Battery control method, control device, optical storage system and storage medium

By detecting the working state and power in the optical storage system and triggering the battery control strategy based on the abnormal state, the problem of rapid decline in the power of the energy storage battery in an abnormal working state is solved, effectively protecting the power and extending the battery life.

CN120033790APending Publication Date: 2025-05-23FOSHAN SHUNDE MIDEA ELECTRONICS TECH CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202311577029.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-23
Publication Date
2025-05-23

AI Technical Summary

Technical Problem

In the optical storage system, the energy storage battery will rapidly decrease due to the power consumption of the inverter and battery cells in an abnormal working state, resulting in battery damage and shortening its service life. The prior art prevents the power from exhausting by controlling the battery to enter a dormant state, but it is impossible to accurately determine whether it should be dormant under complex working conditions, resulting in abnormal power consumption.

Method used

By detecting the operating state of the optical storage system and the power of the energy storage battery, different battery control strategies are triggered according to different abnormal states, including controlling the energy storage battery into sleep mode when the power is lower than the preset value or in the event of a fault, to avoid abnormal power consumption.

Benefits of technology

It effectively avoids the power of the energy storage battery being abnormally consumed under abnormal conditions, extends the service life of the battery, and improves the stability and reliability of the optical storage system.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120033790A_ABST
    Figure CN120033790A_ABST
Patent Text Reader

Abstract

The invention discloses a battery control method, a control device, an optical storage system and a storage medium, the battery control method is applied to the optical storage system, the optical storage system comprises a photovoltaic string and an energy storage battery, and the method comprises the following steps: detecting the working state of the optical storage system and the electric quantity of the energy storage battery; when the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter a dormancy mode; wherein the triggering condition of the battery dormancy strategy comprises at least one of the following conditions: the duration of the standby state of the optical storage system is greater than the first duration; in the off-grid mode, the electric quantity of the energy storage battery is lower than the standby electric quantity or the discharge cut-off electric quantity, and the power supply input of the photovoltaic string is not detected; and the photovoltaic string and / or the energy storage battery are / is failed. In the embodiment of the invention, different control strategies can be carried out on the battery according to different abnormal states of the optical storage system, so that the electric quantity of the battery is prevented from being consumed abnormally.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of photovoltaic power generation, and in particular to a battery control method, a control device, a photovoltaic storage system and a storage medium. Background Art

[0002] In a photovoltaic storage system, the energy storage battery is connected to the inverter for a long time. When the system is in abnormal operation, the self-consumption of power by the inverter and battery cells will cause the battery power to drop rapidly, and eventually run out of power, thereby damaging the battery and shortening its service life.

[0003] In the related art, the battery is usually controlled to enter a dormant state to prevent the battery from being exhausted quickly. However, it is not accurate to determine whether the battery has charging or discharging power. When the solar energy storage system is in various complex working conditions such as failure, the battery still has power output, but the current situation has not reached the power condition for the battery to sleep. At this time, the battery cannot be put into sleep, which will cause the battery power to be abnormally exhausted. Summary of the invention

[0004] The embodiments of the present application provide a battery control method, a control device, a photovoltaic storage system and a storage medium, which can implement different control strategies for the battery according to different abnormal states of the photovoltaic storage system to prevent the battery from being abnormally exhausted.

[0005] In a first aspect, an embodiment of the present application provides a battery control method, which is applied to a photovoltaic storage system, wherein the photovoltaic storage system includes a photovoltaic string and an energy storage battery, and the method includes:

[0006] Detecting the working state of the photovoltaic storage system and the power level of the energy storage battery;

[0007] When the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter a dormancy mode;

[0008] The triggering condition of the battery sleep strategy includes at least one of the following:

[0009] The duration of the solar energy storage system being in the standby state is greater than the first duration;

[0010] In the off-grid mode, the power level of the energy storage battery is lower than the standby power level or the discharge cut-off power level, and no power input from the photovoltaic string is detected;

[0011] The photovoltaic string and / or the energy storage battery fails.

[0012] According to the battery control method of the first aspect embodiment of the present application, there are at least the following beneficial effects: detecting the working state of the photovoltaic storage system and the power of the energy storage battery to determine whether the photovoltaic storage system has an abnormal situation. When the photovoltaic storage system is in the standby state for a period longer than the first period, it means that the energy storage battery has been in the working state, which may cause the problem of battery overcharging or over-discharging. It is necessary to control the energy storage battery to enter the sleep mode to avoid the battery power being abnormally exhausted. In the off-grid mode, the power of the energy storage battery is lower than the standby power or the discharge cut-off power, indicating that the power of the energy storage battery is too low, and the power input of the photovoltaic string is not detected, indicating that the energy storage battery cannot be recharged, then it is necessary to control the energy storage battery to enter the sleep state to reduce energy loss, and maintain the power by hibernating the energy storage battery. When the photovoltaic string and / or the energy storage battery fails, it means that the photovoltaic string cannot generate electricity or the battery cannot be charged. It is necessary to control the energy storage battery to enter the sleep mode to avoid the battery being abnormally exhausted due to over-discharge, thereby further extending the life of the energy storage battery. In the embodiment of the present application, the battery can be put into sleep mode according to different abnormal states of the photovoltaic storage system to avoid the battery power being abnormally exhausted.

[0013] In some embodiments of the present application, when the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter the dormancy mode includes:

[0014] In off-grid mode, when the power of the energy storage battery is lower than the standby power or the discharge cut-off power, the energy storage battery is stopped from discharging and the power supply input of the photovoltaic string is detected;

[0015] When no power input of the photovoltaic string is detected, the photovoltaic storage system is switched to a standby state, and a first electric quantity in the standby state is detected;

[0016] When the first power level is lower than a first preset power level, the energy storage battery is controlled to enter a sleep mode.

[0017] In some embodiments of the present application, after stopping the discharge of the energy storage battery and detecting the power supply input of the photovoltaic string, the method further includes:

[0018] When the power supply input of the photovoltaic string is detected, the power supply input of the photovoltaic string is used to replenish the power of the energy storage battery to a second power, wherein the second power is greater than the standby power or the discharge cut-off power.

[0019] In some embodiments of the present application, when the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter the dormancy mode also includes:

[0020] In the off-grid mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state;

[0021] Controlling the optical storage system to clear a fault, restart the optical storage system, and record a first restart number of the optical storage system;

[0022] When the first restart number is greater than a first preset number, performing fault detection on the optical storage system;

[0023] When a failure of the photovoltaic string and / or the energy storage battery is detected, the energy storage battery is controlled to enter a sleep mode.

[0024] In some embodiments of the present application, after performing fault detection on the optical storage system, the method further includes:

[0025] When it is detected that the inverter fails and the photovoltaic string and the energy storage battery do not fail, detecting the power supply input of the photovoltaic string;

[0026] When the power supply input of the photovoltaic string is detected and the power level of the energy storage battery is lower than the discharge cut-off power level, the energy storage battery is supplemented with power through the power supply input of the photovoltaic string.

[0027] In some embodiments of the present application, when the current working state of the photovoltaic storage system meets the triggering condition of the battery dormancy strategy, controlling the energy storage battery to enter the dormancy mode also includes:

[0028] In the grid-connected mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state;

[0029] Controlling the optical storage system to clear a fault, restart the optical storage system, and record a second restart number of the optical storage system;

[0030] When the second restart number is greater than a second preset number, performing fault detection on the optical storage system;

[0031] When a failure of the photovoltaic string and / or the energy storage battery is detected, the energy storage battery is controlled to enter a sleep mode.

[0032] In some embodiments of the present application, after performing fault detection on the optical storage system, the method further includes:

[0033] When it is detected that the inverter fails and the photovoltaic string and the energy storage battery do not fail, detecting the power supply input of the photovoltaic string;

[0034] When the power supply input of the photovoltaic string is detected and the power level of the energy storage battery is lower than the discharge cut-off power level, the energy storage battery is supplemented with power through the power supply input of the photovoltaic string.

[0035] In some embodiments of the present application, after detecting the power input of the photovoltaic string, the method further includes:

[0036] When the power input of the photovoltaic string is not detected, the energy storage battery is supplemented with power through the power grid.

[0037] In some embodiments of the present application, after the energy storage battery is recharged, the method further includes:

[0038] Replenishing the power of the energy storage battery to a third power, wherein the third power is greater than the standby power or the discharge cut-off power;

[0039] Perform fault detection on the photovoltaic storage system after recharging.

