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Wikipedia

Electric power transmission

Electric power transmission is the bulk movement of electrical energy from a generating site, such as a power plant, to an electrical substation. The interconnected lines that facilitate this movement form a transmission network. This is distinct from the local wiring between high-voltage substations and customers, which is typically referred to as electric power distribution. The combined transmission and distribution network is part of electricity delivery, known as the electrical grid.

Five-hundred kilovolt (500 kV) Three-phase electric power Transmission Lines at Grand Coulee Dam. Four circuits are shown. Two additional circuits are obscured by trees on the far right. The entire 7079 MW nameplate generation capacity of the dam is accommodated by these six circuits.

Efficient long-distance transmission of electric power requires high voltages. This reduces the losses produced by strong currents. Transmission lines use either alternating current (AC) or direct current (DC). The voltage level is changed with transformers. The voltage is stepped up for transmission, then reduced for local distribution.

A wide area synchronous grid, known as an "interconnection" in North America, directly connects generators delivering AC power with the same relative frequency to many consumers. North America has four major interconnections: Western, Eastern, Quebec and Texas. One grid connects most of continental Europe.

Historically, transmission and distribution lines were often owned by the same company, but starting in the 1990s, many countries liberalized the regulation of the electricity market in ways that led to separate companies handling transmission and distribution.[1]

System

 
A diagram of an electric power system. The transmission system is in blue.

Most North American transmission lines are high-voltage three-phase AC, although single phase AC is sometimes used in railway electrification systems. DC technology is used for greater efficiency over longer distances, typically hundreds of miles. High-voltage direct current (HVDC) technology is also used in submarine power cables (typically longer than 30 miles (50 km)), and in the interchange of power between grids that are not mutually synchronized. HVDC links stabilize power distribution networks where sudden new loads, or blackouts, in one part of a network might otherwise result in synchronization problems and cascading failures.

Electricity is transmitted at high voltages to reduce the energy loss that occurs over long distances. Power is usually transmitted through overhead power lines. Underground power transmission has a significantly higher installation cost and greater operational limitations, but lowers maintenance costs. Underground transmission is more common in urban areas or environmentally sensitive locations.

Electrical energy must typically be generated at the same rate at which it is consumed. A sophisticated control system is required to ensure that power generation closely matches demand. If demand exceeds supply, the imbalance can cause generation plant(s) and transmission equipment to automatically disconnect or shut down to prevent damage. In the worst case, this may lead to a cascading series of shutdowns and a major regional blackout.

The US Northeast faced blackouts in 1965, 1977, 2003, and major blackouts in other US regions in 1996 and 2011. Electric transmission networks are interconnected into regional, national, and even continent-wide networks to reduce the risk of such a failure by providing multiple redundant, alternative routes for power to flow should such shutdowns occur. Transmission companies determine the maximum reliable capacity of each line (ordinarily less than its physical or thermal limit) to ensure that spare capacity is available in the event of a failure in another part of the network.

Overhead

 
A four-circuit, two-voltage power transmission line; "Bundled" 2-ways
 
A typical ACSR. The conductor consists of seven strands of steel surrounded by four layers of aluminium.

High-voltage overhead conductors are not covered by insulation. The conductor material is nearly always an aluminum alloy, formed of several strands and possibly reinforced with steel strands. Copper was sometimes used for overhead transmission, but aluminum is lighter, reduces yields only marginally and costs much less. Overhead conductors are supplied by several companies. Conductor material and shapes are regularly improved to increase capacity.

Conductor sizes range from 12 mm2 (#6 American wire gauge) to 750 mm2 (1,590,000 circular mils area), with varying resistance and current-carrying capacity. For large conductors (more than a few centimetres in diameter), much of the current flow is concentrated near the surface due to the skin effect. The center of the conductor carries little current but contributes weight and cost. Thus, multiple parallel cables (called bundle conductors) are used for higher capacity. Bundle conductors are used at high voltages to reduce energy loss caused by corona discharge.

Today, transmission-level voltages are usually 110 kV and above. Lower voltages, such as 66 kV and 33 kV, are usually considered subtransmission voltages, but are occasionally used on long lines with light loads. Voltages less than 33 kV are usually used for distribution. Voltages above 765 kV are considered extra high voltage and require different designs.

Overhead transmission wires depend on air for insulation, requiring that lines maintain minimum clearances. Adverse weather conditions, such as high winds and low temperatures, interrupt transmission. Wind speeds as low as 23 knots (43 km/h) can permit conductors to encroach operating clearances, resulting in a flashover and loss of supply.[2] Oscillatory motion of the physical line is termed conductor gallop or flutter depending on the frequency and amplitude of oscillation.


Underground

Electric power can be transmitted by underground power cables. Underground cables take up no right-of-way, have lower visibility, and are less affected by weather. However, cables must be insulated. Cable and excavation costs are much higher than overhead construction. Faults in buried transmission lines take longer to locate and repair.

In some metropolitan areas, cables are enclosed by metal pipe and insulated with dielectric fluid (usually an oil) that is either static or circulated via pumps. If an electric fault damages the pipe and leaks dielectric, liquid nitrogen is used to freeze portions of the pipe to enable draining and repair. This extends the repair period and increases costs. The temperature of the pipe and surroundings are monitored throughout the repair period.[3][4][5]

Underground lines are limited by their thermal capacity, which permits less overload or re-rating lines. Long underground AC cables have significant capacitance, which reduces their ability to provide useful power beyond 50 miles (80 kilometres). DC cables are not limited in length by their capacitance.

History

 
New York City streets in 1890. Besides telegraph lines, multiple electric lines were required for each class of device requiring different voltages.

Commercial electric power was initially transmitted at the same voltage used by lighting and mechanical loads. This restricted the distance between generating plant and loads. In 1882, DC voltage could not easily be increased for long-distance transmission. Different classes of loads (for example, lighting, fixed motors, and traction/railway systems) required different voltages, and so used different generators and circuits.[6][7]

Thus, generators were sited near their loads, a practice that later became known as distributed generation using large numbers of small generators.[8]

Transmission of alternating current (AC) became possible after Lucien Gaulard and John Dixon Gibbs built what they called the secondary generator, an early transformer provided with 1:1 turn ratio and open magnetic circuit, in 1881.

The first long distance AC line was 34 kilometres (21 miles) long, built for the 1884 International Exhibition of Electricity in Turin, Italy. It was powered by a 2 kV, 130 Hz Siemens & Halske alternator and featured several Gaulard transformers with primary windings connected in series, which fed incandescent lamps. The system proved the feasibility of AC electric power transmission over long distances.[7]

The first commercial AC distribution system entered service in 1885 in via dei Cerchi, Rome, Italy, for public lighting. It was powered by two Siemens & Halske alternators rated 30 hp (22 kW), 2 kV at 120 Hz and used 19 km of cables and 200 parallel-connected 2 kV to 20 V step-down transformers provided with a closed magnetic circuit, one for each lamp. A few months later it was followed by the first British AC system, serving Grosvenor Gallery. It also featured Siemens alternators and 2.4 kV to 100 V step-down transformers – one per user – with shunt-connected primaries.[9]

Working to improve what he considered an impractical Gaulard-Gibbs design, electrical engineer William Stanley, Jr. developed the first practical series AC transformer in 1885.[10] Working with the support of George Westinghouse, in 1886 he demonstrated a transformer-based AC lighting system in Great Barrington, Massachusetts. It was powered by a steam engine-driven 500 V Siemens generator. Voltage was stepped down to 100 volts using the Stanley transformer to power incandescent lamps at 23 businesses over 4,000 feet (1,200 m).[11] This practical demonstration of a transformer and alternating current lighting system led Westinghouse to begin installing AC systems later that year.[10]

In 1888 the first designs for an AC motor appeared. These were induction motors running on polyphase current, independently invented by Galileo Ferraris and Nikola Tesla. Westinghouse licensed Tesla's design. Practical three-phase motors were designed by Mikhail Dolivo-Dobrovolsky and Charles Eugene Lancelot Brown.[12] Widespread use of such motors were delayed many years by development problems and the scarcity of polyphase power systems needed to power them.[13][14]

 
Westinghouse alternating current polyphase generators on display at the 1893 World's Fair in Chicago, part of their "Tesla Poly-phase System". Such polyphase innovations revolutionized transmission.

In the late 1880s and early 1890s smaller electric companies merged into larger corporations such as Ganz and AEG in Europe and General Electric and Westinghouse Electric in the US. These companies developed AC systems, but the technical difference between direct and alternating current systems required a much longer technical merger.[15] Alternating current's economies of scale with large generating plants and long-distance transmission slowly added the ability to link all the loads. These included single phase AC systems, poly-phase AC systems, low voltage incandescent lighting, high-voltage arc lighting, and existing DC motors in factories and street cars. In what became a universal system, these technological differences were temporarily bridged via the rotary converters and motor-generators that allowed the legacy systems to connect to the AC grid.[15][16] These stopgaps were slowly replaced as older systems were retired or upgraded.

The first transmission of single-phase alternating current using high voltage came in Oregon in 1890 when power was delivered from a hydroelectric plant at Willamette Falls to the city of Portland 14 miles (23 km) down river.[17] The first three-phase alternating current using high voltage took place in 1891 during the international electricity exhibition in Frankfurt. A 15 kV transmission line, approximately 175 km long, connected Lauffen on the Neckar and Frankfurt.[9][18]

Transmission voltages increased throughout the 20th century. By 1914, fifty-five transmission systems operating at more than 70 kV were in service. The highest voltage then used was 150 kV.[19] Interconnecting multiple generating plants over a wide area reduced costs. The most efficient plants could be used to supply varying loads during the day. Reliability was improved and capital costs were reduced, because stand-by generating capacity could be shared over many more customers and a wider area. Remote and low-cost sources of energy, such as hydroelectric power or mine-mouth coal, could be exploited to further lower costs.[6][9]

The 20th century's rapid industrialization made electrical transmission lines and grids critical infrastructure. Interconnection of local generation plants and small distribution networks was spurred by World War I, when large electrical generating plants were built by governments to power munitions factories.[20]

Bulk transmission

 
A transmission substation decreases the voltage of incoming electricity, allowing it to connect from long-distance high-voltage transmission, to local lower voltage distribution. It also reroutes power to other transmission lines that serve local markets. This is the PacifiCorp Hale Substation, Orem, Utah, US.

These networks use components such as power lines, cables, circuit breakers, switches and transformers. The transmission network is usually administered on a regional basis by an entity such as a regional transmission organization or transmission system operator.[21]

Transmission efficiency is improved at higher voltage and lower current. The reduced current reduces heating losses. Joule's first law states that energy losses are proportional to the square of the current. Thus, reducing the current by a factor of two lowers the energy lost to conductor resistance by a factor of four for any given size of conductor.

The optimum size of a conductor for a given voltage and current can be estimated by Kelvin's law for conductor size, which states that size is optimal when the annual cost of energy wasted in resistance is equal to the annual capital charges of providing the conductor. At times of lower interest rates and low commodity costs, Kelvin's law indicates that thicker wires are optimal. Otherwise, thinner conductors are indicated.: Since power lines are designed for long-term use, Kelvin's law is used in conjunction with long-term estimates of the price of copper and aluminum as well as interest rates.

