Photovoltaic system and control method

By introducing combiner box switches, excitation fuses, and DC switches into the photovoltaic system, and combining current and voltage threshold judgments, precise isolation of short-circuit faults can be achieved, protecting photovoltaic system components, preventing damage, and ensuring stable system operation.

CN121749048APending Publication Date: 2026-03-27SUNGROW POWER SUPPLY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-26
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

When a short circuit fault occurs on the DC side of a centralized photovoltaic system, it may damage the combiner box, inverter, or photovoltaic string. Existing technologies make it difficult to disconnect the faulty branch in time for protection.

Method used

By introducing combiner box switches, excitation fuses, and DC switches into the combiner box and inverter, the location of short-circuit faults is determined by current and voltage thresholds, and the combiner box switches, excitation fuses, and DC switches are controlled to disconnect to isolate the faulty circuit.

Benefits of technology

It effectively prevents short-circuit faults from escalating, protects photovoltaic panels, combiner boxes and inverters, ensures the normal circuit continues to operate, and reduces equipment damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a photovoltaic system and a control method, the photovoltaic system comprises a combiner box and an inverter, the combiner box comprises a combiner box switch, and the inverter comprises an excitation fuse and a DC switch; the input end of the combiner box is connected with the photovoltaic panel, the output end of the combiner box is connected with the inverter, and the combiner box switch is connected in series between the input end of the combiner box and the output end of the combiner box; the first end of the excitation fuse is connected with the direct current side of the inverter, the second end of the excitation fuse is connected with the first end of the direct current switch, and the second end of the direct current switch is connected with a power conversion circuit in the inverter; under the condition that a short-circuit fault occurs between the combiner box switch and the photovoltaic panel, the combiner box switch is switched off, and the excitation fuse is switched off when the current flowing through the excitation fuse exceeds a first current threshold value; when a short-circuit fault occurs between the combiner box switch and the direct current side of the inverter, the combiner box switch and the corresponding excitation fuse wire are disconnected; when a short-circuit fault occurs in the inverter, the combiner box switch is switched off.
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Description

[0001] This disclosure claims priority to Chinese Patent Application No. 202510112938.0, filed on January 23, 2025, entitled "A Photovoltaic System and Control Method", the entire contents of which are incorporated herein by reference. Technical Field

[0002] This disclosure relates to a photovoltaic system and a control method thereof. Background Technology

[0003] Centralized photovoltaic (PV) systems typically consist of a combiner box and an inverter. The combiner box's input is connected to multiple PV panels, and its output is connected to the DC side of the inverter. The combiner box's function is to combine current from multiple PV panels, while the inverter converts DC power to AC power. Due to the 1V / 1A current characteristic of PV panels, if a short circuit occurs on the DC side of the PV system and the faulty branch is not disconnected promptly, it may cause damage to one or more components of the combiner box, inverter, or PV string. Summary of the Invention

[0004] In view of the above, this disclosure provides a photovoltaic system and control method, as follows.

[0005] This disclosure provides a photovoltaic system, including: a combiner box and an inverter, wherein the combiner box includes a combiner box switch, and the inverter includes an excitation fuse and a DC switch;

[0006] The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, the output terminal of the combiner box is connected to the DC side of the inverter, and the combiner box switch is connected in series between the input terminal and the output terminal of the combiner box; the first end of the excitation fuse is connected to the DC side of the inverter, the second end of the excitation fuse is connected to the first end of the DC switch, and the second end of the DC switch is connected to the power conversion circuit in the inverter;

[0007] In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch is opened, and the current flowing through the excitation fuse exceeds a first current threshold, causing the excitation fuse to open; in the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are opened; in the event of a short circuit fault inside the inverter, the combiner box switch is opened.

[0008] One possible implementation is that the combiner box includes a first controller;

[0009] The first controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the photovoltaic panel if the input voltage of the combiner box is less than a first voltage threshold and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, and control the corresponding combiner box switch to open; the first current threshold is greater than the second current threshold.

[0010] One possible implementation is that the inverter includes a second controller;

[0011] The second controller is configured to determine that a short circuit fault has occurred between the combiner box switch connected to the excitation fuse and the photovoltaic panel when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a second current threshold, and the input voltage of the inverter is less than a second voltage threshold; when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a first current threshold, the controller controls the excitation fuse to open; the first current threshold is greater than the second current threshold.

[0012] In one possible implementation, the combiner box includes a first controller; the first controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter when the input voltage of the combiner box is less than a third voltage threshold and the input current of the combiner box flows from the photovoltaic panel to the combiner box and is greater than a third current threshold, and then control the corresponding combiner box switch to disconnect.

[0013] In one possible implementation, the inverter includes a second controller; the second controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter when the current flowing through the excitation fuse is in the direction of flowing from the excitation fuse to the combiner box and is greater than the third current threshold, and the input voltage of the inverter is less than the fourth voltage threshold, and then control the excitation fuse to open.

