Power System

The power system addresses the challenge of detecting ground fault overvoltage states during power failures by using a capacitor device to maintain power supply to the ground fault overvoltage relay, ensuring continuous detection and preventing system failures.

JP7675411B2Active Publication Date: 2025-05-13ELECTRIC POWER CO LTD
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Patent Information

Application Number
JP2023000293
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-01-04
Publication Date
2025-05-13
Estimated Expiration
2043-01-04

AI Technical Summary

Technical Problem

Existing power systems fail to detect a ground fault overvoltage state during a power failure, as the power supply to the ground fault overvoltage relay is interrupted, preventing the output of an abnormality detection signal.

Method used

A power system that includes a capacitor device to supply power to the ground fault overvoltage relay during a power outage, ensuring continuous operation and detection of ground fault overvoltage states even during power failures.

Benefits of technology

Enables the detection of ground fault overvoltage states during power outages, preventing system failures and ensuring reliable operation by maintaining power supply to the ground fault overvoltage relay.

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Abstract

To realize "detection of a ground over-voltage state during blackout" or the like by providing a capacitor device for feeding power supply power to a ground over-voltage relay part during the blackout.SOLUTION: A power system 1 having a power generation part 2, a converter 3, a transformer 4, and a system connection part 5, has a capacitor device 9 for feeding power supply power during blackout to a ground over-voltage relay part 8 for detecting a ground over-voltage state based on a zero-phase output current Z from a zero-phase voltage detector 7. Further, the power system may have a reverse power relay part 12 for detecting a reverse power generation state based on a transformed voltage output current S from a meter transformer 10 and a sensor output current B from a sensor current transformer 11, may stop the conversion of the converter 3 when the ground over-voltage relay part 8 detects the ground over-voltage state and when the reverse power relay part 12 detects the reverse power generation state, and may allow the inside one device housing 14 to be provided with the ground over-voltage relay part 8, the reverse power relay part 12a, and a calculation part 13 for calculating power or the like of a high-voltage electric path 6H.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present invention relates to an electric power system having a power generation unit, a conversion unit, a transformer, and a grid connection unit. [Background technology]

[0002] 2. Description of the Related Art Conventionally, there is known a system for remotely controlling a power conditioner used in a power generation system including a power conditioner that enables electric power generated by a power generation source to be connected to a commercial grid (see Patent Document 1). This system comprises a monitoring device that monitors the status of the power generation system, a remote operation auxiliary device connected to the monitoring device and the power conditioner in a manner that allows sequence control, a control means connected to the monitoring device and controlling the status of the power conditioner, and a first detection unit that is disposed in the power conditioner and is capable of detecting a first abnormality on the commercial grid side, and the control means transmits an operation signal that is different from the abnormality detection signal of the first abnormality to the first detection unit via the monitoring device and the remote operation auxiliary device, and by sequence control, there are cases in which the power conditioner is changed from an operating state to a stopped state, and cases in which the power conditioner is changed from a stopped state to an operating state. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2020-182259 A Summary of the Invention [Problem to be solved by the invention]

[0004] However, in the system described in Patent Document 1, the first abnormality is an earth fault overvoltage, and the first detection unit is capable of receiving the abnormality detection signal from the earth fault overvoltage relay. However, in an actual system (grid), power outages can occur in addition to earth faults. Therefore, when an earth fault and a power outage occur, the power supply to the earth fault overvoltage relay is also stopped at the same time, so that there is a problem that the abnormality detection signal cannot be output from the earth fault overvoltage relay.

[0005] In consideration of these points, the present invention aims to provide a power system that can achieve, for example, "detection of an earth fault overvoltage state during a power outage" by providing a capacitor device that supplies power source power to an earth fault overvoltage relay unit during a power outage. [Means for solving the problem]

[0006] The power system 1 according to the present invention is a power system having a power generation unit 2, a conversion unit 3 that converts a DC current or an AC current from the power generation unit 2 into a low-voltage AC current L, a transformer 4 that transforms the low-voltage AC current L from the conversion unit 3 into a higher voltage AC current H, and a system connection unit 5 that connects the transformer 4 to a system K. The system connection unit 5 has a high-voltage circuit 6H that connects between the transformer 4 and the system K and passes a high-voltage AC current H, a zero-phase voltage detector 7 provided in the high-voltage circuit 6H, an earth fault overvoltage relay unit 8 that is connected to a zero-phase output circuit 6Z that passes a zero-phase output current Z from the zero-phase voltage detector 7 and detects an earth fault overvoltage state based on the zero-phase output current Z, and a capacitor device 9 that is connected to a capacitor output circuit 6D that supplies power from a power source to the earth fault overvoltage relay unit 8 and supplies power from a power source to the earth fault overvoltage relay unit 8 during a power outage. The system connection unit 5 has a voltage transformer 10 that is provided in the high-voltage circuit 6H and transforms a high-voltage AC current H flowing in the high-voltage circuit 6H into a lower-voltage transformer output current S, and the capacitor device 9 is charged with electricity from the voltage transformer 10 via a capacitor input circuit 6D' branched from a transformer output circuit 6S through which the transformer output current S from the voltage transformer 10 flows. The first feature of this system is that

[0007] The second feature of the power system 1 according to the present invention is that, in addition to the first feature, the grid connection unit 5 ,beforea sensor current transformer 11 provided in the high-voltage circuit 6H and outputting a sensor output current B of a smaller current from the high-voltage AC current H flowing in the high-voltage circuit 6H; and a reverse power relay 12 connected to a transformer output circuit 6S through which a transformer output current S from the instrument transformer 10 flows and a sensor output circuit 6B through which a sensor output current B from the sensor current transformer 11 flows, and detecting a reverse power generation state based on the transformer output current S and the sensor output current B. and an instrument current transformer 11a that is provided in the high-voltage power supply circuit 6H and transforms a high-voltage AC current H flowing through the high-voltage power supply circuit 6H into a smaller current transformer output current R. Have The current transformer output circuit 6R through which the current transformer output current R from the instrument current transformer 11a flows is a single-phase two-wire circuit, and the sensor current transformer 11 is provided for each of the two wires of the current transformer output circuit 6R which is a single-phase two-wire circuit. The point is that...

[0008] The third feature of the power system 1 according to the present invention is , No. When the reverse power relay unit 12 in the power system according to the second aspect detects a reverse power generation state, the conversion unit 3 is stopped via a signal to the conversion unit 3. (Excluding disconnection of converter (3)) The point is to make it so. In addition, when the earth fault overvoltage relay unit 8 in the power system of the first feature detects an earth fault overvoltage condition, the power system 1 may stop the conversion of the conversion unit 3 via a signal to the conversion unit 3.

[0009] A fourth feature of the power system 1 according to the present invention is that, in addition to the second feature, the earth fault overvoltage relay unit 8, the reverse power relay unit 12, and a calculation unit 13 that calculates at least the power in the high voltage line 6H based on the transformer output current S and the sensor output current B are provided in a single device housing 14. The reverse power relay unit 12 and the instrument transformer 10 are connected via the calculation unit 13, and the reverse power relay unit 12 and the sensor current transformer 11 are also connected via the calculation unit 13. The point is that...

[0010] Due to these features, by having a capacitor device 9 that supplies power from the power source during a power outage to the earth fault overvoltage relay unit 8, which detects an earth fault overvoltage condition based on the zero-phase output current Z from the zero-phase voltage detector 7, unlike Patent Document 1, even if a power outage occurs along with an earth fault, the power supply to the earth fault overvoltage relay unit 8 does not stop and a signal can be output from the earth fault overvoltage relay unit, making it possible to detect an earth fault overvoltage condition even during a power outage.