[0040] In some embodiments of the present application, the method further comprises:

[0041] In the grid-connected mode, when the power of the energy storage battery is lower than the standby power or the discharge cut-off power, the energy storage battery is stopped from discharging and the power supply input of the photovoltaic string is detected;

[0042] When the power supply input of the photovoltaic string is detected, the power supply input of the photovoltaic string is used to replenish the power of the energy storage battery to a fourth power, wherein the fourth power is greater than the standby power or the discharge cut-off power.

[0043] In some embodiments of the present application, after stopping the discharge of the energy storage battery and detecting the power supply input of the photovoltaic string, the method further includes:

[0044] When no power input from the photovoltaic string is detected, the power level of the energy storage battery is replenished to a fourth power level through the power grid.

[0045] In some embodiments of the present application, after detecting a failure of the photovoltaic string and / or the energy storage battery and controlling the energy storage battery to enter a sleep mode, the method further includes:

[0046] The energy storage battery is activated according to a preset cycle.

[0047] In a second aspect, an embodiment of the present application further provides a control device, comprising: a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein when the processor executes the computer program, the battery control method as described in the first aspect is implemented.

[0048] In a third aspect, an embodiment of the present application further provides a photovoltaic storage system, comprising the control device as described in the second aspect.

[0049] In a fourth aspect, an embodiment of the present application further provides a computer-readable storage medium, wherein the computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to enable a computer to execute the battery control method as described in the first aspect.

[0050] Other features and advantages of the present application will be described in the following description, and partly become apparent from the description, or understood by practicing the present application. The purpose and other advantages of the present application can be realized and obtained through the structures particularly pointed out in the description and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0051] The accompanying drawings are used to provide further understanding of the technical solution of the present application and constitute a part of the specification. Together with the embodiments of the present application, they are used to explain the technical solution of the present application and do not constitute a limitation on the technical solution of the present application.

[0052] Figure 1 is a schematic diagram of a device of an optical storage system provided by an embodiment of the present application;

[0053] Figure 2 is a flow chart of a battery control method provided by an embodiment of the present application;

[0054] Figure 3 yes Figure 2 A flowchart of the specific method of step S102;

[0055] Figure 4 is a flow chart of a battery control method provided by another embodiment of the present application;

[0056] Figure 5 yes Figure 2 Another flowchart of the specific method of step S102;

[0057] Figure 6 is a flow chart of a battery control method provided by another embodiment of the present application;

[0058] Figure 7 yes Figure 2 Another flowchart of the specific method of step S102;

[0059] Figure 8 is a flow chart of a battery control method provided by another embodiment of the present application;

[0060] Fig. 9 is a flow chart of a battery control method provided by another embodiment of the present application;

[0061] Fig.10 is a flow chart of a battery control method provided by another embodiment of the present application;

[0062] Fig.11 is a flow chart of a battery control method provided by another embodiment of the present application;

[0063] Fig.12is a flow chart of a battery control method provided by another embodiment of the present application;

[0064] Fig.13 is a flow chart of a battery control method provided by another embodiment of the present application;

[0065] Fig.14 is a flow chart of a battery control method provided by an example of the present application;

[0066] Fig.15 is a flow chart of a battery control method provided by another example of the present application;

[0067] Fig.16 It is a schematic diagram of a control device provided in one embodiment of the present application. DETAILED DESCRIPTION

[0068] In order to make the purpose, technical solutions and advantages of the present application clearer, the present application is further described in detail below in conjunction with the accompanying drawings and examples. It should be understood that the specific embodiments described herein are only used to explain the present application and are not intended to limit the present application. In addition, the characteristics, operations or features described in the specification can be combined in any appropriate manner to form various implementation methods. At the same time, the steps or actions in the method description can also be replaced or adjusted in order in a manner that is obvious to those skilled in the art. Therefore, the various sequences in the specification and the accompanying drawings are only for the purpose of clearly describing a certain embodiment and are not meant to be a necessary sequence, unless otherwise specified that a certain sequence must be followed.

[0069] In the description of this application, "several" means one or more, "more" means more than two, "greater than", "less than", "exceed", etc. are understood to exclude the number itself, and "above", "below", "within", etc. are understood to include the number itself. If there is a description of "first" or "second", it is only used for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features or implicitly indicating the order of the indicated technical features.

[0070] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0071] In the description of this application, unless otherwise clearly defined, terms such as setting, installing, connecting, etc. should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in this application based on the specific content of the technical solution.

[0072] In a photovoltaic storage system, the energy storage battery is connected to the inverter for a long time. When the system is in abnormal operation, the self-consumption of power by the inverter and battery cells will cause the battery power to drop rapidly, and eventually run out of power, thereby damaging the battery and shortening its service life.

[0073] In the related art, the battery is usually controlled to enter a dormant state to prevent the battery from being exhausted quickly. However, it is not accurate to determine whether the battery has charging or discharging power. When the solar energy storage system is in various complex working conditions such as failure, the battery still has power output, but the current situation has not reached the power condition for the battery to sleep. At this time, the battery cannot be put into sleep, which will cause the battery power to be abnormally exhausted.

[0074] When the solar energy storage system works abnormally, the battery is over-discharged, not recharged or repaired in time, or cannot work normally for a long time, resulting in the battery power being exhausted. When it comes to maintenance, the battery is damaged and needs to be replaced, which is very costly.

[0075] Based on the above situation, the embodiments of the present application provide a battery control method, a control device, a photovoltaic storage system and a storage medium: detecting the working state of the photovoltaic storage system and the power of the energy storage battery to determine whether an abnormal situation occurs in the photovoltaic storage system. When the photovoltaic storage system is in a standby state for a period longer than a first period, it indicates that the energy storage battery has been in a working state, which may cause problems such as overcharging or over-discharging of the battery. It is necessary to control the energy storage battery to enter a sleep mode to prevent the battery power from being abnormally exhausted. In the off-grid mode, the power of the energy storage battery is lower than the standby power or the discharge cut-off power, indicating that the power of the energy storage battery is too low, and the power supply input of the photovoltaic string is not detected, indicating that the energy storage battery cannot be recharged, then it is necessary to control the energy storage battery to enter a sleep state to reduce energy loss, and maintain the power by hibernating the energy storage battery. When a photovoltaic string or an energy storage battery fails, it indicates that the photovoltaic string cannot generate electricity or the battery cannot be charged, and it is necessary to control the energy storage battery to enter a sleep mode to prevent the battery from being abnormally exhausted due to over-discharge, thereby further extending the life of the energy storage battery. In the embodiments of the present application, the battery can be put into sleep mode according to different abnormal states of the photovoltaic storage system to prevent the battery power from being abnormally exhausted.

[0076] The embodiments of the present application are further described below in conjunction with the accompanying drawings.

[0077] like Figure 1 As shown, Figure 1 It is a schematic diagram of a device of a photoelectric storage system provided in one embodiment of the present application.

[0078] In some embodiments, the photovoltaic storage system includes a photovoltaic string 100, a storage battery 200 and an inverter 300, wherein the energy of the photovoltaic string 100 is output to the DC bus through a first DC / DC circuit, the storage battery 200 outputs energy to the DC bus through a second DC / DC circuit, and the DC / AC circuit inverts the energy on the bus and connects it to the grid.

[0079] When the photovoltaic storage system is in off-grid mode, the energy of the photovoltaic string 100 is transmitted to the energy storage battery 200 through the first DC / DC circuit and the second DC / DC circuit to realize charging of the energy storage battery 200; when the photovoltaic storage system is in grid-connected mode, the energy of the photovoltaic string 100 is transmitted to the energy storage battery 200 through the first DC / DC circuit and the second DC / DC circuit, and the energy of the power grid is transmitted to the energy storage battery 200 through the DC / AC circuit and the second DC / DC circuit to realize charging of the energy storage battery 200.

[0080] It can be understood by those skilled in the art that Figure 1 The schematic diagram shown in does not constitute a limitation on the embodiments of the present application, and may include more or fewer components than shown in the figure, or a combination of certain components, or a different arrangement of components. The battery control method in this embodiment is specifically described below.

[0081] Figure 2 This is a flow chart of a battery control method provided by an embodiment of the present application. Application but not limited to Figure 1 The photovoltaic storage system includes but is not limited to steps S101 to S102.

