Energy storage cabinet and its battery module

The energy storage cabinet addresses the risk of lithium battery ignition by injecting cooling liquid below electrode terminals to prevent short circuits and mitigate fires, enhancing safety in energy storage devices.

JP7746492B2Active Publication Date: 2025-09-30DELTA ELECTRONICS INC(CN)
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Patent Information

Application Number
JP2024141798
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2023-08-23
Filing Date
2024-08-23
Publication Date
2025-09-30
Estimated Expiration
2044-08-23

AI Technical Summary

Technical Problem

Conventional energy storage devices lack effective mechanisms to prevent and mitigate the risk of lithium battery ignition and combustion due to high temperatures.

Method used

An energy storage cabinet with a battery module design that includes a housing with a side opening for draining excess cooling liquid, a liquid filling device to inject cooling liquid into the housing, and a control system to manage cooling liquid flow based on temperature, ensuring the liquid level is below electrode terminals to prevent short circuits.

Benefits of technology

The design effectively prevents short circuits and provides fire protection by injecting cooling liquid into the battery module when overheating or fire occurs, using a liquid storage tank and a control system to manage cooling liquid flow.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a battery module.SOLUTION: A battery module includes a housing having a side opening, a plurality of cells provided within the housing, each cell having two electrode terminals, and a liquid filling device connected to the housing and configured to inject a cooling liquid into the housing, and the lower edge of the side opening is vertically lower than the electrode terminals, and the side opening of the housing is configured to drain excess cooling liquid out of the housing.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present disclosure relates to an energy storage cabinet and its battery modules. [Background technology]

[0002] The most commonly used battery type in conventional energy storage devices is lithium battery, which has a certain risk of catching fire and burning if the temperature is too high. However, conventional energy storage devices lack a mechanism to deal with the risk of lithium battery ignition and combustion. Summary of the Invention [Problem to be solved by the invention]

[0003] In view of this, an object of the present disclosure is to provide an energy storage cabinet and its battery module with fire protection functions. [Means for solving the problem]

[0004] According to some embodiments of the present disclosure, there is provided a battery module including: a housing having a first side opening; a plurality of cells disposed within the housing, each having two electrode terminals; and a liquid filling device connected to the housing and configured to inject a cooling liquid into the housing, wherein the electrode terminals are disposed on a top cover at an upper edge of the cell body, the lower edge of the first side opening of the housing is vertically lower than the electrode terminals, and the first side opening of the housing is configured to drain excess cooling liquid out of the housing.

[0005] In one or more embodiments of the present disclosure, when the cooling liquid is injected into the housing, the highest liquid level of the cooling liquid is lower than the two electrode terminals of the cell.

[0006] In one or more embodiments of the present disclosure, the battery module further includes a circuit board provided on the cell, and a lower edge of the first side opening of the housing is vertically lower than the circuit board.

[0007] In one or more embodiments of the present disclosure, the battery module further includes a busbar element electrically connected to two electrode terminals of the two cells, and a lower edge of the first side opening of the housing is vertically lower than the busbar element.

[0008] In one or more embodiments of the present disclosure, the liquid filling device includes a liquid pipe connected to a liquid storage tank, and a valve provided in the liquid pipe and configured to transport or block cooling liquid through the liquid pipe to the housing depending on the temperature of the battery module.

[0009] In one or more embodiments of the present disclosure, the housing of the battery module includes a flat tube that is provided around the first side opening and protrudes from an outer wall surface of the housing.

[0010] According to some embodiments of the present disclosure, an energy storage cabinet includes a bracket, a battery module mounted on the bracket, and a liquid storage tank mounted on the bracket and positioned above the battery module and configured to store a cooling liquid, wherein the liquid filling device for the battery module is connected between the housing of the battery module and the liquid storage tank and configured to guide the cooling liquid in the liquid storage tank to flow into the housing of the battery module.