[0011] In addition, by having a reverse power relay unit 12 that detects a reverse power generation state based on the transformer output current S from the instrument transformer 10 and the sensor output current B from the sensor current transformer 11, it is possible to prevent or reduce the power generated in the power generation unit 2 from flowing back into the system K via the conversion unit 3, the transformer 4, and the system connection unit 5.

[0012] Furthermore, when the earth fault overvoltage relay unit 8 detects an earth fault overvoltage state or when the reverse power relay unit 12 detects a reverse power generation state, the conversion of the conversion unit 3 is stopped via a signal to the conversion unit 3, thereby preventing the power generated by the power generation unit 2 via the conversion unit 3 from flowing back to the grid K. In addition, when the conversion of the conversion unit 3 is stopped, it is not necessary to adjust the output from the conversion unit 3 to the voltage and phase, etc. of the grid K when resuming the conversion stop, so it can be said that the power system 1 can be restored in a shorter time and with less hassle than if any of the electrical paths from the conversion unit 3 to the grid K are cut off.

[0013] Furthermore, by arranging the earth fault overvoltage relay unit 8, the reverse power relay unit 12, and the calculation unit 13 that calculates the power of the high-voltage circuit 6H, etc., within a single device housing 14, "space saving" is achieved by the amount of space provided within the single device housing 14, and sufficient space can be secured for installing other equipment. Additionally, when the relay unit and calculation unit are separate devices, the minute errors that occur in each unit are different, so that malfunctions such as the relay unit detecting a reverse power generation state on its own will not occur, and malfunctions can be reduced. Effect of the Invention

[0014] According to the power system of the present invention, by providing a capacitor device that supplies power from a power source to the ground fault overvoltage relay unit during a power outage, it is possible to realize "detection of an earth fault overvoltage state during a power outage" and the like. [Brief description of the drawings]

[0015] [Figure 1] 1 is a schematic diagram showing a power system according to the present invention; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0016] Hereinafter, an embodiment of the present invention will be described with reference to the drawings. <Overall configuration of power system 1> As shown in FIG. 1, the power system 1 according to the present invention has a power generation unit 2, a conversion unit 3, a transformer 4, and a system connection unit 5, which are described later. The system connection unit 5 has a high-voltage circuit 6H, a zero-phase voltage detector 7, a zero-phase output circuit 6Z, an earth fault overvoltage relay unit 8, a capacitor output circuit 6D, and a capacitor device 9, which are described later. The power system 1 may include, within the system connection unit 5, an instrument transformer 10, a sensor current transformer 11, a transformer output electric circuit 6S, a sensor output electric circuit 6B, and a reverse power relay unit 12, which will be described later. The power system 1 may include, in the grid connection unit 5, a calculation unit 13 and an equipment housing 14, which will be described later.

[0017] Furthermore, the power system 1 may include a power breaker 21, loads 22 (power loads 22a and lighting loads 22b), a load transformer 23, and a load breaker 24, which will be described later. In addition, the power system 1 may have a voltage and current transformer (VCT) 31a in the electric circuit (high voltage circuit 6H) between the system connection unit 5 and the system K, and may also have a power purchase watt-hour meter, a power selling watt-hour meter, pole air switches (PAS), and a protective relay device (Storage Over Current Ground (SOG)) attached to the pole air switches, which are not shown. Also, the pole air switches may have a separate built-in voltage transformer, zero-phase voltage detector, and lightning arrester. The trading transformer 31a, the power purchase watt-hour meter, the power sale watt-hour meter, the pole-mounted air switch, and the protective relay device may be included in the system on the system K side (the power company side) described later.

[0018] Here, the current, voltage, power, and capacity in the present invention may be values ​​within a rated range, and in this case, they can be called rated current, rated voltage, rated power, and rated capacity. These rated currents, etc. can also be said to be limit values ​​of current, etc. guaranteed by manufacturers for the safe use of electrical products, and further, ratings can be said to be usage limits or conditions for devices or equipment that guarantee safe and proper operation. When the current in the present invention is an alternating current, the current value (current value), voltage value (voltage value), power value (power value), and capacity value (capacity value) may be effective values. In addition, the "electrical circuit" in the present invention is something that carries electricity (current), and includes conductors such as copper, aluminum, silver, gold, and nichrome, cables in which such conductors are covered with insulation, and general electric wires.

[0019] <Power Generation Unit 2> As shown in FIG. 1, the power generation unit 2 is the part that generates electricity and may have any configuration, such as solar power generation, wind power generation, hydroelectric power generation, geothermal power generation, solar thermal power generation, power generation using heat in the atmosphere or other heat present in nature, or power generation using biomass (organic matter derived from plants and animals that can be used as an energy source). Additionally, the power generating unit 2 may generate power by utilizing ocean temperature difference, wave power, tidal currents (ocean currents), or tides.

[0020] The number of power generation units 2 in one power system 1 is not particularly limited, and may be, for example, one or more. The power generation capacity (capacity) of the power generation section 2 is not particularly limited, and may be, for example, 100 kW or more and 30,000 kW or less, preferably 300 kW or more and 20,000 kW or less, and more preferably 500 kW or more and 10,000 kW or less. The following will particularly describe the solar power generation unit 2 that generates solar power.

[0021] The solar power generation unit 2 includes a solar cell 2a. In addition, the solar power generation unit 2 may include an actinometer that measures solar radiation intensity, a current collector that collects direct current from the solar cells 2a, a connection box, etc., and sends it to the conversion unit 3 described below. The solar cell 2a in the solar power generation unit 2 may be multiple, and the multiple solar cells 2a may be connected in series to form a solar cell string. The solar power generation unit 2 may have a junction box in which a plurality of solar cell strings are connected in parallel, and there may be a plurality of such junction boxes.

[0022] <Solar cell 2a> As shown in Figure 1, each solar cell 2a generates DC power between the positive and negative poles when exposed to light. The solar cell 2a is usually in the form of a panel, and the amount of power it generates varies depending on the angle at which it is installed. The solar cell 2a may be installed at a predetermined angle relative to the installation location via a stand (not shown) or the like. In this case, the area under the stand may be used as a grass growing area or a cultivated land for agricultural crops. Furthermore, among the multiple solar cells 2a, the + terminal of one solar cell 2a is connected to the - terminal of another solar cell 2a, and the + terminal of another solar cell 2a is connected to the - terminal of yet another solar cell 2a, and this is repeated to connect the multiple solar cells 2a in series to form a solar cell string.

[0023] In this way, the voltage between the + and - poles of the entire solar cell string in which multiple solar cells 2a are connected in series is the sum of the DC voltages generated by each solar cell 2a, and varies depending on the weather, time, etc. The power output from the power output terminal of the solar cell string is the sum of the power of each solar cell 2a, and may be 500W or more and 6000W or less. The above-mentioned multiple solar cell strings are connected in parallel to one junction box, so the voltage between the positive and negative poles of each solar cell string is the same. However, currents from a plurality of solar cell strings may flow into one junction box, and the power collected in the junction box may be 2.5 kW or more and 90 kW or less.

[0024] <Conversion section 3> As shown in FIG. 1, the conversion unit 3 is a part that converts the DC current or AC current from the power generation unit 2 described above into a low-voltage AC current L. The conversion unit 3 may include an inverter that converts the direct current from the solar cell 2a into alternating current, and may also include a controller that controls the voltage and frequency of the alternating current converted by the inverter, an air circuit breaker (ACB), etc. The conversion unit 3 is also called a power conditioner (PAWCON). The number of conversion units 3 in one power system 1 is not particularly limited, and may be, for example, a plurality (for example, four or five) or just one.