[0014] In one possible implementation, the photovoltaic system includes at least two combiner boxes; the input terminal of each combiner box is connected to a corresponding photovoltaic panel, and the output terminal of each combiner box is connected in parallel to the DC side of the inverter;

[0015] The inverter is equipped with a corresponding excitation fuse for each of the combiner boxes.

[0016] One possible implementation is that each of the combiner boxes includes the first controller; the first controllers of all combiner boxes communicate with each other;

[0017] For any of the first controllers, if the input voltage of all the combiner boxes is less than the fifth voltage threshold, and the input current of all the combiner boxes flows from the corresponding photovoltaic panel to the combiner box and is greater than the fourth current threshold, then if a fault is determined to have occurred inside the inverter, the controller will control all the combiner box switches to disconnect.

[0018] One possible implementation is that the inverter includes a second controller;

[0019] The second controller is configured to determine that a short-circuit fault has occurred inside the inverter when the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than the fourth current threshold, and the input voltage of the inverter is less than the sixth voltage threshold, and then control the DC switch of the inverter to open.

[0020] This disclosure also provides a control method for a photovoltaic system, the method comprising:

[0021] In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch in the combiner box is controlled to open. If the current flowing through the excitation fuse exceeds a first current threshold, the excitation fuse is controlled to open. The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, and the output terminal of the combiner box is connected to the DC side of the inverter. The combiner box switch is connected in series between the input terminal and the output terminal of the combiner box. The first end of the excitation fuse is connected to the DC side of the inverter, and the second end of the excitation fuse is connected to the first end of the DC switch. The second end of the DC switch is connected to the power conversion circuit in the inverter.

[0022] In the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are controlled to disconnect.

[0023] In the event of a short circuit fault inside the inverter, the combiner box switch is disconnected.

[0024] One possible implementation, the method provided in this disclosure, further includes: if the input voltage of the combiner box is less than a first voltage threshold, and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the photovoltaic panel; the first current threshold is greater than the second current threshold.

[0025] One possible implementation, the method provided in this disclosure, further includes: when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a second current threshold, and the input voltage of the inverter is less than a second voltage threshold, then it is determined that a short circuit fault has occurred between the combiner box switch connected to the excitation fuse and the photovoltaic panel; when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a first current threshold, the excitation fuse is controlled to open; the first current threshold is greater than the second current threshold.

[0026] One possible implementation, the method provided in this disclosure, further includes: if the input voltage of the combiner box is less than a third voltage threshold, and the input current of the combiner box flows from the photovoltaic panel to the combiner box and is greater than a third current threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter.

[0027] One possible implementation, the method provided in this disclosure, further includes: when the direction of the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than the third current threshold, and the input voltage of the inverter is less than the fourth voltage threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter.

[0028] One possible implementation, the method provided in this disclosure embodiment, further includes: when the input voltage of all the combiner boxes is less than a fifth voltage threshold, and the input current direction of all the combiner boxes is from the corresponding photovoltaic panel to the combiner box and is greater than a fourth current threshold, determining that a fault has occurred inside the inverter, and controlling the corresponding combiner box switch to disconnect.

[0029] One possible implementation, the method provided in this disclosure embodiment, further includes: determining that a short circuit fault has occurred inside the inverter when the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than the fourth current threshold, and the input voltage of the inverter is less than the sixth voltage threshold.

[0030] This disclosure also provides a control device, including a processor and a memory, wherein the memory is used to store programs, instructions or code, and the processor is used to execute the programs, instructions or code in the memory to perform the control method described above.

[0031] This disclosure also provides a computer-readable storage medium storing a computer program, which is loaded by a processor to execute the control method described above.

[0032] This disclosure also provides a photovoltaic system, including: a combiner box and an inverter, the combiner box including a combiner box switch, and the inverter including an excitation fuse and a power conversion circuit;

[0033] The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, and the output terminal of the combiner box is connected to the DC side of the inverter. The combiner box switch is connected in series between the input terminal and the output terminal of the combiner box. The first end of the excitation fuse is connected to the DC side of the inverter, and the second end of the excitation fuse is connected to the power conversion circuit.

[0034] In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch opens, and the current flowing through the excitation fuse exceeds the first current threshold, causing the excitation fuse to open; in the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse open; in the event of a short circuit fault inside the inverter, the combiner box switch opens.

[0035] When the photovoltaic system provided in this disclosure is in operation, a short circuit fault may occur on the DC side. This short circuit fault may occur between the combiner box and the photovoltaic panel, between the combiner box and the input terminal of the inverter, or inside the inverter. The technical solution provided in this application can take different protection measures depending on the location of the short circuit fault. That is, different controls can be implemented based on the specific fault location, which can both disconnect the faulty circuit to prevent the fault range from expanding and ensure the continued operation of the normal circuit. Attached Figure Description

[0036] Figure 1 A schematic diagram of a photovoltaic system provided in an embodiment of this disclosure;

[0037] Figure 2 A schematic diagram of yet another photovoltaic system provided in this disclosure embodiment;

[0038] Figure 3 A schematic diagram of yet another photovoltaic system provided in this disclosure embodiment;

[0039] Figure 4 A schematic diagram illustrating the current flow of a photovoltaic system when a short-circuit fault occurs between the combiner box switch and the photovoltaic panel, as provided in an embodiment of this disclosure.

