Islanding operation detection device, islanding operation detection method, and power conditioner equipped with islanding operation detection device

The islanding operation detection device switches between active and passive detection modes based on connected power sources to prevent voltage flicker, ensuring stable power distribution by avoiding reactive power injection.

JP7727560B2Active Publication Date: 2025-08-21DAIHEN CORP
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Patent Information

Application Number
JP2022003418
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-12
Publication Date
2025-08-21
Estimated Expiration
2042-01-12

AI Technical Summary

Technical Problem

Existing islanding detection devices inject reactive power into power distribution systems, leading to voltage flicker when connected to systems with multiple power conditioners, despite efforts to suppress reactive power injection.

Method used

An islanding operation detection device that includes an operating power source detection unit to identify connected power sources, switching between active and passive detection modes based on voltage flicker, and using active and passive detection units to prevent reactive power injection when high power sources are present.

Benefits of technology

Prevents voltage flicker by disabling active detection when high power sources are connected, relying on passive detection alone, thus avoiding reactive power injection and maintaining system stability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an islanding operation detection device that does not induce a voltage flicker phenomenon.SOLUTION: An islanding operation detection device 3 for detecting islanding operation of a power conditioner 1 comprises: an operating power source detection unit 31 for detecting whether or not operating power sources B of a specific number or more are connected to a distribution system C to which the power conditioner 1 is connected; an active detection unit 32 for actively detecting islanding operation by injecting a first active signal into the distribution system C; a passive detection unit 33 for detecting islanding operation on the basis of a variation in electric characteristics generated caused by an injection of a second active signal into the distribution system C by another islanding operation detection device arranged in the distribution system C; and a change-over unit 36 for changing over between the active detection unit 32 is in a functioning state and in a nonfunctioning state in response to a detection result of the operating power source detection unit 31.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to an islanding operation detection device, an islanding operation detection method, and a power conditioner equipped with the islanding operation detection device. [Background technology]

[0002] When connecting a distributed power source to a power grid, the power conditioner must be equipped with an islanding detection device to prevent islanding. Islanding occurs when a distributed power source continues to supply power to the loads of the power distribution grid even if the distribution grid to which the distributed power source is connected is disconnected from the power grid. When an islanding detection device detects islanding, it disconnects the distributed power source from the distribution grid and stops the supply of power from the distributed power source to the load. There are passive and active methods for detecting islanding, and various detection methods have been developed.

[0003] The Grid Interconnection Regulations (JEAC 9701-2016) recognize active islanding detection methods, including frequency shift, slip mode frequency shift, reactive power variation, and QC mode frequency shift. These methods are referred to as conventional active methods. The Grid Interconnection Regulations stipulate that conventional active islanding detection devices must disconnect the power conditioner from the distribution grid within 0.5 to 1 second (when connected to a low-voltage distribution line) when a power outage occurs and the power conditioner enters islanding mode. The Grid Interconnection Regulations also recognize the step injection frequency feedback method, which offers faster detection speeds than conventional active methods. This method is referred to as the new active method. The Grid Interconnection Regulations stipulate that new active islanding detection devices must instantly disconnect the power conditioner from the distribution grid when a power outage occurs and the power conditioner enters islanding mode; typically, they are configured to disconnect within 0.1 to 0.2 seconds. Each of these methods actively injects an active signal, representing reactive power, into the distribution system and detects islanding based on changes in the detected frequency. Therefore, when a large number of distributed power sources are connected to a distribution system, a large amount of reactive power is injected into the system. The amount of reactive power injected also increases according to frequency deviation. Therefore, when a system disturbance occurs, each distributed power source increases the amount of reactive power injected, which can cause system voltage oscillations and voltage flicker.

[0004] As a measure to suppress the occurrence of voltage flicker, islanding detection devices capable of suppressing the amount of reactive power injection have been developed. For example, Patent Document 1 discloses an islanding detection device that suppresses the amount of reactive power injection when the possibility of islanding is low. Furthermore, Patent Document 2 discloses an islanding detection device that can prevent false detection of islanding operation and detection delays while reducing the amount of reactive power injection by alternately injecting lagging-phase reactive power and leading-phase reactive power and detecting islanding operation based on the integrated value obtained by integrating the absolute values ​​of the amount of change in the moving average value of the system frequency. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-93020 [Patent Document 2] Japanese Patent Application Publication No. 2019-92328 Summary of the Invention [Problem to be solved by the invention]

[0006] However, the islanding detection devices disclosed in Patent Documents 1 and 2 suppress the amount of injection but still inject reactive power. Therefore, when a power conditioner equipped with such an islanding detection device is newly connected to a power distribution system, the reactive power injected into the power distribution system increases. Therefore, even when such a power conditioner is connected to a power distribution system already connected to a large number of power conditioners equipped with islanding detection devices, it will induce voltage flicker.

[0007] The present invention was devised under the circumstances described above, and its object is to provide an islanding operation detection device, an islanding operation detection method, and a power conditioner equipped with an islanding operation detection device that do not induce voltage flicker phenomenon. [Means for solving the problem]

[0008] In order to solve the above problems, the present invention provides the following technical means.

[0009] The islanding operation detection device provided by a first aspect of the present invention is an islanding operation detection device that detects the islanding operation of a power conditioner, and is characterized by comprising: an operating power source detection unit that detects whether or not a specified amount of operating power source is connected to the distribution system to which the power conditioner is connected; an active detection unit that actively detects islanding operation by injecting a first active signal into the distribution system; a passive detection unit that detects islanding operation based on a change in electrical characteristics caused by another islanding operation detection device arranged in the distribution system injecting a second active signal into the distribution system; and a switching unit that switches the active detection unit between a state in which it is activated and a state in which it is deactivated depending on the detection result of the operating power source detection unit.

[0010] The term "operating power source" refers to a distributed power source equipped with a power conditioner that has an islanding detection device and is in operation. The terms "first active signal" and "second active signal" refer to signals that the islanding detection device injects into the power distribution system when it actively detects islanding, and include, for example, reactive power and active power. The term "electrical characteristics" refers to voltage, current, power (active power, reactive power), and frequency. The term also refers to the voltage, current, power, and frequency of specified harmonic components.

[0011] In a preferred embodiment of the present invention, the operating power source detection unit detects that the operating power source having a voltage equal to or greater than the specified level is connected by detecting the occurrence of voltage flicker in the power distribution system.

[0012] In a preferred embodiment of the present invention, the operating power supply detection unit changes the threshold value for determining the occurrence of voltage flicker based on how the voltage flicker converges when the switching unit switches the active detection unit to a state where it is not functioning.