[0025] The conversion power (capacity) that can be converted by the conversion unit 3 is not particularly limited, and may be, for example, 30 kW or more and 10,000 kW or less, preferably 50 kW or more and 5,000 kW or less, and more preferably 100 kW or more and 2,000 kW or less (250 kW, 500 kW, etc.). Furthermore, the conversion power of the conversion unit 3 may be smaller than the power generation power of the above-mentioned solar power generation unit 2 (in other words, the power generation power may be greater than the conversion power), in which case it can be said that the solar cell 2a is overloaded with respect to the conversion unit 3. In addition, the conversion unit 3 may have an undervoltage relay (UVR), an overvoltage relay (OVR), an underfrequency relay (UFR), an overfrequency relay (OFR), or may have a passive or active islanding protection device.

[0026] <Transformer 4> As shown in Fig. 1, the transformer 4 is a device that transforms (boosts) the low voltage AC L from the conversion unit 3 described above into a higher voltage AC H, and is a so-called transformer. Note that "transformer" is an abbreviation for "transformer." Note that the transformer 4 can also be said to be a power generation transformer, since it transforms the current from the power generation unit 2 via the conversion unit 3. The number of transformers 4 in one power system 1 is not particularly limited, and may be, for example, a plurality (eg, two) or one. Also, it can be said that the transformer 4 is connected between the system K (high-voltage line 6H side) and the conversion unit 3 (low-voltage line 6L side) in the power system 1 described later. The capacity of transformer 4 (unit: VA, continuous rating) is not particularly limited, but may be, for example, 50 kVA or more and 2000 kVA or less, preferably 100 kVA or more and 1500 kVA or less, and more preferably 200 kVA or more and 1000 kVA or less (300 kVA, 500 kVA, etc.).

[0027] The configuration of the transformer 4 is not limited, and it may be, for example, a two-winding transformer, a three-winding transformer, or a transformer with four or more windings. Hereinafter, transformer 4 will be primarily described as being a two-winding transformer. The transformer 4, which is a two-winding transformer, may have, for example, a primary side on the high-voltage circuit 6H side and a secondary side on the low-voltage circuit 6L side. In this case, there are no particular restrictions on the specific values, but for example, the voltage of the primary side on the high-voltage circuit 6H side may be 5000V or more and 40000V or less, preferably 5500V or more and 30000V or less, and more preferably 6000V or more and 25000V or less (6600V or 22000V, etc.), and the voltage of the secondary side on the low-voltage circuit 6L side may be 10V or more and 1000V or less, preferably 50V or more and 800V or less, and more preferably 100V or more and 600V or less (210V, 105V to 210V, etc.).

[0028] There are no particular restrictions on the wiring method for the primary and secondary sides of the transformer 4, but for example, the primary side on the high-voltage circuit 6H side may be star-connected (Y-connected) and the secondary side on the low-voltage circuit 6L side may be triangular-connected (Δ-connected) (i.e., Y-Δ connection), or the order of the primary and secondary sides may be YY connection, Δ-Y connection, or Δ-Δ connection. Transformer 4 may be an oil-immersed transformer (self-cooled, air-cooled, water-cooled, etc.) or a dry-type transformer (self-cooled, air-cooled, water-cooled, etc.), and may also be equipped with a contact prevention plate or be class B grounded.

[0029] <Grid connection part 5> As shown in FIG. 1, the system connection unit 5 is a portion that connects the above-mentioned transformer 4 to the system K. As described above, the system connection unit 5 includes a high-voltage circuit 6H, a zero-phase voltage detector 7, a zero-phase output circuit 6Z, an earth fault overvoltage relay unit 8, a capacitor output circuit 6D, a capacitor device 9, etc., which will be described later. As described above, the system connection unit 5 may have an instrument transformer 10, a sensor current transformer 11, a transformer output circuit 6S, a sensor output circuit 6B, and a reverse power relay unit 12, as well as a calculation unit 13 and an equipment housing 14, as described below. The system connection unit 5 may include a vacuum circuit breaker 5a, a disconnector 5b, and a load switch 5c, which will be described later, and may also include an overcurrent relay 5d and an instrument current transformer 11a, which will be described later.

[0030] <Vacuum circuit breaker 5a, disconnector 5b, load switch 5c, overcurrent relay 5d> As shown in FIG. 1, the vacuum circuit breaker (VCB) 5a is provided in a high-voltage circuit 6H (described later), and is a device that opens and closes (three-phase, three-wire collectively) the high-voltage circuit 6H when a high-voltage AC current H (load current) is flowing, and extinguishes the arc within the vacuum valve. The vacuum circuit breaker 5a may be provided, for example, between a voltage transformer 10 (a branch point of the transformer branch electric circuit 6S') and the sensor current transformer 11 (or the instrument current transformer 11a), which will be described later. The vacuum circuit breaker 5a may be of an electric spring operation (capacitor trip) type. As shown in Fig. 1, the disconnecting switch (DS) 5b is provided in a high-voltage circuit 6H, which will be described later, and is a device that opens and closes the high-voltage circuit 6H when high-voltage AC current H (load current) is not flowing. The disconnecting switch 5b does not have a function of cutting off current, and the disconnecting switch 5b opens and closes after cutting off the current with another circuit breaker. The disconnecting switch 5b may be provided, for example, between the instrument transformer 10 (branch point of the transformer branch circuit 6S') and the system K (or the utility transformer 31a). The disconnecting switch 5b may also be opened and closed by a hook operation.

[0031] As shown in FIG. 1, the load break switch (LBS) 5c may be provided in the high-voltage circuit 6H described later, and is a device that opens and closes the high-voltage circuit 6H (three-phase three-wire collectively) in a state in which a high-voltage AC current H (load current) flows, and is also called a high-voltage AC load break switch. The load break switch 5c may have a power fuse (four or the like). The load break switch 5c may also be equipped with an insulating barrier, and the load break switch 5c may be opened and closed by a hook operation. The number of load break switches 5c in one power system 1 is not particularly limited, and may be, for example, multiple (for example, two or the like) or one, or may be the same number as the number of transformers (the number including the above-mentioned transformer (power generation transformer) 4 and the load transformer 23 described later). Hereinafter, the number of load break switches 5c will be mainly described as two. The two load switches 5c may be provided, for example, in the high-voltage circuit 6H branching between the sensor current transformer 11 (or the instrument current transformer 11a) and each transformer (the generating transformer 4, the load transformer 23), respectively. As shown in FIG. 1, when the system connection unit 5 has the current transformer 11a, the overcurrent relay (OCR) 5d is connected to the current transformer 11a via a current transformer output circuit 6R described later, receives a transformer output current R (a lower voltage transformer output current R corresponding to the low voltage AC current L flowing through the high voltage circuit 6H) output from the current transformer 11a, and performs a predetermined operation (for example, outputs a stop signal to stop the conversion of the above-mentioned conversion unit 3) when the transformer output current R exceeds a certain value (value of operating current) for a certain time (such as about 1 second of operating time). In one power system 1, the number of the overcurrent relays 5d and the number of the above-mentioned current transformers 11a are the same, and the number may be one or more. The power source of the overcurrent relay 5d is connected to an uninterruptible power supply (not shown) or the like and is input from the uninterruptible power supply or the like.