[0040] Figure 5 A schematic diagram illustrating a short circuit between the combiner box and the inverter, provided in an embodiment of this disclosure;

[0041] Figure 6 A schematic diagram illustrating an internal short circuit in an inverter provided in an embodiment of this disclosure;

[0042] Figure 7 A flowchart of a control method for a photovoltaic system provided in this disclosure embodiment;

[0043] Figure 8 This is a schematic diagram of a control device provided in an embodiment of the present disclosure. Detailed Implementation

[0044] To enable those skilled in the art to better understand and implement the photovoltaic system provided in the embodiments of this disclosure, the architecture of the photovoltaic system will be described below in conjunction with the accompanying drawings.

[0045] See Figure 1 The figure is a schematic diagram of a photovoltaic system provided in an embodiment of this disclosure.

[0046] The photovoltaic system provided in this disclosure includes at least one combiner box, such as... Figure 1 The inverter 100 is configured with combiner boxes 1 to N, where N is an integer greater than or equal to 1. Typically, a photovoltaic system includes multiple combiner boxes. The function of each combiner box is to combine the energy from multiple photovoltaic panels and supply it to the input terminal (DC side) of the inverter 100. The input terminal of each combiner box is connected to the corresponding photovoltaic panel, which can include multiple photovoltaic cells without specific limitations. The output terminal of each combiner box is connected to the DC side of the inverter 100, meaning that the output terminals of all combiner boxes are connected in parallel.

[0047] When the photovoltaic system is working, a short circuit fault may occur on the DC side. The short circuit fault may occur between the combiner box and the photovoltaic panel, between the combiner box and the input terminal of the inverter 100, or inside the inverter 100.

[0048] The photovoltaic system provided in this disclosure can take different protection measures according to the short circuit fault occurring in different parts. That is, different controls can be performed according to the specific fault location. It can disconnect the faulty circuit to prevent the fault range from expanding, while ensuring that the normal circuit continues to operate.

[0049] To make the above-mentioned objectives, features and advantages of this disclosure more apparent and understandable, the embodiments of this disclosure will be further described in detail below with reference to the accompanying drawings and specific implementation methods.

[0050] See Figure 2 This figure is a schematic diagram of another photovoltaic system provided in the embodiments of this disclosure.

[0051] The photovoltaic system provided in this embodiment includes a combiner box and an inverter 100. The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, and the output terminal of the combiner box is connected to the DC side of the inverter 100.

[0052] For ease of explanation, this embodiment of the present disclosure uses a photovoltaic system comprising at least two combiner boxes as an example: a first combiner box 21 and a second combiner box 22. A combiner box switch is connected in series between the input and output terminals of the combiner box; that is, the first combiner box 21 includes a first combiner box switch 10, and the second combiner box 22 includes a second combiner box switch 11. The inverter 100 includes an excitation fuse and a DC switch 101. The inverter 100 internally provides a corresponding excitation fuse for each combiner box, meaning there is a one-to-one correspondence between the excitation fuse and the combiner box. It should be understood that since the output terminals of each combiner box include a positive output terminal and a negative output terminal, the excitation fuses connected to the output terminals of each combiner box can be a group, i.e., one excitation fuse for each positive output terminal and one for each negative output terminal. Alternatively, each combiner box may have only one excitation fuse connected to its output terminal, for example, only one excitation fuse connected to the positive output terminal or only one excitation fuse connected to the negative output terminal. The following description uses the example of connecting excitation fuses to both the positive and negative output terminals of each combiner box. For the sake of brevity, the description will be based on the first combiner box 21 corresponding to the first set of excitation fuses F1 and the second combiner box 22 corresponding to the second set of excitation fuses F2.

[0053] It should be understood that the current sensor and the switch inside the combiner box are both connected to the first controller of the combiner box (not shown in the figure).

[0054] The first end of the excitation fuse is connected to the DC side of the inverter 100, and the second end of the excitation fuse is connected to the first end of the DC switch 101. The second end of the DC switch 101 is connected to the power conversion circuit in the inverter 100, which includes a DC / AC circuit 102. Figure 2 It can be seen that the first end of the first set of excitation fuses F1 is connected to the second end of the first combiner box switch 10, and the first end of the first combiner box switch 10 is connected to the first photovoltaic panel. The second end of the first set of excitation fuses F1 is connected to the first end of DC / AC 102. Similarly, the first end of the second set of excitation fuses F2 is connected to the second end of the second combiner box switch 11, and the first end of the second combiner box switch 11 is connected to the second photovoltaic panel. The second end of the second set of excitation fuses F2 is connected to the first end of DC / AC 102.

