Solar power generation system
A photovoltaic power generation system with a master-slave circuit breaker configuration and controlled disconnection methods reduces installation costs and enhances safety by using a string of solar cell module groups with 165V or less open-circuit voltage, addressing the high cost of individual cutoff devices in solar power systems.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- OMRON CORP
- Filing Date
- 2022-02-22
- Publication Date
- 2026-04-21
AI Technical Summary
The installation of a cutoff device with a rapid shutdown function for each solar cell module in a solar power generation system increases the overall cost, necessitating a solution that balances cost reduction with improved safety.
A photovoltaic power generation system with a string of solar cell module groups, each with an open-circuit voltage of 165V or less, utilizing a master-slave relationship between first and second circuit breakers for controlled disconnection via communication methods other than power line communication, reducing the complexity and cost of the second circuit breaker.
The system achieves reduced installation costs for cutoff devices while ensuring high safety by simplifying the configuration of the second circuit breaker and minimizing noise susceptibility in communication, thereby providing a safer solar power generation system.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a solar power generation system.
Background Art
[0002] In the United States, for the purpose of protecting firefighters from electric shock and the like during emergencies such as fires, the introduction of a so-called rapid shutdown function that immediately stops power generation by a solar power generation system during emergencies is mandated by NEC (National Electrical Code). For example, Patent Document 1 discloses a solar power generation system that stops the output of power from a solar cell module to an inverter according to the operating state of the inverter.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In a solar power generation system, in order to further improve the safety of firefighters during a fire or the like, for example, it is preferable to install a cutoff device having a rapid shutdown function for each solar cell module. However, when a cutoff device is installed for each solar cell module, the installation cost of the cutoff device becomes high.
[0005] An object of the present invention is to provide a solar power generation system that can achieve both reduction of the installation cost of a cutoff device and improvement of safety in a solar power generation system.
Means for Solving the Problems
[0006] A photovoltaic power generation system according to one aspect of the present invention comprises a string, an inverter, a first circuit breaker, and a second circuit breaker. The string includes a plurality of solar cell module groups connected in series with each other. Each of the plurality of solar cell module groups includes one or a plurality of solar cell modules connected in series. The inverter is connected to the string and converts the DC power output from the string into AC power. The first circuit breaker is connected to a first circuit that connects the plurality of solar cell module groups together. The second circuit breaker is connected to a second circuit that connects a plurality of solar cell module groups that are different from the plurality of solar cell module groups connected to the first circuit. The open-circuit voltage of each of the plurality of solar cell module groups in the string is less than or equal to a predetermined open-circuit voltage. The first circuit breaker disconnects the plurality of solar cell module groups connected to the first circuit in response to a first control signal from the inverter. The second circuit breaker disconnects the plurality of solar cell module groups connected to the second circuit in response to a second control signal output from the first circuit breaker via a communication line connected to the first and second circuit breakers using a communication method different from power line communication.
[0007] In this solar power generation system, the first and second circuit breakers are in a master-slave relationship. The second circuit breaker disconnects the connections between multiple solar cell module groups in accordance with the second control signal output from the first circuit breaker. This simplifies the configuration of the second circuit breaker, thereby reducing its installation cost. Furthermore, since the open-circuit voltage of each solar cell module group is below a predetermined open-circuit voltage, a highly safe solar power generation system can be provided. In addition, the second control signal output from the first circuit breaker is output via a communication line using a communication method different from power line communication, making it less susceptible to noise compared to power line communication and enabling stable communication from the first to the second circuit breaker.
[0008] The first circuit breaker may, in response to a first control signal from the inverter, disconnect the connections between multiple solar cell module groups connected to the first circuit, and then output a second control signal to the second circuit breaker. In this case, the voltage related to the second circuit breaker can be reduced. This makes it possible to reduce the cost of the second circuit breaker.
[0009] Multiple groups of solar cell modules in a string may have an open-circuit voltage of 165V or less per group. In this case, a safer solar power generation system can be provided.
[0010] Multiple groups of solar cell modules in a string may include a first group. The first circuit breaker may include a first switch connected to the anode terminal of the first group and a second switch connected to the cathode terminal of the first group. In this case, multiple circuits can be switched on and off with a single first circuit breaker.
