurface
SHARED TOKENS (18): "commercial", "control", "design", "electric", "electrical", "large", "largest", "move", "multiple", "operate", "operator", "power", "residential", "scale", "single", "small", "source", "surface".
0.300
adaboisecanyoncomponentcountieshomeidaholargestmeridiannampanearlynorthwestpopulationtreasurevalley
SHARED TOKENS (15): "ada", "boise", "canyon", "component", "counties", "home", "idaho", "largest", "meridian", "nampa", "nearly", "northwest", "population", "treasure", "valley".
0.300
buildingcannotcodeconstructionfailurefinancinglawlocalmanagednationalpermitpermitsplanplansregional
SHARED TOKENS (15): "building", "cannot", "code", "construction", "failure", "financing", "law", "local", "managed", "national", "permit", "permits", "plan", "plans", "regional".
0.300
Utility pole ↗ Q1144084 KW CROSS HIGH
electricalequipmentgroundlargelinespowerpublicresidentialsafetystreetsupportsystemsystemsutilitiesutilitywestern
SHARED TOKENS (16): "electrical", "equipment", "ground", "large", "lines", "power", "public", "residential", "safety", "street", "support", "system", "systems", "utilities", "utility", "western".
0.300
amongbuildingcommissioncontroldesignelectricelectricalinstallationinternationaloperatingprotectionsafetystandardsstructuresystem
SHARED TOKENS (15): "among", "building", "commission", "control", "design", "electric", "electrical", "installation", "international", "operating", "protection", "safety", "standards", "structure", "system".
0.300
costfailureindustrylargelargestmarketmultiplenaturaloperatepublicregulationrelevantscalesingleutilitieswater
SHARED TOKENS (16): "cost", "failure", "industry", "large", "largest", "market", "multiple", "natural", "operate", "public", "regulation", "relevant", "scale", "single", "utilities", "water".
0.300
aroundcapacitycostcreatecreatesenergyexportgaslocallong-termmarketmeansnaturalnetworkspressurerequiressafetystandardstoragevolume
SHARED TOKENS (21): "around", "capacity", "cost", "create", "creates", "energy", "export", "gas", "local", "long-term", "market", "means", "natural", "networks", "pressure", "requires", "safety", "standard", "storage", "volume"....
0.300
Photovoltaics ↗ Q192127 KW CROSS HIGH
applicationscapacitycostdemanddirectelectricalenergyfinancialfinancinggasgrowthinstallationinstallationsinternationallargelinesmeteringnearlynetoperation
SHARED TOKENS (38): "applications", "capacity", "cost", "demand", "direct", "electrical", "energy", "financial", "financing", "gas", "growth", "installation", "installations", "international", "large", "lines", "metering", "nearly", "net", "operation"....
0.300
commercialdirectelectricinstallationslineslong-distancenetworknetworkspowerrapidrequiresourcesystemsystemsworld
SHARED TOKENS (15): "commercial", "direct", "electric", "installations", "lines", "long-distance", "network", "networks", "power", "rapid", "require", "source", "system", "systems", "world".
0.300
builtdownelectricelectricalenergylargemarketsnearlynetworkoperatepopulationpowersmallsystemsworld
SHARED TOKENS (15): "built", "down", "electric", "electrical", "energy", "large", "markets", "nearly", "network", "operate", "population", "power", "small", "systems", "world".
0.300
codecommercialdesigndrainageheatershomesinspectioninstallationinternationalpipeplumbingpropertiespublicresidentialsafetystandardsystemswater
SHARED TOKENS (18): "code", "commercial", "design", "drainage", "heaters", "homes", "inspection", "installation", "international", "pipe", "plumbing", "properties", "public", "residential", "safety", "standard", "systems", "water".
0.300
applicationsbatterycapacityconsumercostdemandelectricenergyfiregaslargepowerratesafetystoragetypewaterwork
SHARED TOKENS (18): "applications", "battery", "capacity", "consumer", "cost", "demand", "electric", "energy", "fire", "gas", "large", "power", "rate", "safety", "storage", "type", "water", "work".
0.300
clearcodecombinationelectricelectricalfinalfirehomeinstallationnationaloperationproduceprotectionrequireresidentialsinglewestern
SHARED TOKENS (17): "clear", "code", "combination", "electric", "electrical", "final", "fire", "home", "installation", "national", "operation", "produce", "protection", "require", "residential", "single", "western".
0.300
costnorthroofroofingtype
SHARED TOKENS (5): "cost", "north", "roof", "roofing", "type". | EXACT TITLE in home_services: "Asphalt shingle".
0.300
acquisitionbusinesscommissioncompetitivecontrolcreatedepartmentdirectfederallawlegalmanagementmarketoperatingregulatoryrequirerequiresreviewsingletrade
SHARED TOKENS (21): "acquisition", "business", "commission", "competitive", "control", "create", "department", "direct", "federal", "law", "legal", "management", "market", "operating", "regulatory", "require", "requires", "review", "single", "trade"....
0.300
buildingconstructiongroundroofsurface
SHARED TOKENS (5): "building", "construction", "ground", "roof", "surface". | EXACT TITLE in home_services: "Deck (building)".
0.300
Energy conservation ↗ KW CROSS HIGH
affectapplianceappliancescostenergygasgreengrowthheatinglargemaintenanceprofilescalesourceupgradeswater
SHARED TOKENS (16): "affect", "appliance", "appliances", "cost", "energy", "gas", "green", "growth", "heating", "large", "maintenance", "profile", "scale", "source", "upgrades", "water".
