Battery module and battery pack including same

By introducing a layer of fire extinguishing material into the flame inhibitor of the battery module, the problem of difficulty in delaying the heat propagation speed during the battery expansion is solved, and effective suppression and control of flame and heat in the battery module is achieved.

JP7673173B2Active Publication Date: 2025-05-08LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2023504609
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-27
Filing Date
2021-10-20
Publication Date
2025-05-08
Estimated Expiration
2041-10-20

AI Technical Summary

Technical Problem

When existing battery modules expand, changes in the thermal conductivity of flame inhibitors lead to difficult to effectively delay the heat propagation speed.

Method used

The ignition material layer is introduced into the flame inhibitor of the battery module. By forming the ignition material layer in the flame inhibitor, the ignition material layer is ensured to contact with the battery cells, thereby maintaining the consistency of thermal conductivity when the battery expands and delaying heat propagation.

Benefits of technology

It effectively delays the speed of heat propagation between battery cells and ensures effective suppression and control of flame and heat in the battery module.

✦ Generated by Eureka AI based on patent content.

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Abstract

A battery module according to one embodiment of the present invention includes a battery cell stack in which a plurality of battery cells are stacked, a module frame that houses the battery cell stack, and a flame-retardant member located between a pair of adjacent battery cells in the battery cell stack, the flame-retardant member including a flame-retardant pad and at least one fire-extinguishing material layer, the fire-extinguishing material layer contacting at least one battery cell of the pair of battery cells.
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Description

[Technical field]

[0001] [CROSS REFERENCE TO RELATED APPLICATIONS] This application claims the benefit of priority based on Korean Patent Application No. 10-2020-0140610, filed on October 27, 2020, and all contents disclosed in the documents of said Korean patent application are incorporated herein by reference.

[0002] The present invention relates to a battery module and a battery pack including the same, and more particularly to a battery module that effectively slows down the rate of heat propagation between battery cells and a battery pack including the same. [Background technology]

[0003] With technological development and increasing demand for mobile devices, the demand for secondary batteries as an energy source is rapidly increasing. In particular, secondary batteries are attracting much attention as an energy source for mobile devices such as mobile phones, digital cameras, laptops, and wearable devices, as well as for power devices such as electric bicycles, electric cars, and hybrid electric cars.

[0004] Small mobile devices use one, two, three, or four battery cells per device, whereas medium to large devices such as automobiles require high output and large capacity. Therefore, medium to large battery modules that electrically connect multiple battery cells are used.

[0005] Since it is preferable that medium- to large-sized battery modules are manufactured with as small a size and weight as possible, square batteries, pouch-type batteries, etc., which can be stacked with a high degree of integration and have a small weight relative to their capacity, are mainly used as battery cells for medium- to large-sized battery modules. Meanwhile, the battery module may include a module frame that has an open front and rear and stores the battery cell stack in an internal space to protect the battery cell stack from external impact, heat, or vibration.

[0006] Fig. 1 is a perspective view of a conventional battery module. Fig. 2 is a top view of a battery cell stack included in the conventional battery module. Fig. 3(a) is a top view of area A in Fig. 2, and Fig. 3(b) is a cross-sectional view taken along the cutting plane BB in (a).

[0007] 1 and 2 , a conventional battery module includes a battery cell stack 12 in which a number of battery cells 11 are stacked in one direction, module frames 30, 40 that house the battery cell stack 12, and end plates 15 that cover the front and rear surfaces of the battery cell stack 12. The module frames 30, 40 include a lower frame 30 that covers the bottom and both side surfaces of the battery cell stack 12, and an upper plate 40 that covers the top surface of the battery cell stack 12.

[0008] The battery cell stack 12 also includes fixing members 17 that fix the multiple battery cells 11 to one another, and the fixing members 17 are located at the center and / or ends of the battery cell stack 12. Furthermore, a flame-retardant pad 20 is located between a pair of adjacent battery cells in the battery cell stack 12.