[0011] The first circuit breaker may be capable of independently controlling the opening and closing of the first and second switching sections. In this case, for example, if a malfunction such as a contact failure occurs in the first switching section, the second switching section, which is functioning normally, can be used as is.
[0012] Multiple groups of solar modules in a string may include a first group. The first circuit breaker may be driven by the power generated by one or multiple solar modules connected in series belonging to the first group. In this case, for example, when installing the first circuit breaker in an existing solar power generation system, additional wiring connecting the inverter and the first circuit breaker can be omitted. This reduces the installation cost of the first circuit breaker. Furthermore, since the driving voltage range of the first circuit breaker can be kept small, the manufacturing cost of the first circuit breaker can be reduced.
[0013] The string may include a second group of solar cell module groups. The second circuit breaker may include a third switch connected to the anode terminal of the second group and a fourth switch connected to the cathode terminal of the second group. In this case, multiple circuits can be switched on and off with a single second circuit breaker.
[0014] The second circuit breaker may be capable of independently controlling the opening and closing of the third and fourth switching sections. In this case, for example, if a malfunction such as a contact failure occurs in the third switching section, the fourth switching section, which is functioning normally, can continue to be used.
[0015] Multiple groups of solar modules in a string may include a second group. The second circuit breaker may be driven by the power generated by one or multiple solar modules connected in series belonging to the second group. In this case, for example, when installing the second circuit breaker in an existing solar power generation system, additional wiring connecting the inverter and the second circuit breaker can be omitted. This reduces the installation cost of the second circuit breaker. Furthermore, since the driving voltage range of the second circuit breaker can be kept small, the manufacturing cost of the second circuit breaker can be reduced.
[0016] The inverter may output the first control signal to the first circuit breaker via power line communication. In this case, when installing the first circuit breaker in an existing solar power generation system, additional wiring to ensure communication between the inverter and the first circuit breaker can be omitted, thus reducing the installation cost of the first circuit breaker.
[0017] The inverter may output a first control signal to the first circuit breaker via wireless communication. In this case, it becomes possible to output the first control signal to the first circuit breaker by remote control.
[0018] At least one of a plurality of solar cell module groups of the string may include a plurality of solar cell modules connected in series. In this case, the plurality of solar cell modules can be blocked by the first blocking device or the second blocking device.
[0019] The first blocking device may include a bypass diode connected in parallel to any one of the plurality of solar cell module groups. In this case, it is possible to suppress heat generation and the like of a solar cell module that has become unable to generate power, and it is possible to suppress a decrease in the power generation efficiency of the string.
[0020] The second blocking device may include a bypass diode connected in parallel to any one of the plurality of solar cell module groups. In this case, it is possible to suppress heat generation and the like of a solar cell module that has become unable to generate power, and it is possible to suppress a decrease in the power generation efficiency of the string.
Advantages of the Invention
[0021] According to the present invention, in a solar power generation system, it is possible to provide a solar power generation system that can achieve both reduction of the installation cost of a blocking device and improvement of safety.
Brief Description of the Drawings
[0022] [Figure 1] FIG. 1 is a block diagram schematically showing the configuration of a solar power generation system according to an aspect of the present invention. [Figure 2] FIG. 2 is a block diagram schematically showing the configuration of the first blocking device. [Figure 3] FIG. 3 is a circuit diagram schematically showing the configuration of a regulator. [Figure 4] FIG. 4 is a block diagram schematically showing the configuration of the second blocking device. [Figure 5] FIG. 5 is a diagram for explaining an example of the operation mode of the blocking device. [Figure 6] FIG. 6 is a block diagram schematically showing the configuration of a solar power generation system according to another embodiment. [Figure 7]Figure 7 is a block diagram schematically showing the configuration of a photovoltaic power generation system according to another embodiment. [Figure 8] Figure 8 is a block diagram schematically showing the configuration of a photovoltaic power generation system according to another embodiment. [Figure 9] Figure 9 is a block diagram schematically showing the configuration of a photovoltaic power generation system according to another embodiment. [Modes for carrying out the invention]
[0023] Figure 1 is a schematic block diagram showing the configuration of a photovoltaic power generation system 1 according to one aspect of the present invention. The photovoltaic power generation system 1 comprises a string 2, an inverter 3, a first circuit breaker 4, and a plurality of second circuit breakers 5.