0.300
amongcapacityelectricenergygasindustryinstallationslargestlocaloldestplanspowerprojectscalesmallsolarstoragesystemsystemsutilities
SHARED TOKENS (22): "among", "capacity", "electric", "energy", "gas", "industry", "installations", "largest", "local", "oldest", "plans", "power", "project", "scale", "small", "solar", "storage", "system", "systems", "utilities"....
0.300
amongcapacitycleanconstructiondemanddirectelectricalenergyfailuregaslargelargestnaturalnearlypopulationpowerresponsesourcesystemsworld
SHARED TOKENS (20): "among", "capacity", "clean", "construction", "demand", "direct", "electrical", "energy", "failure", "gas", "large", "largest", "natural", "nearly", "population", "power", "response", "source", "systems", "world".
0.300
directdirectlydistinctelectricelectricalenergyindustryinterconnectionlineslocallong-distancemarketmovementnetworknorthownedpowerregulationsitetype
SHARED TOKENS (21): "direct", "directly", "distinct", "electric", "electrical", "energy", "industry", "interconnection", "lines", "local", "long-distance", "market", "movement", "network", "north", "owned", "power", "regulation", "site", "type"....
0.300
acquisitionairapplicationscostcustomerdirectdirectlyelectricelectricalenergyfinancinggrowthheatinginspectioninstallationinterconnectionlargemarketmeansoperating
SHARED TOKENS (25): "acquisition", "air", "applications", "cost", "customer", "direct", "directly", "electric", "electrical", "energy", "financing", "growth", "heating", "inspection", "installation", "interconnection", "large", "market", "means", "operating"....
0.300
Sewage treatment ↗ KW CROSS HIGH
aroundbusinessesconstructiondemanddesigndrainageenergyenvironmentindustriallargemanagementnetworkoperatingpopulationprimaryproducepumpqualityratesrural
SHARED TOKENS (25): "around", "businesses", "construction", "demand", "design", "drainage", "energy", "environment", "industrial", "large", "management", "network", "operating", "population", "primary", "produce", "pump", "quality", "rates", "rural"....
0.300
Solar energy ↗ Q40015 KW CROSS HIGH
activeairbuildingcleanenergyheatinginternationalnaturallypowerpropertiesresourcesolarsourcesystemswater
SHARED TOKENS (15): "active", "air", "building", "clean", "energy", "heating", "international", "naturally", "power", "properties", "resource", "solar", "source", "systems", "water".
0.300
Dehumidifier ↗ Q1146526 KW CROSS HIGH
addressairapplicationscommercialgrowthhouseholdindustriallargemaintainsoperatingstoragesystemsystemsunitswater
SHARED TOKENS (15): "address", "air", "applications", "commercial", "growth", "household", "industrial", "large", "maintains", "operating", "storage", "system", "systems", "units", "water".
0.300
agenciesbuiltconstructiondesignenvironmentlocallymaintenancenationalnaturallyphysicalprivateprofessionalpublicsectorstructuralsystems
SHARED TOKENS (16): "agencies", "built", "construction", "design", "environment", "locally", "maintenance", "national", "naturally", "physical", "private", "professional", "public", "sector", "structural", "systems".
0.300
agricultureamericanboardboisecapacityconstructiondesignfallshomeidahoirrigationlawnationalnorthoperatedpowerprimaryresourcestoragetype
SHARED TOKENS (24): "agriculture", "american", "board", "boise", "capacity", "construction", "design", "falls", "home", "idaho", "irrigation", "law", "national", "north", "operated", "power", "primary", "resource", "storage", "type"....
0.300
basebusinessconsumercostcustomerelectricenergygrowthlargelocalmanagedmarketsmeansnationaloperatingoperationownerpowerpublicrural
SHARED TOKENS (26): "base", "business", "consumer", "cost", "customer", "electric", "energy", "growth", "large", "local", "managed", "markets", "means", "national", "operating", "operation", "owner", "power", "public", "rural"....
0.300
appliancescommercialconnectcustomerdirectlydownelectricequipmentfinalgroundhouseholdindustriallightinglinesmultiplepowerprimaryresidentialruralsystem
SHARED TOKENS (21): "appliances", "commercial", "connect", "customer", "directly", "down", "electric", "equipment", "final", "ground", "household", "industrial", "lighting", "lines", "multiple", "power", "primary", "residential", "rural", "system"....
0.300
Refrigerant ↗ Q266790 KW CROSS HIGH
airapplicationsenvironmentfiregasnaturallyoperatepressurepumpsafetystandardsystemsystemswaterwinterwork
SHARED TOKENS (16): "air", "applications", "environment", "fire", "gas", "naturally", "operate", "pressure", "pump", "safety", "standard", "system", "systems", "water", "winter", "work".
0.300
americanbasebuildingcodeconstructioncostcreatesindustryinternationalpublicregionalresidentialsafetystandardstandardstradestreatmenttype
SHARED TOKENS (18): "american", "base", "building", "code", "construction", "cost", "creates", "industry", "international", "public", "regional", "residential", "safety", "standard", "standards", "trades", "treatment", "type".
0.300
applicationsbuiltcapacitycostdepartmentdistrictelectricenergyextractionheatingindustrialindustrypowerproducerateresourcessourcewater
SHARED TOKENS (18): "applications", "built", "capacity", "cost", "department", "district", "electric", "energy", "extraction", "heating", "industrial", "industry", "power", "produce", "rate", "resources", "source", "water".