[0032] <High voltage circuit 6H, low voltage circuit 6L> As shown in Fig. 1, the high-voltage circuit 6H is an electric circuit that connects the above-mentioned transformer 4 and the system K and passes high-voltage AC current H, and can also be considered as a high-voltage cable. The high-voltage circuit 6H may branch midway (for example, between the sensor current transformer 11 (or the instrument current transformer 11a) and the transformer 4) to the transformer 4 and a load transformer 23 described below, and each of these branched electric circuits also passes high-voltage AC current H, so it can be considered as a high-voltage circuit 6H. The high-voltage circuit 6H may be a set of three cables in the case of three-phase three-wire (3φ3W) or single-phase three-wire (1φ3W) or a set of two cables in the case of single-phase two-wire (1φ2W), and may be a set of multiple cables depending on the power distribution system (power transmission system). 1, the low-voltage circuit 6L is an electric circuit that connects the above-mentioned conversion unit 3 and the transformer 4 and passes the low-voltage AC current L, and can also be considered to be a low-voltage cable. The low-voltage circuit 6L may also branch to each of the conversion units 3 along the way (for example, between the transformer 4 and the conversion unit 3) depending on the number of conversion units 3, and these branched electric circuits also pass the low-voltage AC current L, so they can also be considered to be low-voltage circuits 6L. In addition, the electric circuit between the transformer 4 and a load 22 (power load 22a) described below and the electric circuit between a load transformer 23 described below and a load 22 (lighting load 22b) also pass the low-voltage AC current L, so they can also be considered to be low-voltage circuits 6L. The low-voltage circuit 6L may also consist of multiple cables in a set depending on the power distribution method (power transmission method), such as a set of three cables for three-phase three-wire (3φ3W) or single-phase three-wire (1φ3W), or a set of two cables for single-phase two-wire (1φ2W).

[0033] <Zero-phase voltage detector 7, etc.> 1, the zero-phase potential device (ZPD) 7 is provided in the high-voltage circuit 6H described above, and is a device that detects whether or not a zero-phase voltage has occurred on the high-voltage circuit 6H side due to an earth fault (such as a complete one-line earth fault in a three-phase three-wire system) occurring somewhere in the system (including the system K side) such as the high-voltage circuit 6H side in the power system 1. The zero-phase voltage detector 7 is also called a zero-phase voltage transformer (ZVT), etc. The circuit between the zero-phase voltage detector 7 and the earth fault overvoltage relay unit 8 described later is a zero-phase output circuit 6Z, and the zero-phase output circuit 6Z may be a set of three cables depending on the power distribution method (power transmission method), for example, a set of three cables in the case of a three-phase three-wire (3φ3W) system. In the zero-phase output circuit 6Z, when the zero-phase voltage detector 7 detects a zero-phase voltage, a zero-phase output current Z of a lower voltage (for example, about 1 V, or about 6 to 9 V, etc.) corresponding to the zero-phase voltage generated in the power system 1, etc. is output from the zero-phase voltage detector 7 and flows through the zero-phase output circuit 6Z. In addition, the zero-phase voltage detector 7 may incorporate a capacitor for voltage division, and may be an A-type ground.

[0034] In addition, "the zero-phase voltage detector 7 is provided in the high-voltage circuit 6H" means that the zero-phase voltage detector 7 is connected to a zero-phase branch circuit 6Z' branching off from the high-voltage circuit 6H, and this zero-phase branch circuit 6Z' may be a set of three cables if it is a three-phase three-wire (3φ3W) circuit, etc., and may be a set of multiple cables depending on the power distribution method (power transmission method). The zero-phase branch electric circuit 6Z' may branch off from anywhere in the high-voltage power circuit 6H, for example, it may branch off from between the load switch 5c and the transformer 4 in the high-voltage power circuit 6H.

[0035] <Earth fault overvoltage relay part 8> As shown in Figure 1, the earth fault overvoltage relay unit 8 is connected to the zero-phase voltage detector 7 via the above-mentioned zero-phase output circuit 6Z, and detects an earth fault overvoltage state based on the zero-phase output current Z. When this earth fault overvoltage relay unit 8 detects an earth fault overvoltage state, it may output a signal to stop the conversion of the above-mentioned conversion unit 3, for example. Here, "detecting an earth fault overvoltage state" means that, as described above, an earth fault occurs somewhere in the power system 1 etc., causing a zero-phase voltage to occur on the high-voltage circuit 6H side, and the zero-phase output current Z output from the zero-phase voltage detector 7 (a lower voltage zero-phase output current Z corresponding to the zero-phase voltage generated on the high-voltage circuit 6H side etc.) is input to the earth fault overvoltage relay unit 8, and the zero-phase output current Z becomes equal to or greater than a predetermined value (threshold value). Furthermore, "the zero-phase output current Z becomes greater than or equal to a predetermined value" does not necessarily mean that the zero-phase output current Z becomes greater than or equal to a threshold value strictly, but depending on the resolution and settings of the earth fault overvoltage relay unit 8, it may also mean that the zero-phase output current Z "becomes greater than or equal to a value that can be regarded as the threshold value", and the "value that can be regarded as the threshold value" may depend on the resolution of the earth fault overvoltage relay unit 8, and may be, for example, the sum of the threshold value and 1 mA, 1 μA, 1 nA, etc. Incidentally, this includes not only the case where a signal is output to the conversion unit 3 immediately after the zero-phase output current Z becomes equal to or greater than a predetermined value (threshold value), but also the case where a signal is output after a predetermined time has elapsed. Here, the "predetermined time" may be 0.1 seconds or more and 15.0 seconds or less, 0.3 seconds or more and 5.0 seconds or less, 0.5 seconds or more, or 2.0 seconds or more after the zero-phase output current Z becomes equal to or greater than a predetermined value.

[0036] The output signal from the earth fault overvoltage relay unit 8 may be directly input to the conversion unit 3, or may be input to a control device (not shown) of the conversion unit 3 (described later) or to the calculation unit 13. When the output signal from the earth fault overvoltage relay unit 8 is directly input to the conversion unit 3, the earth fault overvoltage relay unit 8 can also be said to be a control device. In one power system 1, the number of earth fault overvoltage relay units 8 is the same as the number of the above-mentioned zero-phase voltage detectors 7, and the number may be one or more. The power supply for the earth fault overvoltage relay unit 8 is connected to a capacitor device 9, which will be described later, an instrument transformer 10, and other uninterruptible power supplies (not shown), and is input from the capacitor device 9 and the like. The ground fault overvoltage relay unit 8 can also be said to be an overvoltage ground relay (OVGR).

[0037] <Capacitor device 9> 1, the capacitor device 9 is a device that charges and discharges electricity (electrical energy), and is connected to the above-mentioned earth fault overvoltage relay unit 8 by a capacitor output electric circuit 6D that supplies power source power (control power source) to the earth fault overvoltage relay unit 8. The capacitor device 9 can also be called a capacitor device. When the power system 1 etc. is not experiencing a power outage (non-power outage), the capacitor device 9 is charged with electricity from the potential transformer 10 via a capacitor input circuit 6D' branching off from a transformer output circuit 6S through which a transformed output current S from the potential transformer 10 described below flows. If the transformer output circuit 6S is a three-phase three-wire circuit, the current may be input to the capacitor device 9 as a single-phase two-wire capacitor input circuit 6D' via a voltmeter changeover switch (not shown). When a power outage occurs, the capacitor device 9 discharges the electricity it has been charged with, causing a capacitor output current D (140V, 154V, etc.) to flow through the capacitor output circuit 6D, thereby supplying power from the power source to the earth fault overvoltage relay unit 8. As a result, the capacitor device 9 supplies power source power to the earth fault overvoltage relay unit 8 via the capacitor output circuit 6D when a power outage occurs in a system (including the system K side) such as the high-voltage line 6H side in the power system 1.