Higher voltage is achieved in AC circuits by using a step-up transformer. High-voltage direct current (HVDC) systems require relatively costly conversion equipment that may be economically justified for particular projects such as submarine cables and longer distance high capacity point-to-point transmission. HVDC is necessary for sending energy between unsynchronized grids.

A transmission grid is a network of power stations, transmission lines, and substations. Energy is usually transmitted within a grid with three-phase AC. Single-phase AC is used only for distribution to end users since it is not usable for large polyphase induction motors. In the 19th century, two-phase transmission was used but required either four wires or three wires with unequal currents. Higher order phase systems require more than three wires, but deliver little or no benefit.

 
The synchronous grids of Europe

While the price of generating capacity is high, energy demand is variable, making it often cheaper to import needed power than to generate it locally. Because loads often rise and fall together across large areas, power often comes from distant sources. Because of the economic benefits of load sharing, wide area transmission grids may span countries and even continents. Interconnections between producers and consumers enables power to flow even if some links are inoperative.

The slowly varying portion of demand is known as the base load and is generally served by large facilities with constant operating costs, termed firm power. Such facilities are nuclear, coal or hydroelectric, while other energy sources such as concentrated solar thermal and geothermal power have the potential to provide firm power. Renewable energy sources, such as solar photovoltaics, wind, wave, and tidal, are, due to their intermittency, not considered to be firm. The remaining or "peak" power demand, is supplied by peaking power plants, which are typically smaller, faster-responding, and higher cost sources, such as combined cycle or combustion turbine plants typically fueled by natural gas.

Long-distance transmission (hundreds of kilometers) is cheap and efficient, with costs of US$0.005–0.02 per kWh (compared to annual averaged large producer costs of US$0.01–0.025 per kWh, retail rates upwards of US$0.10 per kWh, and multiples of retail for instantaneous suppliers at unpredicted high demand moments.[22] New York often buys over 1000 MW of low-cost hydropower from Canada.[23] Local sources (even if more expensive and infrequently used) can protect the power supply from weather and other disasters that can disconnect distant suppliers.

 
A high-power electrical transmission tower, 230 kV, double-circuit, also double-bundled

Hydro and wind sources cannot be moved closer to big cities, and solar costs are lowest in remote areas where local power needs are nominal. Connection costs can determine whether any particular renewable alternative is economically realistic. Costs can be prohibitive for transmission lines, but high capacity, long distance super grid transmission network costs could be recovered with modest usage fees.

Grid input

At power stations, power is produced at a relatively low voltage between about 2.3 kV and 30 kV, depending on the size of the unit. The voltage is then stepped up by the power station transformer to a higher voltage (115 kV to 765 kV AC) for transmission.

In the United States, power transmission is, variously, 230 kV to 500 kV, with less than 230 kV or more than 500 kV as exceptions.

The Western Interconnection has two primary interchange voltages: 500 kV AC at 60 Hz, and ±500 kV (1,000 kV net) DC from North to South (Columbia River to Southern California) and Northeast to Southwest (Utah to Southern California). The 287.5 kV (Hoover Dam to Los Angeles line, via Victorville) and 345 kV (Arizona Public Service (APS) line) are local standards, both of which were implemented before 500 kV became practical.

Losses

Transmitting electricity at high voltage reduces the fraction of energy lost to Joule heating, which varies by conductor type, the current, and the transmission distance. For example, a 100 mi (160 km) span at 765 kV carrying 1000 MW of power can have losses of 0.5% to 1.1%. A 345 kV line carrying the same load across the same distance has losses of 4.2%.[24] For a given amount of power, a higher voltage reduces the current and thus the resistive losses. For example, raising the voltage by a factor of 10 reduces the current by a corresponding factor of 10 and therefore the   losses by a factor of 100, provided the same sized conductors are used in both cases. Even if the conductor size (cross-sectional area) is decreased ten-fold to match the lower current, the   losses are still reduced ten-fold using the higher voltage.

While power loss can also be reduced by increasing the wire's conductance (by increasing its cross-sectional area), larger conductors are heavier and more expensive. And since conductance is proportional to cross-sectional area, resistive power loss is only reduced proportionally with increasing cross-sectional area, providing a much smaller benefit than the squared reduction provided by multiplying the voltage.

Long-distance transmission is typically done with overhead lines at voltages of 115 to 1,200 kV. At higher voltages, where more than 2,000 kV exists between conductor and ground, corona discharge losses are so large that they can offset the lower resistive losses in the line conductors. Measures to reduce corona losses include larger conductor diameter, hollow cores[25] or conductor bundles.

Factors that affect resistance and thus loss include temperature, spiraling, and the skin effect. Resistance increases with temperature. Spiraling, which refers to the way stranded conductors spiral about the center, also contributes to increases in conductor resistance. The skin effect causes the effective resistance to increase at higher AC frequencies. Corona and resistive losses can be estimated using a mathematical model.[26]

US transmission and distribution losses were estimated at 6.6% in 1997,[27] 6.5% in 2007[27] and 5% from 2013 to 2019.[28] In general, losses are estimated from the discrepancy between power produced (as reported by power plants) and power sold; the difference constitutes transmission and distribution losses, assuming no utility theft occurs.

As of 1980, the longest cost-effective distance for DC transmission was 7,000 kilometres (4,300 miles). For AC it was 4,000 kilometres (2,500 miles), though US transmission lines are substantially shorter.[22]

In any AC line, conductor inductance and capacitance can be significant. Currents that flow solely in reaction to these properties, (which together with the resistance define the impedance) constitute reactive power flow, which transmits no power to the load. These reactive currents, however, cause extra heating losses. The ratio of real power transmitted to the load to apparent power (the product of a circuit's voltage and current, without reference to phase angle) is the power factor. As reactive current increases, reactive power increases and power factor decreases.

For transmission systems with low power factor, losses are higher than for systems with high power factor. Utilities add capacitor banks, reactors and other components (such as phase-shifters; static VAR compensators; and flexible AC transmission systems, FACTS) throughout the system help to compensate for the reactive power flow, reduce the losses in power transmission and stabilize system voltages. These measures are collectively called 'reactive support'.

Transposition

Current flowing through transmission lines induces a magnetic field that surrounds the lines of each phase and affects the inductance of the surrounding conductors of other phases. The conductors' mutual inductance is partially dependent on the physical orientation of the lines with respect to each other. Three-phase lines are conventionally strung with phases separated vertically. The mutual inductance seen by a conductor of the phase in the middle of the other two phases is different from the inductance seen on the top/bottom.

Unbalanced inductance among the three conductors is problematic because it may force the middle line to carry a disproportionate amount of the total power transmitted. Similarly, an unbalanced load may occur if one line is consistently closest to the ground and operates at a lower impedance. Because of this phenomenon, conductors must be periodically transposed along the line so that each phase sees equal time in each relative position to balance out the mutual inductance seen by all three phases. To accomplish this, line position is swapped at specially designed transposition towers at regular intervals along the line using various transposition schemes.

Subtransmission

 
A 115 kV subtransmission line in the Philippines, along with 20 kV distribution lines and a street light, all mounted on a wood subtransmission pole
 
115 kV H-frame transmission tower

Subtransmission runs at relatively lower voltages. It is uneconomical to connect all distribution substations to the high main transmission voltage, because that equipment is larger and more expensive. Typically, only larger substations connect with this high voltage. Voltage is stepped down before the current is sent to smaller substations. Subtransmission circuits are usually arranged in loops so that a single line failure does not stop service to many customers for more than a short time.

Loops can be "normally closed", where loss of one circuit should result in no interruption, or "normally open" where substations can switch to a backup supply. While subtransmission circuits are usually carried on overhead lines, in urban areas buried cable may be used. The lower-voltage subtransmission lines use less right-of-way and simpler structures; undergrounding is less difficult.

No fixed cutoff separates subtransmission and transmission, or subtransmission and distribution. Their voltage ranges overlap. Voltages of 69 kV, 115 kV, and 138 kV are often used for subtransmission in North America. As power systems evolved, voltages formerly used for transmission were used for subtransmission, and subtransmission voltages became distribution voltages. Like transmission, subtransmission moves relatively large amounts of power, and like distribution, subtransmission covers an area instead of just point-to-point.[29]

Transmission grid exit

Substation transformers reduce the voltage to a lower level for distribution to loads. This distribution is accomplished with a combination of sub-transmission (33 to 132 kV) and distribution (3.3 to 25 kV). Finally, at the point of use, the energy is transformed to low voltage.

Advantage of high-voltage transmission

High-voltage power transmission allows for lesser resistive losses over long distances. This efficiency delivers a larger proportion of the generated power to the loads.

 
Electrical grid without a transformer
 
Electrical grid with a transformer

In a simplified model, the grid delivers electricity from an ideal voltage source with voltage  , delivering a power  ) to a single point of consumption, modelled by a resistance  , when the wires are long enough to have a significant resistance  .

If the resistances are in series with no intervening transformer, the circuit acts as a voltage divider, because the same current   runs through the wire resistance and the powered device. As a consequence, the useful power (at the point of consumption) is:

 

Should an ideal transformer convert high-voltage, low-current electricity into low-voltage, high-current electricity with a voltage ratio of   (i.e., the voltage is divided by   and the current is multiplied by   in the secondary branch, compared to the primary branch), then the circuit is again equivalent to a voltage divider, but the wires now have apparent resistance of only  . The useful power is then:

 

For   (i.e. conversion of high voltage to low voltage near the consumption point), a larger fraction of the generator's power is transmitted to the consumption point and a lesser fraction is lost to Joule heating.

Modeling

 
"Black box" model for transmission line

The terminal characteristics of the transmission line are the voltage and current at the sending (S) and receiving (R) ends. The transmission line can be modeled as a "black box" and a 2 by 2 transmission matrix is used to model its behavior, as follows:

 

The line is assumed to be a reciprocal, symmetrical network, meaning that the receiving and sending labels can be switched with no consequence. The transmission matrix T has the properties:

  •  
  •  

The parameters A, B, C, and D differ depending on how the desired model handles the line's resistance (R), inductance (L), capacitance (C), and shunt (parallel, leak) conductance G.

The four main models are the short line approximation, the medium line approximation, the long line approximation (with distributed parameters), and the lossless line. In such models, a capital letter such as R refers to the total quantity summed over the line and a lowercase letter such as c refers to the per-unit-length quantity.

Lossless line

The lossless line approximation is the least accurate; it is typically used on short lines where the inductance is much greater than the resistance. For this approximation, the voltage and current are identical at the sending and receiving ends.

 
Voltage on sending and receiving ends for lossless line

The characteristic impedance is pure real, which means resistive for that impedance, and it is often called surge impedance. When a lossless line is terminated by surge impedance, the voltage does not drop. Though the phase angles of voltage and current are rotated, the magnitudes of voltage and current remain constant along the line. For load > SIL, the voltage drops from sending end and the line "consumes" VARs. For load < SIL, the voltage increases from the sending end, and the line "generates" VARs.