[0055] It should be understood that Figure 2 This introduction uses a photovoltaic system with two combiner boxes as an example. In actual operation, a photovoltaic system can include a larger number of combiner boxes, i.e., N, where N is an integer greater than or equal to 2, such as... Figure 3As shown, each combiner box is equipped with a combiner box switch, namely the first combiner box switch 10 to the Nth combiner box switch N0. The first excitation fuse corresponding to the first combiner box 21 is F1, and the Nth excitation fuse corresponding to the Nth combiner box 2N is FN. The current sensor CT1 is used to detect the input current of the first combiner box 21, and the current sensor CTN is used to detect the input current of the Nth combiner box 2N.

[0056] The following will continue to combine Figure 2 The specific working principle is explained below. Current sensor CT11 is used to detect the current flowing through the first set of excitation fuses F1, and current sensor CT12 is used to detect the current flowing through the second set of excitation fuses F2.

[0057] In the event of a short circuit between the combiner box switch and the photovoltaic panel, the combiner box switch will open. For example, if a short circuit occurs between the first combiner box switch 10 and the first photovoltaic panel, simply opening the first combiner box switch 10 is sufficient. If the connection between the second combiner box switch 11 and the second photovoltaic panel is normal, the second combiner box switch 11 will remain closed, without affecting the power generation of the second photovoltaic panel. If a short circuit occurs between the first combiner box switch 10 and the first photovoltaic panel, and the current flowing through the first set of excitation fuses F1 exceeds the first current threshold, then the first set of excitation fuses F1 also needs to open.

[0058] In the event of a short circuit fault between the combiner box switch and the DC side of the inverter 100, the combiner box switch and the corresponding excitation fuse will disconnect. For example, if a short circuit fault occurs between the first combiner box switch 10 and the DC side of the inverter 100, then the first combiner box switch 10 and the corresponding first set of excitation fuses F1 must both disconnect.

[0059] In the event of a short-circuit fault inside inverter 100, the combiner box switch will open. The "inside" of the inverter refers to inverter 100 as a whole; everything within the dashed box 100 is considered part of the inverter's internal structure. Specifically, a short-circuit fault inside inverter 100 includes a short circuit between DC switch 101 and the AC output terminal of inverter 100, i.e., a short circuit between DC switch 101 and the AC output terminal of DC / AC 102. When the photovoltaic system includes multiple combiner boxes, the combiner box switches in all combiner boxes must be disconnected. Figure 2 Both the first junction box switch 10 and the second junction box switch 11 need to be disconnected.

[0060] The embodiments disclosed herein do not specifically limit the method of determining short circuit faults. For example, it can be determined by current or voltage. To improve accuracy, it can also be determined by a combination of current and voltage.

[0061] The photovoltaic system provided in this disclosure includes a combiner box and an inverter. The combiner box contains a combiner box switch, and the inverter contains an excitation fuse and a DC switch. Since the combiner box switch, excitation fuse, and DC switch are all controllable devices, different controllable devices can be flexibly controlled to disconnect when a short-circuit fault occurs at different locations. This minimizes the fault range and allows for timely protection, preventing damage to the photovoltaic panels, combiner box, or inverter caused by the short-circuit fault.

[0062] The following section, with reference to the accompanying diagrams, details the protective measures in case of short-circuit faults at different locations.

[0063] First, let's describe the situation where a short circuit occurs in the front stage of the combiner box.

[0064] See Figure 4 The figure is a schematic diagram of the current flow of the photovoltaic system when a short circuit fault occurs between the combiner box switch and the photovoltaic panel according to an embodiment of this disclosure.

[0065] The photovoltaic system provided in this disclosure embodiment, for example, has a combiner box and an inverter 100 each having a controller (not shown), and the combiner boxes can communicate with each other. For ease of understanding, this disclosure embodiment continues to take the photovoltaic system including at least the following two combiner boxes as an example: a first combiner box 21 and a second combiner box 22.

[0066] The combiner box includes a first controller (not shown in the figure). It should be understood that each combiner box includes one first controller, and the term "first controller" is used generically. The inverter 100 includes a second controller (not shown in the figure). It should be understood that the current sensor and combiner box switch inside the combiner box are connected to the first controller of the combiner box.

[0067] For any one of the combiner boxes, the first controller determines that a short circuit fault has occurred between the combiner box switch and the photovoltaic panel when the input voltage of the combiner box is less than a first voltage threshold and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, and controls the corresponding combiner box switch to open. Here, forward current is defined as flowing from the photovoltaic panel to the corresponding combiner box, and reverse current is defined as flowing from the combiner box to the corresponding photovoltaic panel; the first current threshold is greater than the second current threshold. It should be understood that, to improve the accuracy of short circuit fault detection, a short circuit fault between the combiner box switch and the photovoltaic panel can be determined when the input voltage of the combiner box is less than the first voltage threshold and the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than the second current threshold.