[0082] Step S101: Detecting the working state of the photovoltaic storage system and the power level of the energy storage battery 200;

[0083] In some embodiments, the working status of the photovoltaic storage system and the power level of the energy storage battery 200 are detected to achieve real-time monitoring of the photovoltaic storage system and determine whether the photovoltaic storage system has any abnormal conditions, so as to facilitate different control strategies for the battery according to different abnormal conditions of the photovoltaic storage system.

[0084] Step S102: When the triggering condition of the battery sleep strategy is met, the energy storage battery 200 is controlled to enter the sleep mode.

[0085] In some embodiments, when the triggering conditions of the battery sleep strategy are met, the energy storage battery 200 is directly controlled to enter the sleep mode, the charging and discharging process of the energy storage battery 200 is stopped, and the self-discharge rate of the battery is reduced, thereby extending the battery life and avoiding further consumption of the battery power.

[0086] In some embodiments, the triggering condition of the battery sleep strategy includes at least one of the following:

[0087] The duration of the photovoltaic storage system being in the standby state is longer than the first duration, indicating that the photovoltaic storage system has not been started for a long time. However, during the long period of time when the photovoltaic storage system has not been started, the battery will continue to consume energy, resulting in energy waste. If the battery is always in a working state, it may cause overcharging or over-discharging, thereby damaging the battery performance and even causing safety problems. At this time, it is necessary to control the energy storage battery 200 to enter the sleep mode, thereby slowing down the speed of the natural discharge of the energy storage battery 200 and extending the life of the energy storage battery 200.

[0088] It should be noted that the first duration can be adjusted according to the needs of the user. For example, the first duration can be set to one hour, two hours, three hours, etc. This embodiment does not impose any specific limitation.

[0089] In the off-grid mode, the power of the energy storage battery 200 is lower than the standby power or the discharge cut-off power, indicating that the energy storage battery 200 is in a low power state, and the power input of the photovoltaic string 100 is not detected. At this time, the power of the energy storage battery 200 cannot be replenished, and excessive discharge may cause the battery performance to deteriorate or even be damaged. Therefore, it is necessary to control the energy storage battery 200 to enter the sleep mode, which can ensure that the discharge is stopped in time when the remaining power is low, avoid damage to the battery caused by excessive discharge, and thus extend the battery life;

[0090] It should be noted that the standby power and the discharge cut-off power can be set according to the needs of the user, or according to the power size of the energy storage battery 200. For example, if the battery capacity of the energy storage battery 200 is 1000 mAh, the standby power can be set to 500 mAh, and the discharge cut-off power can be set to 100 mAh; or, if the battery capacity of the energy storage battery 200 is 1000 mAh, the standby power can be set to 200 mAh, and the discharge cut-off power can be set to 50 mAh, etc. This embodiment does not impose any specific restrictions.

[0091] When the photovoltaic string 100 and / or the energy storage battery 200 fails, causing the photovoltaic storage system to be unable to work normally or unable to provide sufficient power to charge the battery, in the event of a failure, continued use of the battery may cause more serious damage, requiring more expensive repairs or replacements. Controlling the battery to sleep mode helps to suspend battery operation and prevent further expansion of the failure.

[0092] It should be noted that when the photovoltaic string 100 fails, it may be that the photovoltaic string 100 device itself fails, or there is a poor connection between the photovoltaic string 100 and the energy storage battery 200, for example, the photovoltaic string 100 panel is damaged, the contact is poor, the line is faulty, etc., which may cause the photovoltaic string 100 to be unable to generate electricity, or the power of the photovoltaic string 100 cannot reach the energy storage battery 200, etc., which means that the battery cannot be recharged, and the energy storage battery 200 needs to be controlled to enter a dormant state; when the energy storage battery 200 fails, it means that the connection at the battery end is faulty or the body of the energy storage battery 200 fails, for example, the battery body is damaged, the electrolyte leaks, the DC / DC circuit at the battery end fails, etc., resulting in the inability to charge the battery, then the energy storage battery 200 needs to be controlled to enter a dormant state to avoid abnormal discharge of the battery.

[0093] It is understandable that when any one of the photovoltaic string 100 and the energy storage battery 200 fails, it is necessary to control the energy storage battery 200 to enter the sleep mode to realize the judgment of different abnormal situations, improve the accuracy of the judgment of the abnormal state of the photovoltaic storage system, and further extend the life of the energy storage battery 200.

[0094] Reference Figure 3 , Figure 3 yes Figure 2 The flowchart of the specific method of step S102 is shown in FIG. 1 , and the step S102 may include but is not limited to the following steps S201 to S203.

[0095] Step S201: in the off-grid mode, when the power of the energy storage battery 200 is lower than the standby power or the discharge cut-off power, the energy storage battery 200 is stopped from discharging and the power supply input of the photovoltaic string 100 is detected;

[0096] Step S202: When no power input of the photovoltaic string 100 is detected, the photovoltaic storage system is switched to a standby state, and a first power amount in the standby state is detected;

[0097] Step S203: When the first power level is lower than the first preset power level, the energy storage battery 200 is controlled to enter a sleep mode.

[0098] In steps S201 to S203 of some embodiments, in the off-grid mode, when the power of the energy storage battery 200 is lower than the standby power or the discharge cut-off power, the energy storage battery 200 is stopped from discharging. By stopping the discharge of the energy storage battery 200, the battery power is prevented from being completely exhausted, and the discharge is ensured to be stopped in time when the remaining power is low to avoid damage to the battery due to excessive discharge. The power input of the photovoltaic string 100 is detected to determine whether there is power input to the energy storage battery 200. When the power input of the photovoltaic string 100 is not detected, it means that the energy storage battery 200 cannot be charged, and it is necessary to switch the photovoltaic storage system to a standby state, thereby saving battery power and extending the battery life. The first power of the energy storage battery 200 in the standby state is detected. When the first power is lower than the first preset power, it means that the energy storage battery 200 is still discharging, and it is necessary to control the energy storage battery 200 to enter a sleep mode, so that the battery stops the charging and discharging process, reduces the self-discharge rate of the battery, extends the battery life, and avoids further consumption of the battery power.

[0099] It should be noted that the first preset power can be set according to the needs of the user, for example, 10 mAh, 20 mAh, 30 mAh, etc., and this embodiment does not make any specific limitation.

[0100] Reference Figure 4 , Figure 4 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to step S301.

[0101] It should be noted that step S301 occurs after stopping the discharge of the energy storage battery 200 and detecting the power input of the photovoltaic string 100 .

[0102] Step S301 : when the power input of the photovoltaic string 100 is detected, the power of the energy storage battery 200 is replenished to a second power level through the power input of the photovoltaic string 100 .

[0103] It should be noted that the second power is greater than the standby power or the discharge cut-off power.

[0104] In some embodiments, when the power input of the photovoltaic string 100 is detected, the power of the energy storage battery 200 can be directly replenished to the second power level through the power input of the photovoltaic string 100 to replenish the power of the energy storage battery 200, ensure that the photovoltaic storage system operates more stably and reliably, and extend the battery life.

[0105] It should be noted that the second power level can be set according to the needs of the user and can be greater than the standby power level or the discharge cut-off power level. For example, when the standby power level is 50 mAh, the second power level can be set to 80 mAh, 100 mAh, 120 mAh, etc.; when the discharge cut-off power level is 20 mAh, the second power level can be set to 50 mAh, 70 mAh, etc. This embodiment does not impose any specific restrictions.

[0106] After the power of the energy storage battery 200 is replenished to the second power level through the power supply input of the photovoltaic string 100, a hysteresis value of the replenishment power can also be set, wherein the hysteresis value can be set according to the needs of the user, and the second power level is greater than the sum of the standby power level and the hysteresis value, or the second power level is greater than the sum of the discharge cut-off power level and the hysteresis value. Setting a suitable replenishment hysteresis value can ensure that the battery always maintains a certain energy storage reserve, so as to quickly respond to load demands when needed, thereby improving the stability and reliability of the system.