[0013] In a preferred embodiment of the present invention, the switching unit switches the active detection unit to a state in which it is not functioning when the operating power source detection unit detects that the operating power source is connected at a level greater than the specified level, and switches the active detection unit to a state in which it is functioning when the state in which the operating power source detection unit no longer detects that the operating power source is connected at a level greater than the specified level continues for a determination time.

[0014] In a preferred embodiment of the present invention, the determination time is within 2 seconds.

[0015] In a preferred embodiment of the present invention, the switching unit injects a predetermined amount of a first active signal into the active detection unit when switching the active detection unit from a disabled state to a enabled state.

[0016] A power conditioner provided by a second aspect of the present invention is characterized by including the islanding operation detection device provided by the first aspect of the present invention.

[0017] An islanding operation detection method provided by a third aspect of the present invention is an islanding operation detection method for detecting the islanding operation of a power conditioner, and is characterized by comprising an operating power source detection step for detecting whether or not a specified number of operating power sources are connected to the distribution system to which the power conditioner is connected; an active detection step for actively detecting islanding operation by injecting a first active signal into the distribution system; a passive detection step for detecting islanding operation based on a change in electrical characteristics caused by another islanding operation detection device arranged in the distribution system injecting a second active signal into the distribution system; and a switching step for switching between a state in which the active detection step is performed and a state in which it is not performed depending on the detection result of the operating power source detection step. [Effects of the Invention]

[0018] According to the present invention, the switching unit switches between a state in which the active detection unit is enabled and a state in which it is disabled, depending on the detection result of the operating power source detection unit. Therefore, the switching unit can switch the active detection unit to a state in which it is disabled when it is detected that an operating power source greater than a specified level is connected. As a result, when an operating power source greater than a specified level is connected, the islanding operation detection device according to the present invention does not enable the active detection unit and enables only the passive detection unit to function, thereby detecting islanding. In this case, the islanding operation detection device according to the present invention does not inject an active signal, and therefore does not induce voltage flicker. On the other hand, when an operating power source greater than a specified level is not connected, the islanding operation detection device according to the present invention enables the active detection unit to inject an active signal. However, since an operating power source greater than a specified level is not connected, even if the active signal is injected, voltage flicker does not induce voltage flicker.

[0019] Other features and advantages of the present invention will become more apparent from the following detailed description taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0020] [Figure 1] 1 is a block diagram for explaining a power conditioner equipped with an isolated operation detection device according to a first embodiment, showing the overall configuration of a power distribution system. [Figure 2] FIG. 3 is a block diagram showing details of the internal configuration of an operating power supply detection unit. [Figure 3] FIG. 10 is a waveform diagram showing the simulation results of the first determination section of the operating power supply detection section. [Figure 4] FIG. 10 is a diagram illustrating flicker visibility. [Figure 5] FIG. 10 is a waveform diagram showing the simulation results of the second determination section of the operating power supply detection section. [Figure 6] 10 is a time chart showing a change in the frequency of the output voltage when a power distribution system experiences a power outage and the power conditioner enters an islanding operation state. [Figure 7] 10 is a flowchart for explaining a switching process of an active detection unit performed by the islanding operation detection device. [Figure 8] FIG. 10 is a block diagram for explaining an isolated operation detection device according to a second embodiment, showing details of the internal configuration of an operating power supply detection unit. DETAILED DESCRIPTION OF THE INVENTION

[0021] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.

[0022] [First embodiment] FIG. 1 is a block diagram for explaining a power conditioner equipped with an islanding operation detection device according to a first embodiment, and shows the overall configuration of a power distribution system.

[0023] The power conditioner 1 converts DC power output by the DC power source A into AC power and outputs it to the connected power distribution system C. The combination of the power conditioner 1 and the DC power source A constitutes a distributed power source. The power distribution system C is a high-voltage power distribution system to which a load L is connected. The load L is a consumer receiving power. The power distribution system C may also be connected to a conventional power source B1 and a new power source B2. In this embodiment, the conventional power source B1 and the new power source B2 may be connected, disconnected, or connected but stopped, as indicated by dashed lines in FIG. 1 . The conventional power source B1 is a distributed power source equipped with a power conditioner having a conventional active islanding detection device. In this embodiment, the islanding detection device of the conventional power source B1 detects islanding operation using a frequency shift method. The detection method of the islanding detection device of the conventional power source B1 is not limited. New power source B2 is a distributed power source equipped with a power conditioner that has a new active islanding detection device. Multiple loads L, conventional power sources B1, and new power sources B2 can be connected to distribution system C (and a low-voltage distribution system connected to distribution system C via a transformer), but Figure 1 shows only one of each. Distribution system C is connected to the power grid via a circuit breaker. In the event of an accident in the power grid, a protective device installed on the power grid side opens the circuit breaker, and distribution system C is isolated from the power grid (power outage state). As a result, power conditioner 1 connected to distribution system C, which has been isolated from the power grid, enters an islanding state.

[0024] The DC power supply A outputs DC power and includes, for example, a solar cell. The solar cell generates DC power by converting solar energy into electrical energy. The DC power supply A outputs the generated DC power to the power conditioner 1. Note that the DC power supply A is not limited to one that generates DC power using a solar cell. For example, the DC power supply A may be a fuel cell or a storage battery, or may be a device that converts AC power generated by a diesel engine generator or a wind turbine generator into DC power and outputs the DC power.

[0025] The power conditioner 1 includes an inverter device 2, an islanding operation detection device 3, an interconnection breaker 4, and a voltage sensor 5. The power conditioner 1 is connected to a power distribution system C via the interconnection breaker 4.

[0026] The inverter device 2 converts DC power input from the DC power source A into AC power and outputs it. The inverter device 2 includes, for example, an inverter circuit, a filter circuit, and a control circuit (not shown). The inverter circuit converts DC power into AC power by switching a switching element (not shown) on and off based on a PWM signal input from the control circuit. The filter circuit removes high-frequency components caused by switching. The control circuit controls the inverter circuit. The control circuit generates a PWM signal that controls the output current of the inverter device 2 and outputs it to the inverter circuit. When a gate block signal (described later) is input from the islanding operation detection device 3, the control circuit stops generating the PWM signal. In this case, the inverter circuit stops switching, and the inverter device 2 stops its power conversion operation. Furthermore, when the islanding operation detection device 3 instructs the control circuit to inject an active signal (e.g., reactive power), the control circuit injects the active signal into the inverter circuit. The configuration of the inverter device 2 is not limited.

[0027] The interconnection circuit breaker 4 cuts off the connection between the power conditioner 1 and the power distribution system C. The interconnection circuit breaker 4 is normally closed, and the power conditioner 1 is connected to the power distribution system C. However, when an open command, which will be described later, is input from the islanding operation detection device 3, the interconnection circuit breaker 4 is opened, and the power conditioner 1 is disconnected from the power distribution system C. This prevents the power conditioner 1 from entering an islanding operation state.