[0038] The capacitor device 9 may have a charging indicator lamp that lights up when the capacitor device 9 is charged (fully charged), and a discharge switch (e.g., a configuration in which the switch is pressed and held until the charging indicator lamp described above goes out) that is used to forcibly discharge the capacitor device 9 when the capacitor device 9 is installed or removed. The capacitor device 9 has a capacitor as an electrical component that charges and discharges electricity, and may also have a fuse (e.g., φ5.2×20 mm, 5 A) provided in the circuit immediately after the transformer output current S is input via the capacitor input circuit 6D', a rectifier that rectifies the transformer output current S, which is AC and input via the capacitor input circuit 6D', to DC, a surge absorber provided before and / or after the rectifier, a charging current limiting resistor provided in the circuit that charges the capacitor with the rectified DC, a discharge resistor provided in the circuit that discharges when the above-mentioned discharge switch is pressed, a lamp current limiting resistor for the above-mentioned charge indicator lamp, and a diode provided in the circuit that discharges in the event of a power outage. The input voltage of the capacitor device 9 is 10V or more and 500V or less, preferably 40V or more and 400V or less, and more preferably 80V or more and 300V or less (100V, 110V, 200V, 220V, etc.), the charging voltage (which can also be said to be the voltage of the capacitor output current D to be discharged) is 10V or more and 600V or less, preferably 50V or more and 500V or less, and more preferably 100V or more and 400V or less (140V, 154V, 280V, 308V, etc.), and the consumption current (which can also be said to be the current of the capacitor output current D to be discharged) is 1mA or more and 100mA or less, preferably 3mA or more and 70mA or less, and more preferably 5mA or more and 40mA or less. (e.g., 8 mA or 20 mA), the capacitor capacity (capacity of the capacitor as an electronic component) is 100 μF or more and 5000 μF or less, preferably 200 μF or more and 4000 μF or less, more preferably 300 μF or more and 3000 μF or less (e.g., 470 μF or 1500 μF), the charging time is 0.01 seconds or more and 0.50 seconds or less, preferably 0.05 seconds or more and 0.40 seconds or less, more preferably 0.10 seconds or more and 0.30 seconds or less (e.g., within 0.2 seconds), and the discharge time may be 0.1 seconds or more and 30.0 seconds or less, preferably 0.5 seconds or more and 20.0 seconds or less, more preferably 1.0 seconds or more and 10.0 seconds or less (about 3 seconds, about 6 to 7 seconds, etc.). Note that this discharge time may be longer (or 2 or more times or more longer) than the predetermined time in the above-mentioned earth fault overvoltage relay unit 8 or the predetermined time in the reverse power relay unit 12 described later.

[0039] <Instrument transformers 10, etc.> 1, a voltage transformer (VT) 10 is provided in the above-mentioned high-voltage circuit 6H, and is a device that transforms (steps down) the high-voltage AC current H flowing through the high-voltage circuit 6H into a lower-voltage transformed output current S. Note that not only one voltage transformer 10 but also multiple (e.g., two) voltage transformers 10 may be present in one power system 1. The electric path between the potential transformer 10 and the reverse power relay unit 12 (or the calculation unit 13) described later is a transformer output electric path 6S through which the transformer output current S flows, and the transformer output electric path 6S may be a set of multiple electric paths depending on the power distribution system (power transmission system), such as a set of three electric paths in the case of a three-phase three-wire (3φ3W) system. Note that when the transformer output electric path 6S is a three-phase three-wire system, as described above, it may be input to the reverse power relay unit 12, etc. as a single-phase two-wire system via a voltmeter changeover switch (not shown). The transformer output circuit 6S receives (at least a portion of) a transformer output current S of a lower voltage (e.g., 110 V) corresponding to the voltage of the high-voltage AC current H flowing through the high-voltage circuit 6H, which is output from the instrument transformer 10 and flows through the transformer output circuit 6S.

[0040] The capacity of the potential transformer 10 is not particularly limited, and may be, for example, 10 VA or more and 500 VA or less, preferably 20 VA or more and 300 VA or less, and more preferably 40 VA or more and 200 VA or less (eg, 100 VA). The potential transformer 10 is not limited in its configuration and may be a transformer with three or more windings, but will be mainly described as a two-winding transformer. The instrument transformer 10, which is a two-winding transformer, may have, for example, a primary side on the high-voltage circuit 6H side and a secondary side on the reverse power relay unit 12 or the like side. In this case, there are no particular restrictions on the specific values, but for example, the voltage of the primary side on the high-voltage circuit 6H side may be 5000V or more and 40000V or less, preferably 5500V or more and 30000V or less, and more preferably 6000V or more and 25000V or less (6600V or 22000V, etc.), and the voltage of the secondary side on the reverse power relay unit 12 side may be 10V or more and 600V or less, preferably 20V or more and 400V or less, and more preferably 50V or more and 300V or less (110V, etc.). The potential transformer 10 may have a power fuse (PF) on the primary side and / or the secondary side.

[0041] In addition, "the voltage transformer 10 is provided in the high-voltage circuit 6H" means that the voltage transformer 10 is connected to a transformer branch circuit 6S' branching off from the high-voltage circuit 6H, and this transformer branch circuit 6S' may be a set of three cables in the case of a three-phase three-wire (3φ3W) circuit, etc., and may be a set of multiple cables depending on the distribution method (transmission method). The transformer branch electric circuit 6S' may branch off from any point in the high-voltage power line 6H, for example, it may branch off from between the vacuum circuit breaker 5a and the disconnecting switch 5b in the high-voltage power line 6H.

[0042] <Sensor current transformer 11> 1, the sensor current transformer 11 is provided in a high-voltage circuit 6H described later, and is a device that outputs a smaller sensor output current B from the high-voltage AC current H flowing through the high-voltage circuit 6H. Note that there may be not only one sensor current transformer 11 in one power system 1, but also multiple (e.g., two) sensor current transformers 11. The electric path between the sensor current transformer 11 and the reverse power relay unit 12 (or the calculation unit 13) described later is a sensor output electric path 6B through which the sensor output current B flows, and the sensor output electric path 6B may be a set of two wires in the case of a single-phase two-wire (1φ2W) or the like, or a set of three wires in the case of a three-phase three-wire (3φ3W) or the like, and may be a set of multiple wires depending on the power distribution system (power transmission system). Note that when the sensor output electric path 6B is a three-phase three-wire system, as described above, it may be input to the reverse power relay unit 12 or the like as a single-phase two-wire system via an ammeter changeover switch (not shown). A sensor output current B, which is a smaller current (for example, 5 mA or a few mA, or 1 mA to 20 mA, etc.) corresponding to the high-voltage AC current H flowing through the high-voltage circuit 6H, is output from the sensor current transformer 11 and flows through the sensor output circuit 6B.

[0043] The number of times (turns) that the winding of the sensor current transformer 11 is wound around the coil is not particularly limited, but may be, for example, 100 to 20,000 turns, preferably 500 to 10,000 turns, and more preferably 1,000 to 5,000 turns (e.g., 3,000 turns). Since the number of turns of the high-voltage circuit 6H (and the current-transformed output circuit 6R described later) can be said to be one turn compared to the number of turns of the sensor current transformer 11, the current transformation ratio of the primary side (the side of the high-voltage circuit 6H, etc.) to the secondary side (output side) of the sensor current transformer 11 is 1:the number of turns of the sensor current transformer 11. The value of the current transformation ratio is not particularly limited, and may be, for example, 1:100 to 1:20000, preferably 1:500 to 1:10000, and more preferably 1:1000 to 1:5000 (e.g., 1:3000). The rated range of the current in the sensor current transformer 11 is not particularly limited, but may be, for example, 0.01 A or more and 5.00 A or less, or 1 A or more and 200 A or less (10 A, 60 A, etc.). Furthermore, the maximum value of the range of current actually flowing through the sensor current transformer 11 may be 10 to 20 times the maximum value of the rated range of current described above, for example, 100 kA or less, preferably 80 kA or less, and more preferably 60 kA or less (e.g., 40 kA).

[0044] Incidentally, "the sensor current transformer 11 is provided in the high-voltage circuit 6H" means not only that the sensor current transformer 11 is provided directly in the high-voltage circuit 6H (for example, a switch-type (also called a split type, such as a fluxgate type or Hall element type) sensor current transformer 11 that can be installed on two of the three-phase three-wire high-voltage circuit (high-voltage cable) 6H without splitting each high-voltage cable 6H is opened and closed by itself and then attached later), but also that the sensor current transformer 11 may be provided in the current transformer output circuit 6R (in other words, the secondary side of the instrument current transformer 11a) that flows the transformed output current R from the instrument current transformer 11a described later, and this current transformer output circuit 6R may be a single-phase two-wire (1φ2W) or the like. Incidentally, the sensor current transformer 11 is provided in the current transformer output circuit 6R in the manner that, for example, the sensor current transformer 11 is an open / close type that can be attached to each of the single-phase two-wire current transformer output circuits 6R without opening or closing each current transformer output circuit 6R, and is retrofitted by opening and closing the sensor current transformer 11 itself. The instrument current transformer 11a will be described below.