0.300
baseconsumercontroldemanddirectelectricalindustrymakesmanagementnetworkpowerprivatepublicrealutilitiesutility
SHARED TOKENS (16): "base", "consumer", "control", "demand", "direct", "electrical", "industry", "makes", "management", "network", "power", "private", "public", "real", "utilities", "utility".
0.300
Wind power ↗ Q43302 KW CROSS HIGH
agreementcapacityelectricalenergyenvironmentgasinstallationsnearlypowersolarsourcestoragewindwinterworkworld
SHARED TOKENS (16): "agreement", "capacity", "electrical", "energy", "environment", "gas", "installations", "nearly", "power", "solar", "source", "storage", "wind", "winter", "work", "world".
0.300
buildingcertifiedcodecommercialconstructioncontractorscountiesdirectelectricalinspectioninspectionslawmechanicalpermitplumbingprofessionalqualityresidentialwork
SHARED TOKENS (19): "building", "certified", "code", "commercial", "construction", "contractors", "counties", "direct", "electrical", "inspection", "inspections", "law", "mechanical", "permit", "plumbing", "professional", "quality", "residential", "work".
0.300
airbuildingconstructiondesignexperienceinternationallargenaturalnorthpanelresidentialsinglesourcestandardtype
SHARED TOKENS (15): "air", "building", "construction", "design", "experience", "international", "large", "natural", "north", "panel", "residential", "single", "source", "standard", "type".
0.300
Energy Star ↗ Q1054823 KW CROSS HIGH
agreementappliancesassociationcategoriescertificationcommercialdepartmentenergyequipmentgasheatinglightingoperatingprogramprotectionsystemstrade
SHARED TOKENS (17): "agreement", "appliances", "association", "categories", "certification", "commercial", "department", "energy", "equipment", "gas", "heating", "lighting", "operating", "program", "protection", "systems", "trade".
0.300
appliancesaroundconnectcoordinationelectricalfulllargeoperatedpowerprotectionsafetyshapestandardstandardssystemstypeworld
SHARED TOKENS (17): "appliances", "around", "connect", "coordination", "electrical", "full", "large", "operated", "power", "protection", "safety", "shape", "standard", "standards", "systems", "type", "world".
0.300
agriculturebusinessescombinationcostdirectindustrialindustryirrigationmanagementnaturalnorthrequiresourcestandardssurfacesystemsystemstreatmentwaterworld
SHARED TOKENS (20): "agriculture", "businesses", "combination", "cost", "direct", "industrial", "industry", "irrigation", "management", "natural", "north", "require", "source", "standards", "surface", "system", "systems", "treatment", "water", "world".
0.300
Smart grid ↗ Q689855 KW CROSS HIGH
appliancescapacitycodeconnectcontrolcreatedemandelectricelectricalenergyfinancingfullhomeimprovementindustryintegratedlinesmanagementmeteringnetwork
SHARED TOKENS (39): "appliances", "capacity", "code", "connect", "control", "create", "demand", "electric", "electrical", "energy", "financing", "full", "home", "improvement", "industry", "integrated", "lines", "management", "metering", "network"....
0.300
analysisaroundbatterybuildingcapacitycommercialelectricalenergyenvironmentequipmentindustriallargemanagementmeteringnetpowerresidentialscalesmallsolar
SHARED TOKENS (25): "analysis", "around", "battery", "building", "capacity", "commercial", "electrical", "energy", "environment", "equipment", "industrial", "large", "management", "metering", "net", "power", "residential", "scale", "small", "solar"....
0.300
Housekeeping ↗ Q708514 KW CROSS HIGH
businesscleaningcommercialhouseholdindustriallargemaintenancemanagementoccupationalphysicalprivatesafetystoragesupportsystems
SHARED TOKENS (15): "business", "cleaning", "commercial", "household", "industrial", "large", "maintenance", "management", "occupational", "physical", "private", "safety", "storage", "support", "systems".
0.300
Smoke detector ↗ Q565858 KW CROSS HIGH
associationbatterybuildingcombinationcommercialcontrolfirehomeshouseholdindustriallargemultiplenationalpanelphysicalpowerpropertyprotectionresidentialshape
SHARED TOKENS (23): "association", "battery", "building", "combination", "commercial", "control", "fire", "homes", "household", "industrial", "large", "multiple", "national", "panel", "physical", "power", "property", "protection", "residential", "shape"....
0.300
Combined sewer ↗ Q361472 KW CROSS HIGH
buildingcapacityconstructiondesigndrainageexperiencegreengroundindustrialirrigationlargemeansmitigationoperatepumpraterepairsitestoragesupport
SHARED TOKENS (27): "building", "capacity", "construction", "design", "drainage", "experience", "green", "ground", "industrial", "irrigation", "large", "means", "mitigation", "operate", "pump", "rate", "repair", "site", "storage", "support"....
0.300
associationconstructioncontractorscostdataelectricalindustryinstallersinternationalnationalnetworksprogramspublicrepresentstradeutilitieswork
SHARED TOKENS (17): "association", "construction", "contractors", "cost", "data", "electrical", "industry", "installers", "international", "national", "networks", "programs", "public", "represents", "trade", "utilities", "work".