[0024] String 2 includes multiple solar cell module groups 6A to 6H connected in series with each other. Each of the multiple solar cell module groups 6A to 6H includes one or multiple solar cell modules 6 connected in series. That is, String 2 includes multiple (16 in this embodiment) solar cell modules 6 connected in series with each other. The photovoltaic power generation system 1 may also include a solar cell array in which multiple String 2s are connected in parallel.
[0025] Multiple solar cell module groups 6A to 6H have an open-circuit voltage below a predetermined open-circuit voltage for each group. The predetermined open-circuit voltage is, for example, 165V. That is, string 2 is divided into multiple solar cell module groups such that the open-circuit voltage for each group is 165V or less. The open-circuit voltage of solar cell module 6 is, for example, 50V. Hereafter, solar cell module groups 6A to 6H may be referred to as groups 6A to 6H.
[0026] Each of groups 6A, 6C, 6E, and 6G contains one solar cell module 6. Each of groups 6B, 6D, 6F, and 6H contains three solar cell modules 6 connected in series with each other. Therefore, the open-circuit voltage of groups 6A, 6C, 6E, and 6G is 50V, and the open-circuit voltage of groups 6B, 6D, 6F, and 6H is 150V.
[0027] Groups 6A to 6H are arranged alphabetically from group 6A to group 6H and connected to each other in series. Each of groups 6A to 6H includes an anode terminal and a cathode terminal. The anode terminal of each group 6A to 6H is the anode terminal of the solar cell module 6 belonging to each group 6A to 6H that is closest to the anode of the inverter 3. The cathode terminal of each group 6A to 6H is the cathode terminal of the solar cell module 6 belonging to each group 6A to 6H that is furthest from the anode of the inverter 3.
[0028] For example, the anode terminal of group 6A is connected to the anode terminal of the solar cell module 6 of group 6A. The anode terminal of group 6A is connected to the anode terminal of inverter 3. The anode terminal of group 6A is connected to the cathode terminal of the solar cell module 6 of group 6A. The anode terminal of group 6A is connected to the anode terminal of group 6B.
[0029] For example, the anode terminal of group 6B is connected to the anode terminal of the solar cell module 6 that is closest to group 6A among the solar cell modules 6 belonging to group 6B. The cathode terminal of group 6B is connected to the cathode terminal of the solar cell module 6 that is furthest from group 6A among the solar cell modules 6 belonging to group 6B. The cathode terminal of group 6B is connected to the anode terminal of group 6C.
[0030] The cathode terminal of group 6C is connected to the anode terminal of group 6D. The cathode terminal of group 6D is connected to the anode terminal of group 6E. The cathode terminal of group 6E is connected to the anode terminal of group 6F. The cathode terminal of group 6F is connected to the anode terminal of group 6G. The cathode terminal of group 6G is connected to the anode terminal of group 6H. The cathode terminal of group 6H is connected to the cathode terminal of inverter 3.
[0031] The solar cell module 6 generates electricity from sunlight and outputs the generated electricity to the inverter 3. The inverter 3 is connected to string 2 via power lines. The inverter 3 converts the DC power output from the solar cell modules 6 of string 2 into AC power. The inverter 3 is connected to the power grid 7 and supplies the AC power to the commercial power grid and load devices.
[0032] In detail, the inverter 3 includes a DC / DC converter 3a, a DC / AC inverter 3b, and a control unit 3c. The DC / DC converter 3a converts the voltage of the power output from the solar cell module 6 to a predetermined voltage and inputs it to the DC / AC inverter 3b. The DC / AC inverter 3b converts the DC power output from the solar cell module 6 to AC power via the DC / DC converter 3a. The control unit 3c includes a CPU and memory, and controls the DC / DC converter 3a and the DC / AC inverter 3b. The control unit 3c also outputs a first control signal to the first circuit breaker 4 via power line communication.
