BATTERY MODULE, BATTERY PACK INCLUDING THE BATTERY MODULE, ENERGY STORAGE DEVICE INCLUDING THE BATTERY PACK, AND VEHICLE

The battery module design with integrated cooling channels and fin units addresses the issue of thermal runaway in conventional modules by ensuring efficient cooling and structural support, thereby preventing explosions.

JP7674592B2Active Publication Date: 2025-05-09LG ENERGY SOLUTION LTD
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Patent Information

Application Number
JP2024507925
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-27
Filing Date
2022-12-09
Publication Date
2025-05-09
Estimated Expiration
2042-12-09

AI Technical Summary

Technical Problem

Conventional battery modules are prone to thermal runaway due to overheating in specific battery cells, which can lead to explosions.

Method used

A battery module design featuring multiple battery cells with integrated cooling channels and cooling fin units, including support ribs, that facilitate efficient cooling and prevent thermal runaway by allowing cooling water to flow and potentially act as a fire extinguishing agent.

Benefits of technology

The solution effectively prevents thermal runaway and reduces the risk of explosion by maintaining efficient cooling and structural support for the battery cells, even in abnormal situations.

✦ Generated by Eureka AI based on patent content.

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Abstract

A battery module according to one embodiment of the present invention is characterized in that it includes a plurality of battery cells, at least one cooling channel provided on at least one side of the plurality of battery cells and through which coolant flows for cooling the plurality of battery cells, and at least one cooling fin unit arranged in contact with the at least one cooling channel and having at least one support rib for supporting the at least one cooling channel.
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Description

[Technical field]

[0001] The present invention relates to a battery module, a battery pack including the battery module, and an energy storage device and a vehicle including the battery pack.

[0002] This application claims priority to Korean Patent Application No. 10-2021-0189011, filed on December 27, 2021, the entire contents of which are incorporated herein by reference in their entirety in the specification and drawings. [Background technology]

[0003] Secondary batteries, which have high applicability to each product group and electrical properties such as high energy density, are widely used not only in portable devices but also in electric vehicles (EVs) and hybrid electric vehicles (HEVs) that are driven by electrical sources. Such secondary batteries are attracting attention as a new, environmentally friendly and highly energy-efficient energy source, not only because they have the primary advantage of being able to significantly reduce the amount of fossil fuel used, but also because they do not produce any by-products from energy use.

[0004] Currently, the types of secondary batteries that are widely used include lithium ion batteries, lithium polymer batteries, nickel cadmium batteries, nickel metal hydride batteries, and nickel zinc batteries. The operating voltage of these unit secondary battery cells, i.e., unit battery cells, is about 2.5 to 4.5 V. Therefore, when a higher output voltage is required, a battery pack may be configured by connecting a plurality of battery cells in series. Also, depending on the charge / discharge capacity required for the battery pack, a battery pack may be configured by connecting a plurality of battery cells in parallel. Therefore, the number of battery cells included in the battery pack can be set in various ways depending on the required output voltage and charge / discharge capacity.

[0005] Meanwhile, when configuring a battery pack by connecting a plurality of battery cells in series / parallel, a common method is to first configure a battery module including at least one battery cell, and then use the at least one battery module to add other components to configure a battery pack or a battery rack.

[0006] A conventional battery module generally includes a plurality of stacked battery cells and a module housing that accommodates the plurality of battery cells. In such a conventional battery module, when a specific battery cell among the plurality of battery cells overheats due to an abnormality, the heat generated in the overheated battery cell is directly transferred to an adjacent battery cell, causing thermal runaway, which may lead to a greater risk such as an explosion of the battery module.

[0007] Therefore, there is a need to seek ways to provide a battery module that prevents thermal runaway in the event of an abnormal condition in a battery cell, a battery pack including the battery module, and an energy storage device and automobile including the battery pack. Summary of the Invention [Problem to be solved by the invention]

[0008] Therefore, an object of the present invention is to provide a battery module that prevents thermal runaway in the event of an abnormal condition in a battery cell, a battery pack including the battery module, and an energy storage device and an automobile including the battery pack. [Means for solving the problem]

[0009] In order to achieve the above-mentioned object, the present invention provides a battery module comprising: a plurality of battery cells; at least one cooling channel provided on at least one side of the plurality of battery cells through which coolant flows for cooling the plurality of battery cells; and at least one cooling fin unit arranged in contact with the at least one cooling channel and having at least one support rib for supporting the at least one cooling channel.