[0011] In one or more embodiments of the present disclosure, the bracket is provided on one side of the battery module, configured to support the battery module, and includes a support post having an internal flow path, and the first side opening of the housing of the battery module is connected to the internal flow path of the support post.

[0012] In one or more embodiments of the present disclosure, the housing of the battery module includes a first flat tube surrounding a first side opening and protruding from an outer wall surface of the housing, the support pillar further has a second side opening connected to the internal flow path and includes a second flat tube surrounding the second side opening and protruding from an outer wall surface of the support pillar, the first flat tube is coupled to the second flat tube, and the first flat tube and the second flat tube respectively have first and second hypotenuse structures whose outer shapes are complementary and abut each other.

[0013] In one or more embodiments of the present disclosure, the energy storage cabinet further includes a control device configured to receive temperature information from a temperature sensor or a battery management system, the temperature information indicating a temperature of the battery module, the control device further configured to determine whether the battery module is overheating in response to the temperature information, and if the battery module is overheating, the control device configured to instruct the liquid filling device to inject cooling liquid into the housing of the battery module.

[0014] In one or more embodiments of the present disclosure, the control device is configured to determine, in response to the temperature information, whether the temperature of the battery module exceeds a first threshold or the temperature change rate of the battery module exceeds a second threshold, and if the temperature of the battery module exceeds the first threshold or the temperature change rate of the battery module exceeds the second threshold, the control device is configured to instruct the liquid filling device to inject cooling liquid into the housing of the battery module.

[0015] In one or more embodiments of the present disclosure, the liquid storage tank shields the top surface of the battery module. [Effects of the Invention]

[0016] As described above, the energy storage cabinet of the present disclosure includes a liquid storage tank configured to store a cooling liquid. The battery modules of the energy storage cabinet are combined with a liquid filling device, which is connected to the liquid storage tank and configured to inject cooling liquid into the housing of the battery modules in case of temperature runaway or fire / combustion of the cells of the battery modules. The housing has a side opening through which excess cooling liquid can be discharged outside the housing. The vertical position of the lower edge of the housing side opening is lower than the vertical position of the electrode terminals of the cells to prevent the cooling liquid from contacting the electrode terminals of the cells and causing a short circuit. [Brief explanation of the drawings]

[0017] To make the above and other objects, features, advantages and embodiments of the present disclosure more clearly and comprehensibly, the accompanying drawings are described as follows: [Figure 1] FIG. 1 is a perspective view of an energy storage cabinet according to one embodiment of the present disclosure. [Figure 2] FIG. 2 is a perspective view of one battery module of the energy storage cabinet shown in FIG. 1. [Figure 3] FIG. 2 is a partial cross-sectional view of one battery module of the energy storage cabinet shown in FIG. 1. [Figure 4] FIG. 2 is a partial enlarged view of the energy storage cabinet shown in FIG. [Figure 5] FIG. 2 is a partial enlarged view of a slot in the energy storage cabinet shown in FIG. 1. DETAILED DESCRIPTION OF THE INVENTION

[0018] For a more detailed and complete description of the present disclosure, reference can be made to the accompanying drawings and various embodiments described below. Each element in the drawings is not drawn to scale and is provided only to explain the present disclosure. In the following, many practical details are described to provide a complete understanding of the present disclosure, but these details are not used to limit the present disclosure, because those skilled in the art should understand that the present disclosure can be implemented without one or more practical details.

[0019] Please refer to FIG. 1. FIG. 1 is a perspective view of an energy storage cabinet 20 according to one embodiment of the present disclosure. The energy storage cabinet 20 includes a bracket 22 and a plurality of battery modules 21 mounted on the bracket 22. The bracket 22 is used to mount the battery modules 21. The bracket 22 has a plurality of slots, each of which is used to accommodate one battery module 21. The battery modules 21 are removably mounted in the slots of the bracket 22. In other words, the battery modules 21 can be inserted into the slots and removed from the slots as needed (e.g., when repair or maintenance is required). The battery modules 21 are connected to a slide rail structure of the bracket 22 so that they can slide into and out of the slots. In some embodiments, the bracket 22 includes a plurality of support posts 50 extending substantially vertically, and the support posts 50 are provided between the battery modules 21 to separate adjacent battery modules 21.