[0107] It is understandable that when the load demand increases, the battery will start to release the stored energy to meet the load demand. In this case, when the battery power drops below the second power level, the photovoltaic storage system will restart photovoltaic power generation and replenish it to the battery to keep the battery power at an appropriate level. And by setting a suitable replenishment hysteresis, frequent charging and discharging can be avoided, the number of battery cycles can be reduced, and it can also ensure that the battery always maintains a certain amount of energy storage reserves, so as to quickly respond to load demand when needed, and improve the stability and reliability of the system.

[0108] Reference Figure 5 , Figure 5 yes Figure 2 Another flowchart of the specific method of step S102, the step S102 may include but is not limited to the following steps S401 to S404.

[0109] Step S401: In the off-grid mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state;

[0110] Step S402: Control the optical storage system to clear the fault, restart the optical storage system, and record the first restart number of the optical storage system;

[0111] Step S403: When the first restart number is greater than the first preset number, a fault detection is performed on the optical storage system;

[0112] Step S404: When a failure of the photovoltaic string 100 and / or the energy storage battery 200 is detected, the energy storage battery 200 is controlled to enter a sleep mode.

[0113] In steps S401 to S404 of some embodiments, in the off-grid mode, when a fault occurs in the photovoltaic storage system, the photovoltaic storage system is switched to a standby state so that the photovoltaic storage system is in a low power consumption state. While maintaining the low power consumption state, the photovoltaic storage system can still quickly respond to external signals and resume normal operation. The photovoltaic storage system is then controlled to clear the fault and restart the photovoltaic storage system, thereby eliminating unstable factors in the photovoltaic storage system and restoring the stability of the photovoltaic storage system. The first restart number of the photovoltaic storage system is recorded to facilitate subsequent judgment of the restart number of the photovoltaic storage system. When the first restart number is greater than the first preset number, the photovoltaic storage system is fault detected to determine the fault type of the photovoltaic storage system, so as to facilitate subsequent execution of corresponding control strategies according to different fault types. When a fault is detected in the photovoltaic string 100 or the energy storage battery 200, it means that the photovoltaic string 100 cannot provide electrical energy at this time, or the battery cannot be charged, resulting in the photovoltaic storage system being unable to work normally or unable to provide enough power to charge the battery. In this case, the energy storage battery 200 needs to be controlled to enter a sleep mode to avoid abnormal battery discharge.

[0114] It is worth noting that when the first restart number is less than or equal to the first preset number, the photovoltaic storage system will continue to be restarted until the first restart number is greater than the first preset number, so that the system can be diagnosed and adjusted, and the system configuration and parameter settings can be optimized to improve the system's energy utilization efficiency and performance.

[0115] It should be noted that the failure of the photovoltaic storage system includes but is not limited to the failure of the inverter 300 in the photovoltaic storage system, the failure of the photovoltaic module, the failure of the energy storage battery 200, the connection failure of various components, etc., and this embodiment does not make specific restrictions.

[0116] Reference Figure 6 , Figure 6 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S501 to S502.

[0117] It should be noted that step S501 to step S502 occur after fault detection is performed on the photovoltaic storage system.

[0118] Step S501: When it is detected that the inverter 300 fails, and the photovoltaic string 100 and the energy storage battery 200 do not fail, the power input of the photovoltaic string 100 is detected;

[0119] Step S502 : when the power input of the photovoltaic string 100 is detected and the power level of the energy storage battery 200 is lower than the discharge cut-off power level, the energy storage battery 200 is supplemented with power through the power input of the photovoltaic string 100 .

[0120] In some embodiments, when it is detected that the inverter 300 fails, but the photovoltaic string 100 and the energy storage battery 200 do not fail, that is, only the inverter 300 fails in the photovoltaic storage system, the power input of the photovoltaic string 100 is detected to confirm whether there is a photovoltaic string 100 providing power to the energy storage battery 200. When the power input of the photovoltaic string 100 is detected and the power of the energy storage battery 200 is lower than the discharge cut-off power, it means that the energy storage battery 200 needs to be charged, and there is a power input of the photovoltaic string 100 in the photovoltaic storage system to charge the energy storage battery 200. Then, the energy storage battery 200 can be directly replenished through the power input of the photovoltaic string 100 to achieve replenishment of the energy storage battery 200.

[0121] It is worth noting that when the energy storage battery 200 is lower than the discharge cut-off power and there is power input from the photovoltaic string 100, the photovoltaic discharge at this time is unstable. The photovoltaic power generation of the day can only be fully replenished to the energy storage battery 200 according to the photovoltaic power generation situation, until the power input from the photovoltaic string 100 is no longer detected, or the energy storage battery 200 is fully charged.

[0122] In some embodiments, when the power input of the photovoltaic string 100 is detected and the power level of the energy storage battery 200 is higher than the discharge cut-off power level, the fault detection of the photovoltaic storage system continues without the need for a power replenishment operation.

[0123] It should be noted that the fault of the inverter 300 may be a switch failure, a capacitor failure, a circuit board damage, an inverter 300 overvoltage, an inverter 300 overcurrent, etc., and this embodiment does not make any specific limitation.

[0124] Reference Figure 7 , Figure 7 yes Figure 2 Another flowchart of the specific method of step S102, the step S102 may include but is not limited to the following steps S601 to S604.

[0125] Step S601: In the grid-connected mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state;

[0126] Step S602: Control the optical storage system to clear the fault, restart the optical storage system, and record the second restart number of the optical storage system;

[0127] Step S603: When the second restart number is greater than the second preset number, a fault detection is performed on the optical storage system;

[0128] Step S604: When a failure of the photovoltaic string 100 or the energy storage battery 200 is detected, the energy storage battery 200 is controlled to enter a sleep mode.

[0129] In steps S601 to S604 of some embodiments, in the grid-connected mode, when a fault occurs in the photovoltaic storage system, the photovoltaic storage system is switched to a standby state so that the photovoltaic storage system is in a low power consumption state. While maintaining the low power consumption state, the photovoltaic storage system can still quickly respond to external signals and resume normal operation. The photovoltaic storage system is then controlled to clear the fault and restart the photovoltaic storage system, thereby eliminating unstable factors in the photovoltaic storage system and restoring the stability of the photovoltaic storage system. The second restart number of the photovoltaic storage system is recorded to facilitate subsequent judgment of the restart number of the photovoltaic storage system. When the second restart number is greater than the second preset number, the photovoltaic storage system is fault detected to determine the fault type of the photovoltaic storage system, so as to facilitate subsequent execution of corresponding control strategies according to different fault types. When a fault is detected in the photovoltaic string 100 or the energy storage battery 200, it means that the photovoltaic string 100 cannot provide electrical energy at this time, or the battery cannot be charged, resulting in the photovoltaic storage system being unable to work normally or unable to provide enough power to charge the battery. In this case, the energy storage battery 200 needs to be controlled to enter a sleep mode to avoid abnormal battery discharge.

[0130] It is worth noting that when the second restart number is less than or equal to the second preset number, the photovoltaic storage system will continue to be restarted until the second restart number is greater than the second preset number, so that the system can be diagnosed and adjusted, and the system configuration and parameter settings can be optimized to improve the system's energy utilization efficiency and performance.

[0131] It should be noted that the failure of the photovoltaic storage system includes but is not limited to the failure of the inverter 300 in the photovoltaic storage system, the failure of the photovoltaic module, the failure of the energy storage battery 200, the connection failure of various components, etc., and this embodiment does not make specific restrictions.

[0132] In some embodiments, the optical storage system is usually equipped with fault diagnosis and automatic recovery functions. When the system detects a fault, it will automatically perform diagnostic analysis and try to automatically recover or restart the affected components or subsystems. For example, the corresponding fault identification bit can be automatically cleared by software, the system fault can be automatically identified, and the operating status and performance parameters of each component of the system can be monitored in real time, etc. This embodiment does not make specific restrictions.

[0133] Reference Figure 8 , Figure 8 It is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S701 to S702.

[0134] It should be noted that step S701 to step S702 occur after fault detection is performed on the photovoltaic storage system.

[0135] Step S701: When it is detected that the inverter 300 fails, and the photovoltaic string 100 and the energy storage battery 200 do not fail, the power input of the photovoltaic string 100 is detected;

[0136] Step S702 : when the power input of the photovoltaic string 100 is detected and the power level of the energy storage battery 200 is lower than the discharge cut-off power level, the energy storage battery 200 is supplemented with power through the power input of the photovoltaic string 100 .