[0009] 2 and 3, the flame-retardant pad 20 located in the conventional battery cell stack is in contact with the upper or lower surface of the battery cell 11. However, when swelling occurs during charging and discharging of the battery cell 11, the volume expansion of the battery cell 11 applies pressure and / or heat to the flame-retardant pad 20. At this time, the physical properties of the conventional flame-retardant pad 20 may change due to the swelling of the battery cell 11, and in particular, the thermal conductivity may differ depending on the position where the pad contacts the battery cell 11. For example, when the swelling of the battery cell 11 occurs, the volume expansion occurs relatively more in the center of the battery cell 11. As a result, the thermal conductivity of the portion of the conventional flame-retardant pad 20 corresponding to the position where the pad contacts the center of the battery cell 11 changes, and therefore the conventional flame-retardant pad 20 is not able to fully fulfill the role of the conventional flame-retardant pad 20 of slowing down the heat propagation speed. Therefore, unlike the conventional flame-retardant pad 20, it is necessary to develop a battery module that effectively slows down the heat propagation speed between battery cells even when swelling occurs. Summary of the Invention [Problem to be solved by the invention]

[0010] An object of the present invention is to provide a battery module that effectively slows down the rate of heat propagation between battery cells, and a battery pack including the same.

[0011] The problems to be solved by the present invention are not limited to the problems described above, and problems not mentioned will be clearly understood by a person having ordinary skill in the art to which the present invention pertains from this specification and the accompanying drawings. [Means for solving the problem]

[0012] A battery module according to one embodiment of the present invention includes a battery cell stack in which a plurality of battery cells are stacked, a module frame that houses the battery cell stack, and a flame-retardant member located between a pair of adjacent battery cells in the battery cell stack, the flame-retardant member including a flame-retardant pad and at least one fire-extinguishing material layer, and the fire-extinguishing material layer is capable of contacting at least one battery cell of the pair of battery cells.

[0013] The flame-retardant pad extends along the length and width of the battery cell.

[0014] The fire extinguishing material layer is formed in the center of the flame retardant pad.

[0015] The layer of fire extinguishing material extends along the length and width of the flame retardant pad.

[0016] The layer of fire extinguishing material may be symmetrical across the length and width of the flame retardant pad.

[0017] The fire extinguishing material layer has a length that decreases from the center to the periphery of the flame retardant pad.

[0018] The flame retardant member includes at least two layers of fire-extinguishing material, the at least two layers of fire-extinguishing material being spaced apart from one another.

[0019] The at least two layers of fire extinguishing material are spaced apart from each other by the same distance.

[0020] The separation distance between the at least two layers of fire extinguishing material increases from the center to the periphery of the flame retardant pad.

[0021] The at least two fire-extinguishing material layers have lengths that decrease from the center of the flame-retardant pad to the outer periphery.

[0022] The fire-extinguishing material layer is formed to replace at least a portion of the flame-retardant pad.

[0023] The layer of fire extinguishing material extends through at least a portion of the flame retardant pad.

[0024] The layer of fire extinguishing material may be attached to at least one of the upper and lower surfaces of the flame retardant pad.

[0025] A battery pack according to another embodiment of the present invention includes the battery module described above. Effect of the Invention

[0026] According to an embodiment, the present invention provides a battery cell stack in which a flame-retardant member including a fire-extinguishing material layer is positioned between a pair of adjacent battery cells, thereby effectively slowing down the rate of heat propagation between the battery cells.