Short line

The short line approximation is normally used for lines shorter than 80 km (50 mi). There, only a series impedance Z is considered, while C and G are ignored. The final result is that A = D = 1 per unit, B = Z Ohms, and C = 0. The associated transition matrix for this approximation is therefore:

 

Medium line

The medium line approximation is used for lines running between 80 and 250 km (50 and 155 mi). The series impedance and the shunt (current leak) conductance are considered, placing half of the shunt conductance at each end of the line. This circuit is often referred to as a "nominal π (pi)" circuit because of the shape (π) that is taken on when leak conductance is placed on both sides of the circuit diagram. The analysis of the medium line produces:

 

Counterintuitive behaviors of medium-length transmission lines:

  • voltage rise at no load or small current (Ferranti effect)
  • receiving-end current can exceed sending-end current

Long line

The long line model is used when a higher degree of accuracy is needed or when the line under consideration is more than 250 km (160 mi) long. Series resistance and shunt conductance are considered to be distributed parameters, such that each differential length of the line has a corresponding differential series impedance and shunt admittance. The following result can be applied at any point along the transmission line, where   is the propagation constant.

 

To find the voltage and current at the end of the long line,   should be replaced with   (the line length) in all parameters of the transmission matrix. This model applies the Telegrapher's equations.

High-voltage direct current

High-voltage direct current (HVDC) is used to transmit large amounts of power over long distances or for interconnections between asynchronous grids. When electrical energy is transmitted over very long distances, the power lost in AC transmission becomes appreciable and it is less expensive to use direct current instead. For a long transmission line, these lower losses (and reduced construction cost of a DC line) can offset the cost of the required converter stations at each end.

HVDC is used for long submarine cables where AC cannot be used because of cable capacitance.[30] In these cases special high-voltage cables are used. Submarine HVDC systems are often used to interconnect the electricity grids of islands, for example, between Great Britain and continental Europe, between Great Britain and Ireland, between Tasmania and the Australian mainland, between the North and South Islands of New Zealand, between New Jersey and New York City, and between New Jersey and Long Island. Submarine connections up to 600 kilometres (370 mi) in length have been deployed.[31]

HVDC links can be used to control grid problems. The power transmitted by an AC line increases as the phase angle between source end voltage and destination ends increases, but too large a phase angle allows the systems at either end to fall out of step. Since the power flow in a DC link is controlled independently of the phases of the AC networks that it connects, this phase angle limit does not exist, and a DC link is always able to transfer its full rated power. A DC link therefore stabilizes the AC grid at either end, since power flow and phase angle can then be controlled independently.

As an example, to adjust the flow of AC power on a hypothetical line between Seattle and Boston would require adjustment of the relative phase of the two regional electrical grids. This is an everyday occurrence in AC systems, but one that can become disrupted when AC system components fail and place unexpected loads on the grid. With an HVDC line instead, such an interconnection would:

  • Convert AC in Seattle into HVDC;
  • Use HVDC for the 3,000 miles (4,800 km) of cross-country transmission; and
  • Convert the HVDC to locally synchronized AC in Boston,

(and possibly in other cooperating cities along the transmission route). Such a system could be less prone to failure if parts of it were suddenly shut down. One example of a long DC transmission line is the Pacific DC Intertie located in the Western United States.

Capacity

The amount of power that can be sent over a transmission line varies with the length of the line. The heating of short line conductors due to line losses sets a thermal limit. If too much current is drawn, conductors may sag too close to the ground, or conductors and equipment may overheat. For intermediate-length lines on the order of 100 kilometres (62 miles), the limit is set by the voltage drop in the line. For longer AC lines, system stability becomes the limiting factor. Approximately, the power flowing over an AC line is proportional to the cosine of the phase angle of the voltage and current at the ends.

This angle varies depending on system loading. It is undesirable for the angle to approach 90 degrees, as the power flowing decreases while resistive losses remain. The product of line length and maximum load is approximately proportional to the square of the system voltage. Series capacitors or phase-shifting transformers are used on long lines to improve stability. HVDC lines are restricted only by thermal and voltage drop limits, since the phase angle is not material.

Understanding the temperature distribution along the cable route became possible with the introduction of distributed temperature sensing (DTS) systems that measure temperatures all along the cable. Without them maximum current was typically set as a compromise between understanding of operation conditions and risk minimization. This monitoring solution uses passive optical fibers as temperature sensors, either inside a high-voltage cable or externally mounted on the cable insulation.

For overhead cables the fiber is integrated into the core of a phase wire. The integrated Dynamic Cable Rating (DCR)/Real Time Thermal Rating (RTTR) solution makes it possible to run the network to its maximum. It allows the operator to predict the behavior of the transmission system to reflect major changes to its initial operating conditions.

Control

To ensure safe and predictable operation, system components are controlled with generators, switches, circuit breakers and loads. The voltage, power, frequency, load factor, and reliability capabilities of the transmission system are designed to provide cost effective performance.

Load balancing

The transmission system provides for base load and peak load capability, with margins for safety and fault tolerance. Peak load times vary by region largely due to the industry mix. In hot and cold climates home air conditioning and heating loads affect the overall load. They are typically highest in the late afternoon in the hottest part of the year and in mid-mornings and mid-evenings in the coldest part of the year. Power requirements vary by season and time of day. Distribution system designs always take the base load and the peak load into consideration.

The transmission system usually does not have a large buffering capability to match loads with generation. Thus generation has to be kept matched to the load, to prevent overloading generation equipment.

Multiple sources and loads can be connected to the transmission system and they must be controlled to provide orderly transfer of power. In centralized power generation, only local control of generation is necessary. This involves synchronization of the generation units.

In distributed power generation the generators are geographically distributed and the process to bring them online and offline must be carefully controlled. The load control signals can either be sent on separate lines or on the power lines themselves. Voltage and frequency can be used as signaling mechanisms to balance the loads.

In voltage signaling, voltage is varied to increase generation. The power added by any system increases as the line voltage decreases. This arrangement is stable in principle. Voltage-based regulation is complex to use in mesh networks, since the individual components and setpoints would need to be reconfigured every time a new generator is added to the mesh.

In frequency signaling, the generating units match the frequency of the power transmission system. In droop speed control, if the frequency decreases, the power is increased. (The drop in line frequency is an indication that the increased load is causing the generators to slow down.)

Wind turbines, vehicle-to-grid, virtual power plants, and other locally distributed storage and generation systems can interact with the grid to improve system operation. Internationally, a slow move from a centralized to decentralized power system has taken place. The main draw of locally distributed generation systems is that they reduce transmission losses by leading to consumption of electricity closer to where it was produced.[32]

Failure protection

Under excess load conditions, the system can be designed to fail incrementally rather than all at once. Brownouts occur when power supplied drops below the demand. Blackouts occur when the grid fails completely.

Rolling blackouts (also called load shedding) are intentionally engineered electrical power outages, used to distribute insufficient power to various loads in turn.

Communications

Grid operators require reliable communications to manage the grid and associated generation and distribution facilities. Fault-sensing protective relays at each end of the line must communicate to monitor the flow of power so that faulted conductors or equipment can be quickly de-energized and the balance of the system restored. Protection of the transmission line from short circuits and other faults is usually so critical that common carrier telecommunications are insufficiently reliable, while in some remote areas no common carrier is available. Communication systems associated with a transmission project may use:

Rarely, and for short distances, pilot-wires are strung along the transmission line path. Leased circuits from common carriers are not preferred since availability is not under control of the operator.

Transmission lines can be used to carry data: this is called power-line carrier, or power-line communication (PLC). PLC signals can be easily received with a radio in the long wave range.

 
High-voltage pylons carrying additional optical fibre cable in Kenya

Optical fibers can be included in the stranded conductors of a transmission line, in the overhead shield wires. These cables are known as optical ground wire (OPGW). Sometimes a standalone cable is used, all-dielectric self-supporting (ADSS) cable, attached to the transmission line cross arms.

Some jurisdictions, such as Minnesota, prohibit energy transmission companies from selling surplus communication bandwidth or acting as a telecommunications common carrier. Where the regulatory structure permits, the utility can sell capacity in extra dark fibers to a common carrier.

Market structure

Electricity transmission is generally considered to be a natural monopoly, but one that is not inherently linked to generation.[33][34][35] Many countries regulate transmission separately from generation.

Spain was the first country to establish a regional transmission organization. In that country, transmission operations and electricity markets are separate. The transmission system operator is Red Eléctrica de España (REE) and the wholesale electricity market operator is Operador del Mercado Ibérico de Energía – Polo Español, S.A. (OMEL) . Spain's transmission system is interconnected with those of France, Portugal, and Morocco.

The establishment of RTOs in the United States was spurred by the FERC's Order 888, Promoting Wholesale Competition Through Open Access Non-discriminatory Transmission Services by Public Utilities; Recovery of Stranded Costs by Public Utilities and Transmitting Utilities, issued in 1996.[36] In the United States and parts of Canada, electric transmission companies operate independently of generation companies, but in the Southern United States vertical integration is intact. In regions of separation, transmission owners and generation owners continue to interact with each other as market participants with voting rights within their RTO. RTOs in the United States are regulated by the Federal Energy Regulatory Commission.

Merchant transmission projects in the United States include the Cross Sound Cable from Shoreham, New York to New Haven, Connecticut, Neptune RTS Transmission Line from Sayreville, New Jersey, to New Bridge, New York, and Path 15 in California. Additional projects are in development or have been proposed throughout the United States, including the Lake Erie Connector, an underwater transmission line proposed by ITC Holdings Corp., connecting Ontario to load serving entities in the PJM Interconnection region.[37]

Australia has one unregulated or market interconnector - Basslink - between Tasmania and Victoria. Two DC links originally implemented as market interconnectors, Directlink and Murraylink, were converted to regulated interconnectors.[38]

A major barrier to wider adoption of merchant transmission is the difficulty in identifying who benefits from the facility so that the beneficiaries pay the toll. Also, it is difficult for a merchant transmission line to compete when the alternative transmission lines are subsidized by utilities with a monopolized and regulated rate base.[39] In the United States, the FERC's Order 1000, issued in 2010, attempted to reduce barriers to third party investment and creation of merchant transmission lines where a public policy need is found.[40]

Transmission costs

The cost of high voltage transmission is comparatively low, compared to all other costs constituting consumer electricity bills. In the UK, transmission costs are about 0.2 p per kWh compared to a delivered domestic price of around 10 p per kWh.[41]

The level of capital expenditure in the electric power T&D equipment market was estimated to be $128.9 bn in 2011.[42]

Health concerns

Mainstream scientific evidence suggests that low-power, low-frequency, electromagnetic radiation associated with household currents and high transmission power lines does not constitute a short- or long-term health hazard.