[0033] The first circuit breaker 4 is connected to the circuits connecting groups 6A to 6H. In this embodiment, the first circuit breaker 4 is connected to the circuit 8a connecting group 6A and group 6B, and to the circuit 8b connecting inverter 3 and group 6A. The first circuit breaker 4 disconnects the connection between group 6A and group 6B, and the connection between inverter 3 and group 6A, in response to a first control signal from inverter 3.
[0034] The first circuit breaker 4 outputs a second control signal to the multiple second circuit breakers 5 via a communication line 10 connected to the first circuit breaker 4 and the multiple second circuit breakers 5, using a communication method different from power line communication. The first circuit breaker 4 outputs the second control signal to the multiple second circuit breakers 5 using a serial communication method such as LIN (Local Interconnect Network) communication or SPI (Serial Peripheral Interface) communication. The first circuit breaker 4 disconnects the connection between group 6A and group 6B, and the connection between inverter 3 and group 6A, before outputting the second control signal to the multiple second circuit breakers 5. The first circuit breaker 4 is connected to each of the multiple second circuit breakers 5 via the communication line 10.
[0035] The first circuit breaker 4 and the multiple second circuit breakers 5 are in a master-slave relationship. The first circuit breaker 4 functions as the master to the multiple second circuit breakers 5, and the multiple second circuit breakers 5 function as slaves to the first circuit breaker 4. In other words, the first circuit breaker 4 controls the multiple second circuit breakers 5.
[0036] Figure 2 is a schematic block diagram showing the configuration of the first circuit breaker 4. The first circuit breaker 4 includes a regulator 41, a signal receiving unit 42, a control unit 43, a relay 44, and a bypass circuit 45.
[0037] The regulator 41 generates a power supply to drive the first circuit breaker 4 using the power generated by the solar cell module 6, and supplies a stable power supply to the first circuit breaker 4. Here, the power supply for the first circuit breaker 4 is generated using only the power generated by the solar cell module 6 of group 6A.
[0038] Figure 3 is a schematic circuit diagram showing the configuration of regulator 41. The configuration of regulator 41 is a well-known configuration and includes input terminals 21a, 21b, output terminals 22a, 22b, line filter 23, capacitors 24, 25, boost circuit 26, switching element 27, control circuit 28, transformer 29, diode 30, DC / DC converter 31, feedback circuit 32, etc.
[0039] The signal receiving unit 42 receives a first control signal from the control unit 3c of the inverter 3 and outputs the received first control signal to the control unit 43. More specifically, the signal receiving unit 42 receives the first control signal from the control unit 3c of the inverter 3 via a signal detection unit 46 that detects the first control signal from the control unit 3c of the inverter 3.
[0040] The control unit 43 includes a CPU, memory, etc. Based on the signal output from the signal receiving unit 42, the control unit 43 controls the current flowing through the coil of the relay 44 to open and close the contacts of the relay 44. The relay 44 is, for example, a mechanical relay capable of switching high-voltage DC current.
[0041] The control unit 43 outputs a second control signal to a plurality of second circuit breakers 5 via the communication line 10 using a communication method different from power line communication. The control unit 43 outputs the second control signal to the plurality of second circuit breakers 5 after disconnecting the connection between group 6A and group 6B. The control unit 43 determines whether the connection between group 6A and group 6B has been disconnected, for example, by monitoring the voltage between the contacts of the relay 44.
[0042] The relay 44 includes a first switching unit 44a and a second switching unit 44b. The first switching unit 44a is located in the circuit 8b. The first switching unit 44a switches the connection between the inverter 3 and group 6A. The first switching unit 44a is connected to the anode terminal of group 6A and the anode terminal of the inverter 3. The second switching unit 44b is located in the circuit 8a. The second switching unit 44b switches the connection between group 6A and group 6B. The second switching unit 44b is connected to the cathode terminal of group 6A and the anode terminal of group 6B. In this embodiment, the first switching unit 44a may be omitted.
[0043] When the first circuit breaker 4 is not supplied with power from the regulator 41, the first switch 44a and the second switch 44b are always open. Therefore, when the first circuit breaker 4 is not driven, the connection between the inverter 3 and group 6A, and the connection between group 6A and group 6B are disconnected.