[0137] In steps S701 to S702 of some embodiments, when it is detected that the inverter 300 fails, and the photovoltaic string 100 and the energy storage battery 200 do not fail, that is, only the inverter 300 fails in the photovoltaic storage system, the power input of the photovoltaic string 100 is detected to confirm whether there is a photovoltaic string 100 providing power to the energy storage battery 200. When the power input of the photovoltaic string 100 is detected and the power of the energy storage battery 200 is lower than the discharge cut-off power, it means that the energy storage battery 200 needs to be charged, and there is a power input of the photovoltaic string 100 in the photovoltaic storage system to charge the energy storage battery 200. In the grid-connected mode, the photovoltaic storage system preferentially charges the energy storage battery 200 through the photovoltaic string 100, and the energy storage battery 200 can be directly replenished through the power input of the photovoltaic string 100 to achieve replenishment of the energy storage battery 200.

[0138] It should be noted that when the power of the energy storage battery 200 is higher than the discharge cut-off power, the energy storage battery 200 is controlled to enter a dormant state, thereby reducing the working number of the energy storage battery 200 and avoiding further consumption of the battery power. The energy storage battery 200 is then awakened at a fixed time to replenish the power of the energy storage battery 200.

[0139] Reference Fig. 9 , Fig. 9 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S801.

[0140] It should be noted that step S801 occurs after the power input of the photovoltaic string 100 is detected.

[0141] Step S801: When no power input from the photovoltaic string 100 is detected, the energy storage battery 200 is supplemented with power through the power grid.

[0142] In some embodiments, when no power input of the photovoltaic string 100 is detected, it means that there are no photovoltaic components in the photovoltaic storage system or there is no power input to the photovoltaic string 100, and the energy storage battery 200 needs to be supplemented by the power grid to achieve supplementary power to the energy storage battery 200, improve the stability of the photovoltaic storage system, and further improve the operating efficiency of the photovoltaic storage system.

[0143] Reference Fig.10 , Fig.10 It is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S901 to S902.

[0144] It should be noted that step S901 to step S902 occur after the energy storage battery 200 is recharged.

[0145] Step S901: replenishing the power of the energy storage battery 200 to a third power level;

[0146] It should be noted that the third power level is greater than the standby power level or the discharge cut-off power level, wherein the third power level can be set according to the needs of the user. For example, when the standby power level is 100 mAh, the third power level can be set to 150 mAh, 160 mAh, 200 mAh, etc.; when the discharge cut-off power level is 50 mAh, the second power level can be set to 60 mAh, 70 mAh, etc. This embodiment does not make specific restrictions.

[0147] Step S902: Perform fault detection on the photovoltaic storage system after the power is replenished.

[0148] In steps S901 to S902 of some embodiments, the power of the energy storage battery 200 is replenished to a third power level through the photovoltaic string 100 or the power grid, and then the photovoltaic storage system after replenishment is detected for faults, thereby improving the reliability and stability of the photovoltaic storage system, effectively reducing the risk of serious failures in the photovoltaic storage system, improving the reliability and stability of the photovoltaic storage system, and being able to promptly discover potential failures in the photovoltaic storage system to avoid the expansion of failures.

[0149] It should be noted that after the power of the energy storage battery 200 is replenished to the third power level, a hysteresis value for replenishment can also be set, wherein the hysteresis value can be set according to the needs of the user, and the third power level is greater than the sum of the standby power level and the hysteresis value, or the fourth power level is greater than the sum of the discharge cut-off power level and the hysteresis value. Setting an appropriate replenishment hysteresis value can ensure that the battery always maintains a certain energy storage reserve, so as to quickly respond to load demands when needed, thereby improving the stability and reliability of the system.

[0150] Reference Fig.11 , Fig.11 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S1001 to S1002.

[0151] Step S1001: In the grid-connected mode, when the power of the energy storage battery 200 is lower than the standby power or the discharge cut-off power, the energy storage battery 200 is stopped from discharging and the power supply input of the photovoltaic string 100 is detected;

[0152] Step S1002 : when the power input of the photovoltaic string 100 is detected, the power of the energy storage battery 200 is replenished to a fourth power level through the power input of the photovoltaic string 100 .

[0153] It should be noted that the fourth power is greater than the standby power or the discharge cut-off power.

[0154] In steps S1001 to S1002 of some embodiments, in the grid-connected mode, when the power of the energy storage battery 200 is lower than the standby power or the discharge cut-off power, the energy storage battery 200 is stopped from discharging. By stopping the discharge of the energy storage battery 200, the battery power is prevented from being completely exhausted, and the discharge is ensured to be stopped in time when the remaining power is low to avoid damage to the battery due to excessive discharge. The power input of the photovoltaic string 100 is detected to determine whether there is power input to the energy storage battery 200. When the power input of the photovoltaic string 100 is detected, the power of the energy storage battery 200 is directly replenished to the fourth power through the power input of the photovoltaic string 100, and the free photovoltaic string 100 is used for power replenishment first, which has both economic benefits and saves resources, and can extend the service life of the energy storage battery 200.

[0155] It should be noted that the fourth power can be set according to the needs of the user and can be greater than the standby power or the discharge cut-off power. For example, when the standby power is 70 mAh, the second power can be set to 80 mAh, 100 mAh, 120 mAh, etc.; when the discharge cut-off power is 60 mAh, the second power can be set to 90 mAh, 70 mAh, etc. This embodiment does not make specific restrictions.

[0156] After the power of the energy storage battery 200 is replenished to the fourth power level through the power supply input of the photovoltaic string 100, a hysteresis value of the replenishment power can also be set, wherein the hysteresis value can be set according to the needs of the user, and the fourth power level is greater than the sum of the standby power level and the hysteresis value, or the fourth power level is greater than the sum of the discharge cut-off power level and the hysteresis value. Setting a suitable replenishment hysteresis value can ensure that the battery always maintains a certain energy storage reserve, so as to quickly respond to load demands when needed, thereby improving the stability and reliability of the system.

[0157] It is understandable that when the load demand increases, the battery will start to release the stored energy to meet the load demand. In this case, when the battery power drops below the fourth power level, the photovoltaic storage system will restart photovoltaic power generation and replenish it to the battery to keep the battery power at an appropriate level. And by setting a suitable replenishment hysteresis, frequent charging and discharging can be avoided, reducing the number of battery cycles, and ensuring that the battery always maintains a certain amount of energy storage reserves, so as to quickly respond to load demand when needed, and improve the stability and reliability of the system.

[0158] Reference Fig.12 , Fig.12 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following step S1003.

[0159] It should be noted that step S1003 occurs after the power input of the photovoltaic string 100 is detected.

[0160] Step S1003: When no power input from the photovoltaic string 100 is detected, the power of the energy storage battery 200 is replenished to a fourth power level through the power grid.

[0161] In some embodiments, when no power input from the photovoltaic string 100 is detected, the power of the energy storage battery 200 can be replenished to a fourth power level through the power grid to charge the energy storage battery 200, thereby improving the stability of the entire photovoltaic storage system and ensuring that the photovoltaic storage system operates more stably and reliably.

[0162] It should be noted that after the power of the energy storage battery 200 is replenished to the fourth power level through the power grid, the hysteresis value of the replenishment can also be made. The specific means are the same as the operation of replenishing the power of the energy storage battery 200 to the fourth power level through the power supply input of the photovoltaic string 100 and then performing the replenishment hysteresis operation. This implementation will not be repeated here.

[0163] Reference Fig.13 , Fig.13 This is a flow chart of a battery control method provided by another embodiment of the present application, including but not limited to the following steps S1101.

[0164] It should be noted that step S1101 occurs after a failure of the photovoltaic string 100 and / or the energy storage battery 200 is detected and the energy storage battery 200 is controlled to enter a sleep mode.

[0165] Step S1101: activating the energy storage battery 200 according to a preset cycle.

[0166] In some embodiments, after a failure of the photovoltaic string 100 and / or the energy storage battery 200 is detected and the energy storage battery 200 is controlled to enter a sleep mode, the energy storage battery 200 is activated according to a preset cycle, wherein the energy storage battery 200 is awakened at a scheduled time, a charging operation is started, etc., thereby extending the service life of the energy storage battery 200 and achieving timely charging of the energy storage battery 200.