[0045] <Instrument current transformer 11a> As shown in FIG. 1, an instrument current transformer (CT) 11a is provided in a high-voltage circuit 6H described later, and is a device that transforms a high-voltage AC current H flowing through the high-voltage circuit 6H into a smaller transformed output current R. As described above, the electric circuit between the instrument current transformer 11a and the above-mentioned overcurrent relay 5d is the current transformer output electric circuit 6R through which the current transformer output current R flows, and the current transformer output electric circuit 6R may also be a set of two electric circuits in the case of a single-phase two-wire (1φ2W) or the like, or a set of three electric circuits in the case of a three-phase three-wire (3φ3W) or the like, and may be a set of multiple electric circuits depending on the power distribution system (power transmission system). Note that when the current transformer output electric circuit 6R is a three-phase three-wire circuit, as described above, it may be input to the overcurrent relay 5d as a single-phase two-wire circuit via an ammeter changeover switch (not shown). The current transformer output circuit 6R outputs a smaller current (for example, about 10 A) of current transformer output current R corresponding to the current of the high voltage AC current H flowing through the high voltage circuit 6H from the sensor current transformer 11 and flows into the sensor output circuit 6B.

[0046] The number of times (turns) that the winding of the instrument current transformer 11a is wound around the coil is not particularly limited, but may be, for example, 10 to 10,000 turns, preferably 100 to 6,000 turns, and more preferably 500 to 4,000 turns (e.g., 1,500 turns). Since the number of turns of the high-voltage circuit 6H can be said to be one for the number of turns of the instrument current transformer 11a, the current transformation ratio of the primary side (the high-voltage circuit 6H side) and the secondary side (output side) of the instrument current transformer 11a is 1: the number of turns of the instrument current transformer 11a. The value of the current transformation ratio is not particularly limited, and may be, for example, 1:10 to 1:10000, preferably 1:100 to 1:6000, and more preferably 1:500 to 1:4000 (e.g., 1:1500). The rated range of the current in the instrument current transformer 11a is not particularly limited, but may be, for example, 15 A to 1800 A, preferably 20 A to 1650 A, and more preferably 25 A to 1500 A (eg, 60 A). Furthermore, the maximum value of the range of the current actually flowing through the instrument current transformer 11a may be 10 to 20 times the maximum value of the rated range of the current described above, and may be, for example, 100 kA or less, preferably 80 kA or less, and more preferably 60 kA or less (e.g., 40 kA).

[0047] Incidentally, "the instrument current transformer 11a is provided in the high-voltage circuit 6H" means that the instrument current transformer 11a is provided directly in the high-voltage circuit 6H, and may be attached from the beginning by splitting each high-voltage cable 6H for two of the three-phase three-wire high-voltage circuit (high-voltage cable) 6H, or may be an open / close type (fluxgate type, Hall element type, etc.) instrument current transformer 11a that can be attached without splitting each high-voltage cable 6H and that opens and closes itself and is attached later. The instrument current transformer 11a may be provided anywhere in the high voltage circuit 6H, but may be provided, for example, between the vacuum circuit breaker 5a and the load switch 5c in the high voltage circuit 6H.

[0048] <Reverse power relay unit 12> As shown in FIG. 1, the reverse power relay unit 12 is connected to the instrument transformer 10 via the above-mentioned transformer output circuit 6S, and at the same time is connected to the sensor current transformer 11 (or connected to the calculation unit 13) via the above-mentioned sensor output circuit 6B, and is a part that detects a reverse power generation state based on the transformer output current S and the sensor output current B. When this reverse power relay unit 12 detects a reverse power generation state, it may output a signal to stop the conversion of the above-mentioned conversion unit 3. Here, "detecting a reverse power occurrence state" means that, as described above, it has been determined that reverse power (power flowing back from the high-voltage power line 6H to the system K) calculated by the calculation unit 13 described later based on the transformer output current S and the sensor output current B has occurred, and that the reverse power has become equal to or greater than a predetermined value (threshold value). In addition, "the reverse power becomes equal to or greater than a predetermined value" does not necessarily mean that the reverse power becomes equal to or greater than a threshold value strictly, but depending on the resolution and settings of the reverse power relay unit 12, it may also mean that the reverse power "becomes equal to or greater than a value that can be regarded as the threshold value", and the "value that can be regarded as the threshold value" may depend on the resolution of the reverse power relay unit 12, and may be, for example, the sum of the threshold value and 1 mA, 1 μA, 1 nA, etc. This includes not only the case where a signal is output to the conversion unit 3 immediately after the reverse power becomes equal to or greater than a predetermined value (threshold value), but also the case where a signal is output after a predetermined time has elapsed. Here, the "predetermined time" may be 0.1 to 30.0 seconds, 0.2 to 20.0 seconds, 0.3 seconds or more, or 15.0 seconds or more after the reverse power reaches a predetermined value.

[0049] The output signal from the reverse power relay unit 12 may be directly input to the conversion unit 3, or may be input to a control device (described later) of the conversion unit 3 or to the calculation unit 13. When the output signal from the reverse power relay unit 12 is directly input to the conversion unit 3, the reverse power relay unit 12 can also be said to be a control device. In one power system 1, the number of reverse power relay units 12 and the number of the above-mentioned instrument transformers 10 and sensor current transformers 11 may be the same or different, and the number may be one or more. The power supply for the reverse power relay unit 12 is also connected to a capacitor device 9, which will be described later, an instrument transformer 10, and other uninterruptible power supplies (not shown), and can be said to be input from the capacitor device 9, etc. The reverse power relay unit 12 can also be said to be a reverse power relay (RPR).

[0050] <Calculation section 13> As shown in FIG. 1, the calculation unit 13 is a part that calculates at least the power in the high-voltage circuit 6H based on the transformer output current S and the sensor output current B described above. The calculation unit 13 is not particularly limited as long as it can calculate at least the power in the high-voltage circuit 6H, but it may be, for example, an electronic or mechanical type, a three-phase type (a method of measuring two phases out of three phases and three wires), or a single-phase type. Hereinafter, the calculation unit 13 will be described as being mainly electronic and three-phase. The calculation unit 13 may calculate, in addition to the power in the high voltage power circuit 6H, for example, at least one of the current, voltage, power factor, and amount of power in the high voltage power circuit 6H based on the transformer output current S and the sensor output current B. The calculation of power and the like in the calculation unit 13 may be performed at predetermined time intervals, and the predetermined time may be, for example, 0.01 seconds or more and 5.00 seconds or less (eg, 0.1 seconds). Furthermore, when the earth fault overvoltage relay unit 8 detects an earth fault overvoltage state or when the reverse power relay unit 12 detects a reverse power generation state, the calculation unit 13 may collectively stop the conversion of the conversion unit 3 via a signal to the conversion unit 3, and in this case, the calculation unit 13 may also be said to be a control device. Also, the electric circuit between the above-mentioned voltage transformer 10 or the sensor current transformer 11 and the reverse power relay unit 12 may be connected via the calculation unit 13, and even in the connection via the calculation unit 13, it can be said that the voltage transformer 10 and the reverse power relay unit 12 are connected via the transformer output electric circuit 6S, and the sensor current transformer 11 and the reverse power relay unit 12 are connected via the sensor output electric circuit 6R. In the connection via the calculation unit 13, the transformed AC current S from the voltage transformer 10 and the sensor output current R from the sensor current transformer 11 are first input to the calculation unit 13 to calculate the power (reverse power) in the high-voltage circuit 6H, and the calculated reverse power can be input from the calculation unit 13 to the reverse power relay unit 12.