[0044] The bypass circuit 45 is a circuit that allows the signal receiving unit 42 to receive the first control signal from the control unit 3c when the first circuit breaker 4 is in the tripped state. When the circuits 8a and 8b are tripped by the first circuit breaker 4, the signal receiving unit 42 can receive the first control signal from the control unit 3c via the bypass circuit 45.
[0045] The multiple second circuit breakers 5 are connected to circuits 8c to 8h that connect groups 6C to 6H, which are different from groups 6A and 6B connected to circuit 8a. The multiple second circuit breakers 5 disconnect the connections between groups 6C to 6H in response to a second control signal output from the first circuit breaker 4 via the communication line 10. In this embodiment, the multiple second circuit breakers 5 include three second circuit breakers 5a to 5c.
[0046] The second circuit breaker 5a is connected to the circuit 8c connecting group 6B and group 6C, and to the circuit 8d connecting group 6C and group 6D. The second circuit breaker 5b is connected to the circuit 8e connecting group 6D and group 6E, and to the circuit 8f connecting group 6E and group 6F. The second circuit breaker 5c is connected to the circuit 8g connecting group 6F and group 6G, and to the circuit 8h connecting group 6G and group 6H.
[0047] Figure 4 is a schematic block diagram showing the configuration of the second circuit breaker 5a. The second circuit breaker 5a includes a regulator 51, a control unit 53, a relay 54, and a bypass circuit 55.
[0048] The regulator 51 generates a drive power supply to drive the second circuit breaker 5a using the power generated by the solar cell module 6, and supplies a stable drive power supply to the second circuit breaker 5a. Here, the drive power supply for the first circuit breaker 4 is generated using only the power generated by the solar cell module 6 of group 6C. The configuration of the regulator 51 is the same as that of the regulator 41 of the first circuit breaker 4, so a detailed explanation is omitted.
[0049] The control unit 53 includes a CPU, memory, etc. The control unit 53 controls the current flowing through the coil of the relay 54 in response to the second control signal from the first circuit breaker 4, thereby controlling the opening and closing of the contacts of the relay 54. The relay 44 is, for example, a mechanical relay, capable of switching high-voltage DC current. The control unit 53 receives the second control signal from the first circuit breaker 4 via a communication interface (not shown) connected to the communication line 10, and opens the contacts of the relay 54.
[0050] Relay 54 includes a third switching unit 54a and a fourth switching unit 54b. The third switching unit 54a is located in the circuit 8c. The third switching unit 54a opens and closes the connection between group 6B and group 6C. The third switching unit 54a is connected to the cathode terminal of group 6B and the anode terminal of group 6C. The fourth switching unit 54b is located in the circuit 8e. The fourth switching unit 54b opens and closes the connection between group 6D and group 6E. The fourth switching unit 54b is connected to the cathode terminal of group 6C and the anode terminal of group 6D.
[0051] When the second circuit breaker 5a is not supplied with power from the regulator 51, the third switch 54a and the fourth switch 54b are always open. Therefore, when the second circuit breaker 5a is not driven, the connection between group 6B and group 6C, and the connection between group 6C and group 6D are disconnected.
[0052] The bypass circuit 55 is a circuit that allows the signal receiving unit 42 of the first circuit breaker 4 to receive the first control signal from the control unit 3c via power line communication when the second circuit breaker 5 is in an interrupted state. By providing the bypass circuit 55, it becomes possible to continue power line communication.
[0053] The relay 54 of the second circuit breaker 5b opens and closes the connection between group 6D and group 6E, and between group 6E and 6F. The relay 54 of the second circuit breaker 5c opens and closes the connection between group 6F and group 6G, and between group 6G and group 6H. The second circuit breakers 5b and 5c have the same configuration as the second circuit breaker 5a, except that the circuits they connect to are different, so a detailed explanation is omitted.
[0054] Furthermore, the multiple second circuit breakers 5 in this embodiment do not have the function to communicate with each other. Also, the multiple second circuit breakers 5 do not have the function to output signals from the multiple second circuit breakers 5 to the first circuit breaker 4.