Some studies failed to find any link between living near power lines and developing any sickness or diseases, such as cancer. A 1997 study reported no increased risk of cancer or illness from living near a transmission line.[43] Other studies, however, reported statistical correlations between various diseases and living or working near power lines. No adverse health effects have been substantiated for people not living close to power lines.[44]

The New York State Public Service Commission conducted a study[45] to evaluate potential health effects of electric fields. The study measured the electric field strength at the edge of an existing right-of-way on a 765 kV transmission line. The field strength was 1.6 kV/m, and became the interim maximum strength standard for new transmission lines in New York State. The opinion also limited the voltage of new transmission lines built in New York to 345 kV. On September 11, 1990, after a similar study of magnetic field strengths, the NYSPSC issued their Interim Policy Statement on Magnetic Fields. This policy established a magnetic field standard of 200 mG at the edge of the right-of-way using the winter-normal conductor rating. As a comparison with everyday items, a hair dryer or electric blanket produces a 100 mG – 500 mG magnetic field.[46][47]

Applications for a new transmission line typically include an analysis of electric and magnetic field levels at the edge of rights-of-way. Public utility commissions typically do not comment on health impacts.

Biological effects have been established for acute high level exposure to magnetic fields above 100 µT (1 G) (1,000 mG). In a residential setting, one study reported "limited evidence of carcinogenicity in humans and less than sufficient evidence for carcinogenicity in experimental animals", in particular, childhood leukemia, associated with average exposure to residential power-frequency magnetic field above 0.3 µT (3 mG) to 0.4 µT (4 mG). These levels exceed average residential power-frequency magnetic fields in homes, which are about 0.07 µT (0.7 mG) in Europe and 0.11 µT (1.1 mG) in North America.[48][49]

The Earth's natural geomagnetic field strength varies over the surface of the planet between 0.035 mT and 0.07 mT (35 µT – 70 µT or 350 mG – 700 mG) while the international standard for continuous exposure is set at 40 mT (400,000 mG or 400 G) for the general public.[48]

Tree growth regulators and herbicides may be used in transmission line right of ways,[50] which may have health effects.

Policy by country

United States

The Federal Energy Regulatory Commission (FERC) is the primary regulatory agency of electric power transmission and wholesale electricity sales within the United States. FERC was originally established by Congress in 1920 as the Federal Power Commission and has since undergone multiple name and responsibility modifications. Electric power distribution and the retail sale of power is under state jurisdiction.

Order No. 888

Order No. 888 was adopted by FERC on April 24, 1996. It was "designed to remove impediments to competition in the wholesale bulk power marketplace and to bring more efficient, lower cost power to the Nation’s electricity consumers. The legal and policy cornerstone of these rules is to remedy undue discrimination in access to the monopoly owned transmission wires that control whether and to whom electricity can be transported in interstate commerce."[51] The Order required all public utilities that own, control, or operate facilities used for transmitting electric energy in interstate commerce, to have open access, non-discriminatory transmission tariffs. These tariffs allow any electricity generator to utilize existing power lines to transmit the power that they generate. The Order also permits public utilities to recover the costs associated with providing their power lines as an open access service.[51][52]

Energy Policy Act of 2005

The Energy Policy Act of 2005 (EPAct) expanded federal authority to regulate power transmission. EPAct gave FERC significant new responsibilities, including enforcement of electric transmission reliability standards and the establishment of rate incentives to encourage investment in electricity transmission.[53]

Historically, local governments exercised authority over the grid and maintained significant disincentives to actions that would benefit states other than their own. Localities with cheap electricity have a disincentive to encourage making interstate commerce in electricity trading easier, since other regions would be able to compete for that energy and drive up rates. For example, some regulators in Maine refused to address congestion problems because the congestion protects Maine rates.[54]

Local constituencies can block or slow permitting by pointing to visual impacts, environmental, and health concerns. In the US, generation is growing four times faster than transmission, but transmission upgrades require the coordination of multiple jurisdictions, complex permitting, and cooperation between a significant portion of the many companies that collectively own the grid. The US national security interest in improving transmission was reflected in the EPAct which gave the Department of Energy the authority to approve transmission if states refused to act.[55]

Specialized transmission

Grids for railways

In some countries where electric locomotives or electric multiple units run on low frequency AC power, separate single phase traction power networks are operated by the railways. Prime examples are countries such as Austria, Germany and Switzerland that utilize AC technology based on 16 2/3 Hz. Norway and Sweden also use this frequency but use conversion from the 50 Hz public supply; Sweden has a 16 2/3 Hz traction grid but only for part of the system.

Superconducting cables

High-temperature superconductors (HTS) promise to revolutionize power distribution by providing lossless transmission. The development of superconductors with transition temperatures higher than the boiling point of liquid nitrogen has made the concept of superconducting power lines commercially feasible, at least for high-load applications.[56] It has been estimated that waste would be halved using this method, since the necessary refrigeration equipment would consume about half the power saved by the elimination of resistive losses. Companies such as Consolidated Edison and American Superconductor began commercial production of such systems in 2007.[57]

Superconducting cables are particularly suited to high load density areas such as the business district of large cities, where purchase of an easement for cables is costly.[58]

HTS transmission lines[59]
Location Length (km) Voltage (kV) Capacity (GW) Date
Carrollton, Georgia 2000
Albany, New York[60] 0.35 34.5 0.048 2006
Holbrook, Long Island[61] 0.6 138 0.574 2008
Tres Amigas 5 Proposed 2013
Manhattan: Project Hydra Proposed 2014
Essen, Germany[62][63] 1 10 0.04 2014

Single-wire earth return

Single-wire earth return (SWER) or single-wire ground return is a single-wire transmission line for supplying single-phase electrical power to remote areas at low cost. It is principally used for rural electrification, but also finds use for larger isolated loads such as water pumps. Single-wire earth return is also used for HVDC over submarine power cables.

Wireless power transmission

Both Nikola Tesla and Hidetsugu Yagi attempted to devise systems for large scale wireless power transmission in the late 1800s and early 1900s, without commercial success.

In November 2009, LaserMotive won the NASA 2009 Power Beaming Challenge by powering a cable climber 1 km vertically using a ground-based laser transmitter. The system produced up to 1 kW of power at the receiver end. In August 2010, NASA contracted with private companies to pursue the design of laser power beaming systems to power low earth orbit satellites and to launch rockets using laser power beams.

Wireless power transmission has been studied for transmission of power from solar power satellites to the earth. A high power array of microwave or laser transmitters would beam power to a rectenna. Major engineering and economic challenges face any solar power satellite project.

Security

The Federal government of the United States stated that the power grid is susceptible to cyber-warfare.[64][65] The United States Department of Homeland Security works with industry to identify vulnerabilities and to help industry enhance the security of control system networks.[66]

In June 2019, Russia conceded that it was "possible" its electrical grid is under cyber-attack by the United States.[67] The New York Times reported that American hackers from the United States Cyber Command planted malware potentially capable of disrupting the Russian electrical grid.[68]

Records

See also

References

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Further reading

  • Grigsby, L. L., et al. The Electric Power Engineering Handbook. USA: CRC Press. (2001). ISBN 0-8493-8578-4
  • Hughes, Thomas P., Networks of Power: Electrification in Western Society 1880–1930, The Johns Hopkins University Press, Baltimore 1983 ISBN 0-8018-2873-2, an excellent overview of development during the first 50 years of commercial electric power
  • Reilly, Helen (2008). Connecting the Country – New Zealand's National Grid 1886–2007. Wellington: Steele Roberts. pp. 376 pages. ISBN 978-1-877448-40-9.
  • Pansini, Anthony J, E.E., P.E. undergrounding electric lines. USA Hayden Book Co, 1978. ISBN 0-8104-0827-9
  • Westinghouse Electric Corporation, "Electric power transmission patents; Tesla polyphase system". (Transmission of power; polyphase system; Tesla patents)