0.300
batterychargingdemanddirectelectricalenergyequipmentheatinghomehomeshouseholdlightinglocallocallypowerresidentialsmallsolarstoragesupport
SHARED TOKENS (24): "battery", "charging", "demand", "direct", "electrical", "energy", "equipment", "heating", "home", "homes", "household", "lighting", "local", "locally", "power", "residential", "small", "solar", "storage", "support"....
0.300
amongassociationboisecanyoncapacitycountiescreatesdirectlyedgefederalidaholargestlocalnampanationalprojectsitestoragesurfacetreasure
SHARED TOKENS (23): "among", "association", "boise", "canyon", "capacity", "counties", "creates", "directly", "edge", "federal", "idaho", "largest", "local", "nampa", "national", "project", "site", "storage", "surface", "treasure"....
0.300
businessescapacitycostcustomerdemanddirectdirectlyelectricenergyexplicitfulllargemanagementmeteringnetnetworksoperatepowerpricingrate
SHARED TOKENS (32): "businesses", "capacity", "cost", "customer", "demand", "direct", "directly", "electric", "energy", "explicit", "full", "large", "management", "metering", "net", "networks", "operate", "power", "pricing", "rate"....
0.300
aroundassessmentdepartmentenergyfederalfinancialjanuarylegallocalnationaloperationprogramsprotectionpublicregionalspecialistsstandards
SHARED TOKENS (17): "around", "assessment", "department", "energy", "federal", "financial", "january", "legal", "local", "national", "operation", "programs", "protection", "public", "regional", "specialists", "standards".
0.300
publicregulatorysystemutilitieswater
SHARED TOKENS (5): "public", "regulatory", "system", "utilities", "water". | EXACT TITLE in energy_utilities: "Public water system".
0.300
demanddirectlyelectricelectricalenergygasgrowthhomesindustrymeanspowerprimarysolarstorageutilitieswaterwind
SHARED TOKENS (17): "demand", "directly", "electric", "electrical", "energy", "gas", "growth", "homes", "industry", "means", "power", "primary", "solar", "storage", "utilities", "water", "wind".
0.300
adaboisebuiltconstructioncontroldirectlyfederalfloodfullidahoirrigationmultiplenorthoperatingpowerprimaryprivateutilitywestern
SHARED TOKENS (19): "ada", "boise", "built", "construction", "control", "directly", "federal", "flood", "full", "idaho", "irrigation", "multiple", "north", "operating", "power", "primary", "private", "utility", "western".
0.300
designfoundationgroundstructurewater
SHARED TOKENS (5): "design", "foundation", "ground", "structure", "water". | EXACT TITLE in energy_utilities: "Foundation (engineering)". | EXACT TITLE in home_services: "Foundation (engineering)".
0.300
affectairaloneanalysisaroundbuildingcomponentcontrolheatinghouseholdlightingmodelingphysicalprimaryqualitysourcetreatmentworld
SHARED TOKENS (18): "affect", "air", "alone", "analysis", "around", "building", "component", "control", "heating", "household", "lighting", "modeling", "physical", "primary", "quality", "source", "treatment", "world".
0.300
boisebuiltcanyoncapacitycontractordrainageenergyfallsfinalidaholargestnaturallyoperatedownedpowerprojectunitswestern
SHARED TOKENS (18): "boise", "built", "canyon", "capacity", "contractor", "drainage", "energy", "falls", "final", "idaho", "largest", "naturally", "operated", "owned", "power", "project", "units", "western".
0.300
Water metering ↗ Q268503 KW CROSS HIGH
americanassociationbuildingcommercialmechanicalmeteringnorthpublicratesresidentialstandardssystemtypeunitsvolumewaterworld
SHARED TOKENS (17): "american", "association", "building", "commercial", "mechanical", "metering", "north", "public", "rates", "residential", "standards", "system", "type", "units", "volume", "water", "world".
0.300
buildingcodecommissioncontroldesignelectricelectricalfireinstallationinternationallargelocalnationaloperatingpropertyprotectionsafetystandardssystemsystems
SHARED TOKENS (20): "building", "code", "commission", "control", "design", "electric", "electrical", "fire", "installation", "international", "large", "local", "national", "operating", "property", "protection", "safety", "standards", "system", "systems".
0.300
aircapacitycostdemanddownelectricalenergyexperiencegreenlargelargestmanagementpowerresponsescalesolarstoragesystems
SHARED TOKENS (18): "air", "capacity", "cost", "demand", "down", "electrical", "energy", "experience", "green", "large", "largest", "management", "power", "response", "scale", "solar", "storage", "systems".
0.300
boisecanalcapacitydistrictidahoirrigationnampanationalprogramprojecttreasurevalleywaterwesternyork
SHARED TOKENS (15): "boise", "canal", "capacity", "district", "idaho", "irrigation", "nampa", "national", "program", "project", "treasure", "valley", "water", "western", "york".
0.300
associationcasescodeelectricelectricalequipmentfederalfireinspectsinstallationjurisdictionlawlineslocalnationalpowerprivateprotectionregionalsafety
SHARED TOKENS (25): "association", "cases", "code", "electric", "electrical", "equipment", "federal", "fire", "inspects", "installation", "jurisdiction", "law", "lines", "local", "national", "power", "private", "protection", "regional", "safety"....
0.300
Water supply ↗ Q1061108 KW CROSS HIGH
agriculturearoundcommercialcostenergyirrigationlargepolicypressureproviderspublicqualityregulationruralscalesmallsystemsystemsutilitieswater
SHARED TOKENS (21): "agriculture", "around", "commercial", "cost", "energy", "irrigation", "large", "policy", "pressure", "providers", "public", "quality", "regulation", "rural", "scale", "small", "system", "systems", "utilities", "water"....