[0027] The effects of the present invention are not limited to the effects described above, and effects not mentioned will be clearly understood by those having ordinary skill in the art to which the present invention pertains from this specification and the accompanying drawings. [Brief description of the drawings]

[0028] [Figure 1]FIG. 1 is a perspective view of a conventional battery module. [Diagram 2] FIG. 1 is a top view of a battery cell stack included in a conventional battery module. [Diagram 3] 3A is a top view of region A in FIG. 2, and FIG. 3B is a cross-sectional view taken along the cutting plane BB in FIG. [Figure 4] 2 is a top view of a battery cell stack included in a battery module according to an embodiment of the present invention. FIG. [Diagram 5] FIG. 5 is a top view of region C in FIG. 4. [Figure 6] 6 is a cross-sectional view of the flame-retardant member taken along the cutting line DD in FIG. 5. [Figure 7] 7 is a cross-sectional view showing a state in which a battery cell of a battery cell stack including the flame-retardant member 200 of FIG. 6(a) has expanded. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0029] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will now be described in detail with reference to the accompanying drawings, in which: FIG. 1 is a block diagram of a semiconductor device according to an embodiment of the present invention;

[0030] In order to clearly explain the present invention, parts that are not necessary for the explanation will be omitted, and the same reference numerals will be used throughout the specification to refer to the same or similar components.

[0031] In addition, the size and thickness of each component shown in the drawings are arbitrarily shown for convenience of explanation, and the present invention is not necessarily limited to the illustrated examples. In the drawings, thicknesses are enlarged to clearly express various layers and regions. In the drawings, thicknesses of some layers and regions are exaggerated for convenience of explanation.

[0032] In addition, throughout the specification, when a part "comprises" a certain element, this means that it can further include other elements, not excluding other elements, unless specifically stated to the contrary.

[0033] Furthermore, throughout the specification, a reference to "in a plane" means that the part is viewed from above, and a reference to "in cross section" means that the part is viewed from the side through a vertical cut.

[0034] Hereinafter, a battery module according to an embodiment of the present invention will be described. However, the description will be given based on the front side of the battery module, but the description is not limited thereto, and the same or similar content can be applied to the rear side of the battery module.

[0035] FIG. 4 is a top view of a battery cell stack included in a battery module according to one embodiment of the present invention.

[0036] 4, a battery module according to an embodiment of the present invention includes a battery cell stack 120 in which a plurality of battery cells 110 are stacked, a module frame (not shown) that houses the battery cell stack, and a flame-retardant member 200 located between a pair of adjacent battery cells in the battery cell stack 120. Here, the module frame may be the same as or similar to the module frames 30 and 40 shown in FIG. 1, but is not limited thereto.

[0037] The battery cell stack 120 also includes fastening members 170 that fasten the multiple battery cells 110 to one another, the fastening members 170 being located at the center and / or ends of the battery cell stack 120 .

[0038] The following description will focus on the flame-retardant member 200 and the battery cell 110 adjacent to the flame-retardant member 200.

[0039] FIG. 5 is a top view of region C in FIG.

[0040] 4 and 5, the flame retardant component 200 can include a flame retardant pad 210 and at least one layer 250 of a fire extinguishing material.

[0041] The flame-retardant pad 210 is made of a flame-retardant material. More preferably, a highly compressible flame-retardant material can be used. As an example, the flame-retardant pad 210 can be made of silicone foam, mica sheet, etc. However, the present invention is not limited to these, and any flame-retardant material can be used without limitation.

[0042] As a result, the battery module according to this embodiment can prevent or delay the propagation of heat to other battery cells 110 when a fire occurs in some battery cells 110 of the battery cell stack 120 with the flame-retardant pad 210 as a boundary.

[0043] The extinguishing material layer 250 is made of an extinguishing agent. Here, the extinguishing agent may be a commonly used powder-type extinguishing agent. As an example, the extinguishing agent may be any one of sodium bicarbonate (NaHCO3), potassium bicarbonate (KHCO3), ammonium phosphate (NH4H2PO3), and a mixture of potassium bicarbonate (KHCO3) and urea ((NH2)2CO). In particular, the extinguishing agent contained in the extinguishing material layer 250 may include potassium bicarbonate (KHCO3). However, the extinguishing agent is not limited thereto, and any material that has a fire-extinguishing function may be used without limitation.