electric, power, transmission, other, uses, electric, transmission, disambiguation, power, lines, redirects, here, power, lines, general, overhead, power, line, this, article, multiple, issues, please, help, improve, discuss, these, issues, talk, page, learn, . For other uses see Electric transmission disambiguation Power lines redirects here For power lines in general see Overhead power line This article has multiple issues Please help improve it or discuss these issues on the talk page Learn how and when to remove these template messages The examples and perspective in this article may not represent a worldwide view of the subject You may improve this article discuss the issue on the talk page or create a new article as appropriate August 2022 Learn how and when to remove this template message This article needs to be updated Please help update this article to reflect recent events or newly available information August 2022 This article includes a list of general references but it lacks sufficient corresponding inline citations Please help to improve this article by introducing more precise citations August 2022 Learn how and when to remove this template message Learn how and when to remove this template message Electric power transmission is the bulk movement of electrical energy from a generating site such as a power plant to an electrical substation The interconnected lines that facilitate this movement form a transmission network This is distinct from the local wiring between high voltage substations and customers which is typically referred to as electric power distribution The combined transmission and distribution network is part of electricity delivery known as the electrical grid Five hundred kilovolt 500 kV Three phase electric power Transmission Lines at Grand Coulee Dam Four circuits are shown Two additional circuits are obscured by trees on the far right The entire 7079 MW nameplate generation capacity of the dam is accommodated by these six circuits Efficient long distance transmission of electric power requires high voltages This reduces the losses produced by strong currents Transmission lines use either alternating current AC or direct current DC The voltage level is changed with transformers The voltage is stepped up for transmission then reduced for local distribution A wide area synchronous grid known as an interconnection in North America directly connects generators delivering AC power with the same relative frequency to many consumers North America has four major interconnections Western Eastern Quebec and Texas One grid connects most of continental Europe Historically transmission and distribution lines were often owned by the same company but starting in the 1990s many countries liberalized the regulation of the electricity market in ways that led to separate companies handling transmission and distribution 1 Contents 1 System 1 1 Overhead 1 2 Underground 2 History 3 Bulk transmission 3 1 Grid input 3 2 Losses 3 3 Transposition 3 4 Subtransmission 3 5 Transmission grid exit 4 Advantage of high voltage transmission 5 Modeling 5 1 Lossless line 5 2 Short line 5 3 Medium line 5 4 Long line 6 High voltage direct current 7 Capacity 8 Control 8 1 Load balancing 8 2 Failure protection 9 Communications 10 Market structure 11 Transmission costs 12 Health concerns 13 Policy by country 13 1 United States 13 1 1 Order No 888 13 1 2 Energy Policy Act of 2005 14 Specialized transmission 14 1 Grids for railways 14 2 Superconducting cables 14 3 Single wire earth return 14 4 Wireless power transmission 15 Security 16 Records 17 See also 18 References 19 Further readingSystem Edit A diagram of an electric power system The transmission system is in blue Most North American transmission lines are high voltage three phase AC although single phase AC is sometimes used in railway electrification systems DC technology is used for greater efficiency over longer distances typically hundreds of miles High voltage direct current HVDC technology is also used in submarine power cables typically longer than 30 miles 50 km and in the interchange of power between grids that are not mutually synchronized HVDC links stabilize power distribution networks where sudden new loads or blackouts in one part of a network might otherwise result in synchronization problems and cascading failures Electricity is transmitted at high voltages to reduce the energy loss that occurs over long distances Power is usually transmitted through overhead power lines Underground power transmission has a significantly higher installation cost and greater operational limitations but lowers maintenance costs Underground transmission is more common in urban areas or environmentally sensitive locations Electrical energy must typically be generated at the same rate at which it is consumed A sophisticated control system is required to ensure that power generation closely matches demand If demand exceeds supply the imbalance can cause generation plant s and transmission equipment to automatically disconnect or shut down to prevent damage In the worst case this may lead to a cascading series of shutdowns and a major regional blackout The US Northeast faced blackouts in 1965 1977 2003 and major blackouts in other US regions in 1996 and 2011 Electric transmission networks are interconnected into regional national and even continent wide networks to reduce the risk of such a failure by providing multiple redundant alternative routes for power to flow should such shutdowns occur Transmission companies determine the maximum reliable capacity of each line ordinarily less than its physical or thermal limit to ensure that spare capacity is available in the event of a failure in another part of the network Overhead Edit Main article Overhead power line A four circuit two voltage power transmission line Bundled 2 ways A typical ACSR The conductor consists of seven strands of steel surrounded by four layers of aluminium This section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message High voltage overhead conductors are not covered by insulation The conductor material is nearly always an aluminum alloy formed of several strands and possibly reinforced with steel strands Copper was sometimes used for overhead transmission but aluminum is lighter reduces yields only marginally and costs much less Overhead conductors are supplied by several companies Conductor material and shapes are regularly improved to increase capacity Conductor sizes range from 12 mm2 6 American wire gauge to 750 mm2 1 590 000 circular mils area with varying resistance and current carrying capacity For large conductors more than a few centimetres in diameter much of the current flow is concentrated near the surface due to the skin effect The center of the conductor carries little current but contributes weight and cost Thus multiple parallel cables called bundle conductors are used for higher capacity Bundle conductors are used at high voltages to reduce energy loss caused by corona discharge Today transmission level voltages are usually 110 kV and above Lower voltages such as 66 kV and 33 kV are usually considered subtransmission voltages but are occasionally used on long lines with light loads Voltages less than 33 kV are usually used for distribution Voltages above 765 kV are considered extra high voltage and require different designs Overhead transmission wires depend on air for insulation requiring that lines maintain minimum clearances Adverse weather conditions such as high winds and low temperatures interrupt transmission Wind speeds as low as 23 knots 43 km h can permit conductors to encroach operating clearances resulting in a flashover and loss of supply 2 Oscillatory motion of the physical line is termed conductor gallop or flutter depending on the frequency and amplitude of oscillation A five hundred kilovolt 500 kV three phase transmission tower in Washington State the line is Bundled 3 ways Three abreast Electrical Pylons in Webster Texas Underground Edit Main article Undergrounding Electric power can be transmitted by underground power cables Underground cables take up no right of way have lower visibility and are less affected by weather However cables must be insulated Cable and excavation costs are much higher than overhead construction Faults in buried transmission lines take longer to locate and repair In some metropolitan areas cables are enclosed by metal pipe and insulated with dielectric fluid usually an oil that is either static or circulated via pumps If an electric fault damages the pipe and leaks dielectric liquid nitrogen is used to freeze portions of the pipe to enable draining and repair This extends the repair period and increases costs The temperature of the pipe and surroundings are monitored throughout the repair period 3 4 5 Underground lines are limited by their thermal capacity which permits less overload or re rating lines Long underground AC cables have significant capacitance which reduces their ability to provide useful power beyond 50 miles 80 kilometres DC cables are not limited in length by their capacitance History EditMain article History of electric power transmission New York City streets in 1890 Besides telegraph lines multiple electric lines were required for each class of device requiring different voltages Commercial electric power was initially transmitted at the same voltage used by lighting and mechanical loads This restricted the distance between generating plant and loads In 1882 DC voltage could not easily be increased for long distance transmission Different classes of loads for example lighting fixed motors and traction railway systems required different voltages and so used different generators and circuits 6 7 Thus generators were sited near their loads a practice that later became known as distributed generation using large numbers of small generators 8 Transmission of alternating current AC became possible after Lucien Gaulard and John Dixon Gibbs built what they called the secondary generator an early transformer provided with 1 1 turn ratio and open magnetic circuit in 1881 The first long distance AC line was 34 kilometres 21 miles long built for the 1884 International Exhibition of Electricity in Turin Italy It was powered by a 2 kV 130 Hz Siemens amp Halske alternator and featured several Gaulard transformers with primary windings connected in series which fed incandescent lamps The system proved the feasibility of AC electric power transmission over long distances 7 The first commercial AC distribution system entered service in 1885 in via dei Cerchi Rome Italy for public lighting It was powered by two Siemens amp Halske alternators rated 30 hp 22 kW 2 kV at 120 Hz and used 19 km of cables and 200 parallel connected 2 kV to 20 V step down transformers provided with a closed magnetic circuit one for each lamp A few months later it was followed by the first British AC system serving Grosvenor Gallery It also featured Siemens alternators and 2 4 kV to 100 V step down transformers one per user with shunt connected primaries 9 Working to improve what he considered an impractical Gaulard Gibbs design electrical engineer William Stanley Jr developed the first practical series AC transformer in 1885 10 Working with the support of George Westinghouse in 1886 he demonstrated a transformer based AC lighting system in Great Barrington Massachusetts It was powered by a steam engine driven 500 V Siemens generator Voltage was stepped down to 100 volts using the Stanley transformer to power incandescent lamps at 23 businesses over 4 000 feet 1 200 m 11 This practical demonstration of a transformer and alternating current lighting system led Westinghouse to begin installing AC systems later that year 10 In 1888 the first designs for an AC motor appeared These were induction motors running on polyphase current independently invented by Galileo Ferraris and Nikola Tesla Westinghouse licensed Tesla s design Practical three phase motors were designed by Mikhail Dolivo Dobrovolsky and Charles Eugene Lancelot Brown 12 Widespread use of such motors were delayed many years by development problems and the scarcity of polyphase power systems needed to power them 13 14 Westinghouse alternating current polyphase generators on display at the 1893 World s Fair in Chicago part of their Tesla Poly phase System Such polyphase innovations revolutionized transmission In the late 1880s and early 1890s smaller electric companies merged into larger corporations such as Ganz and AEG in Europe and General Electric and Westinghouse Electric in the US These companies developed AC systems but the technical difference between direct and alternating current systems required a much longer technical merger 15 Alternating current s economies of scale with large generating plants and long distance transmission slowly added the ability to link all the loads These included single phase AC systems poly phase AC systems low voltage incandescent lighting high voltage arc lighting and existing DC motors in factories and street cars In what became a universal system these technological differences were temporarily bridged via the rotary converters and motor generators that allowed the legacy systems to connect to the AC grid 15 16 These stopgaps were slowly replaced as older systems were retired or upgraded The first transmission of single phase alternating current using high voltage came in Oregon in 1890 when power was delivered from a hydroelectric plant at Willamette Falls to the city of Portland 14 miles 23 km down river 17 The first three phase alternating current using high voltage took place in 1891 during the international electricity exhibition in Frankfurt A 15 kV transmission line approximately 175 km long connected Lauffen on the Neckar and Frankfurt 9 18 Transmission voltages increased throughout the 20th century By 1914 fifty five transmission systems operating at more than 70 kV were in service The highest voltage then used was 150 kV 19 Interconnecting multiple generating plants over a wide area reduced costs The most efficient plants could be used to supply varying loads during the day Reliability was improved and capital costs were reduced because stand by generating capacity could be shared over many more customers and a wider area Remote and low cost sources of energy such as hydroelectric power or mine mouth coal could be exploited to further lower costs 6 9 The 20th century s rapid industrialization made electrical transmission lines and grids critical infrastructure Interconnection of local generation plants and small distribution networks was spurred by World War I when large electrical generating plants were built by governments to power munitions factories 20 Bulk transmission Edit A transmission substation decreases the voltage of incoming electricity allowing it to connect from long distance high voltage transmission to local lower voltage distribution It also reroutes power to other transmission lines that serve local markets This is the PacifiCorp Hale Substation Orem Utah US These networks use components such as power lines cables circuit breakers switches and transformers The transmission network is usually administered on a regional basis by an entity such as a regional transmission organization or transmission system operator 21 Transmission efficiency is improved at higher voltage and lower current The reduced current reduces heating losses Joule s first law states that energy losses are proportional to the square of the current Thus reducing the current by a factor of two lowers the energy lost to conductor resistance by a factor of four for any given size of conductor The optimum size