[0167] It should be noted that, in the off-grid mode, after a fault of the photovoltaic string 100 and / or the energy storage battery 200 is detected and the energy storage battery 200 is controlled to enter the sleep mode, when the power input of the photovoltaic string 100 is detected again, the energy storage battery 200 is awakened on a scheduled basis; in the grid-connected mode, in addition to the photovoltaic string 100 supplying power to the energy storage battery 200, the energy storage battery 200 can also be powered by the power grid, so the energy storage battery 200 can be directly awakened on a scheduled basis.

[0168] It is understandable that the preset cycle can be set according to the needs of the user, for example, it can be set to activate the energy storage battery 200 every two hours, every four hours, every six hours, etc. This embodiment does not impose specific limitations.

[0169] In order to explain the above-mentioned battery control method more clearly and clearly, a specific example is given below for illustration.

[0170] Example 1:

[0171] Example 1 is a specific description of a battery control method, a control device, a photovoltaic storage system and a storage medium. Figure 1 Based on the photovoltaic storage system structure in the paper, the battery control method is explained in detail.

[0172] The photovoltaic storage system includes a photovoltaic string 100 and an energy storage battery 200. When the photovoltaic storage system is operated off-grid, the abnormal state of the photovoltaic storage system is monitored. When standby is not started, an alarm is given after starting, or a failure occurs after starting, the entire system needs to be processed.

[0173] In some embodiments, when the system is in a standby state and has not started for a long time, the system starts timing T. When the timeout time is greater than the first time length Tstandy (settable), the inverter 300 controls the energy storage battery 200 BMS (Battery Management System) to disconnect the output of the energy storage battery 200 and control the energy storage battery 200 to enter a sleep state. When the power input of the photovoltaic string 100 is not detected, the photovoltaic storage system is completely powered off.

[0174] It should be noted that when the power input of the photovoltaic string 100 is detected, the photovoltaic storage system continues to remain in the standby state.

[0175] In some embodiments, when an alarm occurs after the system starts normally, for example, the discharge of the energy storage battery 200 falls below the discharge cut-off power SOC1 (settable) alarm or the set standby power SOC2 (settable) alarm, the photovoltaic storage system immediately stops the discharge of the energy storage battery 200.

[0176] When the power input of the photovoltaic string 100 is detected, the energy storage battery 200 is started to supplement power through the photovoltaic string 100. The photovoltaic storage system supplements the power input of the photovoltaic string 100 to the energy storage battery 200. When the battery power is charged to the second power (SOC3), the SOC hysteresis of supplementary power is performed, and the discharge cut-off power SOC3>SOC1+hysteresis value (settable), or the standby power alarm SOC3>SOC2+hysteresis value (settable);

[0177] When the power input of the photovoltaic string 100 is not detected, and the power level is lower than the discharge cut-off power SOC1 alarm or lower than the standby power SOC2 alarm, the state of the photovoltaic storage system switches from the alarm state to the standby state. At this time, if the power of the photovoltaic storage battery cannot be replenished, when the power of the photovoltaic storage battery is lower than the set first preset power SOC4 (settable), the inverter 300 controls the energy storage battery 200 BMS, disconnects the output of the energy storage battery 200, and completely cuts off the power of the entire photovoltaic storage system.

[0178] In some embodiments, when a fault occurs after the photovoltaic storage system starts normally, the photovoltaic storage system will switch to a standby mode, and then the photovoltaic storage system will try to automatically clear the fault and restart.

[0179] When the number of restarts is greater than a first preset number M (settable), the optical storage system reports a fault and sends it to after-sales personnel for repair.

[0180] It should be noted that, when the number of restart times is less than or equal to the first preset number, the restart operation on the optical storage system continues until the number of restart times is greater than the first preset number.

[0181] If the current fault is only a DC / AC fault of the inverter 300, and the energy storage battery 200 is at low power and there is power input from the photovoltaic string 100, since the photovoltaic power generation is unstable at this time, the battery can only be replenished with as much photovoltaic power generation as possible on that day according to the photovoltaic power generation situation until there is no photovoltaic power or the battery is fully charged.

[0182] If other faults occur, for example, the photovoltaic string 100 or the energy storage battery 200 fails, the inverter 300 controls the energy storage battery 200 BMS to disconnect the battery output, and the energy storage battery 200 enters a dormant state. When there is no power input from the photovoltaic string 100, the entire photovoltaic storage system is powered off. When there is power input from the photovoltaic string 100 again, the battery is awakened at a fixed time. When only the inverter 300 DC / AC fails and the power is lower than the discharge cut-off power, a power replenishment is started. Repeat the above operation until the photovoltaic storage system is repaired.

[0183] refer to Fig.14 , Fig.14 is a flow chart of a battery control method provided by a specific example of the present application;

[0184] The following are the specific steps for battery control in off-grid mode of the solar storage system.

[0185] Step S1: Detecting the working state of the photovoltaic storage system and the power level of the energy storage battery 200;

[0186] Step S2: In the off-grid mode, the system is not in standby mode;

[0187] Step S3: the duration of the solar energy storage system being in the standby state is greater than the first duration;

[0188] Step S4: disconnecting the output of the energy storage battery 200 and controlling the energy storage battery 200 to enter a dormant state;

[0189] Step S5: determining whether the power supply input of the photovoltaic string 100 is detected;

[0190] Step S6: When it is detected that there is no power input from the photovoltaic string 100, the photovoltaic storage system is completely powered off;

[0191] Step S7: When power input from the photovoltaic string 100 is detected, the photovoltaic storage system continues to remain in standby mode;

[0192] Step S8: In off-grid mode, an alarm occurs after the system starts normally;

[0193] Step S9: the photovoltaic storage system immediately stops discharging the energy storage battery 200;

[0194] Step S10: determining whether the power supply input of the photovoltaic string 100 is detected;

[0195] Step S11: when power input from the photovoltaic string 100 is detected, the energy storage battery 200 is started to supplement power, and the photovoltaic storage system supplements the power input from the photovoltaic string 100 to the energy storage battery 200;

[0196] Step S12: When the energy storage battery 200 is charged to the second power (SOC3), the SOC hysteresis of the supplementary power is performed, and the discharge cut-off power SOC3>SOC1+hysteresis value, or the standby power alarm SOC3>SOC2+hysteresis value;

[0197] Step S13: when it is detected that there is no power input from the photovoltaic string 100, the power level is lower than the discharge cut-off power SOC1 alarm or lower than the standby power SOC2 alarm, the state of the photovoltaic storage system is switched from the alarm state to the standby state;

[0198] Step S14: When the power of the photovoltaic storage battery is lower than the first preset power SOC4, the inverter 300 controls the energy storage battery 200 BMS to disconnect the output of the energy storage battery 200, so that the entire photovoltaic storage system is completely powered off;

[0199] Step S15: In the off-grid mode, the photovoltaic storage system fails after normal startup;

[0200] Step S16: the photovoltaic storage system switches to the standby mode, and then the photovoltaic storage system attempts to automatically clear the fault and restart, and records the first restart number of the photovoltaic storage system;

[0201] Step S17: Determine whether the first restart number is greater than a first preset number;

[0202] Step S18: When the first restart number is greater than the first preset number, a fault detection is performed on the optical storage system;

[0203] Step S19: determining whether the current fault is only a DC / AC fault of the inverter 300;

[0204] Step S20: If the current fault is only a DC / AC fault of the inverter 300, determine whether the power of the energy storage battery 200 is lower than the discharge cut-off power;

[0205] Step S21: when the current fault is only a DC / AC fault of the inverter 300, the power of the energy storage battery 200 is lower than the discharge cut-off power, and there is power input from the photovoltaic string 100, the energy storage battery 200 is charged through the photovoltaic string 100;

[0206] Step S22: If other faults occur, the inverter 300 controls the BMS of the energy storage battery 200 to disconnect the battery output, and the energy storage battery 200 enters a dormant state;

[0207] Step S23: When there is power input from the photovoltaic string 100, the energy storage battery 200 is awakened at a scheduled time.

[0208] In some embodiments, different control strategies are implemented for the energy storage battery 200, and while taking into account economic efficiency, the energy storage battery 200 is preferentially replenished in time through the free photovoltaic strings 100, thereby extending the battery life. When the photovoltaic storage system cannot replenish power, the power is maintained by dormant batteries.

[0209] Example 2:

[0210] Example 2 is a specific description of the battery control method, control device, light storage system and storage medium. Figure 1 Based on the photovoltaic storage system structure in the paper, the battery control method is explained in detail.