[0055] Next, an example of the operating modes of the first circuit breaker 4 and the multiple second circuit breakers 5 will be described with reference to Figure 5. The operating modes of the first circuit breaker 4 and the multiple second circuit breakers 5 include three operating modes: start mode, active mode, and safety mode. The safety mode includes a normal circuit breaker mode and an emergency safety circuit breaker mode. Therefore, the first circuit breaker 4 and the multiple second circuit breakers 5 operate in four operating modes: start mode, active mode, normal circuit breaker mode, and emergency safety circuit breaker mode.
[0056] The start mode is the mode when sunlight begins to hit the solar cell module 6. At this time, the solar cell module 6 generates electricity from the sunlight. The first circuit breaker 4 is then driven by the power supply generated by the regulator 41 from the electricity generated by the solar cell module 6. When the first circuit breaker 4 is driven and the control unit 43 receives the first control signal from the control unit 3c of the inverter 3 via the signal receiving unit 42, the control unit 43 controls the first switching unit 44a and the second switching unit 44b of the relay 44 to close.
[0057] Similarly, the second circuit breaker 5a is driven by a power supply generated by the regulator 51 of the second circuit breaker 5a from the power generated by the solar cell module 6. When the second circuit breaker 5a is driven and the control unit 53 receives a command signal from the first circuit breaker 4 that is different from the second control signal, for example, the control unit 53 controls the third switching section 54a and the fourth switching section 54b of the relay 54 to close. The second circuit breakers 5b and 5c behave similarly to the second circuit breaker 5a. As a result, groups 6A to 6H are connected in string 2 via the first circuit breaker 4 and the second circuit breakers 5a to 5c, and the power generated by the solar cell module 6 is output to the inverter 3.
[0058] The active mode is the state in which the solar cell module 6 generates electricity by receiving sunlight during the day, and is essentially the same as the start mode. Therefore, in the active mode, groups 6A to 6H are connected via the first circuit breaker 4 and the second circuit breakers 5a to 5c, and the power generated by the solar cell module 6 is output to the inverter 3.
[0059] The normal shutdown mode is the mode used when the solar cell module 6 is not receiving sunlight due to nighttime or weather conditions such as rain. Therefore, in the normal shutdown mode, the solar cell module 6 is not generating power, and no power supply is being supplied from the solar cell module 6 to the first shutdown device 4 and the second shutdown devices 5a to 5c. For this reason, in the normal shutdown mode, the first and second switching sections 44a and 44b of the first shutdown device 4, and the third and fourth switching sections 54a and 54b of the second shutdown devices 5a to 5c are all open. In this embodiment, power is supplied to the inverter 3 from an AC power source, and the first control signal is always output from the control unit 3c of the inverter 3, except in the emergency safety shutdown mode.
[0060] In normal shutoff mode, if the power generation of, for example, the solar cell module 6 of group 6A is unstable due to unstable weather conditions, the relay 54 will turn on / off according to the power supplied from the solar cell module 6 of group 6A. Also, if the power generation of, for example, the solar cell module 6 of group 6C is unstable, the relay 54 will turn on / off according to the power supplied from the solar cell module 6 of group 6C.
[0061] The emergency safety shutdown mode is a mode in which the power output from the solar cell module 6 to the inverter 3 is stopped by shutting off the circuits 8a to 8h during the start mode or active mode. In this embodiment, as shown in Figure 1, the operation switch 35 is connected to the inverter 3, and when the operation switch 35 is operated while the first circuit breaker 4 is in the start mode or active mode, the operating mode of the first circuit breaker 4 is switched to the emergency safety shutdown mode.
[0062] In detail, when the operation switch 35 is operated, the control unit 3c stops outputting the first control signal. When the signal detection unit 46 detects that the first control signal has stopped at a certain period of time, the first switching unit 44a and the second switching unit 44b of the relay 44 are opened via the signal receiving unit 42 and the control unit 43. This disconnects the connection between group 6A and group 6B, and the connection between inverter 3 and group 6A, stopping the output of power from the solar cell module 6 to inverter 3. At this time, after opening the first switching unit 44a and the second switching unit 44b of the relay 44, the first disconnector 4 outputs the second control signal to the second disconnectors 5a to 5c via the communication line 10. The second disconnectors 5a to 5c receive the second control signal from the first disconnector 4 and disconnect the connections between groups 6C to 6H. As a result, all groups 6A to 6H are separated from each other, and the open-circuit voltage of string 2 is divided to 165V or less.