of a conductor for a given voltage and current can be estimated by Kelvin s law for conductor size which states that size is optimal when the annual cost of energy wasted in resistance is equal to the annual capital charges of providing the conductor At times of lower interest rates and low commodity costs Kelvin s law indicates that thicker wires are optimal Otherwise thinner conductors are indicated Since power lines are designed for long term use Kelvin s law is used in conjunction with long term estimates of the price of copper and aluminum as well as interest rates Higher voltage is achieved in AC circuits by using a step up transformer High voltage direct current HVDC systems require relatively costly conversion equipment that may be economically justified for particular projects such as submarine cables and longer distance high capacity point to point transmission HVDC is necessary for sending energy between unsynchronized grids A transmission grid is a network of power stations transmission lines and substations Energy is usually transmitted within a grid with three phase AC Single phase AC is used only for distribution to end users since it is not usable for large polyphase induction motors In the 19th century two phase transmission was used but required either four wires or three wires with unequal currents Higher order phase systems require more than three wires but deliver little or no benefit The synchronous grids of Europe While the price of generating capacity is high energy demand is variable making it often cheaper to import needed power than to generate it locally Because loads often rise and fall together across large areas power often comes from distant sources Because of the economic benefits of load sharing wide area transmission grids may span countries and even continents Interconnections between producers and consumers enables power to flow even if some links are inoperative The slowly varying portion of demand is known as the base load and is generally served by large facilities with constant operating costs termed firm power Such facilities are nuclear coal or hydroelectric while other energy sources such as concentrated solar thermal and geothermal power have the potential to provide firm power Renewable energy sources such as solar photovoltaics wind wave and tidal are due to their intermittency not considered to be firm The remaining or peak power demand is supplied by peaking power plants which are typically smaller faster responding and higher cost sources such as combined cycle or combustion turbine plants typically fueled by natural gas Long distance transmission hundreds of kilometers is cheap and efficient with costs of US 0 005 0 02 per kWh compared to annual averaged large producer costs of US 0 01 0 025 per kWh retail rates upwards of US 0 10 per kWh and multiples of retail for instantaneous suppliers at unpredicted high demand moments 22 New York often buys over 1000 MW of low cost hydropower from Canada 23 Local sources even if more expensive and infrequently used can protect the power supply from weather and other disasters that can disconnect distant suppliers A high power electrical transmission tower 230 kV double circuit also double bundled Hydro and wind sources cannot be moved closer to big cities and solar costs are lowest in remote areas where local power needs are nominal Connection costs can determine whether any particular renewable alternative is economically realistic Costs can be prohibitive for transmission lines but high capacity long distance super grid transmission network costs could be recovered with modest usage fees Grid input Edit This section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message At power stations power is produced at a relatively low voltage between about 2 3 kV and 30 kV depending on the size of the unit The voltage is then stepped up by the power station transformer to a higher voltage 115 kV to 765 kV AC for transmission In the United States power transmission is variously 230 kV to 500 kV with less than 230 kV or more than 500 kV as exceptions The Western Interconnection has two primary interchange voltages 500 kV AC at 60 Hz and 500 kV 1 000 kV net DC from North to South Columbia River to Southern California and Northeast to Southwest Utah to Southern California The 287 5 kV Hoover Dam to Los Angeles line via Victorville and 345 kV Arizona Public Service APS line are local standards both of which were implemented before 500 kV became practical Losses Edit Transmitting electricity at high voltage reduces the fraction of energy lost to Joule heating which varies by conductor type the current and the transmission distance For example a 100 mi 160 km span at 765 kV carrying 1000 MW of power can have losses of 0 5 to 1 1 A 345 kV line carrying the same load across the same distance has losses of 4 2 24 For a given amount of power a higher voltage reduces the current and thus the resistive losses For example raising the voltage by a factor of 10 reduces the current by a corresponding factor of 10 and therefore the I 2 R displaystyle I 2 R losses by a factor of 100 provided the same sized conductors are used in both cases Even if the conductor size cross sectional area is decreased ten fold to match the lower current the I 2 R displaystyle I 2 R losses are still reduced ten fold using the higher voltage While power loss can also be reduced by increasing the wire s conductance by increasing its cross sectional area larger conductors are heavier and more expensive And since conductance is proportional to cross sectional area resistive power loss is only reduced proportionally with increasing cross sectional area providing a much smaller benefit than the squared reduction provided by multiplying the voltage Long distance transmission is typically done with overhead lines at voltages of 115 to 1 200 kV At higher voltages where more than 2 000 kV exists between conductor and ground corona discharge losses are so large that they can offset the lower resistive losses in the line conductors Measures to reduce corona losses include larger conductor diameter hollow cores 25 or conductor bundles Factors that affect resistance and thus loss include temperature spiraling and the skin effect Resistance increases with temperature Spiraling which refers to the way stranded conductors spiral about the center also contributes to increases in conductor resistance The skin effect causes the effective resistance to increase at higher AC frequencies Corona and resistive losses can be estimated using a mathematical model 26 US transmission and distribution losses were estimated at 6 6 in 1997 27 6 5 in 2007 27 and 5 from 2013 to 2019 28 In general losses are estimated from the discrepancy between power produced as reported by power plants and power sold the difference constitutes transmission and distribution losses assuming no utility theft occurs As of 1980 the longest cost effective distance for DC transmission was 7 000 kilometres 4 300 miles For AC it was 4 000 kilometres 2 500 miles though US transmission lines are substantially shorter 22 In any AC line conductor inductance and capacitance can be significant Currents that flow solely in reaction to these properties which together with the resistance define the impedance constitute reactive power flow which transmits no power to the load These reactive currents however cause extra heating losses The ratio of real power transmitted to the load to apparent power the product of a circuit s voltage and current without reference to phase angle is the power factor As reactive current increases reactive power increases and power factor decreases For transmission systems with low power factor losses are higher than for systems with high power factor Utilities add capacitor banks reactors and other components such as phase shifters static VAR compensators and flexible AC transmission systems FACTS throughout the system help to compensate for the reactive power flow reduce the losses in power transmission and stabilize system voltages These measures are collectively called reactive support Transposition Edit This section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Current flowing through transmission lines induces a magnetic field that surrounds the lines of each phase and affects the inductance of the surrounding conductors of other phases The conductors mutual inductance is partially dependent on the physical orientation of the lines with respect to each other Three phase lines are conventionally strung with phases separated vertically The mutual inductance seen by a conductor of the phase in the middle of the other two phases is different from the inductance seen on the top bottom Unbalanced inductance among the three conductors is problematic because it may force the middle line to carry a disproportionate amount of the total power transmitted Similarly an unbalanced load may occur if one line is consistently closest to the ground and operates at a lower impedance Because of this phenomenon conductors must be periodically transposed along the line so that each phase sees equal time in each relative position to balance out the mutual inductance seen by all three phases To accomplish this line position is swapped at specially designed transposition towers at regular intervals along the line using various transposition schemes Subtransmission Edit A 115 kV subtransmission line in the Philippines along with 20 kV distribution lines and a street light all mounted on a wood subtransmission pole 115 kV H frame transmission towerThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Subtransmission runs at relatively lower voltages It is uneconomical to connect all distribution substations to the high main transmission voltage because that equipment is larger and more expensive Typically only larger substations connect with this high voltage Voltage is stepped down before the current is sent to smaller substations Subtransmission circuits are usually arranged in loops so that a single line failure does not stop service to many customers for more than a short time Loops can be normally closed where loss of one circuit should result in no interruption or normally open where substations can switch to a backup supply While subtransmission circuits are usually carried on overhead lines in urban areas buried cable may be used The lower voltage subtransmission lines use less right of way and simpler structures undergrounding is less difficult No fixed cutoff separates subtransmission and transmission or subtransmission and distribution Their voltage ranges overlap Voltages of 69 kV 115 kV and 138 kV are often used for subtransmission in North America As power systems evolved voltages formerly used for transmission were used for subtransmission and subtransmission voltages became distribution voltages Like transmission subtransmission moves relatively large amounts of power and like distribution subtransmission covers an area instead of just point to point 29 Transmission grid exit Edit Substation transformers reduce the voltage to a lower level for distribution to loads This distribution is accomplished with a combination of sub transmission 33 to 132 kV and distribution 3 3 to 25 kV Finally at the point of use the energy is transformed to low voltage Advantage of high voltage transmission EditSee also Ideal transformerThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message High voltage power transmission allows for lesser resistive losses over long distances This efficiency delivers a larger proportion of the generated power to the loads Electrical grid without a transformer Electrical grid with a transformer In a simplified model the grid delivers electricity from an ideal voltage source with voltage V displaystyle V delivering a power P V displaystyle P V to a single point of consumption modelled by a resistance R displaystyle R when the wires are long enough to have a significant resistance R C displaystyle R C If the resistances are in series with no intervening transformer the circuit acts as a voltage divider because the same current I V R R C displaystyle I frac V R R C runs through the wire resistance and the powered device As a consequence the useful power at the point of consumption is P R V 2 I V R R R C V R R C R R R C V 2 R R C R R R C P V displaystyle P R V 2 times I V frac R R R C times frac V R R C frac R R R C times frac V 2 R R C frac R R R C P V Should an ideal transformer convert high voltage low current electricity into low voltage high current electricity with a voltage ratio of a displaystyle a i e the voltage is divided by a displaystyle a and the current is multiplied by a displaystyle a in the secondary branch compared to the primary branch then the circuit is again equivalent to a voltage divider but the wires now have apparent resistance of only R C a 2 displaystyle R C a 2 The useful power is then P R V 2 I 2 a 2 R V 2 a 2 R R C 2 a 2 R a 2 R R C P V R R R C a 2 P V displaystyle P R V 2 times I 2 frac a 2 R times V 2 a 2 R R C 2 frac a 2 R a 2 R R C P V frac R R R C a 2 P V For a gt 1 displaystyle a gt 1 i e conversion of high voltage to low voltage near the consumption point a larger fraction of the generator s power is transmitted to the consumption point and a lesser fraction is lost to Joule heating Modeling EditMain article Performance and modelling of AC transmissionThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Black box model for transmission lineThe terminal characteristics of the transmission line are the voltage and current at the sending S and receiving R ends The transmission line can be modeled as a black box and a 2 by 2 transmission matrix is used to model its behavior as follows V S I S A B C D V R I R displaystyle begin bmatrix V mathrm S I mathrm S end bmatrix begin bmatrix A amp B C amp D end bmatrix begin bmatrix V mathrm R I mathrm R end bmatrix The line is assumed to be a reciprocal symmetrical network meaning that the receiving and sending labels can be switched with no consequence The transmission matrix T has the properties det T A D B C 1 displaystyle det T AD BC 1 A D displaystyle A D The parameters A B C and D differ depending on how the desired model handles the line s resistance R inductance L capacitance C and shunt parallel leak conductance G The four main models are the short line approximation the medium line approximation the long line approximation with distributed parameters and the lossless line In such models a capital letter such as R refers to the total quantity summed over the line and a lowercase letter such as c refers to the per unit length quantity Lossless line Edit The lossless line approximation is the least accurate it is typically used on short lines where the inductance is much greater than the resistance For this approximation the voltage and current are identical at the sending and receiving ends Voltage on sending and receiving ends for lossless line The characteristic impedance is pure real which means resistive for that impedance and it is often called surge impedance When a lossless line is terminated by surge impedance the voltage does not drop Though the phase angles of voltage and current are rotated the magnitudes of voltage and current remain constant along the line For load gt SIL the voltage drops from sending end and the line consumes VARs For load lt SIL the voltage increases from the sending end and the line generates VARs Short line Edit The short line approximation is normally used for lines shorter than 80 km 50 mi There only a series impedance Z is considered while C and G are ignored The final result is that A D 1 per unit B Z Ohms