[0211] The photovoltaic storage system includes a photovoltaic string 100 and an energy storage battery 200. When the photovoltaic storage system is connected to the grid, the abnormal state of the photovoltaic storage system is monitored. When the photovoltaic storage system is in standby mode, alarm after startup, or failure after startup occurs, the entire system needs to be processed.

[0212] In some embodiments, when the system is on standby for a long time without being started, the system starts timing T. When the timeout time is greater than Tstandy (settable), the inverter 300 controls the battery BMS, disconnects the battery output, and the battery enters a dormant state.

[0213] In some embodiments, when an alarm occurs after the system starts normally, for example, the battery discharge falls below the discharge cut-off power SOC1 (settable) alarm or the set standby power SOC2 (settable) alarm, the system immediately stops the battery discharge.

[0214] When the power input of the photovoltaic string 100 is detected, the energy storage battery 200 is started to supplement power. The photovoltaic storage system supplements the power input of the photovoltaic string 100 to the energy storage battery 200. When the power of the energy storage battery 200 is charged to the fourth power (SOC6), the SOC hysteresis of supplementary power is performed, and the discharge cut-off power SOC6>SOC1+hysteresis value (settable), or the standby power alarm SOC6>SOC2+hysteresis value (settable);

[0215] When the power input of the photovoltaic string 100 is not detected, the same power replenishment operation is performed using the power grid, that is, the energy storage battery 200 is started to replenish power through the power grid, and the photovoltaic storage system supplements the power input of the power grid to the energy storage battery 200. When the power of the energy storage battery 200 is charged to the fourth power (SOC6), the SOC hysteresis of the replenishment is performed, and the discharge cut-off power SOC6>SOC1+hysteresis value (settable), or the standby power alarm SOC6>SOC2+hysteresis value (settable);

[0216] In some embodiments, when the photovoltaic storage system fails after startup, the photovoltaic storage system will switch to standby mode, and then try to automatically clear the fault and restart, record the second restart number of the photovoltaic storage system, and when the second restart number is greater than the second preset number M (settable), the photovoltaic storage system reports the fault and pushes it to after-sales personnel for repair.

[0217] When the photovoltaic storage system fault persists and has not been repaired, such as only the DC / AC fault of the inverter 300, when the power of the energy storage battery 200 is lower than the discharge cut-off power SOC1 (settable), considering the economy, the photovoltaic string 100 is preferentially used for power replenishment, and the grid is used for power replenishment only when there is no photovoltaic string 100; when the power of the energy storage battery 200 is not lower than the discharge cut-off power SOC1 (settable), the inverter 300 controls the BMS of the energy storage battery 200 to disconnect the battery output, and the energy storage battery 200 enters a dormant state, and the energy battery needs to be awakened regularly.

[0218] It should be noted that after the energy storage battery 200 is supplemented with electricity through the photovoltaic string 100 or the power grid, the power of the energy storage battery 200 is supplemented to the third power (SOC5). When the power of the energy storage battery 200 is charged to the third power (SOC5), the SOC hysteresis of the supplementary power is performed, and the discharge cut-off power SOC5>SOC1+hysteresis value (settable), or the standby power alarm SOC5>SOC2+hysteresis value (settable), and then the photovoltaic storage system after supplementary power is detected for faults to determine whether other faults occur.

[0219] When only the DC / AC of the inverter 300 fails, the energy storage battery 200 continues to be recharged until the repair is normal. Through continuous recharging operation, the service life of the battery can be greatly extended.

[0220] refer to Fig.15 , Fig.15 is a flow chart of a battery control method provided by a specific example of the present application;

[0221] The following are the specific steps for battery control in the photovoltaic storage system in grid-connected mode.

[0222] Step S25: Detecting the working state of the photovoltaic storage system and the power level of the energy storage battery 200;

[0223] Step S26: In the grid-connected mode, the system is not in standby mode;

[0224] Step S27: the duration of the solar energy storage system being in the standby state is greater than the first duration;

[0225] Step S28: disconnecting the output of the energy storage battery 200 and controlling the energy storage battery 200 to enter a dormant state;

[0226] Step S29: In the grid-connected mode, an alarm occurs after the system starts normally;

[0227] Step S30: the photovoltaic storage system immediately stops discharging the energy storage battery 200;

[0228] Step S31: determining whether the power supply input of the photovoltaic string 100 is detected;

[0229] Step S32: when the power input of the photovoltaic string 100 is detected, the photovoltaic string 100 is started to supplement the energy storage battery 200, and the photovoltaic storage system supplements the power input of the photovoltaic string 100 to the energy storage battery 200;

[0230] Step S33: When no power input from the photovoltaic string 100 is detected, the photovoltaic storage system supplements the power input from the grid to the energy storage battery 200;

[0231] Step S34: When the energy storage battery 200 is charged to the fourth power level (SOC6), the SOC hysteresis of the supplementary power is performed, and the discharge cut-off power level SOC6>SOC1+hysteresis value, or the standby power warning SOC6>SOC2+hysteresis value;

[0232] Step S35: In the grid-connected mode, a fault occurs after the photovoltaic storage system starts normally;

[0233] Step S36: the photovoltaic storage system switches to the standby mode, and then the photovoltaic storage system attempts to automatically clear the fault and restart, and records the second restart number of the photovoltaic storage system;

[0234] Step S37: Determine whether the second restart number is greater than the second preset number;

[0235] Step S38: When the second restart number is greater than the second preset number, a fault detection is performed on the optical storage system;

[0236] Step S39: determining whether the current fault is only a DC / AC fault of the inverter 300;

[0237] Step S40: If the current fault is only a DC / AC fault of the inverter 300, determine whether the power of the energy storage battery 200 is lower than the discharge cut-off power;

[0238] Step S41: determining whether the power supply input of the photovoltaic string 100 is detected;

[0239] Step S42: When the current fault is only a DC / AC fault of the inverter 300, the power of the energy storage battery 200 is lower than the discharge cut-off power, and there is power input from the photovoltaic string 100, the energy storage battery 200 is charged through the photovoltaic string 100;

[0240] Step S43: When no power input from the photovoltaic string 100 is detected, the energy storage battery 200 is supplemented with power through the power grid;

[0241] Step S44: replenish the power of the energy storage battery 200 to the third power (SOC5). When the power of the energy storage battery 200 is charged to the third power (SOC5), the SOC hysteresis of the replenishment power is performed, and the discharge cut-off power SOC5>SOC1+hysteresis value (settable), or the standby power alarm SOC5>SOC2+hysteresis value (settable);

[0242] Step S45: performing fault detection on the photovoltaic storage system after the power replenishment;

[0243] Step S46: When the power level of the energy storage battery 200 is higher than the discharge cut-off power level or other faults occur, the inverter 300 controls the BMS of the energy storage battery 200 to disconnect the energy storage battery output, and the energy storage battery 200 enters a dormant state, and the energy storage battery needs to be awakened at a fixed time;

[0244] Step S47: Wake up the energy storage battery 200 at a scheduled time.

[0245] In some embodiments, this example can implement different control strategies for the battery according to different abnormal states of the photovoltaic storage system, and maintain the battery power as much as possible for equipment that cannot be repaired for a long time, and also maintain the battery power to avoid abnormal battery exhaustion. And free photovoltaic power replenishment is given priority, which has both economic benefits and prolongs the service life of the energy storage battery 200.

[0246] like Fig.16 As shown, Fig.16 It is a schematic diagram of a control device provided in one embodiment of the present application.

[0247] The control device 1000 of the embodiment of the present application includes one or more processors 1001 and a memory 1002. Fig.16 In the figure, a processor 1001 and a memory 1002 are taken as an example.

[0248] The processor 1001 and the memory 1002 may be connected via a bus or other means. Fig.16 The example of connecting through bus is taken in the following.

[0249] The memory 1002, as a non-transitory computer-readable storage medium, can be used to store non-transitory software programs and non-transitory computer executable programs. In addition, the memory 1002 may include a high-speed random access memory, and may also include a non-transitory memory, such as at least one disk storage device, a flash memory device, or other non-transitory solid-state storage device. In some embodiments, the memory 1002 may optionally include a memory 1002 remotely arranged relative to the processor 1001, and these remote memories may be connected to the control device 1000 via a network. Examples of the above-mentioned network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0250] Those skilled in the art will understand that Fig.16 The device structure shown in the figure does not constitute a limitation on the control device 1000, and may include more or less components than shown in the figure, or combine certain components, or arrange the components differently.