[0068] For example, regarding the first combiner box 21, if the input current of the first combiner box 21 detected by the first current sensor CT1 is reversed and greater than the second current threshold, a short circuit fault is determined to have occurred between the first combiner box switch 10 and the first photovoltaic panel. To avoid erroneous operation, if the short circuit fault still exists after a preset delay time, the first combiner box switch 10 needs to be disconnected. Since the second combiner boxes connected to the second photovoltaic panel are all normal, they can operate normally and continue photovoltaic power generation, and the inverter 100 operates normally.

[0069] The photovoltaic system provided in this disclosure includes an inverter 100 that includes a second controller (not shown).

[0070] The second controller is used to determine that a short circuit fault has occurred between the combiner box switch connected to the excitation fuse and the photovoltaic panel when the direction of the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than the second current threshold, and the input voltage of the inverter 100 is less than the second voltage threshold; when the direction of the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than the first current threshold, the controller controls the excitation fuse to open.

[0071] It should be understood that when a short-circuit fault occurs in the front end of the combiner box, for the safety of the inverter 100, the second controller of the inverter 100 needs to determine whether the current flowing through the excitation fuse exceeds the first current threshold. If it does, the excitation fuse needs to be disconnected. If a short-circuit fault occurs in the front end of the first combiner box 21, the second controller will control the first set of excitation fuses F1 to disconnect, thereby protecting the safety of the DC switch 101 and DC / AC 102. This does not affect the normal operation of the branch where the second combiner box is located. That is, the second combiner box switch 20 is normally closed, the second set of excitation fuses F2 is normally conducting, the DC switch 101 is working normally, and the DC / AC 102 can work normally for photovoltaic power generation.

[0072] In order to minimize the need to replace the excitation fuse in the inverter 100 and reduce costs, when a short circuit fault occurs in the front end of the combiner box, if the short circuit current is small, for example, if the current flowing through the excitation fuse is less than the first current threshold, then the excitation fuse can be disconnected and only the combiner box switch can be turned off.

[0073] The following description, with reference to the attached diagram, illustrates a short-circuit fault between the combiner box output and the inverter input.

[0074] See Figure 5 The figure is a schematic diagram of a short circuit between the combiner box and the inverter provided in an embodiment of this disclosure.

[0075] The photovoltaic system provided in this embodiment includes a first controller configured to determine a short-circuit fault between the combiner box switch and the DC side of the inverter 100 when the input voltage of the combiner box is less than a third voltage threshold and the input current flowing from the photovoltaic panel to the combiner box is greater than a third current threshold, and then control the corresponding combiner box switch to disconnect. The DC side of the inverter 100 refers to the input terminal of the inverter 100.

[0076] It should be understood that the current sensor and the switch inside the combiner box are both connected to the first controller of the combiner box.

[0077] For example, if the input current detected by the first current sensor CT1 of the first combiner box 21 is positive but greater than the third current threshold, then a short circuit fault is determined to have occurred between the combiner box switch and the DC side of the inverter 100. This disclosure does not specifically limit the relationship between the second and third current thresholds. To protect the first combiner box 21 and the first photovoltaic panel, and to avoid misoperation, a preset time can be set. If the short circuit fault persists after the preset time, the first combiner box switch 10 needs to be disconnected. That is, if a short circuit fault occurs in the downstream stage of the combiner box, the combiner box switch inside the combiner box also needs to be disconnected.

[0078] The photovoltaic system provided in this embodiment of the present disclosure includes a second controller, which determines that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter 100 when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a third current threshold, and the input voltage of the inverter 100 is less than a fourth voltage threshold, and controls the excitation fuse to open.

[0079] Since the excitation fuses are located inside the inverter 100, the second controller of the inverter 100 is needed to determine whether a short circuit fault has occurred between the DC side of the inverter 100 and the combiner box. Taking a short circuit fault between the first combiner box 21 and the inverter 100 as an example, the direction of the current flowing through the first set of excitation fuses F1 is from the first set of excitation fuses F1 to the first combiner box 21. When the current exceeds the third current threshold, and the input voltage of the inverter 100 is less than the fourth voltage threshold, it is determined that a short circuit fault has occurred between the combiner box and the inverter 100. The inverter 100 needs to disconnect the faulty branch, that is, disconnect the first set of excitation fuses F1. At this time, since the branch where the second combiner box 22 is located is normal, the DC switch 101 remains closed and can operate normally without affecting the power generation of the normal branch, thus minimizing the scope of the fault. Since DC switch 101 serves as a combiner for multiple combiner boxes, it can continue to operate as long as a normal combiner box branch exists. The faulty combiner box branch can be disconnected using the excitation fuse.

[0080] The following describes the protection measures for short-circuit faults inside the inverter 100.

[0081] See Figure 6 The figure is a schematic diagram of an internal short circuit in an inverter provided in an embodiment of this disclosure.

[0082] The photovoltaic system provided in this disclosure includes a first controller (not shown) in each combiner box; the first controllers of all combiner boxes communicate with each other.

[0083] For any first controller, if the input voltage of all combiner boxes is less than the fifth voltage threshold, and the input current of all combiner boxes flows from the corresponding photovoltaic panel to the combiner box and is greater than the fourth current threshold, it is determined that there is a fault inside the inverter 100, and all combiner box switches are controlled to be disconnected.