and C 0 The associated transition matrix for this approximation is therefore V S I S 1 Z 0 1 V R I R displaystyle begin bmatrix V mathrm S I mathrm S end bmatrix begin bmatrix 1 amp Z 0 amp 1 end bmatrix begin bmatrix V mathrm R I mathrm R end bmatrix Medium line Edit The medium line approximation is used for lines running between 80 and 250 km 50 and 155 mi The series impedance and the shunt current leak conductance are considered placing half of the shunt conductance at each end of the line This circuit is often referred to as a nominal p pi circuit because of the shape p that is taken on when leak conductance is placed on both sides of the circuit diagram The analysis of the medium line produces A D 1 G Z 2 per unit B Z W C G 1 G Z 4 S displaystyle begin aligned A amp D 1 frac GZ 2 text per unit B amp Z Omega C amp G Big 1 frac GZ 4 Big S end aligned Counterintuitive behaviors of medium length transmission lines voltage rise at no load or small current Ferranti effect receiving end current can exceed sending end currentLong line Edit The long line model is used when a higher degree of accuracy is needed or when the line under consideration is more than 250 km 160 mi long Series resistance and shunt conductance are considered to be distributed parameters such that each differential length of the line has a corresponding differential series impedance and shunt admittance The following result can be applied at any point along the transmission line where g displaystyle gamma is the propagation constant A D cosh g x per unit B Z c sinh g x W C 1 Z c sinh g x S displaystyle begin aligned A amp D cosh gamma x text per unit 3mm B amp Z c sinh gamma x Omega 2mm C amp frac 1 Z c sinh gamma x S end aligned To find the voltage and current at the end of the long line x displaystyle x should be replaced with l displaystyle l the line length in all parameters of the transmission matrix This model applies the Telegrapher s equations High voltage direct current EditMain article High voltage direct current High voltage direct current HVDC is used to transmit large amounts of power over long distances or for interconnections between asynchronous grids When electrical energy is transmitted over very long distances the power lost in AC transmission becomes appreciable and it is less expensive to use direct current instead For a long transmission line these lower losses and reduced construction cost of a DC line can offset the cost of the required converter stations at each end HVDC is used for long submarine cables where AC cannot be used because of cable capacitance 30 In these cases special high voltage cables are used Submarine HVDC systems are often used to interconnect the electricity grids of islands for example between Great Britain and continental Europe between Great Britain and Ireland between Tasmania and the Australian mainland between the North and South Islands of New Zealand between New Jersey and New York City and between New Jersey and Long Island Submarine connections up to 600 kilometres 370 mi in length have been deployed 31 HVDC links can be used to control grid problems The power transmitted by an AC line increases as the phase angle between source end voltage and destination ends increases but too large a phase angle allows the systems at either end to fall out of step Since the power flow in a DC link is controlled independently of the phases of the AC networks that it connects this phase angle limit does not exist and a DC link is always able to transfer its full rated power A DC link therefore stabilizes the AC grid at either end since power flow and phase angle can then be controlled independently As an example to adjust the flow of AC power on a hypothetical line between Seattle and Boston would require adjustment of the relative phase of the two regional electrical grids This is an everyday occurrence in AC systems but one that can become disrupted when AC system components fail and place unexpected loads on the grid With an HVDC line instead such an interconnection would Convert AC in Seattle into HVDC Use HVDC for the 3 000 miles 4 800 km of cross country transmission and Convert the HVDC to locally synchronized AC in Boston and possibly in other cooperating cities along the transmission route Such a system could be less prone to failure if parts of it were suddenly shut down One example of a long DC transmission line is the Pacific DC Intertie located in the Western United States Capacity EditThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message The amount of power that can be sent over a transmission line varies with the length of the line The heating of short line conductors due to line losses sets a thermal limit If too much current is drawn conductors may sag too close to the ground or conductors and equipment may overheat For intermediate length lines on the order of 100 kilometres 62 miles the limit is set by the voltage drop in the line For longer AC lines system stability becomes the limiting factor Approximately the power flowing over an AC line is proportional to the cosine of the phase angle of the voltage and current at the ends This angle varies depending on system loading It is undesirable for the angle to approach 90 degrees as the power flowing decreases while resistive losses remain The product of line length and maximum load is approximately proportional to the square of the system voltage Series capacitors or phase shifting transformers are used on long lines to improve stability HVDC lines are restricted only by thermal and voltage drop limits since the phase angle is not material Understanding the temperature distribution along the cable route became possible with the introduction of distributed temperature sensing DTS systems that measure temperatures all along the cable Without them maximum current was typically set as a compromise between understanding of operation conditions and risk minimization This monitoring solution uses passive optical fibers as temperature sensors either inside a high voltage cable or externally mounted on the cable insulation For overhead cables the fiber is integrated into the core of a phase wire The integrated Dynamic Cable Rating DCR Real Time Thermal Rating RTTR solution makes it possible to run the network to its maximum It allows the operator to predict the behavior of the transmission system to reflect major changes to its initial operating conditions Control EditThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message To ensure safe and predictable operation system components are controlled with generators switches circuit breakers and loads The voltage power frequency load factor and reliability capabilities of the transmission system are designed to provide cost effective performance Load balancing Edit The transmission system provides for base load and peak load capability with margins for safety and fault tolerance Peak load times vary by region largely due to the industry mix In hot and cold climates home air conditioning and heating loads affect the overall load They are typically highest in the late afternoon in the hottest part of the year and in mid mornings and mid evenings in the coldest part of the year Power requirements vary by season and time of day Distribution system designs always take the base load and the peak load into consideration The transmission system usually does not have a large buffering capability to match loads with generation Thus generation has to be kept matched to the load to prevent overloading generation equipment Multiple sources and loads can be connected to the transmission system and they must be controlled to provide orderly transfer of power In centralized power generation only local control of generation is necessary This involves synchronization of the generation units In distributed power generation the generators are geographically distributed and the process to bring them online and offline must be carefully controlled The load control signals can either be sent on separate lines or on the power lines themselves Voltage and frequency can be used as signaling mechanisms to balance the loads In voltage signaling voltage is varied to increase generation The power added by any system increases as the line voltage decreases This arrangement is stable in principle Voltage based regulation is complex to use in mesh networks since the individual components and setpoints would need to be reconfigured every time a new generator is added to the mesh In frequency signaling the generating units match the frequency of the power transmission system In droop speed control if the frequency decreases the power is increased The drop in line frequency is an indication that the increased load is causing the generators to slow down Wind turbines vehicle to grid virtual power plants and other locally distributed storage and generation systems can interact with the grid to improve system operation Internationally a slow move from a centralized to decentralized power system has taken place The main draw of locally distributed generation systems is that they reduce transmission losses by leading to consumption of electricity closer to where it was produced 32 Failure protection Edit Under excess load conditions the system can be designed to fail incrementally rather than all at once Brownouts occur when power supplied drops below the demand Blackouts occur when the grid fails completely Rolling blackouts also called load shedding are intentionally engineered electrical power outages used to distribute insufficient power to various loads in turn Communications EditThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Grid operators require reliable communications to manage the grid and associated generation and distribution facilities Fault sensing protective relays at each end of the line must communicate to monitor the flow of power so that faulted conductors or equipment can be quickly de energized and the balance of the system restored Protection of the transmission line from short circuits and other faults is usually so critical that common carrier telecommunications are insufficiently reliable while in some remote areas no common carrier is available Communication systems associated with a transmission project may use Microwaves Power line communication Optical fibersRarely and for short distances pilot wires are strung along the transmission line path Leased circuits from common carriers are not preferred since availability is not under control of the operator Transmission lines can be used to carry data this is called power line carrier or power line communication PLC PLC signals can be easily received with a radio in the long wave range High voltage pylons carrying additional optical fibre cable in Kenya Optical fibers can be included in the stranded conductors of a transmission line in the overhead shield wires These cables are known as optical ground wire OPGW Sometimes a standalone cable is used all dielectric self supporting ADSS cable attached to the transmission line cross arms Some jurisdictions such as Minnesota prohibit energy transmission companies from selling surplus communication bandwidth or acting as a telecommunications common carrier Where the regulatory structure permits the utility can sell capacity in extra dark fibers to a common carrier Market structure EditMain article Electricity market Electricity transmission is generally considered to be a natural monopoly but one that is not inherently linked to generation 33 34 35 Many countries regulate transmission separately from generation Spain was the first country to establish a regional transmission organization In that country transmission operations and electricity markets are separate The transmission system operator is Red Electrica de Espana REE and the wholesale electricity market operator is Operador del Mercado Iberico de Energia Polo Espanol S A OMEL OMEL Holding Omel Holding Spain s transmission system is interconnected with those of France Portugal and Morocco The establishment of RTOs in the United States was spurred by the FERC s Order 888 Promoting Wholesale Competition Through Open Access Non discriminatory Transmission Services by Public Utilities Recovery of Stranded Costs by Public Utilities and Transmitting Utilities issued in 1996 36 In the United States and parts of Canada electric transmission companies operate independently of generation companies but in the Southern United States vertical integration is intact In regions of separation transmission owners and generation owners continue to interact with each other as market participants with voting rights within their RTO RTOs in the United States are regulated by the Federal Energy Regulatory Commission Merchant transmission projects in the United States include the Cross Sound Cable from Shoreham New York to New Haven Connecticut Neptune RTS Transmission Line from Sayreville New Jersey to New Bridge New York and Path 15 in California Additional projects are in development or have been proposed throughout the United States including the Lake Erie Connector an underwater transmission line proposed by ITC Holdings Corp connecting Ontario to load serving entities in the PJM Interconnection region 37 Australia has one unregulated or market interconnector Basslink between Tasmania and Victoria Two DC links originally implemented as market interconnectors Directlink and Murraylink were converted to regulated interconnectors 38 A major barrier to wider adoption of merchant transmission is the difficulty in identifying who benefits from the facility so that the beneficiaries pay the toll Also it is difficult for a merchant transmission line to compete when the alternative transmission lines are subsidized by utilities with a monopolized and regulated rate base 39 In the United States the FERC s Order 1000 issued in 2010 attempted to reduce barriers to third party investment and creation of merchant transmission lines where a public policy need is found 40 Transmission costs EditThe cost of high voltage transmission is comparatively low compared to all other costs constituting consumer electricity bills In the UK transmission costs are about 0 2 p per kWh compared to a delivered domestic price of around 10 p per kWh 41 The level of capital expenditure in the electric power T amp D equipment market was estimated to be 128 9 bn in 2011 42 Health concerns EditMain article Electromagnetic radiation and health Mainstream scientific evidence suggests that low power low frequency electromagnetic radiation associated with household currents and high transmission power lines does not constitute a short or long term health hazard Some studies failed to find any link between living near power lines and developing any sickness or diseases such as cancer A 1997 study reported no increased risk of cancer or illness from living near a transmission line 43 Other studies however reported statistical correlations between various diseases and living or working near power lines No adverse health effects have been substantiated for people not living close to power lines 44 The New York State Public Service Commission conducted a study 45 to evaluate potential health effects of electric fields The study measured the electric field strength at the edge of an existing right of way on a 765 kV transmission line The field strength was 1 6 kV m and became the interim maximum strength standard for new transmission lines in New York State The opinion also limited the voltage of new transmission lines built in New York to 345 kV On September 11 1990 after a similar study of magnetic field strengths the NYSPSC issued their Interim Policy