🫐 BERRY92 edges
0.280
Underpinning ↗ Q7883752 KW CROSS HIGH
buildingcapacityconstructiondesignexistingfloodfoundationmovenaturalpropertiessitestructuresupportwork
SHARED TOKENS (14): "building", "capacity", "construction", "design", "existing", "flood", "foundation", "move", "natural", "properties", "site", "structure", "support", "work".
0.280
Thermostat ↗ Q187665 KW CROSS HIGH
airbuildingcomponentcontroldemandequipmentheatersheatinghvacoperatesphysicalsystemsystemswater
SHARED TOKENS (14): "air", "building", "component", "control", "demand", "equipment", "heaters", "heating", "hvac", "operates", "physical", "system", "systems", "water".
0.280
agriculturedrainagesystemwater
SHARED TOKENS (4): "agriculture", "drainage", "system", "water". | EXACT TITLE in home_services: "Drainage system".
0.280
directlyphysicalwaterwork
SHARED TOKENS (4): "directly", "physical", "water", "work". | EXACT TITLE in energy_utilities: "Drinking water".
0.280
activeapplicationsbuildingcategoryelectricalenvironmentheatersheatinghvaclargesourcesurfacesystemsystems
SHARED TOKENS (14): "active", "applications", "building", "category", "electrical", "environment", "heaters", "heating", "hvac", "large", "source", "surface", "system", "systems".
0.280
equipmentheatersindustrialwater
SHARED TOKENS (4): "equipment", "heaters", "industrial", "water". | EXACT TITLE in home_services: "Hard water".
0.280
fireirrigationsystemsystems
SHARED TOKENS (4): "fire", "irrigation", "system", "systems". | EXACT TITLE in home_services: "Sprinkler system".
0.280
analysisassessmentbuildingcontrolfloodmanagementmitigationnaturalpropertiessmallstructuralsystemstypewater
SHARED TOKENS (14): "analysis", "assessment", "building", "control", "flood", "management", "mitigation", "natural", "properties", "small", "structural", "systems", "type", "water".
0.280
buildingcombinationcontrolfirehomehomeownerspanelpropertyprotectionrecordsinglesmallsystemsystems
SHARED TOKENS (14): "building", "combination", "control", "fire", "home", "homeowners", "panel", "property", "protection", "record", "single", "small", "system", "systems".
0.280
Off-the-grid ↗ Q267162 KW CROSS HIGH
buildingcannotcostelectricalenergygashomespublicresidentialscalesmallsystemsutilitieswater
SHARED TOKENS (14): "building", "cannot", "cost", "electrical", "energy", "gas", "homes", "public", "residential", "scale", "small", "systems", "utilities", "water".
0.280
Fence ↗ Q148571 EXACT TITLE
foundationmovementstructurewater
SHARED TOKENS (4): "foundation", "movement", "structure", "water". | EXACT TITLE in home_services: "Fence".
0.260
Skylight ↗ Q2712955 EXACT TITLE
buildingroofstructure
SHARED TOKENS (3): "building", "roof", "structure". | EXACT TITLE in home_services: "Skylight".
0.260
Roofing ↗ EXACT TITLE
constructionroofroofing
SHARED TOKENS (3): "construction", "roof", "roofing". | EXACT TITLE in energy_utilities: "Roofing". | EXACT TITLE in home_services: "Roofing".
0.260
emergencyenvironmentgasheatershomepresencerequiresafetysinglestandardsystemwaterwork
SHARED TOKENS (13): "emergency", "environment", "gas", "heaters", "home", "presence", "require", "safety", "single", "standard", "system", "water", "work".
0.260
Pesticide ↗ Q131656 EXACT TITLE
controlpropertyprotection
SHARED TOKENS (3): "control", "property", "protection". | EXACT TITLE in home_services: "Pesticide".
0.260
Paint ↗ Q174219 EXACT TITLE
createdistinctsurface
SHARED TOKENS (3): "create", "distinct", "surface". | EXACT TITLE in home_services: "Paint".
0.260
Flooring ↗ Q1433006 EXACT TITLE
structuresurfacework
SHARED TOKENS (3): "structure", "surface", "work". | EXACT TITLE in home_services: "Flooring".
0.260
businessbusinessescleaning
SHARED TOKENS (3): "business", "businesses", "cleaning". | EXACT TITLE in home_services: "Moving company".
0.260
amongassociationenergyhouseholdinternationalnationalnaturalpowerrapidresourcessolarwindworld
SHARED TOKENS (13): "among", "association", "energy", "household", "international", "national", "natural", "power", "rapid", "resources", "solar", "wind", "world".
0.260
populationprofessionalstructure
SHARED TOKENS (3): "population", "professional", "structure". | EXACT TITLE in home_services: "Relocation".
0.260
Power station ↗ Q159719 KW CROSS HIGH
createselectricelectricalenergygasindustrialmechanicalnaturalpowersolarsourcewindworld
SHARED TOKENS (13): "creates", "electric", "electrical", "energy", "gas", "industrial", "mechanical", "natural", "power", "solar", "source", "wind", "world".
0.260
Boise River ↗ Q891080 EXACT TITLE
boiseidahowestern
SHARED TOKENS (3): "boise", "idaho", "western". | EXACT TITLE in energy_utilities: "Boise River".