[0044] As a result, in the battery module according to this embodiment, when a fire breaks out in the battery cell 110 adjacent to the fire-extinguishing material layer 250, the fire-extinguishing material contained in the fire-extinguishing material layer 250 is distributed toward the battery cell 110, thereby suppressing the fire in the battery cell 110. In addition, carbon dioxide and water vapor may be generated during the process of extinguishing the fire that breaks out in the battery cell 100 by the fire-extinguishing material layer 250. This reaction is an endothermic reaction that can absorb heat from the battery cell 110, block the supply of oxygen, and effectively delay the speed of flame and heat propagation between the battery cells.

[0045] 5, the flame-retardant pad 210 extends along the length and width directions of the battery cell 110. For example, the flame-retardant pad 210 is equal to or larger than the length and width of the battery cell 110, respectively.

[0046] Thus, when a fire occurs in a battery cell 110, the flame-retardant pad 210 can easily delay the propagation of the fire to other battery cells 110. On the other hand, if the flame-retardant pad 210 is excessively smaller than the length and width of the battery cell 110, when a fire occurs in the battery cell 110, there is a problem that the flame and heat may propagate to other battery cells 110 through the periphery of the flame-retardant pad 210.

[0047] 5, according to one embodiment of the present invention, the flame-retardant member 200 is disposed between a pair of battery cells, and the fire-extinguishing material layer 250 may be in contact with at least one of the pair of battery cells. Also, the fire-extinguishing material layer 250 is formed at a position corresponding to at least a portion of the flame-retardant pad 210. As an example, the fire-extinguishing material layer 250 is formed at the center of the flame-retardant pad 210. That is, when swelling occurs in the battery cell 110 according to this embodiment, the fire-extinguishing material layer 250 may be in contact with a position corresponding to the center of the battery cell 110 where the battery cell 110 mainly expands.

[0048] As a result, the battery cell 110 and the fire-extinguishing material layer 250 are in direct contact with each other, which can partially prevent changes in the thermal conductivity of the flame-retardant pad 210. Even if the thermal conductivity of a portion of the flame-retardant pad 210 changes due to volume expansion caused by the swelling of the battery cell 110, when a fire occurs in the battery cell 110, the fire-extinguishing material layer 250 can effectively suppress the flames that occur in the battery cell 110.

[0049] The fire-extinguishing material layer 250 may be symmetrical with respect to the longitudinal direction of the flame-retardant pad 210. Also, the fire-extinguishing material layer 250 may be symmetrical with respect to the width direction of the flame-retardant pad 210. As a result, in the battery module according to this embodiment, the fire-extinguishing material layer 250 is uniformly in contact with the battery cells 110, uniformly preventing a change in the thermal conductivity of the flame-retardant pad 210, and uniformly suppressing a flame generated in the battery cells 110 when a fire occurs in the battery cells 110.

[0050] 5(a), the length of the extinguishing material layer 250 decreases from the center of the flame-retardant pad 210 to the outer periphery. For example, the extinguishing material layer 250 is formed to have the greatest length at the center or central portion of the flame-retardant pad 210, and is formed to have the shortest length at the outer periphery or end portion of the flame-retardant pad 210. That is, in the battery module according to this embodiment, the extinguishing material layer 250 of the flame-retardant member 200 is formed around the center portion of the battery cell 110 where the most volumetric expansion occurs when swelling of the battery cell 110 occurs. As a result, the battery module according to this embodiment can effectively calm the center portion of the battery cell 110 while minimizing the area of ​​the extinguishing material layer 250. In addition, it has an advantage that the heat propagation speed between the battery cells can be effectively delayed.