[0063] In the solar power generation system 1 with the above configuration, the first circuit breaker 4 and the second circuit breakers 5a to 5c are in a master-slave relationship, and the second circuit breakers 5a to 5c disconnect the connections between multiple solar cell module groups 6B to 6H in accordance with the second control signal output from the first circuit breaker 4. As a result, functions such as the signal receiving unit 42 and the signal detection unit 46 can be omitted in the second circuit breakers 5a to 5c. Consequently, the configuration of the second circuit breakers 5a to 5c can be simplified, and the installation cost of multiple second circuit breakers 5 can be reduced.
[0064] Furthermore, since the open-circuit voltage of each of the multiple solar cell module groups 6A to 6H is 165V or less, a highly safe solar power generation system can be provided. In addition, the second control signal output from the first circuit breaker 4 is output via the communication line 10 using a communication method different from power line communication, so it is less susceptible to noise compared to power line communication, enabling stable communication from the first circuit breaker 4 to the multiple second circuit breakers 5.
[0065] Furthermore, in the above-described photovoltaic power generation system 1, after the connection between group 6A and group 6B is interrupted by the first interruption device 4, the connections between multiple solar cell module groups 6B to 6H are interrupted by the second interruption devices 5a to 5c, thereby reducing the voltage related to the second interruption devices 5a to 5c. This makes it possible to reduce the cost of the second interruption devices 5a to 5c.
[0066] Although one embodiment of the present invention has been described above, the present invention is not limited to the above embodiment, and various modifications are possible without departing from the spirit of the invention.
[0067] The number of groups of multiple solar cell module groups is not limited to the embodiment described above. String 2 only needs to be divided into multiple solar cell module groups such that the open-circuit voltage of each group is 165V or less. For example, as shown in Figure 6, each of the multiple solar cell module groups 6A to 6F may include three directly connected solar cell modules 6. That is, the multiple solar cell module groups may be divided by the first circuit breaker 4 and multiple second circuit breakers 5 so that each of the multiple solar cell module groups includes three solar cell modules 6 connected in series.
[0068] Furthermore, as shown in Figure 7, one second circuit breaker 5 may be provided for each of the multiple solar cell module groups, excluding the group to which the first circuit breaker 4 is connected (in this case, group 6A).
[0069] As shown in Figure 8, the first interruption device 4 may include a bypass diode 48 connected in parallel to any of the multiple solar cell module groups. In the example shown in Figure 8, the bypass diode 48 is electrically connected in parallel to group 6A. The bypass diode 48 includes an anode connected to the cathode terminal of group 6A and a cathode connected to the anode terminal of group 6A. Similarly, the multiple second interruption devices 5 may include a bypass diode 58 connected in parallel to any of the multiple solar cell module groups. In the example shown in Figure 8, the bypass diode 58 is electrically connected in parallel to both group 6C and group 6E.
[0070] In the above embodiment, the relay 44 of the first circuit breaker 4 had two contacts, a first switching section 44a and a second switching section 44b. However, as shown in Figure 9, the relay 44 may be composed of two relays, each having a single contact. That is, the control unit 43 of the first circuit breaker 4 may be configured to independently control the opening and closing of the first switching section 44a and the second switching section 44b. Similarly, in a plurality of second circuit breakers 5, the control unit 53 may be configured to independently control the third switching section 54a and the fourth switching section 54b of the relay 54.
[0071] In the above embodiment, the first circuit breaker 4 was connected to the circuit 8a connecting group 6A and group 6B, and to the circuit 8b connecting the inverter 3 and group 6A. However, the arrangement of the first circuit breaker 4 and the multiple second circuit breakers 5 may be swapped. For example, the first circuit breaker 4 may be connected to the circuit 8c and the circuit 8d, and the second circuit breaker 5a may be connected to the circuit 8a and the circuit 8b.