0.240
Humidifier ↗ Q1073283 KW CROSS HIGH
airappliancecommercialconnecthomehouseholdhvacindustriallargesinglesystemwater
SHARED TOKENS (12): "air", "appliance", "commercial", "connect", "home", "household", "hvac", "industrial", "large", "single", "system", "water".
0.240
Black start ↗ Q655257 KW CROSS HIGH
agreementelectricelectricalemergencyenergyindustriallargenetworkoperationpowerrequiresunits
SHARED TOKENS (12): "agreement", "electric", "electrical", "emergency", "energy", "industrial", "large", "network", "operation", "power", "requires", "units".
0.240
buildingdepartmentdirectlyenergyfederalnationalphysicalpolicypowerprogramprojectsystem
SHARED TOKENS (12): "building", "department", "directly", "energy", "federal", "national", "physical", "policy", "power", "program", "project", "system".
0.240
estatefinancialhomehomeownersindustrypolicyprivatepropertyprotectionrealstandardtype
SHARED TOKENS (12): "estate", "financial", "home", "homeowners", "industry", "policy", "private", "property", "protection", "real", "standard", "type".
0.220
Vapor barrier ↗ Q276854 KW CROSS HIGH
airamericanboardbuildingexteriorrateroofstandardtestunitswater
SHARED TOKENS (11): "air", "american", "board", "building", "exterior", "rate", "roof", "standard", "test", "units", "water".
0.220
Patio ↗ Q737988 EXACT TITLE
protectionstructure
SHARED TOKENS (2): "protection", "structure". | EXACT TITLE in energy_utilities: "Patio". | EXACT TITLE in home_services: "Patio".
0.220
Carpet ↗ Q163446 EXACT TITLE
createstructure
SHARED TOKENS (2): "create", "structure". | EXACT TITLE in home_services: "Carpet".
0.220
Indoor mold ↗ Q6895739 KW CROSS HIGH
affectairamericandownenvironmentgrowthmeansnaturalrequiresourcestructural
SHARED TOKENS (11): "affect", "air", "american", "down", "environment", "growth", "means", "natural", "require", "source", "structural".
0.220
Pergola ↗ KW CROSS HIGH
buildingdesignframeworkgreenlargenearlyprotectionroofstructuresupporttype
SHARED TOKENS (11): "building", "design", "framework", "green", "large", "nearly", "protection", "roof", "structure", "support", "type".
0.220
constructioncreateindustryphysicalpressureprogramprogramsregulatorystandardstreatmentyork
SHARED TOKENS (11): "construction", "create", "industry", "physical", "pressure", "program", "programs", "regulatory", "standards", "treatment", "york".
0.220
appliancesconnectelectricalequipmentfirehouseholdoperationpowerprotectionsafetysystem
SHARED TOKENS (11): "appliances", "connect", "electrical", "equipment", "fire", "household", "operation", "power", "protection", "safety", "system".
0.220
industrialwater
SHARED TOKENS (2): "industrial", "water". | EXACT TITLE in energy_utilities: "Industrial waste".
0.220
boisecascadehomeidahomanagedmultiplenationalresourcesunitswaterwest
SHARED TOKENS (11): "boise", "cascade", "home", "idaho", "managed", "multiple", "national", "resources", "units", "water", "west".
0.220
commercialdirectlyindustrialpipeservingstormsurfacesystemsystemstreatmenttype
SHARED TOKENS (11): "commercial", "directly", "industrial", "pipe", "serving", "storm", "surface", "system", "systems", "treatment", "type".
0.220
batterychargingcostdirectdirectlyelectricelectricalequipmentinstallationpowerrequires
SHARED TOKENS (11): "battery", "charging", "cost", "direct", "directly", "electric", "electrical", "equipment", "installation", "power", "requires".
0.210
Tax credit ↗ Q1062630 EXACT TITLE
cases
SHARED TOKENS (1): "cases". | EXACT TITLE in home_services: "Tax credit".
0.210
Ice dam ↗ EXACT TITLE
roof
SHARED TOKENS (1): "roof". | EXACT TITLE in home_services: "Ice dam".
0.200
Bed bug ↗ Q48385308 KW CROSS HIGH
controlheatinghomeinternationalmarketsnearlysmalltreatmenttypeworld
SHARED TOKENS (10): "control", "heating", "home", "international", "markets", "nearly", "small", "treatment", "type", "world".
0.200
combinationdownpropertypublicsystemstreatmenttypeunitswesternworld
SHARED TOKENS (10): "combination", "down", "property", "public", "systems", "treatment", "type", "units", "western", "world".
0.200
Termite ↗ Q546583 KW CROSS HIGH
completedistinctgrowthlargenorthpropertiesregionalstructuralwestworld
SHARED TOKENS (10): "complete", "distinct", "growth", "large", "north", "properties", "regional", "structural", "west", "world".
0.200
Forced-air ↗ Q113669245 KW CROSS HIGH
aircontrolheatinghvaclargemeansnorthsystemsystemstype
SHARED TOKENS (10): "air", "control", "heating", "hvac", "large", "means", "north", "system", "systems", "type".
0.200
capacitycategorieselectricelectricallinespowerstructuresupportutilitywater
SHARED TOKENS (10): "capacity", "categories", "electric", "electrical", "lines", "power", "structure", "support", "utility", "water".