Statement on Magnetic Fields This policy established a magnetic field standard of 200 mG at the edge of the right of way using the winter normal conductor rating As a comparison with everyday items a hair dryer or electric blanket produces a 100 mG 500 mG magnetic field 46 47 Applications for a new transmission line typically include an analysis of electric and magnetic field levels at the edge of rights of way Public utility commissions typically do not comment on health impacts Biological effects have been established for acute high level exposure to magnetic fields above 100 µT 1 G 1 000 mG In a residential setting one study reported limited evidence of carcinogenicity in humans and less than sufficient evidence for carcinogenicity in experimental animals in particular childhood leukemia associated with average exposure to residential power frequency magnetic field above 0 3 µT 3 mG to 0 4 µT 4 mG These levels exceed average residential power frequency magnetic fields in homes which are about 0 07 µT 0 7 mG in Europe and 0 11 µT 1 1 mG in North America 48 49 The Earth s natural geomagnetic field strength varies over the surface of the planet between 0 035 mT and 0 07 mT 35 µT 70 µT or 350 mG 700 mG while the international standard for continuous exposure is set at 40 mT 400 000 mG or 400 G for the general public 48 Tree growth regulators and herbicides may be used in transmission line right of ways 50 which may have health effects Policy by country EditThe examples and perspective in this article may not represent a worldwide view of the subject You may improve this article discuss the issue on the talk page or create a new article as appropriate August 2022 Learn how and when to remove this template message United States Edit The Federal Energy Regulatory Commission FERC is the primary regulatory agency of electric power transmission and wholesale electricity sales within the United States FERC was originally established by Congress in 1920 as the Federal Power Commission and has since undergone multiple name and responsibility modifications Electric power distribution and the retail sale of power is under state jurisdiction Order No 888 Edit Order No 888 was adopted by FERC on April 24 1996 It was designed to remove impediments to competition in the wholesale bulk power marketplace and to bring more efficient lower cost power to the Nation s electricity consumers The legal and policy cornerstone of these rules is to remedy undue discrimination in access to the monopoly owned transmission wires that control whether and to whom electricity can be transported in interstate commerce 51 The Order required all public utilities that own control or operate facilities used for transmitting electric energy in interstate commerce to have open access non discriminatory transmission tariffs These tariffs allow any electricity generator to utilize existing power lines to transmit the power that they generate The Order also permits public utilities to recover the costs associated with providing their power lines as an open access service 51 52 Energy Policy Act of 2005 Edit The Energy Policy Act of 2005 EPAct expanded federal authority to regulate power transmission EPAct gave FERC significant new responsibilities including enforcement of electric transmission reliability standards and the establishment of rate incentives to encourage investment in electricity transmission 53 Historically local governments exercised authority over the grid and maintained significant disincentives to actions that would benefit states other than their own Localities with cheap electricity have a disincentive to encourage making interstate commerce in electricity trading easier since other regions would be able to compete for that energy and drive up rates For example some regulators in Maine refused to address congestion problems because the congestion protects Maine rates 54 Local constituencies can block or slow permitting by pointing to visual impacts environmental and health concerns In the US generation is growing four times faster than transmission but transmission upgrades require the coordination of multiple jurisdictions complex permitting and cooperation between a significant portion of the many companies that collectively own the grid The US national security interest in improving transmission was reflected in the EPAct which gave the Department of Energy the authority to approve transmission if states refused to act 55 Specialized transmission EditGrids for railways Edit Main article Traction power network In some countries where electric locomotives or electric multiple units run on low frequency AC power separate single phase traction power networks are operated by the railways Prime examples are countries such as Austria Germany and Switzerland that utilize AC technology based on 16 2 3 Hz Norway and Sweden also use this frequency but use conversion from the 50 Hz public supply Sweden has a 16 2 3 Hz traction grid but only for part of the system Superconducting cables Edit High temperature superconductors HTS promise to revolutionize power distribution by providing lossless transmission The development of superconductors with transition temperatures higher than the boiling point of liquid nitrogen has made the concept of superconducting power lines commercially feasible at least for high load applications 56 It has been estimated that waste would be halved using this method since the necessary refrigeration equipment would consume about half the power saved by the elimination of resistive losses Companies such as Consolidated Edison and American Superconductor began commercial production of such systems in 2007 57 Superconducting cables are particularly suited to high load density areas such as the business district of large cities where purchase of an easement for cables is costly 58 HTS transmission lines 59 Location Length km Voltage kV Capacity GW DateCarrollton Georgia 2000Albany New York 60 0 35 34 5 0 048 2006Holbrook Long Island 61 0 6 138 0 574 2008Tres Amigas 5 Proposed 2013Manhattan Project Hydra Proposed 2014Essen Germany 62 63 1 10 0 04 2014Single wire earth return Edit Main article Single wire earth returnThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Single wire earth return SWER or single wire ground return is a single wire transmission line for supplying single phase electrical power to remote areas at low cost It is principally used for rural electrification but also finds use for larger isolated loads such as water pumps Single wire earth return is also used for HVDC over submarine power cables Wireless power transmission Edit Main article Wireless power transferThis section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed November 2022 Learn how and when to remove this template message Both Nikola Tesla and Hidetsugu Yagi attempted to devise systems for large scale wireless power transmission in the late 1800s and early 1900s without commercial success In November 2009 LaserMotive won the NASA 2009 Power Beaming Challenge by powering a cable climber 1 km vertically using a ground based laser transmitter The system produced up to 1 kW of power at the receiver end In August 2010 NASA contracted with private companies to pursue the design of laser power beaming systems to power low earth orbit satellites and to launch rockets using laser power beams Wireless power transmission has been studied for transmission of power from solar power satellites to the earth A high power array of microwave or laser transmitters would beam power to a rectenna Major engineering and economic challenges face any solar power satellite project Security EditThe examples and perspective in this article may not represent a worldwide view of the subject You may improve this article discuss the issue on the talk page or create a new article as appropriate March 2013 Learn how and when to remove this template message The Federal government of the United States stated that the power grid is susceptible to cyber warfare 64 65 The United States Department of Homeland Security works with industry to identify vulnerabilities and to help industry enhance the security of control system networks 66 In June 2019 Russia conceded that it was possible its electrical grid is under cyber attack by the United States 67 The New York Times reported that American hackers from the United States Cyber Command planted malware potentially capable of disrupting the Russian electrical grid 68 Records EditHighest capacity system 12 GW Zhundong Wannan 准东 皖南 1100 kV HVDC 69 70 Highest transmission voltage AC planned 1 20 MV Ultra High Voltage on Wardha Aurangabad line India under construction Initially will operate at 400 kV 71 worldwide 1 15 MV Ultra High Voltage on Ekibastuz Kokshetau line Kazakhstan Largest double circuit transmission Kita Iwaki Powerline Japan Highest towers Yangtze River Crossing China height 345 m or 1 132 ft Longest power line Inga Shaba Democratic Republic of Congo length 1 700 kilometres or 1 056 miles Longest span of power line 5 376 m 17 638 ft at Ameralik Span Greenland Denmark Longest submarine cables North Sea Link Norway United Kingdom length of submarine cable 720 kilometres or 447 miles NorNed North Sea Norway Netherlands length of submarine cable 580 kilometres or 360 miles Basslink Bass Strait Australia length of submarine cable 290 kilometres or 180 miles total length 370 1 kilometres or 230 miles Baltic Cable Baltic Sea Germany Sweden length of submarine cable 238 kilometres or 148 miles HVDC length 250 kilometres or 155 miles total length 262 kilometres or 163 miles Longest underground cables Murraylink Riverland Sunraysia Australia length of underground cable 170 kilometres or 106 miles See also Edit Energy portalDynamic demand electric power Demand response List of energy storage power plants Traction power network Backfeeding Conductor marking lights Double circuit transmission line Electromagnetic Transients Program EMTP Flexible AC transmission system FACTS Geomagnetically induced current GIC Grid tied electrical system List of high voltage underground and submarine cables Load profile National Grid disambiguation Power line communications PLC Power system simulation Radio frequency power transmission Wheeling electric power transmission References Edit A Primer on Electric Utilities Deregulation and Restructuring of U S Electricity Markets PDF United States Department of Energy Federal Energy Management Program FEMP May 2002 Archived PDF from the original on October 9 2022 Retrieved October 30 2018 Hans Dieter Betz Ulrich Schumann Pierre Laroche 2009 Lightning Principles Instruments and Applications Springer pp 202 203 ISBN 978 1 4020 9078 3 Retrieved on 13 May 2009 Banerjee Neela September 16 2001 AFTER THE ATTACKS THE WORKERS Con Edison Crews Improvise as They Rewire a Truncated System The New York Times INVESTIGATION OF THE SEPTEMBER 2013 ELECTRIC OUTAGE OF A PORTION OF METRO NORTH RAILROAD S NEW HAVEN LINE documents dps ny gov 2014 Retrieved December 29 2019 NYSPSC case no 13 E 0529 a b Thomas P 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Power Lines and Cancer Archived April 17 2011 at the Wayback Machine The Health Report ABC Science Broadcast on 7 June 1997 Australian Broadcasting Corporation WHO Electromagnetic fields and public health December 24 2007 Archived from the original on December 24 2007 Retrieved November 14 2022 Opinion No 78 13 issued June 19 1978 EMF Report for the CHPE TRC March 2010 pp 1 4 Retrieved November 9 2018 Electric and Magnetic Field Strengths PDF Transpower New Zealand Ltd p 2 Archived PDF from the original on October 9 2022 Retrieved November 9 2018 a b Electromagnetic fields and public health Fact sheet No 322 World Health Organization June 2007 Archived from the original on July 1 2007 Retrieved January 23 2008 Electric and Magnetic Fields Associated with the Use of Power PDF National Institute of Environmental Health Sciences June 2002 Archived PDF from the original on October 9 2022 Retrieved January 29 2008 Transmission Vegetation Management NERC Standard FAC 003 2 Technical Reference Page 14 50 PDF nerc com Archived PDF from the original on October 9 2022 a b Order No 888 United States of America Federal Energy Regulatory Commission Order No 888 FERC Promoting Wholesale Competition Through Open Access Non discriminatory Transmission Services by Public Utilities Recovery of Stranded Costs by Public Utilities and Transmitting Utilities Archived from the original on December 19 2016 Retrieved December 7 2016 Energy Policy Act of 2005 Fact Sheet PDF FERC Washington D C August 8 2006 Archived from the original PDF on December 20 2016 Retrieved December 7 2016 Brown Matthew H Sedano Richard P 2004 Electricity transmission a primer PDF Denver Colorado National Council on Electricity Policy p 32 page 41 in pdf ISBN 1 58024 352 5 Archived from the original PDF on July 30 2009 Retrieved May 29 2022 Wald Matthew August 27 2008 Wind Energy Bumps into Power Grid s Limits The New York Times A1 Retrieved December 12 2008 Jacob Oestergaard et al 2001 Energy losses of superconducting power transmission cables in the grid PDF IEEE Transactions on Applied Superconductivity 11 1 2375 Bibcode 2001ITAS 11 2375O doi 10 1109 77 920339 S2CID 55086502 Archived PDF from the original on October 9 2022 New Scientist and Reuters May 22 2007 Superconducting power line to shore up New York grid New Scientist Superconducting cables will be used to supply electricity to consumers Archived from the original on July 14 2014 Retrieved June 12 2014 Superconductivity s First Century Archived from the original on August 12 2012 Retrieved August 9 2012 HTS Transmission Cable www superpower inc com IBM100 High Temperature Superconductors www 03 ibm com August 10 2017 Patel 03 01 2012 Sonal March 1 2012 High Temperature Superconductor Technology Stepped Up POWER Magazine Operation of longest superconducting cable worldwide started phys org Shiels Maggie April 9 2009 Spies infiltrate US power grid BBC News Hackers reportedly have embedded code in power grid CNN April 9 2009 Holland Steve Mikkelsen Randall April 8 2009 UPDATE 2 US concerned power grid vulnerable to cyber attack Reuters US and Russia clash over power grid hack attacks BBC News June 18 2019 Greenberg Andy June 18 2019 How Not To Prevent a Cyberwar With Russia Wired Development of UHV Transmission and Insulation Technology in China PDF Archived PDF from the original on October 9 2022 准东 皖南 1100千伏特高压直流输电工程竣工投运 xj xinhuanet com Archived from the original on September 30 2019 India Steps It Up Transmission amp Distribution World January 2013 Further reading EditGrigsby L L et al The Electric Power Engineering Handbook USA CRC Press 2001 ISBN 0 8493 8578 4 Hughes Thomas P Networks of Power Electrification in Western Society 1880 1930 The Johns Hopkins University Press Baltimore 1983 ISBN 0 8018 2873 2 an excellent overview of development during the first 50 years of commercial electric power Reilly Helen 2008 Connecting the Country New Zealand s National Grid 1886 2007 Wellington Steele Roberts pp 376 pages ISBN 978 1 877448 40 9 Pansini Anthony J E E P E undergrounding electric lines USA Hayden Book Co 1978 ISBN 0 8104 0827 9 Westinghouse Electric Corporation Electric power transmission patents Tesla polyphase system Transmission of power polyphase system Tesla patents Wikimedia Commons has media related to Electric power transmission Look up grid electricity in Wiktionary the free dictionary Retrieved from https en wikipedia org w index php title Electric power transmission amp oldid 1153864632, wikipedia, wiki, book, books, library,

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