[0028] The voltage sensor 5 detects the output voltage of the power conditioner 1 and inputs the detected voltage signal to the islanding operation detection device 3. The voltage sensor 5 may also be used to control the inverter device 2. In this case, the voltage sensor 5 also inputs the detected voltage signal to the control circuit of the inverter device 2.

[0029] The islanding operation detection device 3 detects islanding operation of the power conditioner 1. The islanding operation detection device 3 detects islanding operation based on a voltage signal input from the voltage sensor 5, and if islanding operation is detected, stops the power conditioner 1 and disconnects it from the power distribution system C. The islanding operation detection device 3 includes an operating power source detection unit 31, a switching unit 36, an active detection unit 32, a passive detection unit 33, a logical OR unit 34, and a stop processing unit 35.

[0030] The active power source detection unit 31 is configured to detect whether a conventional power source B1 or a new power source B2 (hereinafter, when not distinguishing between them, will be referred to collectively as "active power source B") that is operating at or above a specified level is connected to the power distribution system C. In this embodiment, the active power source detection unit 31 detects whether or not an active power source B that is operating at or above a specified level is connected (hereinafter, referred to as "connection state") by detecting whether or not voltage flicker is occurring in the power distribution system C. The active power source detection unit 31 detects the connection state based on a voltage signal input from the voltage sensor 5, and outputs a detection signal to the switching unit 36 ​​when it is determined that an active power source B that is operating at or above a specified level is connected.

[0031] 2 to 5 are diagrams illustrating the operating power supply detector 31. The operating power supply detector 31 detects both frequency and voltage fluctuations and detects the occurrence of voltage flicker in terms of both frequency and voltage. FIG. 2 is a block diagram showing the details of the internal configuration of the operating power supply detector 31. The operating power supply detector 31 includes a frequency detector 41, a change amount detector 42, a low-pass filter 43, a PP value detector 44, a frequency determiner 45, an RMS value detector 51, a PP value detector 52, a frequency detector 53, an index value calculator 54, a voltage determiner 55, and a logical product unit 46. The frequency detector 41, the change amount detector 42, the low-pass filter 43, the PP value detector 44, and the frequency determiner 45 are configured to detect voltage flicker from frequency fluctuations, and are collectively referred to as a "first determiner 49." The effective value detection unit 51, the PP value detection unit 52, the frequency detection unit 53, the index value calculation unit 54, and the voltage judgment unit 55 are components for detecting voltage flicker from voltage fluctuations, and when referred to collectively, are referred to as the "second judgment unit 59."

[0032] The frequency detection unit 41 detects the frequency f of the system voltage of the power distribution system C. The frequency detection unit 41 detects the frequency f based on a voltage signal input from the voltage sensor 5. The frequency detection unit 41 detects the frequency, for example, using a zero-crossing point counting method. The zero-crossing point counting method measures the time between points (zero-crossing points) where the instantaneous value of the AC voltage crosses the zero level, and detects the frequency from the reciprocal of the measured time. The frequency detection method used by the frequency detection unit 41 is not limited. For example, the frequency detection unit 41 may detect the frequency using a multiplication phase-locked loop (PLL). The power distribution system C is a three-phase AC distribution system, and the voltage sensor 5 detects the voltage signals of each phase. The frequency detection unit 41 detects the frequency of the voltage signals of each phase and outputs the average value of the three frequencies as the frequency f. The frequency detection unit 41 may also output the frequency of the voltage signal of one representative phase (e.g., the U phase) as the frequency f. The frequency detection unit 41 outputs the detected frequency f to the change amount detection unit .

[0033] The change amount detection unit 42 receives the frequency f from the frequency detection unit 41 and detects the amount of change Δf in the frequency f. The change amount detection unit 42 receives the frequency f every predetermined cycle (for example, about 20 ms, although this is not limited thereto) and calculates the difference between the input frequency f and the frequency f input one cycle before as the amount of change Δf. Hereinafter, this predetermined cycle will be referred to as a "frequency detection cycle." The change amount detection unit 42 outputs the detected amount of change Δf to the low-pass filter 43.

[0034] The low-pass filter 43 extracts only frequency components of 30 Hz or less from the amount of change Δf continuously input from the change amount detection unit 42, and outputs them to the PP value detection unit 44. Since humans perceive lighting flicker at frequencies between 2 and 30 Hz, in this embodiment, the low-pass filter 43 removes frequency components greater than 30 Hz.

[0035] The PP value detection unit 44 detects the peak-to-peak value (hereinafter referred to as "PP value") of the change Δf (frequency components of 30 Hz or less) input from the low-pass filter 43. In this embodiment, to capture frequency changes of 2 Hz or more, the PP value is detected over a period of 500 ms, which is a 2 Hz cycle. The PP value detection unit 44 detects the PP value while shifting the detection range for each frequency detection cycle (for example, approximately 20 ms). The PP value detection unit 44 outputs the detected PP value to the frequency determination unit 45.

[0036] The frequency determination unit 45 determines the occurrence of voltage flicker by comparing the PP value input from the PP value detection unit 44 with a predetermined threshold Δf0. The threshold Δf0 is set to a value at which it can be determined that voltage flicker is occurring, for example, approximately 0.05 Hz. Note that the threshold Δf0 is not limited and can be appropriately set based on experimental, simulation, on-site investigation results, etc. If the PP value input from the PP value detection unit 44 remains equal to or greater than the threshold Δf0 for a first determination time T1 or longer, the frequency determination unit 45 determines that voltage flicker is occurring and outputs a first determination signal, which is a high-level signal, to the AND unit 46. The first determination time T1 is set to exclude cases where the PP value exceeds the threshold Δf0 for only a very short time. In this embodiment, the first determination time T1 is set to, for example, 10 seconds. Note that the first determination time T1 is not limited and can be appropriately set based on experimental, simulation, on-site investigation results, etc.

[0037] FIG. 3 is a waveform diagram showing the simulation results of the first determination unit 49 of the operating power supply detection unit 31. FIG. 3(a) shows the time change in frequency f detected by the frequency detection unit 41. FIG. 3(b) shows the time change in the change amount Δf detected by the change amount detection unit 42. FIG. 3(c) shows the time change in the PP value of the change amount Δf detected by the PP value detection unit 44. At time "0," a voltage fluctuation is generated, and as shown in FIG. 3(a), the frequency f fluctuates significantly thereafter. As a result, as shown in FIG. 3(b), the change amount Δf also fluctuates significantly. Then, as shown in FIG. 3(c), the PP value continues to exceed the threshold value Δf0. If this state continues for the first determination time T1, the frequency determination unit 45 determines that voltage flicker is occurring and outputs a first determination signal.