0.200
costelectricalfireinstallationinstallationsmechanicalnorthpowersystemstype
SHARED TOKENS (10): "cost", "electrical", "fire", "installation", "installations", "mechanical", "north", "power", "systems", "type".
0.200
suez
EXACT TITLE in energy_utilities: "Suez (disambiguation)".
0.200
Gutter ↗ Q1557353 EXACT TITLE
EXACT TITLE in home_services: "Gutter".
0.200
directlyirrigationnetworkoperatedsurfacesystemsystemstypewaterworld
SHARED TOKENS (10): "directly", "irrigation", "network", "operated", "surface", "system", "systems", "type", "water", "world".
0.200
boardcomponentconsumerelectricelectricalinstallationspanelpowerprotectionsystem
SHARED TOKENS (10): "board", "component", "consumer", "electric", "electrical", "installations", "panel", "power", "protection", "system".
0.200
French drain ↗ Q1492817 KW CROSS HIGH
buildingdrainagegroundpipepressurestormsurfacesystemtreatmentwater
SHARED TOKENS (10): "building", "drainage", "ground", "pipe", "pressure", "storm", "surface", "system", "treatment", "water".
0.200
Drain ↗ Q441549 EXACT TITLE
EXACT TITLE in energy_utilities: "Drain". | EXACT TITLE in home_services: "Drain".
0.200
EXACT TITLE in home_services: "Exterminator".
0.200
amongcapacitycontrolgeographyimprovementirrigationmanagementphysicalpopulationproduce
SHARED TOKENS (10): "among", "capacity", "control", "geography", "improvement", "irrigation", "management", "physical", "population", "produce".
0.200
Private equity ↗ Q476115 KW CROSS HIGH
activebusinesscategorycontrolfinancialfinancinglong-termmanagementprivatepublic
SHARED TOKENS (10): "active", "business", "category", "control", "financial", "financing", "long-term", "management", "private", "public".
0.200
Feed-in tariff ↗ Q279637 KW CROSS HIGH
contractscostenergylong-termmeanspolicypowersolarstandardwind
SHARED TOKENS (10): "contracts", "cost", "energy", "long-term", "means", "policy", "power", "solar", "standard", "wind".
0.180
Air filter ↗ Q583488 KW CROSS HIGH
airapplicationsbuildingconstructionelectricequipmentgasqualitysystems
SHARED TOKENS (9): "air", "applications", "building", "construction", "electric", "equipment", "gas", "quality", "systems".
0.180
Eutrophication ↗ Q156698 KW CROSS HIGH
agricultureenvironmentgrowthindustrialnaturallyprogramsourcesurfacewater
SHARED TOKENS (9): "agriculture", "environment", "growth", "industrial", "naturally", "program", "source", "surface", "water".
0.180
adabusinessfinaljanuarylawnationalprotectionpublicrequires
SHARED TOKENS (9): "ada", "business", "final", "january", "law", "national", "protection", "public", "requires".
0.180
gaslinesnationalnaturalpublicstormstreetutilitywater
SHARED TOKENS (9): "gas", "lines", "national", "natural", "public", "storm", "street", "utility", "water".
0.180
americanbrandscommercialcontrolequipmentmarketoperatorsresidentialsystems
SHARED TOKENS (9): "american", "brands", "commercial", "control", "equipment", "market", "operators", "residential", "systems".
0.160
airbuildingenergyequipmentlargemechanicalsystemswater
SHARED TOKENS (8): "air", "building", "energy", "equipment", "large", "mechanical", "systems", "water".
0.160
amongcombinationcontrolfederaljurisdictionlinespowersource
SHARED TOKENS (8): "among", "combination", "control", "federal", "jurisdiction", "lines", "power", "source".
0.160
demandfirepipepressurestoragesystemsystemswater
SHARED TOKENS (8): "demand", "fire", "pipe", "pressure", "storage", "system", "systems", "water".
0.160
businesscommercialfinancialmultipleownersprojectsmallsource
SHARED TOKENS (8): "business", "commercial", "financial", "multiple", "owners", "project", "small", "source".
0.160
americanfullhouseholdindustriallegalsourcesystemwater
SHARED TOKENS (8): "american", "full", "household", "industrial", "legal", "source", "system", "water".
0.160
cleaningcommercialequipmentexteriorlicensinglightingstructuralwork
SHARED TOKENS (8): "cleaning", "commercial", "equipment", "exterior", "licensing", "lighting", "structural", "work".
0.160
firefloodhomeinsuredpolicypropertyprotectionrequire
SHARED TOKENS (8): "fire", "flood", "home", "insured", "policy", "property", "protection", "require".
0.160
appliancesbuildingcategorycontrolhomelightingsystemsystems
SHARED TOKENS (8): "appliances", "building", "category", "control", "home", "lighting", "system", "systems".
0.160
casescontrolequipmentgasmaintainsparallelpressureresponse
SHARED TOKENS (8): "cases", "control", "equipment", "gas", "maintains", "parallel", "pressure", "response".
0.160
electricalenergymechanicalnetpowersourcetypework
SHARED TOKENS (8): "electrical", "energy", "mechanical", "net", "power", "source", "type", "work".
0.160
Limescale ↗ Q747404 KW CROSS HIGH
affectcleanheatingoperationplumbingscaletreatmentwater
SHARED TOKENS (8): "affect", "clean", "heating", "operation", "plumbing", "scale", "treatment", "water".