[0051] 5(a), the flame-retardant member 200 includes at least two extinguishing material layers 250, and the at least two extinguishing material layers 250 are spaced apart from each other. The at least two extinguishing material layers 250 may be spaced apart from each other at the same interval or at different intervals. For example, the distance between the at least two extinguishing material layers 250 increases from the center of the flame-retardant pad 210 to the outer periphery. As a result, the battery module according to this embodiment can effectively extinguish a fire occurring in the battery cell 110 while minimizing the area of ​​the extinguishing material layer 250. In addition, there is an advantage that the heat propagation speed between the battery cells can be effectively delayed.

[0052] For example, the length of the at least two fire-extinguishing material layers 250 decreases from the center of the flame-retardant pad 210 to the outer periphery. As a result, the battery module according to this embodiment has an advantage in that the area of ​​the fire-extinguishing material layer 250 is further minimized while still sufficiently strengthening the flame generated in the battery cell 110 and slowing down the heat propagation speed between the battery cells.

[0053] 5(b), the flame-retardant member 200 has one fire-extinguishing material layer 250 formed on the flame-retardant pad 210. As an example, the fire-extinguishing material layer 250 extends along the length and width of the flame-retardant pad 210 and is formed to be smaller than the length and width of the flame-retardant pad 210. As a result, the battery module according to this embodiment has an advantage that the area of ​​the fire-extinguishing material layer 250 in the flame-retardant member 200 can be maximized to effectively extinguish a flame occurring in the battery cell 110 and effectively slow down the heat propagation speed between the battery cells.

[0054] Fig. 6 is a cross-sectional view of the flame retardant member taken along the cutting line DD in Fig. 5. Fig. 6(a) is a cross-sectional view showing that the fire-extinguishing material layer 250 is positioned through the flame-retardant pad 210 in the flame-retardant member 200 in Fig. 5, and Fig. 6(b) is a cross-sectional view showing that the fire-extinguishing material layer 250 is positioned on the flame-retardant pad 210 in the flame-retardant member 200 in Fig. 5.

[0055] 6(a), a fire-extinguishing material layer 250 is formed to replace at least a portion of the flame-retardant pad 210. As an example, the fire-extinguishing material layer 250 is formed to penetrate at least a portion of the flame-retardant pad 210.

[0056] As a result, the fire-extinguishing material layer 250 can contact the battery cells located adjacent to the flame-retardant member 200. In addition, the flame-retardant member 200 according to this embodiment can maintain its existing thickness even when it includes the fire-extinguishing material layer 250, and the area on which the fire-extinguishing material layer 250 can be formed is not significantly limited. Additionally, the battery capacity of the battery cell stack 120 in the battery module can be maintained.

[0057] According to another embodiment of the present invention, as shown in Fig. 6(b), the fire-extinguishing material layer 250 may be attached to at least one of the upper and lower surfaces of the flame-retardant pad 210. More preferably, the fire-extinguishing material layer 250 may be attached to both the upper and lower surfaces of the flame-retardant pad 210.

[0058] As a result, the fire-extinguishing material layer 250 can contact each battery cell located adjacent to the flame-retardant member 200. In addition, in the flame-retardant member 200 according to this embodiment, the flame-retardant pad 210 and the fire-extinguishing material layer 250 are separately separated, and the flame-retardant effect of the fire-extinguishing material layer 250 is added while maintaining the flame-retardant effect of the flame-retardant member 200, thereby effectively slowing the flame and heat propagation speed between the battery cells. In addition, the flame-retardant member 200 according to this embodiment has the fire-extinguishing material layer 250 formed on the flame-retardant pad 210, which is advantageous in that the manufacturing process is simple and the manufacturing cost can be reduced.

[0059] Fig. 7 is a cross-sectional view showing a state in which a battery cell of a battery cell stack including the flame-retardant member 200 of Fig. 6(a) is expanded. Fig. 7(a) is a diagram showing the flame-retardant member 200 in contact with an expanded region S where a part of a battery cell 110 has expanded, and Fig. 7(b) is a diagram showing, with an enlarged portion of (a), the distribution of the fire-extinguishing material from the fire-extinguishing material layer 250 of the flame-retardant member 200 toward the expanded region S. However, although Fig. 7 only shows the flame-retardant member 200 of Fig. 6(a), the present invention is not limited thereto, and the same explanation can be applied to the case of Fig. 6(b).