[0251] The device embodiments described above are merely illustrative, and the units described as separate components may or may not be physically separated, that is, they may be located in one place or distributed on multiple network nodes. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0252] The memory, as a non-transient computer-readable storage medium, can be used to store non-transient software programs and non-transient computer executable programs. In addition, the memory may include a high-speed random access memory, and may also include a non-transient memory, such as at least one disk storage device, a flash memory device, or other non-transient solid-state storage device. In some embodiments, the memory may optionally include a memory remotely disposed relative to the processor, and these remote memories may be connected to the processor via a network. Examples of the above-mentioned network include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.

[0253] The non-transitory software program and instructions required to implement the battery control method of the above embodiment are stored in the memory, and when executed by the processor, the above embodiment is executed.

[0254] It is worth noting that this embodiment also provides a photovoltaic storage system, the photovoltaic storage system includes: Fig.16 The control device shown, since the photovoltaic storage system of the embodiment of the present application has the control device of the above embodiment, and the control device of the above embodiment can execute the battery control method of the above embodiment, therefore, the specific implementation manner and technical effects of the photovoltaic storage system of the embodiment of the present application can refer to the specific implementation manner and technical effects of the battery control method of any of the above embodiments.

[0255] The device embodiments or system embodiments described above are merely illustrative, and the units described as separate components may or may not be physically separated, that is, they may be located in one place or distributed on multiple network units. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0256] In addition, an embodiment of the present application further provides a computer-readable storage medium, which stores computer-executable instructions, and the computer-executable instructions are executed by a processor or a controller.

[0257] It will be appreciated by those skilled in the art that all or some of the steps and systems in the disclosed method above may be implemented as software, firmware, hardware and appropriate combinations thereof. Some physical components or all physical components may be implemented as software executed by a processor, such as a central processing unit, a digital signal processor or a microprocessor, or may be implemented as hardware, or may be implemented as an integrated circuit, such as an application specific integrated circuit. Such software may be distributed on a computer-readable medium, which may include a computer-readable storage medium (or a non-transitory medium) and a communication medium (or a temporary medium). As known to those skilled in the art, the term computer-readable storage medium includes volatile and non-volatile, removable and non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, program modules or other data). Computer-readable storage media include, but are not limited to, RAM, ROM, EEPROM, flash memory or other memory technologies, CD-ROM, digital versatile disks (DVD) or other optical disk storage, magnetic cassettes, magnetic tapes, disk storage or other magnetic storage devices, or any other medium that may be used to store desired information and may be accessed by a computer. Furthermore, it is well known to those skilled in the art that communication media typically embodies computer readable instructions, data structures, program modules, or other data in a modulated data signal such as a carrier wave or other transport mechanism, and may include any information delivery media.

[0258] The above is a specific description of the preferred implementation of the present application, but the present application is not limited to the above-mentioned implementation mode. Technical personnel familiar with the field can also make various equivalent deformations or substitutions without violating the spirit of the present application. These equivalent deformations or substitutions are all included in the scope defined by the present application.

Claims

1. Battery control method, It is characterized in that Applied to a photovoltaic storage system, the photovoltaic storage system includes a photovoltaic string and an energy storage battery, and the method includes: Detecting the working state of the photovoltaic storage system and the power level of the energy storage battery; When the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter a dormancy mode; The triggering condition of the battery sleep strategy includes at least one of the following: The duration of the solar energy storage system being in the standby state is greater than the first duration; In the off-grid mode, the power level of the energy storage battery is lower than the standby power level or the discharge cut-off power level, and no power input from the photovoltaic string is detected; The photovoltaic string and / or the energy storage battery fails.

2. The battery control method according to claim 1, It is characterized in that When the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter the dormancy mode includes: In off-grid mode, when the power of the energy storage battery is lower than the standby power or the discharge cut-off power, the energy storage battery is stopped from discharging and the power supply input of the photovoltaic string is detected; When no power input of the photovoltaic string is detected, the photovoltaic storage system is switched to a standby state, and a first electric quantity in the standby state is detected; When the first power level is lower than a first preset power level, the energy storage battery is controlled to enter a sleep mode.

3. The battery control method according to claim 2, It is characterized in that After stopping the energy storage battery from discharging and detecting the power supply input of the photovoltaic string, the method further includes: When the power supply input of the photovoltaic string is detected, the power supply input of the photovoltaic string is used to replenish the power of the energy storage battery to a second power, wherein the second power is greater than the standby power or the discharge cut-off power.

4. The battery control method according to claim 1, It is characterized in that When the triggering condition of the battery dormancy strategy is met, controlling the energy storage battery to enter the dormancy mode also includes: In the off-grid mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state; Controlling the optical storage system to clear a fault, restart the optical storage system, and record a first restart number of the optical storage system; When the first restart number is greater than a first preset number, performing fault detection on the optical storage system; When a failure of the photovoltaic string and / or the energy storage battery is detected, the energy storage battery is controlled to enter a sleep mode.

5. The battery control method according to claim 4, It is characterized in that After the optical storage system is fault-detected, the method further includes: When it is detected that the inverter fails and the photovoltaic string and the energy storage battery do not fail, detecting the power supply input of the photovoltaic string; When the power supply input of the photovoltaic string is detected and the power level of the energy storage battery is lower than the discharge cut-off power level, the energy storage battery is supplemented with power through the power supply input of the photovoltaic string.

6. The battery control method according to claim 1, It is characterized in that When the current working state of the photovoltaic storage system meets the triggering condition of the battery dormancy strategy, controlling the energy storage battery to enter the dormancy mode also includes: In the grid-connected mode, when the photovoltaic storage system fails, the photovoltaic storage system is switched to a standby state; Controlling the optical storage system to clear a fault, restart the optical storage system, and record a second restart number of the optical storage system; When the second restart number is greater than a second preset number, performing fault detection on the optical storage system; When a failure of the photovoltaic string and / or the energy storage battery is detected, the energy storage battery is controlled to enter a sleep mode.

7. The battery control method according to claim 6, It is characterized in that After the optical storage system is fault-detected, the method further includes: When it is detected that the inverter fails and the photovoltaic string and the energy storage battery do not fail, detecting the power supply input of the photovoltaic string; When the power supply input of the photovoltaic string is detected and the power level of the energy storage battery is lower than the discharge cut-off power level, the energy storage battery is supplemented with power through the power supply input of the photovoltaic string.

8. The battery control method according to claim 7, It is characterized in that After detecting the power supply input of the photovoltaic string, the method further includes: When the power input of the photovoltaic string is not detected, the energy storage battery is supplemented with power through the power grid.

9. The battery control method according to claim 7 or 8, It is characterized in that After the energy storage battery is charged, the method further includes: Replenishing the power of the energy storage battery to a third power, wherein the third power is greater than the standby power or the discharge cut-off power; Perform fault detection on the photovoltaic storage system after recharging.

10. The battery control method according to claim 1, It is characterized in that The method further comprises: In the grid-connected mode, when the power of the energy storage battery is lower than the standby power or the discharge cut-off power, the energy storage battery is stopped from discharging and the power supply input of the photovoltaic string is detected; When the power supply input of the photovoltaic string is detected, the power supply input of the photovoltaic string is used to replenish the power of the energy storage battery to a fourth power, wherein the fourth power is greater than the standby power or the discharge cut-off power.

11. The battery control method according to claim 10, It is characterized in that After stopping the energy storage battery from discharging and detecting the power supply input of the photovoltaic string, the method further includes: When no power input from the photovoltaic string is detected, the power level of the energy storage battery is replenished to a fourth power level through the power grid.

12. The battery control method according to claim 4 or 6, It is characterized in that After detecting that the photovoltaic string and / or the energy storage battery fails and controlling the energy storage battery to enter a sleep mode, the method further includes: The energy storage battery is activated according to a preset cycle.

13. A control device, include: A memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the battery control method according to any one of claims 1 to 12 when executing the computer program.

14. A light storage system, It is characterized in that Comprising a control device according to claim 13.

15. A computer-readable storage medium, It is characterized in that The computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to enable a computer to execute the battery control method according to any one of claims 1 to 12.