[0072] In the above embodiment, the first control signal was output to the first circuit breaker 4 by power line communication, but as shown in Figure 8, the first control signal may be output to the first circuit breaker 4 by wireless communication such as Wi-Fi (registered trademark). Alternatively, the inverter 3 and the first circuit breaker 4 may be configured to communicate with each other by wireless communication. [Industrial applicability]
[0073] According to the present invention, it is possible to provide a solar power generation system that can achieve both a reduction in the installation cost of the shut-off device and an improvement in safety. [Explanation of Symbols]
[0074] 1. Solar power generation system 2 strings 3 Inverter 4. First circuit breaker 5a~5c 2nd cutoff device 6. Solar cell modules 6A~6H Solar Panel Module Group 44a First opening / closing section 44b Second opening / closing section 54a Third opening / closing section 54b Fourth opening / closing section
Claims
1. A string comprising multiple groups of solar cell modules, each containing one or more solar cell modules connected in series, and each group of solar cell modules connected in series with respect to the others, An inverter connected to the string, which converts the DC power output from the string into AC power, A first circuit breaker connected to a first circuit that connects the multiple solar cell module groups, A second circuit breaker connected to a second circuit that connects multiple solar cell module groups that are different from the multiple solar cell module groups connected to the first circuit, Equipped with, The plurality of solar cell module groups in the string have an open-circuit voltage that is less than or equal to a predetermined open-circuit voltage for each group. The first circuit breaker disconnects the connections between the multiple solar cell module groups connected to the first circuit in response to the first control signal from the inverter. The second circuit breaker disconnects the connections between the multiple solar cell module groups connected to the second circuit in response to a second control signal output from the first circuit breaker via a communication line connected to the first circuit breaker and the second circuit breaker using a communication method different from power line communication. The first circuit breaker determines whether the connection between the plurality of solar cell module groups connected to the first circuit has been interrupted in response to the first control signal from the inverter, and after determining that the connection has been interrupted, outputs the second control signal to the second circuit breaker. Solar power generation system.
2. The plurality of solar cell module groups in the string have an open-circuit voltage of 165V or less for each group. The photovoltaic power generation system according to claim 1.
3. The plurality of solar cell module groups in the string include a first group, The first circuit breaker includes a first switching unit connected to the anode-side terminal of the first group and a second switching unit connected to the cathode-side terminal of the first group. The photovoltaic power generation system according to claim 1 or 2.
4. The first shutoff device is capable of independently controlling the opening and closing of the first opening / closing section and the second opening / closing section. The solar power generation system according to claim 3.
5. The plurality of solar cell module groups in the string include a first group, The first circuit breaker is driven by the power generated by one or more of the solar cell modules connected in series belonging to the first group. A solar power generation system according to any one of claims 1 to 4.
6. The plurality of solar cell module groups in the string include a second group, The second circuit breaker includes a third switching unit connected to the anode-side terminal of the second group and a fourth switching unit connected to the cathode-side terminal of the second group. A solar power generation system according to any one of claims 1 to 5.
7. The second shutoff device is capable of independently controlling the opening and closing of the third opening / closing section and the fourth opening / closing section. The solar power generation system according to claim 6.
8. The plurality of solar cell module groups in the string include a second group, The second circuit breaker is driven by the power generated by one or more of the solar cell modules connected in series belonging to the second group. A solar power generation system according to any one of claims 1 to 7.
9. The inverter outputs the first control signal to the first circuit breaker via power line communication. A solar power generation system according to any one of claims 1 to 8.
10. The inverter outputs the first control signal to the first circuit breaker via wireless communication. A solar power generation system according to any one of claims 1 to 9.
11. At least one of the plurality of solar cell module groups of the string includes a plurality of solar cell modules connected in series, A solar power generation system according to any one of claims 1 to 10.
12. The first disconnector includes a bypass diode connected in parallel to any of the plurality of solar cell module groups. A solar power generation system according to any one of claims 1 to 11.
13. The second circuit breaker includes a bypass diode connected in parallel to any of the plurality of solar cell module groups. A solar power generation system according to any one of claims 1 to 12.
Citation Information
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