[0051] <Equipment case 14> As shown in FIG. 1, device housing 14 is a housing in which the above-mentioned ground fault overvoltage relay unit 8, reverse power relay unit 12, and calculation unit 13 are provided (built-in). There are no particular limitations on the shape, size, configuration, etc. of the device housing 14 as long as it incorporates the earth fault overvoltage relay unit 8, the reverse power relay unit 12, and the calculation unit 13, but for example, the shape may be approximately cubic or approximately rectangular. The device housing 14 may have a display unit that displays the power value calculated by the above-mentioned calculation unit 13, and this display unit is not particularly limited in terms of its shape, size, position, configuration, etc., but may be, for example, approximately rectangular or approximately square in shape. The contents displayed on the display unit may not only be the power value measured by the calculation unit 13, but may also include the integrated power (i.e., the amount of power) of that power, or numbers indicating the mode or state.

[0052] The device housing 14 may have an operation section, and the operation section is also not particularly limited in terms of its configuration, role, position, etc., and may be provided with a plurality of buttons, for example. The role of the operation unit may be, for example, a button for turning the display unit on and off (display button), a reset button for resetting the electrical device 1, buttons for selecting a mode or state (such as a "+" button or a "-" button), or a set button for confirming (setting) a selected mode, etc. The position of such an operation unit may be, for example, on the front surface of the device housing 14, below the above-mentioned display unit. The device housing 14 may have a terminal portion (terminal block), and the number and position of this terminal portion are not particularly limited. For example, one device housing 14 may be provided with one terminal portion or multiple (e.g., three) terminal portions. In this way, a device that incorporates multiple relay units, such as the earth fault overvoltage relay unit 8 and the reverse power relay unit 12, into a single device housing 14 can also be said to be a "composite relay device (composite relay) 20." In the case of such a composite relay device 20, it can be said that the earth fault overvoltage relay unit 8, the reverse power relay unit 12, and the calculation unit 13 are connected to each other within the device housing 14, and therefore if the zero-phase output circuit 6Z from the zero-phase voltage detector 7, the capacitor output circuit 6D from the capacitor device 9, the transformer output circuit 6S from the instrument transformer 10, and the sensor output circuit 6B from the sensor current transformer 11 are connected to the composite relay device 20, it can be said that the zero-phase output circuit 6Z from the zero-phase voltage detector 7 and the capacitor output circuit 6D from the capacitor device 9 are connected to the earth fault overvoltage relay unit 8, and the transformer output circuit 6S from the instrument transformer 10 and the sensor output circuit 6B from the sensor current transformer 11 are connected to the reverse power relay unit 12. Furthermore, in the case of this composite relay 20, the power supply units of the earth fault overvoltage relay unit 8, the reverse power relay unit 12 and the calculation unit 13 may be integrated into one, and this power supply unit has a power supply range corresponding to the voltage of the capacitor output current D input to the composite relay 20. For example, if the capacitor output current D is direct current, it may be compatible with DC 80V or more and 143V or less, or DC 20V or more and 56V or less, or if the capacitor output current D is alternating current, it may be compatible with AC 85V or more and 264V or less.

[0053] <Power generation circuit breaker 21, load 22, load transformer 23, load circuit breaker 24> As shown in FIG. 1, the power generation circuit breaker 21 is a device capable of interrupting the low voltage AC current L from the converter 3 described above. In other words, the power generation circuit breaker 21 is a device provided in the low voltage circuit 6L described below and capable of interrupting the low voltage circuit 6L, and can also be said to be a low voltage circuit breaker. The power generation circuit breaker 21 may be a molded case circuit breaker (MCCB) or an earth leakage circuit breaker (ELCB). There may be not only one power generation circuit breaker 21 in one power system 1, but also a plurality of power generation circuit breakers 21. For example, as described above, when the low voltage circuit 6L branches between the transformer 4 and the converter 3 according to the number of converters 3, one power generation circuit breaker 21 may be provided between the branching point and the transformer 4, and one power generation circuit breaker may be provided between the branching point and each converter 3. 1, the load 22 is a device that consumes power from the power generation unit 2 via the conversion unit 3, power from the system K via the system connection unit 5, the transformer 4, etc. The load 22 may have any configuration, and may be, for example, an industrial motor (power load) 22a in a factory, a light (lighting load) 22b in a factory, a lighting distribution board connected to multiple lights 22b, or an air conditioner, fluorescent light, home appliance, vehicle such as an electric car or a gasoline car, or device in the vehicle in a building such as a house or office.

[0054] As shown in FIG. 1, the load transformer 23 is a device that transforms (steps down) the power from the system K and the power from the power generating unit 2, and is a so-called transformer. The term "transformer" is an abbreviation for "transformer". The capacity of the load transformer 23 may be the same as that of the above-mentioned transformer 4, and the configuration of the load transformer 23 may be a two-winding transformer or the like. It can also be said that the primary side of the load transformer 23 is the high-voltage circuit 6H side, and the secondary side is the low-voltage side. In this case, there is no particular restriction on the specific values, but for example, the voltage of the primary side, which is the high-voltage circuit 6H side, may be the same as that of the above-mentioned transformer 4, and the voltage of the secondary side, which is the low-voltage side, may be 10V or more and 1000V or less, preferably 50V or more and 800V or less, and more preferably 100V or more and 600V or less (105V to 210V, etc.). There are no particular limitations on the connection method for the primary and secondary sides of the load transformer 23, but for example, the primary side, which is the high-voltage circuit 6H side, may be star-connected (Y connection) and the secondary side, which is the low-voltage side, may be single-phase three-wire (i.e., Y-three connection), or the order of the primary and secondary sides may be Y-Δ connection, YY connection, Δ-Y connection, or Δ-Δ connection. The load transformer 23 may also be an oil-immersed transformer or a dry-type transformer, and may also be equipped with a contact prevention plate or be class B grounded. As shown in FIG. 1, the load circuit breaker 24 is a device capable of interrupting an electrical circuit between the above-mentioned load transformer 23 and the load 22 (lighting load 22b) or an electrical circuit between the above-mentioned generating transformer 4 and the load 22 (power load 22a), and may be a circuit breaker or a ground fault circuit interrupter. Furthermore, since the secondary side of the above-mentioned transformer 4 is connected not only to the power generation unit 2 and the conversion unit 3, but also to the power load 22a, as described above, it can be said to function as both a power generation transformer and a load transformer.

[0055] <Control device> The control device may be a device that is connected to the above-mentioned earth fault overvoltage relay unit 8, reverse power relay unit 12, etc., and inputs a stop signal output from the earth fault overvoltage relay unit 8 or reverse power relay unit 12 to perform control such as stopping the conversion of the above-mentioned conversion unit 3, and may be a smart logger, a sequencer, a computer, etc. In one power system 1, the number of control devices may be one or more. The power supply of the control device may be connected to an uninterruptible power supply (not shown) or the like and input from the uninterruptible power supply, etc. Also, the user may directly touch the control device to monitor, change settings, operate it, etc., but it may also be performed remotely via the Internet, telephone lines, etc.

[0056] <Other> The present invention is not limited to the above-described embodiment. Each component of the power system 1 and the like or the overall structure, shape, dimensions, etc. can be appropriately changed in accordance with the spirit of the present invention. The power system 1 does not need to have an instrument transformer 10, a sensor current transformer 11, or a reverse power relay unit 12 within the system connection unit 5, and further, even when the earth fault overvoltage relay unit 8 detects an earth fault overvoltage state or when the reverse power relay unit 12 detects a reverse power generation state, a signal to stop the conversion of the conversion unit 3 is not output to the conversion unit 3, and the earth fault overvoltage relay unit 8, the reverse power relay unit 12, and the calculation unit 13 do not need to be located within a single device housing 14. Moreover, the power system 1 does not necessarily have to include the calculation unit 13 and the device housing 14.