[0020] As shown in FIG. 1 , multiple battery modules 21 may be stacked vertically. The multiple battery modules 21 may be divided into multiple floor assemblies 23, and battery modules 21 located on the same horizontal floor belong to the same floor assembly 23. In the illustrated embodiment, the energy storage cabinet 20 includes nine floor assemblies 23, with one floor assembly 23 indicated by a dashed frame in the figure. The multiple battery modules 21 in each floor assembly 23 are connected in series so that the voltages of the multiple battery modules 21 in the floor assembly 23 are added together to output a larger voltage. Each floor assembly 23 may include one common anode and one common negative electrode.

[0021] 1, the energy storage cabinet 20 further includes a junction device 26, which is mounted on the bracket 22 and located on one side of the energy storage cabinet 20, and is connected to the common positive and negative electrodes (not shown) of each layer assembly 23. The junction device 26 includes a DC junction unit, an AC auxiliary unit, and one or more control units (or one or more switch units).

[0022] 1, the energy storage cabinet 20 further includes a controller 90 (shown only schematically and without a specific structure) configured to control the operation of the energy storage cabinet 20. In some embodiments, the connection device 26 and the controller 90 are both housed within a box.

[0023] 1 , the energy storage cabinet 20 further includes a cooling device 28, which is mounted on the bracket 22 and located on the other side of the energy storage cabinet 20. The cooling device 28 is used to output cool air to help reduce the temperature of the battery module 21. The cooling device 28 is, for example, an air conditioning system. In some embodiments, the connection device 26 and the cooling device 28 are provided on opposite sides of the battery module 21.

[0024] As shown in FIG. 1 , the energy storage cabinet 20 further includes a liquid storage tank 25, which is mounted on the bracket 22 and positioned above the battery module 21. The liquid storage tank 25 is configured to store a cooling liquid 27. The cooling liquid 27 is, for example, pure water. The cooling liquid 27 stored in the liquid storage tank 25 may be used to implement a fire-fighting mechanism for the energy storage cabinet 20. If it is detected that the temperature of the battery module 21 is too high or the temperature rises too quickly, the cooling liquid 27 can be injected into the battery module 21 to respond to temperature rise or fire / combustion caused by cell failure of the battery module 21. Calculations indicate that the amount of cooling liquid 27 stored in the liquid storage tank 25 is sufficient to fill at least one battery module 21 and allow the cooling liquid 27 in the battery module 21 to reach its maximum liquid level.

[0025] 1, the liquid storage tank 25 is provided on the top of the bracket 22. In some embodiments, the liquid storage tank 25 shields part or all of the top surface of the battery module 21. With this arrangement, when the energy storage cabinet 20 is placed in an outdoor environment, the liquid storage tank 25 and the cooling liquid 27 in the liquid storage tank 25 can block sunlight and reduce the effect of the temperature rise of the battery module 21 due to sunlight.

[0026] Please refer to FIG. 2. FIG. 2 is a perspective view of one battery module 21 of the energy storage cabinet 20 shown in FIG. 1. In FIG. 2, the top cover of the battery module 21 has been removed to illustrate the elements. The battery module 21 includes a housing 29 and a plurality of cells 12 provided in the housing 29. The cells 12 are, for example, lithium batteries. The cells 12 may be prismatic cells or pouch-type cells. The cells 12 are arranged in at least one row along direction D, and in the embodiment shown, the battery module 21 includes 48 cells 12 arranged in four rows of 12 cells per row. The battery module 21 further includes a top cover (not shown), which seals the top opening of the housing 29.