[0010] In addition, preferably, a plurality of the cooling channels are provided, and the plurality of cooling channels may be provided above and below the plurality of battery cells.

[0011] Also, preferably, the at least one cooling fin unit may be disposed in contact with cooling channels provided on upper and lower sides of the plurality of battery cells.

[0012] In addition, preferably, a plurality of the cooling fin units are provided, and the plurality of cooling fin units can be disposed between the plurality of battery cells.

[0013] Also preferably, the at least one cooling fin unit may be in communication with the plurality of cooling channels.

[0014] In addition, preferably, the at least one cooling fin unit may be provided with a fin flow passage connected to the plurality of cooling channels and into which the cooling water flows.

[0015] Also, preferably, the at least one support rib may include a channel support portion extending from an end of the at least one cooling fin unit and supporting the at least one cooling channel, and a cell support portion extending from the channel support portion and supporting the plurality of battery cells.

[0016] Also preferably, the cell support portion can be bent at a predetermined angle from the channel support portion.

[0017] Also preferably, the at least one support rib may be integrally formed with the at least one cooling fin unit.

[0018] Also, preferably, a plurality of the support ribs are provided, and the plurality of support ribs can be arranged opposite to each other at least one end of the cooling fin unit.

[0019] Furthermore, the present invention provides a battery pack including at least one battery module according to the above-described embodiment, and a pack case accommodating the at least one battery module.

[0020] Furthermore, the present invention provides an energy storage device, characterized in that it includes at least one battery pack according to the above-described embodiments.

[0021] Furthermore, the present invention provides a vehicle comprising at least one battery pack according to the above-described embodiment. Effect of the Invention

[0022] According to various embodiments as described above, a battery module that prevents thermal runaway in the event of an abnormal condition in a battery cell, a battery pack including the battery module, and an energy storage device and a vehicle including the battery pack are provided.

[0023] The drawings attached to this specification are intended to illustrate preferred embodiments of the present invention and, together with the detailed description of the present invention described below, serve to further understand the technical ideas of the present invention. Therefore, the present invention should not be interpreted as being limited to only the matters described in the drawings. [Brief description of the drawings]

[0024] [Figure 1] 1 is a diagram illustrating a battery module according to an embodiment of the present invention; [Diagram 2] FIG. 2 is a diagram for explaining a main part of the battery module of FIG. [Diagram 3] 3 is a diagram for explaining a cooling fin unit of the battery module of FIG. 2. [Figure 4] 4 is a cross-sectional view of a main part of the cooling fin unit of FIG. 3. [Diagram 5] 2 is a diagram for explaining a cooling mechanism of the battery module in FIG. 1. [Figure 6] 2 is a diagram for explaining a thermal runaway prevention mechanism in an abnormal situation of the battery module of FIG. 1. FIG. [Figure 7] 1 is a diagram illustrating a battery pack according to an embodiment of the present invention; DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0025] The present invention will become clearer by describing in detail preferred embodiments of the present invention with reference to the accompanying drawings. The embodiments described herein are illustrative in order to aid in the understanding of the present invention, and it should be understood that the present invention can be implemented in various forms different from the embodiments described herein. In addition, in order to aid in the understanding of the present invention, the accompanying drawings may be drawn not to scale but with some components exaggerated.

[0026] FIG. 1 is a diagram for explaining a battery module according to one embodiment of the present invention, FIG. 2 is a diagram for explaining the main parts of the battery module of FIG. 1, FIG. 3 is a diagram for explaining a cooling fin unit of the battery module of FIG. 2, and FIG. 4 is a cross-sectional view of the main parts of the cooling fin unit of FIG. 3.

[0027] 1 to 4, a battery module 10 may include a plurality of battery cells 100, a cooling channel 200, and at least one cooling fin unit 300.