[0038] The effective value detection unit 51 detects the effective voltage value v of the system voltage of the power distribution system C. The effective value detection unit 51 detects the effective voltage value v based on the voltage signal input from the voltage sensor 5. The power distribution system C is a three-phase AC power distribution system, and the voltage sensor 5 detects the voltage signal of each phase. The effective value detection unit 51 detects the effective voltage value from the voltage signal of each phase and outputs the average of the three effective voltage values ​​as the effective voltage value v. Note that the effective value detection unit 51 may also output the effective voltage value of the voltage signal of one representative phase (e.g., the U phase) as the effective voltage value v. The effective value detection unit 51 outputs the detected effective voltage value v to the P-P value detection unit 52 and the frequency detection unit 53. Note that the effective value detection unit 51 may detect another index representing the magnitude of the voltage, such as the maximum or average voltage value, instead of the effective voltage value.

[0039] The PP value detection unit 52 detects the peak-to-peak value (hereinafter referred to as the "PP value") of the voltage effective value v input from the effective value detection unit 51. Like the PP value detection unit 44, the PP value detection unit 52 detects the PP value over a 500 ms period, which is a 2 Hz cycle, in order to capture voltage fluctuations of 2 Hz or more. Like the PP value detection unit 44, the PP value detection unit 52 also detects the PP value while shifting the detection range for each frequency detection cycle (for example, approximately 20 ms). The PP value detection unit 52 outputs the detected PP value to the index value calculation unit 54.

[0040] The frequency detector 53 detects the frequency f of the fluctuation of the effective voltage v. V The frequency detector 53 detects the frequency f based on the voltage effective value v input from the effective value detector 51. V In this embodiment, the time from when the PP value detection unit 52 detects the upper peak value to when it detects the lower peak value is defined as a half cycle, and the frequency f V The frequency detection method of the frequency detection unit 53 is not limited, and the detection may be performed in the same manner as the frequency detection unit 41, or in another manner. The frequency detection unit 53 detects the detected frequency f V to the index value calculation unit 54.

[0041] The index value calculation unit 54 calculates an index value for determining voltage flicker. Generally, voltage flicker is determined by the following formula: 10 " and this index value is managed so that it is equal to or less than a regulated value (for example, "0.45"). 10 The index value ΔV is similar to X Figure 4 shows the flicker visibility curve a, which shows the visibility of flicker for each frequency of voltage fluctuation as a coefficient. ΔV 10 The index value ΔV is calculated as the square root of the integrated value of the square of the product of the change in the frequency component and the flicker visibility coefficient at that frequency for each frequency component contained in the one-minute voltage fluctuation. X is ΔV 10 Specifically, the index value calculation unit 54 multiplies the PP value of the voltage effective value v detected by the PP value detection unit 52 by the frequency f detected by the frequency detection unit 53. V By multiplying the coefficient according to X The coefficients used here are a simplified version of the visibility curve a, and are calculated based on the frequency f V When the frequency is 3 Hz or more, it is set to "1", and when it is less than 3 Hz, it is set to "0.6" (shown by the solid line b in Figure 4). X The coefficient used to calculate the index value ΔV 10 Since the value is greater than the coefficient used to calculate (see visibility curve a), the index value ΔV X is the index value ΔV 10 The index value ΔV calculated by the index value calculation unit 54 is a larger value. X The method for calculating the index value ΔV is not limited to this. X For example, the general index value ΔV 10 The index value calculation unit 54 may calculate the calculated index value ΔV X is output to the voltage determination unit 55.

[0042] The voltage determination unit 55 determines the index value ΔV X a predetermined threshold ΔV X0 The occurrence of voltage flicker is determined by comparing with the threshold value ΔV X0 is set to a value that can be used to determine whether voltage flicker is occurring. For example, the index value ΔV 10 The threshold value ΔV is set to "0.45", which is the same as the regulation value of X0 is not limited, and is set appropriately based on the results of experiments, simulations, or on-site investigations. X is the threshold ΔV X0 If the above state continues for a second determination time T2 or longer, it is determined that voltage flicker is occurring, and a second determination signal, which is a high-level signal, is output to the AND unit 46. The second determination time T2 is the time when the index value ΔV X For a very short time, the threshold ΔV X0 In this embodiment, the second determination time T2 is set to, for example, 3 seconds. Note that the second determination time T2 is not limited and may be set appropriately based on experiments, simulation results, on-site investigation results, or the like.

[0043] 5A and 5B are waveform diagrams showing the simulation results of the second determination unit 59 of the operating power source detection unit 31. FIG. 5A shows the time variation of the voltage effective value v detected by the effective value detection unit 51 (see the solid line v in the figure, the vertical axis on the left), and the time variation of the PP value of the voltage effective value v detected by the PP value detection unit 52 (see the dashed line PP in the figure, the vertical axis on the right). FIG. 5B shows the time variation of the frequency f detected by the frequency detection unit 53. V 5(c) shows the time change of the index value ΔV detected by the index value calculation unit 54. X At time "0", the voltage fluctuation causes the voltage effective value v to fluctuate greatly. This causes the PP value to rise and the frequency f V is decreasing. ΔV X was almost "0" until time "0", but after time "0" it rose to ΔV X0If this state continues for the second determination time T2, the voltage determination unit 55 determines that voltage flicker is occurring and outputs a second determination signal.

[0044] The logical product unit 46 generates a logical product signal of the signal input from the frequency determination unit 45 and the signal input from the voltage determination unit 55, and outputs the result to the switching unit 36. Therefore, when the logical product unit 46 receives a first determination signal (high level signal) from the frequency determination unit 45 and a second determination signal (high level signal) from the voltage determination unit 55, the logical product unit 46 outputs a detection signal that is a high level signal. On the other hand, when the logical product unit 46 does not receive the first determination signal (high level signal) from the frequency determination unit 45 or does not receive the second determination signal (high level signal) from the voltage determination unit 55, the logical product unit 46 outputs a low level signal. In other words, the logical product unit 46 outputs a detection signal only when the first determination unit 49 detects voltage flicker from frequency fluctuations and the second determination unit 59 detects voltage flicker from voltage fluctuations. As described above, when it is determined that voltage flicker is occurring in the power distribution system C, the operating power source detection unit 31 determines that an operating power source B greater than the specified level is connected to the power distribution system C, and outputs a detection signal to the switching unit 36.