[0027] 2 , each cell 12 includes two electrode terminals 15 arranged in parallel, including one positive terminal 13 and one negative terminal 14. The battery module 21 further includes a plurality of busbar elements 30, which are provided within a housing 29 and configured to be connected in series to the cells 12. Specifically, the busbar elements 30 are electrically connected to the positive and negative terminals 13, 14 of two adjacent cells 12 located in the same row. In some embodiments, the battery module 21 further includes at least one series element 40, which is provided within the housing 29 and electrically connected to the electrode terminals 15 of the cells 12 in two adjacent rows.

[0028] In the embodiment shown, the electrode terminals 15 of the cells 12 are provided on a top cover at the upper edge of the cell body of the cells 12, and the busbar elements 30 and the series elements 40 are provided above the cells 12 and are in contact with the electrode terminals 15 of the cells 12. The busbar elements 30 and the series elements 40 may be made of a conductive material, for example, copper or a copper alloy. The busbar elements 30 and the series elements 40 may be fixed to the electrode terminals 15 of the cells 12 by, for example, laser welding or screw fastening. In some embodiments, the length of the series elements 40 is smaller than the length of the busbar elements 30.

[0029] As shown in FIG. 2 , the battery module 21 further includes a plurality of circuit boards 37, which are mounted on the cells 12. For example, the circuit boards 37 may be mounted on the top surfaces of the cells 12 (i.e., the surfaces on which the electrode terminals 15 of the cells 12 are mounted). Each circuit board 37 may be paired with one cell 12. The circuit boards 37 may include, for example, a chip for a battery management system (BMS). The battery management system may perform various management operations for the corresponding cells 12, which may include at least one of measuring the voltage and current of the cells 12, monitoring the temperature of the cells 12, monitoring parameters such as the state of charge (SOC) and state of health (SOH), diagnosing and / or reporting abnormalities in the cells 12, and controlling the charging and discharging of the cells 12. In some embodiments, the circuit boards 37 are communicatively connected to the control device 90. The circuit board 37 may exchange information with the controller 90 , for example, the circuit board 37 may report the status of the cells 12 to the controller 90 .

[0030] 2 , the battery module 21 further includes at least one temperature sensor 38 (illustration only, specific structure not shown), which is provided within the housing 29 and configured to provide a detection signal indicating the temperature at a specific location of the battery module 21. The temperature sensor 38 may be provided at any appropriate location within the housing 29. For example, the temperature sensor 38 may be provided beside the cells 12, between the cells 12, on the outer surface of the cells 12, or the like.

[0031] In some embodiments, at least one temperature sensor 38 is disposed in each cell 12. The battery module 21 may also include multiple temperature sensors 38 disposed at different positions, each measuring the temperature at a different position in the battery module 21.

[0032] The temperature sensor 38 is communicatively coupled to the circuit board 37 and configured to provide a sensing signal to the circuit board 37. In some embodiments, the temperature sensor 38 is communicatively coupled to the controller 90 and configured to provide a sensing signal to the controller 90.

[0033] 2, the housing 29 of the battery module 21 has at least one side opening 24, which is provided on at least one side wall of the housing 29. The side opening 24 is configured to allow excess cooling liquid injected into the internal space of the housing 29 to drain out of the housing 29. The portion of the housing 29 below the side opening 24 is designed to be airtight; in other words, the portion of the housing 29 below the side opening 24 does not have any holes for allowing liquid to flow out. Therefore, excess cooling liquid is discharged only through the side opening 24.

[0034] 2, the housing 29 may have two side openings 24, which are provided on opposite sides of the housing 29. In this manner, the two side openings 24 can serve as outlets for excess cooling liquid, as well as airflow channels through which air (e.g., cool air generated by the cooling device 28 shown in FIG. 1) can pass to help dissipate heat from the cells 12.