0.160
departmentenergyhomeintegrationnationaloperatedsystemswind
SHARED TOKENS (8): "department", "energy", "home", "integration", "national", "operated", "systems", "wind".
0.140
costelectricelectricallinesoperatingpowerquality
SHARED TOKENS (7): "cost", "electric", "electrical", "lines", "operating", "power", "quality".
0.140
districtirrigationlargelocalpowerpublicwater
SHARED TOKENS (7): "district", "irrigation", "large", "local", "power", "public", "water".
0.140
Copper tubing ↗ KW CROSS HIGH
airhvaclinesplumbingsystemstypewater
SHARED TOKENS (7): "air", "hvac", "lines", "plumbing", "systems", "type", "water".
0.140
Star, Idaho ↗ Q1516815 KW CROSS HIGH
adaboisecanyondistrictidahopopulationwest
SHARED TOKENS (7): "ada", "boise", "canyon", "district", "idaho", "population", "west".
0.140
aroundenergylargemechanicalmultipleshapetype
SHARED TOKENS (7): "around", "energy", "large", "mechanical", "multiple", "shape", "type".
0.140
activeairgasmitigationsystemstreatmentwater
SHARED TOKENS (7): "active", "air", "gas", "mitigation", "systems", "treatment", "water".
0.140
cleanequipmenthouseholdindustrialpipestreetsystems
SHARED TOKENS (7): "clean", "equipment", "household", "industrial", "pipe", "street", "systems".
0.140
Xeriscaping ↗ Q2706851 KW CROSS HIGH
irrigationlocalmaintenancenaturalpublicrequirewater
SHARED TOKENS (7): "irrigation", "local", "maintenance", "natural", "public", "require", "water".
0.140
businessesfoundationhomesprivatereplacementsmallsurface
SHARED TOKENS (7): "businesses", "foundation", "homes", "private", "replacement", "small", "surface".
0.140
agricultureconstructioncontrolpropertysurfacewaterwind
SHARED TOKENS (7): "agriculture", "construction", "control", "property", "surface", "water", "wind".
0.120
adaboiseidahonearlypopulationstreet
SHARED TOKENS (6): "ada", "boise", "idaho", "nearly", "population", "street".
0.120
homehomeslightingpropertysmallsystems
SHARED TOKENS (6): "home", "homes", "lighting", "property", "small", "systems".
0.120
Caulk ↗ Q1411795 KW CROSS HIGH
aircomponentconstructionindustryoldestwater
SHARED TOKENS (6): "air", "component", "construction", "industry", "oldest", "water".
0.120
applianceelectricalenergygroundprotectionresponse
SHARED TOKENS (6): "appliance", "electrical", "energy", "ground", "protection", "response".
0.120
cleaningplumbingrequiresscalesmallwater
SHARED TOKENS (6): "cleaning", "plumbing", "requires", "scale", "small", "water".
0.100
controlmanagedmechanicalpopulationprograms
SHARED TOKENS (5): "control", "managed", "mechanical", "population", "programs".
0.100
Waterproofing ↗ Q2326110 KW CROSS HIGH
buildingpressureratestructurewater
SHARED TOKENS (5): "building", "pressure", "rate", "structure", "water".
0.100
buildingcomponentmanagementoperatesyork
SHARED TOKENS (5): "building", "component", "management", "operates", "york".
0.100
publicratesregulatoryutilitiesutility
SHARED TOKENS (5): "public", "rates", "regulatory", "utilities", "utility".
0.100
Laminate flooring ↗ KW CROSS HIGH
boardbrandsclearstandardtype
SHARED TOKENS (5): "board", "brands", "clear", "standard", "type".
◈ Frequently Asked Questions
Energy Utilities × Home Services — Treasure Valley
HAIKU · HIGH GATE
How do Idaho Power's net metering rules affect solar installation decisions for Boise homeowners?
Idaho Power administers net metering credits for residential solar systems in Ada County, allowing homeowners to offset electricity costs through distributed generation. Home services contractors installing solar power systems must ensure compliance with Idaho Public Utilities Commission regulations and Idaho Power's interconnection standards to maximize customer savings.
What role does the Idaho Public Utilities Commission play in heat pump installation requirements across Treasure Valley homes?
The Idaho Public Utilities Commission sets building code standards that apply to heating, ventilation, and air conditioning systems, including heat pumps installed in Ada County residences. Home services providers in the Treasure Valley must follow these electrical and safety requirements when integrating heat pump systems with existing power distribution.
Why do Treasure Valley electricians need to understand battery energy storage systems alongside solar inverters?
Solar power installations in Boise often pair solar inverters with battery energy storage systems, creating integrated electrical systems that require specialized knowledge of both components. Electricians working in Ada County must understand how these systems connect to home electrical infrastructure while meeting Idaho building codes and Idaho Power interconnection requirements.
How do water distribution systems and electrical requirements intersect in Treasure Valley home services?
Wells and water distribution systems in Ada County homes frequently require electrical power for pumps and treatment equipment, making coordination between electricians and water service providers essential. Idaho building codes require proper electrical grounding and protection for these systems, which home services contractors must address during installation and maintenance.
◈ Provenance Chain · refinery-treasurevalley-v1.0.0
Energy Utilities × Home Services 23 QID bridges 270 edges 7,023 ext links 2026-07-17 20:39:36 UTC 9fd8a714f956a919
Energy Utilities corridor ↗ Home Services corridor ↗ Home Services × Energy Utilities ↗ boisestandard.org/standard ↗
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