[0045] The switching unit 36 ​​switches between a state in which the active detection unit 32 is enabled and a state in which it is disabled. The switching unit 36 ​​outputs an ON signal, which is, for example, a high-level signal, when the active detection unit 32 is enabled, and outputs an OFF signal, which is, for example, a low-level signal, when the active detection unit 32 is disabled. The switching unit 36 ​​outputs an OFF signal while a detection signal is being input from the operating power supply detection unit 31. Furthermore, the switching unit 36 ​​switches the OFF signal to an ON signal when a state in which no detection signal is being input from the operating power supply detection unit 31 continues for a third determination time T3.

[0046] Even if the voltage flicker subsides and the active power source detector 31 no longer outputs a detection signal, voltage fluctuations still remain in the power distribution system C to a degree that is not deemed to be voltage flicker. Operating the active detector 32 in this state may increase the voltage fluctuations, causing the voltage flicker to recur and the active power source detector 31 to output a detection signal. In this case, the switching unit 36 ​​switches from an ON signal to an OFF signal, resulting in a state in which the ON and OFF signals are alternately switched over in a short period of time. The third determination time T3 is set to prevent this state from occurring by delaying the timing at which the switching unit 36 ​​switches the OFF signal to an ON signal. The third determination time T3 is set to the time from when the voltage flicker subsides and the active power source detector 31 no longer outputs a detection signal until the voltage fluctuations subside to a certain extent (to a degree that will not cause the voltage flicker to recur even when the active detector 32 is operating).

[0047] Furthermore, the grid interconnection regulations stipulate that a power conditioner connected to a high-voltage distribution system must be disconnected within three seconds if it enters an islanding state. In this embodiment, the third judgment time T3 is set to two seconds or less, taking into consideration that the active detection unit 32 detects islanding within one second so that islanding can be detected within three seconds. The specific value of the third judgment time T3 is set appropriately based on experimentation, simulation results, on-site investigation results, or the like. Note that the switching unit 36 ​​may switch the OFF signal to an ON signal when the third judgment time T3 is not set and the detection signal is no longer input from the active power source detection unit 31.

[0048] The active detection unit 32 has the same function as a conventional active islanding detection device and detects islanding by injecting an active signal. In this embodiment, the active signal is reactive power. Specifically, the active detection unit 32 sets a target value for reactive power in the control circuit of the inverter device 2, thereby injecting reactive power into the inverter device 2. The active detection unit 32 then detects islanding based on a voltage signal input from the voltage sensor 5. In this embodiment, the active detection unit 32 detects islanding using, for example, a slip mode frequency shift method. Note that the method for detecting islanding by the active detection unit 32 is not limited. The active detection unit 32 is in a functional state while receiving an ON signal from the switching unit 36, and injects reactive power to detect islanding. On the other hand, the active detection unit 32 is in a non-functional state while receiving an OFF signal from the switching unit 36, and does not inject reactive power. When the active detection unit 32 detects islanding, it outputs an active detection signal, for example, a high-level signal, to the logical OR unit 34.

[0049] The passive detection unit 33 detects islanding based on the voltage signal input from the voltage sensor 5 without injecting reactive power. The passive detection unit 33 detects islanding based on changes in the electrical characteristics of the power distribution system C caused by increasing the reactive power injected by the islanding detection devices of the conventional power source B1 and the new power source B2 when islanding occurs. In this embodiment, the passive detection unit 33 detects islanding based on the voltage signal input from the voltage sensor 5. Specifically, the passive detection unit 33 detects frequency f based on the voltage signal input from the voltage sensor 5. Note that the frequency detection process of the active power source detection unit 31 may also be used. The passive detection unit 33 then determines whether frequency f matches a preset determination condition. The determination condition is set as a condition that can determine that islanding has occurred. When islanding occurs, the islanding detection devices of the conventional power source B1 and the new power source B2 increase the reactive power they inject to change the frequency of the voltage of the power distribution system C, and detect islanding when the frequency exceeds a threshold. The judgment condition is set based on the change in frequency at this time.

[0050] In this embodiment, the determination condition is that the change Δf in frequency f remains equal to or greater than the threshold value Δf1 for a predetermined period of time T0 or longer. The passive detection unit 33 calculates the change Δf in frequency f for each frequency detection cycle. The calculation method for the change Δf is the same as that used by the change detection unit 42 of the active power source detection unit 31. The change detection unit 42 of the active power source detection unit 31 may also be used to detect the change Δf. The threshold value Δf1 is set to a value that determines that islanding has occurred and that the frequency f has changed due to reactive power injection by the islanding detection devices of the conventional power source B1 and the new power source B2. The threshold value Δf1 is not limited and can be set appropriately based on experimental results, simulation results, on-site investigation results, or the like. However, system disturbances other than islanding may also cause the frequency f to change and the change Δf to exceed the threshold value Δf1. In such cases, the change Δf remains equal to or greater than the threshold value Δf1 for a short period of time. The predetermined time T0 is set so that a change in frequency f due to a system disturbance or the like is not determined to be islanding operation. Note that the predetermined time T0 is not limited.

[0051] In this embodiment, the passive detection unit 33 determines that the determination condition is met when the calculated change amount Δf remains equal to or greater than the threshold value Δf1 for a predetermined time period T0 or longer. When the passive detection unit 33 determines that the determination condition is met, it outputs a passive detection signal, which is a high-level signal, to the logical sum unit 34.

[0052] 6 is a time chart showing the change in the frequency f of the output voltage when the power distribution system C shown in FIG. 1 experiences a power outage and the power conditioner 1 enters an islanding operation state. In each diagram, the horizontal axis indicates the time elapsed since the power outage occurred, with 0 seconds representing the time. Note that the vertical and horizontal axes of the waveform diagrams and time charts referred to in this specification have been appropriately enlarged or reduced for ease of understanding, and the waveforms shown have also been simplified, exaggerated, or emphasized for ease of understanding.

[0053] Figures 6(a) and (b) show the case where an active power source B is connected to a power distribution system C, and the active power source B includes both a conventional power source B1 and a new power source B2 (see Figure 1). The same applies when the active power source B consists solely of a new power source B2. Figure 6(a) shows the change in frequency f. Figure 6(b) shows the change in the amount of change in frequency f, Δf. When a power outage occurs, the system frequency of power distribution system C changes slightly. The new power source B2 detects this frequency change and injects reactive power, raising or lowering the system frequency. Figure 6(a) shows the case where the system frequency increases. Note that Figure 6(c), described below, also shows the case where the system frequency increases. The new power source B2 typically detects islanding between 0.1 and 0.2 seconds after a power outage and is disconnected from the power distribution system C. Therefore, reactive power is injected after the power outage occurs, and the system frequency increases. As shown in Figure 6(a), the frequency f increases for at least 0.1 seconds after the power outage. Subsequent changes in frequency f vary depending on the number and capacity of conventional power sources B1 and new power sources B2 connected to the power distribution system C, as well as the number and size of loads L. Due to the increase in frequency f, the change Δf in frequency f exceeds the threshold value Δf1 immediately after the power outage, as shown in Figure 6(b). When the state in which the change Δf is greater than or equal to the threshold value Δf1 continues for a predetermined time period T0 or longer, the passive detection unit 33 determines that the determination condition is met and outputs a passive detection signal.