[0035] 2 , the housing 29 of the battery module 21 includes at least a first flat tube 41, which surrounds the side opening 24 of the housing 29 and protrudes from the outer wall surface of the housing 29. The first flat tube 41 may be used to connect to the support 50 of the bracket 22. In some embodiments, the first flat tube 41 has a first oblique side structure 42. The first flat tube 41 may also be used to connect to a drainage or airflow channel outside the housing 29.

[0036] Please refer to Figure 3, which is a partial cross-sectional view of one battery module 21 of the energy storage cabinet 20 shown in Figure 1. The battery module 21 further includes a liquid filling device 60, which is connected to the housing 29 and forms an inlet 66 at the connection point with the housing 29. The liquid filling device 60 is configured to obtain the cooling liquid 27 from the liquid storage tank 25 and inject the cooling liquid 27 into the housing.

[0037] 3 , a lower edge 49 of the side opening 24 of the housing 29 is vertically lower than the electrode terminal 15 of the cell 12. Cooling liquid is injected into the housing 29 through an inlet 66, and its maximum liquid level 48 is lower than the electrode terminal 15 of the cell 12. In this way, when the cooling liquid is injected into the housing 29, the cooling liquid does not come into contact with the electrode terminal 15 of the cell 12, thereby avoiding a short circuit. Optionally, the inlet 66 is vertically lower than the lower edge 49 of the side opening 24.

[0038] 3 , a lower edge 49 of the side opening 24 of the housing 29 is vertically lower than the busbar elements 30. When cooling liquid is poured into the housing 29, a maximum liquid level 48 of the cooling liquid is lower than the busbar elements 30. The lower edge 49 of the side opening 24 of the housing 29 is vertically lower than the circuit board 37. When cooling liquid is poured into the housing 29, a maximum liquid level 48 of the cooling liquid is lower than the circuit board 37. With the above arrangement, a short circuit or damage to the circuit board 37 can be avoided.

[0039] 3, the liquid filling device 60 includes a liquid pipe 64. One end of the liquid pipe 64 is connected to the housing 29 of the battery module 21 via an inlet 66. The other end of the liquid pipe 64 can be connected to the liquid storage tank 25 to obtain cooling liquid from the liquid storage tank 25.

[0040] 3 , the liquid filling device 60 further includes a valve 65, which is provided in the liquid pipe 64. The valve 65 can be switched between an open state and a closed state, and when the valve 65 is in the open state, the valve 65 transports the cooling liquid through the liquid pipe 64 to the housing 29, and when the valve 65 is in the closed state, the valve 65 blocks the liquid pipe 64, preventing the liquid pipe 64 from transporting the cooling liquid to the housing 29.

[0041] The valve 65 can further control the flow rate of the cooling liquid, and may be, for example, a solenoid valve. The opening and closing of the valve 65, or the degree of opening of the valve 65, is controlled by the control device 90. The valve 65 is configured to transport or cut off the cooling liquid through the liquid pipe to the housing 29, according to information obtained by measuring the temperature of the battery module 21.

[0042] In some embodiments, the controller 90 of the energy storage cabinet is configured to receive temperature information from a temperature sensor 38 or a battery management system located, for example, on a circuit board 37, where the temperature information indicates a temperature at one or more locations of the battery modules 21. The controller is further configured, in response to the temperature information, to determine whether the battery modules 21 are overheating, and if the battery modules 21 are overheating, the controller is configured to instruct the liquid filling device 60 to inject cooling liquid into the housings 29 of the battery modules 21. The controller 90 is communicatively coupled to a valve 65, and if the battery modules 21 are overheating, the controller is configured to send a control signal to the valve 65 to open the valve 65.

[0043] The control device 90 of the energy storage cabinet 20 is configured to determine, according to the temperature information, whether the temperature of the battery module 21 exceeds a first threshold or the temperature change rate of the battery module 21 exceeds a second threshold, and if the temperature of the battery module 21 exceeds the first threshold or the temperature change rate of the battery module 21 exceeds the second threshold, the control device is configured to instruct the liquid filling device 60 to inject cooling liquid into the housing 29 of the battery module 21.