[0057] The power system 1 may have a storage unit for storing electricity, which may be the above-mentioned capacitor device 9 or an uninterruptible power supply device, or may be a storage battery (battery) such as a lead storage battery, a lithium ion storage battery, a nickel-metal hydride storage battery, or a nickel-cadmium storage battery, or may be a device that stores hydrogen generated by electrolysis of water using the power generated by the power generation unit 21, extracts power when needed using a fuel cell, or stores (stores) electricity as kinetic energy using a flywheel or stores (stores) electricity as potential energy using pumped water. In this case, the storage unit may be connected to the above-mentioned conversion unit 3 or an electric circuit such as a low-voltage circuit 6L, and may be charged with power output from the power generation unit 2 or the like, or may flow the charged electricity to the load 22 to be consumed by the load 22 (self-consumption), or may flow the charged electricity to the system K if it is possible to sell the electricity. In the power system 1, the above-mentioned system connection unit 5, zero-phase voltage detector 7, earth fault overvoltage relay unit 8, capacitor device 9, instrument transformer 10, sensor current transformer 11, reverse power relay unit 12, calculation unit 13, equipment housing 14, power generation circuit breaker 21, etc. may be provided within a single panel housing (in other words, a single distribution board). In addition, a zero-phase voltage detector 7, an earth fault overvoltage relay unit 8, a capacitor device 9, an instrument transformer 10, a sensor current transformer 11, a reverse power relay unit 12, a calculation unit 13, an equipment housing 14, a power generation circuit breaker 21, etc. may be provided in a panel housing (such as a power generation connection board, an added board) separate from the panel housing (such as a system board, an existing board) in which the system connection unit 5 is provided. In the power system 1, if the load 22, load transformer 23 (transformer 4 serving as both a load transformer and a generating transformer), load breaker 24, and system connection unit 5 already exist, it can be said that in order to turn these existing loads 22 etc. into a self-consumption type power generation plant, it is possible to retrofit the power generation unit 2, conversion unit 3, zero-phase voltage detector 7, earth fault overvoltage relay unit 8, capacitor device 9, sensor current transformer 11, reverse power relay unit 12, calculation unit 13, equipment housing 14, generating breaker 21, etc. to the existing loads 22 etc. The system K related to the power system 1 described above will be explained in detail below.

[0058] <System K> As shown in Fig. 1, system K transmits (receives) electricity to the power system 1, and refers to the entire system through which electric power companies and the like supply electricity to consumers, and can also be called power system K. Specifically, system K includes facilities such as substations, transmission lines, and distribution lines, and may also include power plants. System K may also include the above-mentioned commercial transformer 31a, a power purchase watt-hour meter, a power sale watt-hour meter, a pole-mounted air switch, and a protective relay device. The power handled by such system K may be either AC or DC, but the following description will be given assuming that it is AC. In system K, most of the electricity transmitted is AC, so it is transmitted using three-phase, three-wire (3φ3W) transmission lines. In order to reduce transmission losses during transmission, the main long-distance transmission sections transmit electricity at as high a voltage as possible (for example, 6,600V or 22,000V). The electricity transmitted by system K is transformed (stepped down) in several stages at locations close to the consumption point, and after the pole-mounted transformer, the electricity is distributed via single-phase two-wire (1φ2W) or similar. System K may be a system of an electric power company or the like (commercial power system), or may be a system independently owned by an organization such as a company or a local government, or a system within a plant (independent power system). [Industrial Applicability]

[0059] The power system of the present invention can be used for self-consumption type solar power plants and the like, regardless of their power generation amount or scale, and can be used not only for self-consumption type solar power plants, but also for non-self-consumption type solar power plants and plants that generate power using generators (such as AC motors) rotated by wind, water, wave, geothermal, etc., and can be used both outdoors and indoors. [Explanation of symbols]

[0060] 1. Power System 2. Power Generation Division 3. Conversion section 4. Transformers 5 System Connection 6H High voltage circuit 6Z Zero-phase output circuit 6D Capacitor output circuit 6S Transformer output circuit 6B Sensor output circuit 7 Zero-phase voltage detector 8 Earth fault overvoltage relay 9. Condenser device 10. Potential transformers 11 Sensor current transformer 12 Reverse power relay 13 Calculation section 14 Equipment housing L Low voltage AC H High voltage AC current Z Zero-phase output current S Transformer output current B Sensor output current K lineage

Claims

1. A power system comprising: a power generation unit (2); a conversion unit (3) that converts a direct current or an alternating current from the power generation unit (2) into a low-voltage alternating current (L); a transformer (4) that transforms the low-voltage alternating current (L) from the conversion unit (3) into a higher-voltage alternating current (H); and a system connection unit (5) that connects the transformer (4) to a system (K), The system connection unit (5) A high-voltage circuit (6H) that connects the transformer (4) and a system (K) and passes a high-voltage AC current (H); A zero-phase voltage detector (7) provided in the high-voltage power supply (6H); an earth fault overvoltage relay unit (8) connected to a zero-phase output circuit (6Z) through which a zero-phase output current (Z) from the zero-phase voltage detector (7) flows and detecting an earth fault overvoltage state based on the zero-phase output current (Z); a capacitor device (9) connected to a capacitor output circuit (6D) for supplying power from a power source to the earth fault overvoltage relay unit (8) and for supplying power from a power source to the earth fault overvoltage relay unit (8) during a power outage; The system connection unit (5) has an instrument transformer (10) that is provided in the high-voltage power line (6H) and transforms a high-voltage AC current (H) flowing through the high-voltage power line (6H) into a lower-voltage transformed output current (S), The power system is characterized in that the capacitor device (9) is charged with electricity from the potential transformer (10) via a capacitor input circuit (6D') branching off from a transformer output circuit (6S) through which a transformed output current (S) from the potential transformer (10) flows.

2. The system connection unit (5) a sensor current transformer (11) provided in the high voltage power supply (6H) and outputting a smaller sensor output current (B) from the high voltage AC current (H) flowing through the high voltage power supply (6H); a reverse power relay unit (12) connected to a transformer output circuit (6S) through which a transformer output current (S) from the instrument transformer (10) flows and a sensor output circuit (6B) through which a sensor output current (B) from the sensor current transformer (11) flows, and detecting a reverse power generation state based on the transformer output current (S) and the sensor output current (B); a current transformer (11a) for instrumentation that is provided in the high-voltage power supply (6H) and transforms a high-voltage AC current (H) flowing through the high-voltage power supply (6H) into a smaller current transformer output current (R); A current transformer output circuit (6R) through which a current transformer output current (R) from the current transformer (11a) flows is a single-phase two-wire circuit, 2. The power system according to claim 1, wherein the sensor current transformer (11) is provided for each of the two wires of the single-phase two-wire current transformer output circuit (6R).

3. A power system characterized in that, when the reverse power relay unit (12) in the power system described in claim 2 detects a reverse power generation state, it stops the conversion of the conversion unit (3) (excluding de-coupling of the conversion unit (3)) via a signal to the conversion unit (3).

4. The earth fault overvoltage relay unit (8) and the reverse power relay unit (12), a calculation unit (13) that calculates at least the power in the high voltage line (6H) based on the transformer output current (S) and the sensor output current (B); Located in one device housing (14), The reverse power relay unit (12) and the instrument transformer (10) are connected via the calculation unit (13), 3. The power system according to claim 2, wherein the reverse power relay unit (12) and the sensor current transformer (11) are also connected via the calculation unit (13).

Citation Information

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