[0084] Continuing with the example of two combiner boxes, internal faults in inverter 100 include short-circuit faults between the excitation fuse and DC / AC 102. When a short-circuit fault occurs inside inverter 100, since all combiner boxes are connected in parallel to the input terminal of inverter 100, the input voltages of both the first combiner box 21 and the second combiner box 22 will drop, and the currents in both combiner boxes 21 and 22 will be positive, i.e., flowing from the photovoltaic panel to the combiner box. If the current is large, for example, greater than the fourth current threshold, then a short-circuit fault is confirmed to have occurred inside inverter 100. To avoid erroneous operation, if the short-circuit fault persists after a preset time, the first controller of the first combiner box 21 controls the first combiner box switch 10 to open. The first controller of the second combiner box 22 controls the second combiner box switch 20 to open.

[0085] The photovoltaic system provided in this disclosure includes an inverter 100 that includes a second controller (not shown).

[0086] The second controller is used to determine that a short circuit fault has occurred inside the inverter 100 when the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than the fourth current threshold, and the input voltage of the inverter 100 is less than the sixth voltage threshold. The controller controls the DC switch 101 of the inverter 100 to open. When the DC switch 101 is opened, the connection between the DC / AC 102 and all the front-end circuits is disconnected, thereby protecting the devices in the DC / AC 102.

[0087] like Figure 6 The fault is described as a short circuit between DC switch 101 and DC / AC 102. It should be understood that it could also be a short circuit between the excitation fuse and DC switch 101.

[0088] The photovoltaic system provided in this disclosure includes: a combiner box and an inverter. The combiner box includes a combiner box switch, and the inverter includes an excitation fuse and a power conversion circuit.

[0089] The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, and the output terminal of the combiner box is connected to the DC side of the inverter. The combiner box switch is connected in series between the input terminal and the output terminal of the combiner box. The first end of the excitation fuse is connected to the DC side of the inverter, and the second end of the excitation fuse is connected to the power conversion circuit.

[0090] In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch opens, and the current flowing through the excitation fuse exceeds the first current threshold, causing the excitation fuse to open; in the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse open; in the event of a short circuit fault inside the inverter, the combiner box switch opens.

[0091] The photovoltaic system provided in this disclosure can be further referred to... Figure 2 ,and Figure 2 The only difference is that there are fewer Figure 2 DC switch 101 in the middle.

[0092] The photovoltaic system provided in this disclosure may experience a short circuit on the DC side during operation. This short circuit may occur between the combiner box and the photovoltaic panel, between the combiner box and the inverter input terminal, or within the inverter itself. The technical solution provided in this disclosure allows for different protection measures depending on the location of the short circuit. Specifically, it allows for different controls based on the specific fault location, effectively disconnecting the faulty circuit to prevent the fault from spreading while ensuring the normal circuit continues to operate.

[0093] Based on the photovoltaic system provided in the above embodiments, this disclosure also provides a control method for the photovoltaic system, which will be described in detail below with reference to the accompanying drawings.

[0094] See Figure 7 The figure is a flowchart of a control method for a photovoltaic system provided in an embodiment of this disclosure.

[0095] The control method for a photovoltaic system provided in this disclosure includes:

[0096] S701: In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch in the control system is opened, and the current flowing through the excitation fuse exceeds the first current threshold, thus controlling the excitation fuse to open; the combiner box switch is connected in series between the input terminal and the output terminal of the combiner box; the excitation fuse is connected between the DC side of the inverter and the power conversion circuit.

[0097] S702: In the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are disconnected.

[0098] S703: In the event of a short circuit fault inside the inverter, the control combiner box switch is disconnected.

[0099] The embodiments disclosed herein do not specifically limit the method of determining short circuit faults. For example, it can be determined by current or voltage. To improve accuracy, it can also be determined by a combination of current and voltage.

[0100] The photovoltaic system provided in this disclosure includes a combiner box and an inverter. The combiner box contains a combiner box switch, and the inverter contains an excitation fuse and a DC switch. Since the combiner box switch, excitation fuse, and DC switch are all controllable devices, different controllable devices can be flexibly controlled to disconnect when a short-circuit fault occurs at different locations. This minimizes the fault range and allows for timely protection, preventing damage to the combiner box or inverter caused by the short-circuit fault.

[0101] One possible implementation, the method provided in this disclosure embodiment further includes: if the input voltage of the combiner box is less than a first voltage threshold, and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the photovoltaic panel; the first current threshold is greater than the second current threshold.

[0102] One possible implementation, the method provided in this embodiment further includes: when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a second current threshold, and the input voltage of the inverter is less than a second voltage threshold, then it is determined that a short circuit fault has occurred between the combiner box switch connected to the excitation fuse and the photovoltaic panel; when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a first current threshold, the excitation fuse is controlled to open; the first current threshold is greater than the second current threshold.