[0060] 3 and 7, unlike the conventional flame-retardant pad 20, the battery module according to the present embodiment has a fire-extinguishing material layer 250 formed at a position corresponding to an expanded area S caused by the swelling of the battery cell 110, and can easily extinguish a fire at the expanded area S while preventing a change in the thermal conductivity of the flame-retardant pad 210. In addition, even if the thermal conductivity of the flame-retardant pad 210 changes partially due to the swelling of the battery cell 110, the propagation speed of the flame and heat generated in the battery cell 110 can be effectively delayed through the fire-extinguishing material layer 250.

[0061] A battery pack according to another embodiment of the present invention includes the above-mentioned battery module. Meanwhile, one or more of the battery modules according to this embodiment may be packaged in a pack case to form a battery pack.

[0062] The above-mentioned battery module and the battery pack including the same can be applied to various devices. Such devices can be applied to transportation means such as electric bicycles, electric cars, and hybrid cars, but the present invention is not limited thereto, and the battery module and the battery pack including the same can be applied to various devices that can use the battery module, and these also fall within the scope of the present invention.

[0063] Although the preferred embodiments of the present invention have been described in detail above, the scope of the present invention is not limited thereto, and various modifications and improvements made by those skilled in the art using the basic concept of the present invention defined in the following claims also fall within the scope of the present invention. [Explanation of symbols]

[0064] 110: Battery cell 120: Battery cell stack 170: Fixing member 200: Flame retardant material 210: Flame retardant pad 250: Fire extinguishing material layer

Claims

1. a battery cell stack in which a plurality of battery cells are stacked; a module frame that houses the battery cell stack; a flame-retardant member located between a pair of adjacent battery cells in the battery cell stack, The flame retardant member includes a flame retardant pad and at least one layer of a fire extinguishing material; the fire-extinguishing material layer contacts at least one battery cell of the pair of battery cells; the flame retardant member includes at least two layers of a fire-extinguishing material, the at least two layers of the fire-extinguishing material being spaced apart from one another; The at least two fire-extinguishing material layers have lengths that decrease from the center of the flame-retardant pad to the outer periphery of the flame-retardant pad.

2. The battery module according to claim 1 , wherein the flame-retardant pad extends along the length and width directions of the battery cells.

3. The battery module according to claim 1 , wherein the fire-extinguishing material layer is formed at a central portion of the flame-retardant pad.

4. The battery module according to any one of claims 1 to 3, wherein the fire-extinguishing material layer extends along the length and width of the flame-retardant pad.

5. The battery module according to claim 4 , wherein the fire-extinguishing material layer is symmetrical with respect to the length and width directions of the flame-retardant pad.

6. The battery module according to claim 4 or 5, wherein the length of the fire-extinguishing material layer decreases from the center of the flame-retardant pad to the outer periphery.

7. The flame retardant member includes at least three layers of a fire extinguishing material; 2. The battery module of claim 1, wherein the at least three layers of fire extinguishing material are spaced apart from each other by the same distance.

8. The flame retardant member includes at least three layers of a fire extinguishing material; The battery module of claim 1 , wherein a distance between the at least three fire-extinguishing material layers increases from a center of the flame-retardant pad to an outer periphery.

9. The battery module according to any one of claims 1 to 8, wherein the fire-extinguishing material layer is formed to replace at least a part of the flame-retardant pad.

10. The battery module according to claim 9 , wherein the fire-extinguishing material layer is formed to penetrate at least a portion of the flame-retardant pad.

11. The battery module according to any one of claims 1 to 9, wherein the fire-extinguishing material layer is attached to at least one of the upper and lower surfaces of the flame-retardant pad.

12. A battery pack comprising the battery module according to any one of claims 1 to 11.

Citation Information

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