[0054] Figures 6(c) and (d) show the case where an active power source B is connected to the power distribution system C, and the active power source B is only a conventional power source B1. Figure 6(c) shows the change in frequency f. Figure 6(d) shows the change in the change in frequency f, Δf. In the cases of Figures 6(c) and (d), since the new power source B2 is not connected, when a power outage occurs, the conventional power source B1 detects the change in the system frequency and injects reactive power, raising the system frequency. The conventional power source B1 detects islanding within 0.5 to 1 second of the power outage and is disconnected from the power distribution system C. Therefore, as shown in Figure 6(c), the frequency f rises for at least 0.5 seconds after the power outage. The subsequent change in frequency f depends on the number and capacity of the conventional power sources B1 connected to the power distribution system C, as well as the number and size of the loads L. Due to the increase in frequency f, the change in frequency f, Δf, exceeds the threshold value Δf1 immediately after the power outage, as shown in Figure 6(d). When the state in which the amount of change Δf is equal to or greater than the threshold value Δf1 continues for a predetermined time period T0 or longer, the passive detection unit 33 determines that the determination condition is met and outputs a passive detection signal.

[0055] As shown in Figure 6, if an active power source B is connected to the power distribution system C, the passive detection unit 33 can detect islanding within three seconds of a power outage. Even if the power distribution system C is not experiencing a power outage but a system disturbance occurs, the conventional power source B1 and the new power source B2 detect the frequency change and inject reactive power. However, since there is no power outage, the frequency f does not increase. Therefore, the frequency f increases slightly but then immediately decreases. As a result, the change Δf in the frequency f does not exceed the threshold Δf1. Even if the frequency f changes significantly instantaneously, the change Δf does not exceed the threshold Δf1 for a period of time longer than the predetermined time T0. Therefore, in these cases, the passive detection unit 33 does not determine that the determination condition is met.

[0056] The logical sum unit 34 generates a logical sum signal of the signal input from the active detection unit 32 and the signal input from the passive detection unit 33, and outputs the logical sum signal to the stop processing unit 35. Therefore, when an active detection signal (high level signal) is input from the active detection unit 32, or when a passive detection signal (high level signal) is input from the passive detection unit 33, the logical sum unit 34 outputs an islanding operation detection signal, which is a high level signal, to the stop processing unit 35. In other words, when at least one of the active detection unit 32 or the passive detection unit 33 detects islanding operation, the logical sum unit 34 determines that an islanding operation state is occurring, and outputs the islanding operation detection signal, which is a high level signal, to the stop processing unit 35.

[0057] When the stop processing unit 35 receives an islanding operation detection signal from the logical sum unit 34, it performs a process of stopping the power conditioner 1. Specifically, the stop processing unit 35 outputs a gate block signal to the inverter device 2 to stop the power conversion operation of the inverter device 2. In addition, the stop processing unit 35 outputs an open command to the interconnection breaker 4 to disconnect the power conditioner 1 from the power distribution system C.

[0058] The islanding operation detection device 3 may be realized as an analog circuit or a digital circuit. The processing performed by each unit may be designed as a program, and a computer may function as the islanding operation detection device 3 by executing the program. The program may also be recorded on a recording medium and read by a computer.

[0059] 7 is a flowchart for explaining the switching process of the active detection unit 32 performed by the islanding operation detection device 3. The switching process is executed at a predetermined timing.

[0060] First, it is determined whether or not voltage flicker has been detected (S1). Specifically, the active power source detection unit 31 detects whether or not voltage flicker is occurring, and if so, outputs a detection signal to the switching unit 36. If voltage flicker is detected (S1: YES), the active detection unit 32 enters a non-functioning state (stopped state) (S2). Specifically, the detection signal is input to the switching unit 36, and the switching unit 36 ​​outputs an OFF signal to the active detection unit 32. As a result, the active detection unit 32 receives the OFF signal from the switching unit 36 ​​and enters a non-functioning state. If voltage flicker is not detected in step S1 (S1: NO), it is determined whether or not a third determination time T3 has elapsed since the state in which voltage flicker was no longer detected (S3). Specifically, the switching unit 36 ​​starts timing when the detection signal is no longer input, and determines whether the measured time is equal to or longer than the third determination time T3.

[0061] If the third determination time T3 has not elapsed (S3: NO), the active detection unit 32 enters a non-functioning state (stopped state) (S2). On the other hand, if the third determination time T3 has elapsed (S3: YES), the active detection unit 32 enters a functioning state (functioning state) (S4). Specifically, since a state in which no detection signal is input to the switching unit 36 ​​continues for the third determination time T3, the switching unit 36 ​​outputs an ON signal to the active detection unit 32. As a result, the active detection unit 32 receives an ON signal from the switching unit 36 ​​and enters a functioning state. Thereafter, when a voltage flicker is detected (S1: YES), the timing by the switching unit 36 ​​is stopped, and the measured time is cleared to zero.

[0062] 7 is just an example, and the switching process of the islanding operation detection device 3 is not limited to the above. The passive detection unit 33 is always functioning regardless of the switching process.

[0063] When voltage flicker is detected, the active detection unit 32 does not function, but the passive detection unit 33 does. In this case, because an operating power source B greater than the specified amount is connected to the power distribution system C, the passive detection unit 33 can detect islanding operation when islanding occurs. On the other hand, when voltage flicker is not detected, the active detection unit 32 functions. Like a conventional active islanding operation detection device, the active detection unit 32 detects islanding operation by injecting reactive power. Therefore, in this case, when islanding operation occurs, the active detection unit 32 can detect islanding operation. As described above, the islanding operation detection device 3 can detect islanding operation whether or not voltage flicker is detected.

[0064] As described above, the switching unit 36 ​​delays the timing of switching the OFF signal to the ON signal. However, because the third determination time T3 is set to within two seconds, even if the timing at which voltage flicker is no longer detected and the timing at which a power outage occurs are simultaneous, the active detection unit 32 starts functioning after the voltage flicker has converged and the third determination time T3 has elapsed (within two seconds). The active detection unit 32 detects islanding within one second, so it can detect islanding within three seconds of the occurrence of a power outage. Furthermore, because the switching unit 36 ​​delays the timing at which it switches the OFF signal to the ON signal, the active detection unit 32 injects reactive power after the voltage fluctuations have almost converged. Therefore, the recurrence of voltage flicker is suppressed.