[0028] The battery cells 100 may be a pouch-type secondary battery, a prismatic secondary battery, or a cylindrical secondary battery. Hereinafter, the present embodiment will be described with the battery cells 100 being limited to being provided as a pouch-type secondary battery.

[0029] Each of the multiple battery cells 100 may include a battery case that houses the electrode assembly, and an electrode lead 150 that protrudes from the battery case and connects to the electrode assembly.

[0030] The cooling channel 200 may be provided on at least one of an upper side and a lower side of the plurality of battery cells 100. Cooling water C (see FIG. 5) for cooling the plurality of battery cells 100 flows through the cooling channel 200.

[0031] There may be a plurality of such cooling channels 200. The plurality of cooling channels 200 may be provided on both the upper and lower sides of the plurality of battery cells 100.

[0032] The at least one cooling fin unit 300 may be disposed in contact with the at least one cooling channel 200. Specifically, the at least one cooling fin unit 300 may be disposed in contact with the cooling channels 200 provided on the upper and lower sides of the plurality of battery cells 100. Furthermore, the at least one cooling fin unit 300 may be in communication with the plurality of cooling channels 200.

[0033] There may be a plurality of cooling fin units 300, each of which may be one of the cooling fin units 300. The cooling fin units 300 may be disposed between the battery cells 100.

[0034] The plurality of cooling fin units 300 will be described in more detail below.

[0035] Each of the plurality of cooling fin units 300 may include a fin body 310 , a fin channel 330 and a support rib 350 .

[0036] The fin body 310 may be disposed between the battery cells 100 and elongated along the up-down direction of the battery cells 100. The fin body 310 may be made of a metal material having high thermal conductivity.

[0037] The fin flow passage 330 may be formed long inside the fin body 310 along the length direction of the fin body 310. The fin flow passage 330 may be connected to the cooling channels 200. Thus, the coolant may flow into the fin flow passage 330. The flow of the coolant through the fin flow passage 330 further improves the cooling efficiency of the battery cells 100.

[0038] The support rib 350 extends from an end of the at least one cooling fin unit 300, specifically from an end of the fin body 310, and can support the at least one cooling channel and at least one battery cell 100 of the plurality of battery cells 100.

[0039] The support rib 350 may be a component that may be attached to the at least one cooling fin unit 300 as a separate member, or may be integrally formed with the at least one cooling fin unit 300. Hereinafter, in this embodiment, the description will be limited to the case where the support rib 350 is a component that is integrally formed with the at least one cooling fin unit 300. Specifically, the support rib 350 may be integrally formed with the fin body 310 of the at least one cooling fin unit 300.

[0040] A plurality of support ribs 350 may be provided.

[0041] The plurality of support ribs 350 may be disposed opposite each other at one end of the cooling fin unit 300. Specifically, the plurality of support ribs 350 may be disposed opposite each other at at least one end of the cooling fin unit 300, more specifically, at least one of the upper end and the lower end of the fin body 310.

[0042] Such plurality of support ribs 350 may include channel supports 352 and cell supports 354 .

[0043] The channel support 352 extends from an end of the at least one cooling fin unit 300, specifically from an end of the fin body 310, more specifically from an upper end of the fin body 310, and can support the at least one cooling channel 200.

[0044] The channel support 352 extends from an end of the at least one cooling fin unit 300 , specifically, from an upper end of the fin body 310 , and can support the at least one cooling channel 200 .

[0045] The cell support 354 may extend from the channel support 352 and support the plurality of battery cells 100. The cell support 354 may be bent at a predetermined angle from the channel support 352. Specifically, the cell support 354 may be bent at a predetermined angle in a direction from the channel support 352 toward the battery cell 100.

[0046] The battery module 10 may include a channel connection portion 400.

[0047] The channel connection part 400 may be connected to the cooling channel 200 between the cooling channel 200 and the cooling fin unit 300. The channel connection part 400 may at least partially melt or separate from the cooling channel 200, or may become detached from the cooling channel 200 due to an external impact or a temperature rise in an abnormal situation.