[0044] Please refer to Figure 4. Figure 4 is a partial enlarged view of the energy storage cabinet 20 shown in Figure 1. In some embodiments, the support column 50 has an internal flow path 53 (shown by a dashed line), and the side opening 24 (shown by a dashed line) of the housing 29 of the battery module 21 is connected to the internal flow path 53 of the support column 50. In this way, excess cooling liquid can flow into the internal flow path 53 of the support column 50, flow to the bottom of the energy storage cabinet via the internal flow path 53, and then be discharged. In some embodiments, the support column 50 further has at least one side opening 54 (shown by a dashed line) connected to the internal flow path 53, and the battery module 21 is abutted against the side opening 54 of the support column 50 via the first flat tube 41.

[0045] Please refer to Figure 5. Figure 5 is a partial enlarged view of the slots 56 of the energy storage cabinet 20 shown in Figure 1. Two adjacent support posts 50 of the bracket 22 define a plurality of slots 56, and the battery modules 21 are provided so as to be insertable and removable into the slots 56. This figure shows a situation in which some of the battery modules 21 are being removed from the slots. The support posts 50 may include slide rails 57, which are provided on the sides of the support posts 50 and configured to be slidably connected to the housings 29 of the battery modules 21.

[0046] As shown in FIG. 5 , the support 50 includes a second flat tube 51 that surrounds a side opening 54 of the support 50 and protrudes from the outer wall surface of the support 50. The first flat tube 41 of the battery module 21 is coupled to the second flat tube 51 of the support 50 so that the side opening 24 of the housing 29 of the battery module 21 is connected to the side opening 54 of the support 50. In some embodiments, the second flat tube 51 has a second oblique side structure 52. The first oblique side structure 42 and the second oblique side structure 52 of the first flat tube 41 have complementary shapes and are abutted against each other to eliminate gaps. The arrangement of the first oblique side structure 42 and the second oblique side structure 52 allows the battery module 21 to be smoothly inserted into and removed from the slot 56.

[0047] As described above, the energy storage cabinet of the present disclosure includes a liquid storage tank configured to store a cooling liquid. The battery modules of the energy storage cabinet are combined with a liquid filling device, which is connected to the liquid storage tank and configured to inject cooling liquid into the housing of the battery modules in case of temperature runaway or fire / combustion of the cells of the battery modules. The housing has a side opening through which excess cooling liquid can be discharged outside the housing. The vertical position of the lower edge of the housing side opening is lower than the vertical position of the electrode terminals of the cells to prevent the cooling liquid from contacting the electrode terminals of the cells and causing a short circuit.

[0048] Although the present disclosure has been disclosed in the above embodiments, the above embodiments are not used to limit the present disclosure, and any person skilled in the art can make various changes and modifications without departing from the spirit and scope of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on what is defined in the appended claims. [Explanation of symbols]

[0049] 12: Cell 13: Positive terminal 14: Negative terminal 15: Electrode terminal 20: Energy storage cabinet 21: Battery module 22: Bracket 23: Layer assembly 24: Side opening 25: Liquid storage tank 26: Connection device 27: Cooling liquid 28: Cooling device 29: Housing 30: Busbar element 37: Circuit board 38: Temperature sensor 40: Series element 41: 1st flat tube 42: First hypotenuse structure 48: Highest liquid level 49: Lower edge 50: Prop 51:Second flat tube 52: Second hypotenuse structure 53: Internal flow path 54: Side opening 56: Slot 57: Slide rail 60:Liquid filling device 64:Liquid tube 65: Valve 66: Inlet 90: Control device D: Direction

Claims

1. a housing having a first side opening; a plurality of cells provided within the housing, each having a cell body and two electrode terminals; a liquid filling device connected to the housing and configured to inject a cooling liquid into the housing; Including, the two electrode terminals are provided on a top cover at an upper edge of the cell body, and a lower edge of the first side opening of the housing is vertically lower than the two electrode terminals; The first side opening of the housing is configured to allow excess cooling liquid to drain out of the housing.