[0103] One possible implementation, the method provided in this disclosure, further includes: if the input voltage of the combiner box is less than a third voltage threshold, and the input current of the combiner box flows from the photovoltaic panel to the combiner box and is greater than a third current threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter.

[0104] One possible implementation, the method provided in this disclosure, further includes: if the current flowing through the excitation fuse is in the direction of flowing from the excitation fuse to the combiner box and is greater than a third current threshold, and the input voltage of the inverter is less than a fourth voltage threshold, then it is determined that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter.

[0105] One possible implementation, the method provided in this disclosure embodiment, further includes: when the input voltage of all combiner boxes is less than a fifth voltage threshold, and the input current direction of all combiner boxes is from the corresponding photovoltaic panel to the combiner box and is greater than a fourth current threshold, determining that a fault has occurred inside the inverter, and controlling the corresponding combiner box switch to disconnect.

[0106] One possible implementation, the method provided in this disclosure embodiment, further includes: determining that a short circuit fault has occurred inside the inverter when the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than a fourth current threshold, and the input voltage of the inverter is less than a sixth voltage threshold.

[0107] In one possible implementation, see Figure 8 The figure is a schematic diagram of a control device provided in an embodiment of this disclosure.

[0108] The control device may include a memory 1011 and a processor 1012. The processor 1012 can be connected to the combiner box and inverter in the photovoltaic system and can control the operation of the excitation fuses in the inverter. Figure 8 As shown, the memory can be random access memory (RAM), flash memory, read-only memory (ROM), EPROM, non-volatile read-only memory (Electronic Programmable ROM), registers, hard disks, removable disks, etc.

[0109] The memory 1011 can store computer instructions. When the computer instructions stored in the memory 1011 are executed by the processor 1012, the processor 1012 can be used to execute the control method of the photovoltaic system. The memory 1011 can also store data, such as information like the first current threshold involved in the above embodiments.

[0110] In the above embodiments, implementation can be achieved, in whole or in part, through software, hardware, firmware, or any combination thereof. When implemented in software, it can be implemented, in whole or in part, as a computer program product. A computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the flow or function according to the embodiments of this disclosure is generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired (e.g., coaxial cable, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that integrates one or more available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape) or a semiconductor medium (e.g., solid-state disk (SSD)).

[0111] This disclosure also provides a readable storage medium for storing the methods provided in the above embodiments. Examples include random access memory (RAM), flash memory, read-only memory (ROM), EPROM, non-volatile read-only memory (EPROM), registers, hard disks, removable disks, or any other form of storage medium in the art.

[0112] It should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. Regarding the methods disclosed in the embodiments, since they correspond to the product embodiments disclosed in the embodiments, the description is relatively simple; relevant parts can be referred to in the description of the product embodiments.

[0113] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A photovoltaic system, characterized in that, include: A combiner box and an inverter, wherein the combiner box includes a combiner box switch and the inverter includes an excitation fuse and a DC switch; The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, the output terminal of the combiner box is connected to the DC side of the inverter, and the combiner box switch is connected in series between the input terminal and the output terminal of the combiner box; the first end of the excitation fuse is connected to the DC side of the inverter, the second end of the excitation fuse is connected to the first end of the DC switch, and the second end of the DC switch is connected to the power conversion circuit in the inverter; In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch is opened, and the current flowing through the excitation fuse exceeds a first current threshold, causing the excitation fuse to open; in the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are opened; in the event of a short circuit fault inside the inverter, the combiner box switch is opened.

2. The photovoltaic system according to claim 1, characterized in that, The junction box includes a first controller; The first controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the photovoltaic panel if the input voltage of the combiner box is less than a first voltage threshold and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, and control the corresponding combiner box switch to open. The first current threshold is greater than the second current threshold.

3. The photovoltaic system according to claim 1 or 2, characterized in that, The inverter includes a second controller; The second controller is configured to determine that a short circuit fault has occurred between the combiner box switch connected to the excitation fuse and the photovoltaic panel when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a second current threshold, and the input voltage of the inverter is less than a second voltage threshold; when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than a first current threshold, the controller controls the excitation fuse to open; the first current threshold is greater than the second current threshold.

4. The photovoltaic system according to claim 1, characterized in that, The combiner box includes a first controller; the first controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter when the input voltage of the combiner box is less than a third voltage threshold and the input current of the combiner box flows from the photovoltaic panel to the combiner box and is greater than a third current threshold, and control the corresponding combiner box switch to open.

5. The photovoltaic system according to claim 4, characterized in that, The inverter includes a second controller; the second controller is configured to determine that a short circuit fault has occurred between the combiner box switch and the DC side of the inverter when the current flowing through the excitation fuse is from the excitation fuse to the combiner box and is greater than the third current threshold, and the input voltage of the inverter is less than the fourth voltage threshold, and then control the excitation fuse to open.

6. The photovoltaic system according to any one of claims 1-5, characterized in that, The photovoltaic system includes at least two combiner boxes; the input terminal of each combiner box is connected to the corresponding photovoltaic panel, and the output terminal of each combiner box is connected in parallel to the DC side of the inverter; The inverter is equipped with a corresponding excitation fuse for each of the combiner boxes.