[0065] Next, the effects of the isolated operation detection device 3 according to this embodiment will be described.

[0066] According to this embodiment, the switching unit 36 ​​switches the active detection unit 32 to a state in which it is not functioning when the active power source detection unit 31 detects that the active power source B is connected at a level greater than or equal to the specified level. As a result, when the active power source B is connected at a level greater than or equal to the specified level, the islanding operation detection device 3 does not function the active detection unit 32 and functions only the passive detection unit 33 to detect islanding. In this case, the islanding operation detection device 3 does not inject reactive power, and therefore does not induce voltage flicker. On the other hand, the switching unit 36 ​​switches the active detection unit 32 to a state in which it is functioning when the active power source detection unit 31 does not detect that the active power source B is connected at a level greater than or equal to the specified level. As a result, the islanding operation detection device 3 activates the active detection unit 32 to inject reactive power when the active power source B is not connected at a level greater than or equal to the specified level. However, because the active power source B is not connected at a level greater than or equal to the specified level, injecting reactive power does not induce voltage flicker.

[0067] Furthermore, in this embodiment, the operating power source detection unit 31 detects the connection status (whether or not a specified number of operating power sources B are connected) by detecting whether voltage flicker is occurring in the distribution system C. The more operating power sources B connected to the distribution system C, the more reactive power is injected, resulting in larger voltage fluctuations. When voltage fluctuations become larger, voltage flicker occurs. In other words, there is a correlation between the occurrence of voltage flicker and the total capacity of the connected operating power sources B. Therefore, the operating power source detection unit 31 can appropriately detect the connection status.

[0068] Furthermore, in this embodiment, the switching unit 36 ​​switches the OFF signal to the ON signal when a state in which no detection signal is input from the active power source detection unit 31 continues for a third determination time T3. The third determination time T3 is set to the time from when the voltage flicker converges and the active power source detection unit 31 stops outputting a detection signal until the voltage fluctuation converges to a certain extent. The active detection unit 32 injects reactive power after the voltage fluctuation has almost converged, thereby suppressing the recurrence of voltage flicker. This prevents the switching unit 36 ​​from switching ON and OFF signals alternately within a short period of time.

[0069] Furthermore, in this embodiment, the third judgment time T3 is set to within two seconds. Therefore, even if the timing at which voltage flicker is no longer detected and the timing at which a power outage occurs are simultaneous, the active detection unit 32 starts functioning after the voltage flicker has converged and the third judgment time T3 has elapsed (within two seconds), and detects islanding within one second, so that islanding can be detected within three seconds after the occurrence of the power outage.

[0070] In the present embodiment, the passive detection unit 33 performs the determination based on the frequency f. However, the present invention is not limited to this. The passive detection unit 33 may perform the determination based on electrical characteristics such as the voltage, current, power (active power, reactive power), and frequency output by the power conditioner 1, as well as the voltage, current, power, and frequency of predetermined harmonic components such as the third, fifth, and seventh harmonic components. The detected values ​​used by the passive detection unit 33 for the determination may be the magnitude, deviation (amount of change from a reference), amount of change, and rate of change of the electrical characteristics. The unbalance rate may be detected from the three-phase AC voltage, and the detected value used for the determination may be the unbalance rate. The determination conditions set in the passive detection unit 33 are appropriately set depending on the detection values ​​used. For example, the passive detection unit 33 may determine that the determination conditions are met when the detection value is equal to or greater than a threshold value, without waiting for the predetermined time T0 to elapse. The determination conditions are not limited, and may be any conditions that can determine that islanding has occurred.

[0071] The passive detection unit 33 may also use two or more types of detection values ​​to detect islanding operation separately. For example, the passive detection unit 33 may detect islanding operation based on the amount of change Δf in frequency f as described above, and separately detect islanding operation based on the effective voltage value v of the grid voltage, and detect islanding operation when both detect islanding operation. The passive detection unit 33 may also detect islanding operation when at least one of the two detects islanding operation.

[0072] In the present embodiment, the operating power source detector 31 detects whether voltage flicker is occurring in terms of both frequency and voltage, but this is not limiting. For example, the operating power source detector 31 may detect whether voltage flicker is occurring based solely on frequency fluctuations. That is, the operating power source detector 31 may include only the first determination unit 49 (the frequency detector 41, the change amount detector 42, the low-pass filter 43, the PP value detector 44, and the frequency determination unit 45). The operating power source detector 31 may also detect whether voltage flicker is occurring based solely on voltage fluctuations. That is, the operating power source detector 31 may include only the second determination unit 59 (the effective value detector 51, the PP value detector 52, the frequency detector 53, the index value calculator 54, and the voltage determination unit 55). The operating power source detector 31 is not limited to using a frequency-based determination method, and is not limited to using a voltage-based determination method. For example, the operating power source detector 31 may use a conventional index value ΔV 10 and if the calculated value is equal to or greater than the regulation value, it may be determined that voltage flicker is occurring.

[0073] Furthermore, in this embodiment, the active power source detection unit 31 detects the connection state by detecting whether or not voltage flicker is occurring, but this is not limiting. The active power source detection unit 31 may detect the connection state by other methods. For example, the active power source detection unit 31 may detect the connection state by collecting the operation state of each active power source B connected to the power distribution system C via communication or the like. Furthermore, the active power source detection unit 31 may detect the connection state based on, for example, changes in frequency f due to reactive power injected by the active power source B during a power outage.

[0074] Note that the switching unit 36 ​​may cause the active detection unit 32 to inject a predetermined amount of reactive power when switching from an off signal to an on signal. If a power outage occurs at the time of the switching, the active detection unit 32 may not be able to detect islanding operation even if it becomes functional because the reactive power injected into the power distribution system C is small. Injecting a predetermined amount of reactive power when the active detection unit 32 becomes functional makes it easier for the active detection unit 32 to detect islanding operation.

[0075] Second Embodiment FIG. 8 is a diagram for explaining the islanding operation detection device 3a according to the second embodiment, and is a block diagram showing details of the internal configuration of the operating power supply detection unit 31. In the figure, elements that are the same as or similar to the operating power supply detection unit 31 (see FIG. 2) of the islanding operation detection device 3 according to the first embodiment are given the same reference numerals, and duplicated explanations will be omitted. Note that the configuration of the islanding operation detection device 3a other than the operating power supply detection unit 31 is the same as that of the islanding operation detection device 3, so illustration and explanation of the configuration will be omitted. The islanding operation detection device 3a according to this embodiment differs from the islanding operation detection device 3 in that the operating power supply detection unit 31 has an automatic threshold adjustment function.