2. 2. The battery module according to claim 1, wherein when the cooling liquid is poured into the housing, the highest liquid level of the cooling liquid is lower than the two electrode terminals.

3. The battery module according to claim 1 , further comprising a circuit board provided on the plurality of cells, wherein the lower edge of the first side opening of the housing is vertically lower than the circuit board.

4. 2. The battery module according to claim 1, further comprising a busbar element electrically connected to the two electrode terminals of two of the plurality of cells, wherein the lower edge of the first side opening of the housing is vertically lower than the busbar element.

5. The liquid filling device is a liquid pipe connected to a liquid storage tank; a valve provided in the liquid pipe and configured to allow or block the cooling liquid from being conveyed to the housing through the liquid pipe depending on the temperature of the battery module; The battery module of claim 1 .

6. The battery module according to claim 1 , wherein the housing includes a flat tube surrounding the first side opening and protruding from an outer wall surface of the housing.

7. A bracket and The battery module according to claim 1 , which is mounted on the bracket; a liquid storage tank provided on the bracket, positioned above the battery module, and configured to store the cooling liquid; Including, An energy storage cabinet, wherein the liquid filling device of the battery module is connected between the housing of the battery module and the liquid storage tank and is configured to guide the cooling liquid in the liquid storage tank to flow into the housing of the battery module.

8. the bracket is provided on one side of the battery module and configured to support the battery module, and includes a support post having an internal flow path; The energy storage cabinet according to claim 7 , wherein the first side opening of the housing of the battery module is in communication with the internal flow passage of the support column.

9. the housing of the battery module includes a first flat tube surrounding the first side opening and protruding from an outer wall surface of the housing, The support further has a second side opening that is connected to the internal flow path, and includes a second flat tube that is provided to surround the second side opening and protrudes from an outer wall surface of the support, the first flat tube is coupled to the second flat tube, The energy storage cabinet according to claim 8 , wherein the first flat tube and the second flat tube have a first oblique side structure and a second oblique side structure, respectively, that have complementary outer shapes and are abutted against each other.

10. further comprising a controller configured to receive temperature information from the temperature sensor or the battery management system; the temperature information indicates a temperature of the battery module; 8. The energy storage cabinet of claim 7, wherein the control device is further configured to determine whether the battery module is overheating in response to the temperature information, and to instruct the liquid filling device to inject the cooling liquid into the housing of the battery module if the battery module is overheating.

11. 11. The energy storage cabinet of claim 10, wherein the control device is configured to determine, in response to the temperature information, whether the temperature of the battery module exceeds a first threshold or a temperature change rate of the battery module exceeds a second threshold, and to instruct the liquid filling device to inject the cooling liquid into the housing of the battery module when the temperature of the battery module exceeds the first threshold or the temperature change rate of the battery module exceeds the second threshold.

12. 8. The energy storage cabinet of claim 7, wherein the liquid storage tank shields the top surface of the battery module.

13. 8. The energy storage cabinet according to claim 7, wherein the cooling liquid has a maximum liquid level lower than the two electrode terminals when injected into the housing of the battery module.

14. The energy storage cabinet according to claim 7 , wherein the battery module further includes a circuit board provided on the plurality of cells, and the lower edge of the first side opening of the housing is vertically lower than the circuit board.

15. 8. The energy storage cabinet according to claim 7, wherein the battery module further includes a busbar element electrically connected to the two electrode terminals of two of the plurality of cells, and the lower edge of the first side opening of the housing is vertically lower than the busbar element.

Citation Information

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