7. The photovoltaic system according to claim 6, characterized in that, Each of the junction boxes includes the first controller; the first controllers of all junction boxes communicate with each other; For any of the first controllers, if the input voltage of all the combiner boxes is less than the fifth voltage threshold, and the input current of all the combiner boxes flows from the corresponding photovoltaic panel to the combiner box and is greater than the fourth current threshold, then if a fault is determined to have occurred inside the inverter, the controller will control all the combiner box switches to disconnect.

8. The photovoltaic system according to claim 7, characterized in that, The inverter includes a second controller; The second controller is configured to determine that a short circuit fault has occurred inside the inverter when the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than the fourth current threshold, and the input voltage of the inverter is less than the sixth voltage threshold, and then control the DC switch of the inverter to open.

9. A control method for a photovoltaic system, characterized in that, The method includes: In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch in the combiner box is controlled to open. If the current flowing through the excitation fuse exceeds a first current threshold, the excitation fuse is controlled to open. The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, and the output terminal of the combiner box is connected to the DC side of the inverter. The combiner box switch is connected in series between the input terminal and the output terminal of the combiner box. The first end of the excitation fuse is connected to the DC side of the inverter, and the second end of the excitation fuse is connected to the first end of the DC switch. The second end of the DC switch is connected to the power conversion circuit in the inverter. In the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are controlled to disconnect. In the event of a short circuit fault inside the inverter, the combiner box switch is disconnected.

10. The method according to claim 9, characterized in that, The method further includes: If the input voltage of the combiner box is less than a first voltage threshold, and / or the input current of the combiner box flows from the combiner box to the photovoltaic panel and is greater than a second current threshold, then a short circuit fault is determined to have occurred between the combiner box switch and the photovoltaic panel; the first current threshold is greater than the second current threshold.

11. The method according to claim 9 or 10, characterized in that, The method further includes: If the current flowing through the excitation fuse is directed from the excitation fuse to the combiner box and is greater than a second current threshold, and the input voltage of the inverter is less than a second voltage threshold, then a short circuit fault is determined between the combiner box switch connected to the excitation fuse and the photovoltaic panel; if the current flowing through the excitation fuse is directed from the excitation fuse to the combiner box and is greater than a first current threshold, the excitation fuse is controlled to open; the first current threshold is greater than the second current threshold.

12. The method according to claim 9, characterized in that, The method further includes: If the input voltage of the combiner box is less than the third voltage threshold, and the input current of the combiner box flows from the photovoltaic panel to the combiner box and is greater than the third current threshold, then a short circuit fault is determined to have occurred between the combiner box switch and the DC side of the inverter.

13. The method according to claim 12, characterized in that, The method further includes: If the current flowing through the excitation fuse is directed from the excitation fuse to the combiner box and is greater than the third current threshold, and the input voltage of the inverter is less than the fourth voltage threshold, then a short circuit fault is determined to have occurred between the combiner box switch and the DC side of the inverter.

14. The method according to claim 9, characterized in that, The method further includes: If the input voltage of all the combiner boxes is less than the fifth voltage threshold, and the input current of all the combiner boxes flows from the corresponding photovoltaic panel to the combiner box and is greater than the fourth current threshold, it is determined that there is a fault inside the inverter, and the corresponding combiner box switch is controlled to open.

15. The method according to claim 14, characterized in that, The method further includes: If the current direction of the excitation fuse corresponding to each combiner box is from the corresponding combiner box to the excitation fuse and is greater than the fourth current threshold, and the input voltage of the inverter is less than the sixth voltage threshold, it is determined that a short circuit fault has occurred inside the inverter.

16. A control device, characterized in that, It includes a processor and a memory, the memory being used to store programs, instructions, or code, and the processor being used to execute the programs, instructions, or code in the memory to perform the control method as described in any one of claims 9-15.

17. A computer-readable storage medium, characterized in that, The system contains a computer program that is loaded by a processor to execute the control method as described in any one of claims 9-15.

18. A photovoltaic system, comprising: A combiner box and an inverter, wherein the combiner box includes a combiner box switch and the inverter includes an excitation fuse and a power conversion circuit; The input terminal of the combiner box is used to connect to the corresponding photovoltaic panel, the output terminal of the combiner box is connected to the DC side of the inverter, and the combiner box switch is connected in series between the input terminal and the output terminal of the combiner box; the first end of the excitation fuse is connected to the DC side of the inverter, and the second end of the excitation fuse is connected to the power conversion circuit. In the event of a short circuit fault between the combiner box switch and the photovoltaic panel, the combiner box switch is opened, and the current flowing through the excitation fuse exceeds a first current threshold, causing the excitation fuse to open; in the event of a short circuit fault between the combiner box switch and the DC side of the inverter, the combiner box switch and the corresponding excitation fuse are opened; in the event of a short circuit fault inside the inverter, the combiner box switch is opened.