[0076] The operating power supply detection unit 31 according to the second embodiment further includes a threshold value change unit 47. The threshold value change unit 47 is configured to change the threshold value and the determination time set in the frequency determination unit 45 and the voltage determination unit 55. The threshold value change unit 47 receives the PP value of the change amount Δf from the PP value detection unit 44, and calculates the index value ΔV X The threshold value changing unit 47 receives the signal (ON signal and OFF signal) output from the switching unit 36. When the ON signal input from the switching unit 36 ​​is switched to the OFF signal, or when the AND unit 46 starts to output the detection signal, the threshold value changing unit 47 changes the PP value of the amount of change Δf and the index value ΔV X The change in Δf is recorded. The PP value and index value ΔV X The threshold value Δf0 and the first determination time T1 of the frequency determination unit 45, and the threshold value ΔV X0and the value of the second judgment time T2. When a voltage flicker is detected and the active detection unit 32 stops functioning, the voltage flicker converges, but the manner of convergence differs depending on the connection state of the operating power source B and the state of the power distribution system C. The threshold change unit 47 changes the PP value of the variation Δf and the index value ΔV X The threshold value and determination time for determining whether a voltage flicker has been detected are adjusted to optimal values ​​according to how the voltage flicker changes.

[0077] For example, the PP value and the index value ΔV of the change Δf from when the active detection unit 32 stopped functioning are X If the change in is relatively slow, it is considered that the total capacity of the operating power source B is relatively large compared to the capacity of the power distribution system C. In this case, the threshold value is made smaller and the determination time is shortened. This makes it possible to speed up the detection of voltage flicker. Also, it is possible to return the active detection unit 32 to normal operation after the voltage flicker has converged (not to determine that the voltage flicker has converged until it has become considerably smaller). Note that the logic for adjusting the threshold value and determination time by the threshold change unit 47 is not limited. Also, the threshold change unit 47 adjusts the PP value of the amount of change Δf or the index value ΔV X Alternatively, the threshold value changing unit 47 may adjust only the threshold value or only the determination time. Alternatively, the adjustment may be made to only either the frequency determining unit 45 or the voltage determining unit 55.

[0078] In this embodiment as well, when an operating power source B equal to or greater than the specified level is connected, the islanding operation detection device 3a does not activate the active detection unit 32 and activates only the passive detection unit 33 to detect islanding operation, so voltage flicker is not induced. Furthermore, when an operating power source B equal to or greater than the specified level is not connected, the islanding operation detection device 3a activates the active detection unit 32 to inject reactive power, but since an operating power source B equal to or greater than the specified level is not connected, injection of reactive power does not induce voltage flicker. Furthermore, the islanding operation detection device 3a has a common configuration with the islanding operation detection device 3 and therefore achieves the same effect as the islanding operation detection device 3. Furthermore, according to this embodiment, the threshold value changing unit 47 changes the PP value of the variation Δf and the index value ΔV XTherefore, the active power source detector 31 can automatically adjust the threshold value and the determination time for determining whether a voltage flicker has been detected to optimal values. For example, the active power detector 32 automatically adjusts the threshold value and the determination time for determining whether a voltage flicker has been detected to optimal values ​​based on the change in the voltage flicker. X If the change in voltage is relatively slow, and the threshold value changing unit 47 is set to reduce the threshold value and shorten the determination time, the voltage flicker detection can be accelerated, making it possible to detect signs of voltage flicker occurrence. Also, since the active detection unit 32 can be prevented from being restored until the voltage flicker has reliably converged, the recurrence of voltage flicker can be suppressed when the active detection unit 32 is restored.

[0079] The islanding operation detection device, the islanding operation detection method, and the power conditioner equipped with the islanding operation detection device according to the present invention are not limited to the above-described embodiments. The specific configurations of the individual parts of the islanding operation detection device, the islanding operation detection method, and the power conditioner equipped with the islanding operation detection device according to the present invention can be freely designed and modified in various ways. [Explanation of symbols]

[0080] 1: power conditioner, 3, 3a: islanding operation detection device, 31: operating power source detection unit, 32: active detection unit, 33: active detection unit, 36: switching unit, B: operating power source, C: power distribution system

Claims

1. An islanding operation detection device that detects islanding operation of a power conditioner, an operating power source detection unit that detects whether or not an operating power source equal to or greater than a specified level is connected to a power distribution system to which the power conditioner is connected; an active detection unit that actively detects islanding by injecting a first active signal into the power distribution system; a passive detection unit that detects an islanding operation based on a change in electrical characteristics caused by another islanding operation detection device disposed in the power distribution system injecting a second active signal into the power distribution system; and a switching unit that switches the active detection unit between a functioning state and a non-functioning state according to a detection result of the operational power detection unit; Equipped with An islanding operation detection device characterized by:

2. the operating power source detection unit detects that the operating power source having a voltage equal to or greater than the specified level is connected by detecting occurrence of voltage flicker in the power distribution system. The islanding operation detection device according to claim 1 .

3. the operating power supply detection unit changes a threshold value for determining occurrence of voltage flicker based on how the voltage flicker converges when the switching unit switches the active detection unit to a state in which the active detection unit is not functioning. The islanding operation detection device according to claim 2 .

4. The switching unit is When the operating power supply detection unit detects that the operating power supply is connected at or above the specified level, the active detection unit is switched to a state in which it is not functioning; When the operating power source detection unit has not detected that the operating power source is connected to the specified or greater level for a determination time, the active detection unit is switched to a state in which it is enabled.

4. The isolated operation detection device according to claim 1.

5. The determination time is within 2 seconds. The islanding operation detection device according to claim 4.

6. the switching unit injects a predetermined amount of a first active signal into the active detection unit when switching the active detection unit from a disabled state to a enabled state.

6. An isolated operation detection device according to claim 1.

7. An isolated operation detection device according to any one of claims 1 to 6, A power conditioner characterized by the above.

8. An islanding operation detection method for detecting islanding operation of a power conditioner, comprising: an operating power source detection step of detecting whether or not an operating power source equal to or greater than a specified level is connected to a power distribution system to which the power conditioner is connected; an active detection step of actively detecting islanding by injecting a first active signal into the power distribution system; a passive detection step of detecting an islanding operation based on a change in electrical characteristics caused by another islanding detection device disposed in the power distribution system injecting a second active signal into the power distribution system; a switching step of switching between a state in which the active detection step is performed and a state in which the active detection step is not performed depending on the detection result of the operational power source detection step; Equipped with An islanding operation detection method.

Citation Information

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