[0048] The channel connection portion 400 may include at least one connection hole 450 capable of supplying the cooling water to the inside of the fin flow passage 330 of the cooling fin unit 300. Hereinafter, in this embodiment, the description will be limited to the case where the connection hole 450 is multiple.

[0049] Hereinafter, the cooling mechanism of the battery module 10 according to an embodiment of the present invention will be described in more detail.

[0050] FIG. 5 is a diagram for explaining the cooling mechanism of the battery module of FIG.

[0051] 5, the cooling channel 200 may circulate the coolant C for cooling the battery cell 100 to cool the battery cell 100. Here, the coolant C of the cooling channel 200 flows into the fin flow passage 330 of the cooling fin unit 300 through the connection hole 450 of the channel connection part 400. In this manner, the coolant C also flows into the cooling fin unit 300, thereby further improving the cooling efficiency of the battery cell 100.

[0052] Furthermore, in this embodiment, the cooling channel 200 through which the cooling water C flows is supported more stably by the support ribs 350 of the cooling fin unit 300 .

[0053] Hereinafter, the thermal runaway prevention mechanism of the battery module 10 according to an embodiment of the present invention will be described in more detail.

[0054] FIG. 6 is a diagram for explaining a thermal runaway prevention mechanism in an abnormal situation of the battery module of FIG.

[0055] Referring to FIG. 6, at least one of the battery cells 100 of the battery module 10 may be overheated due to an abnormal condition, which may cause a dangerous situation such as a fire.

[0056] If the battery cell 100 is overheated, the temperature of the battery cell 100 may rise, causing the battery cell 100 to expand. Due to an external impact or a rise in temperature in such an abnormal situation, the channel connection part 400 may at least partially melt or separate from the cooling channel 200, or may become detached from the cooling channel 200.

[0057] As a result, when the cooling channel 200 is opened, the cooling water C flows out of the cooling channel 200 and functions as a fire extinguisher to suppress thermal runaway or fire of the battery cell 100 in which the abnormal situation has occurred.

[0058] Meanwhile, when the channel connection portion 400 and the cooling channel 200 are separated or deformed, the support rib 350 of the cooling fin unit 300 can support the battery cell 100 and maintain the arrangement of the battery cell 100 to the maximum extent.

[0059] If the channel connection part 400 and the cooling channel 200 are detached or deformed, the support form of the battery cell 100 may be destroyed, which may lead to the structural collapse of the entire battery module 10, increasing the possibility of thermal runaway or a dangerous situation. In this embodiment, the support rib 350 can support the battery cell 100 even in such an abnormal situation, thereby significantly preventing the risk of the structural collapse of the entire battery module 10.

[0060] Furthermore, the support rib 350 can also function as a barrier between adjacent battery cells 100, thereby effectively preventing flames or sparks that may be caused by a battery cell 100 in an abnormal situation from propagating to the adjacent battery cell 100.

[0061] In this manner, the battery module 10 according to the present embodiment significantly reduces dangerous situations that may lead to thermal runaway of the entire battery module 10 in the abnormal situation, by virtue of the cooling channel 200, the cooling fin unit 300 and the channel connection portion 400.

[0062] FIG. 7 is a diagram illustrating a battery pack according to an embodiment of the present invention.

[0063] Referring to FIG. 7 , a battery pack 1 may include at least one or more battery modules 10 of the above-described embodiments, and a pack case 50 for housing the at least one battery module 10 .

[0064] At least one or more of the battery packs 1 may be provided as an energy source for an energy storage device or an automobile. Needless to say, the battery pack 1 may be provided in other devices, equipment, and facilities that use secondary batteries, in addition to the energy storage device or the automobile.

[0065] In this manner, devices, instruments, and equipment equipped with the battery pack 1, such as an energy storage device or automobile including the battery pack 1 according to this embodiment, can realize devices, instruments, and equipment such as an energy storage device or automobile that have all of the advantages of the battery module 10 described above.

[0066] According to the various embodiments described above, a battery module 10 that prevents thermal runaway when an abnormal condition occurs in a battery cell 100, a battery pack 1 including the battery module 10, and an energy storage device and a vehicle including the battery pack 1 are provided.

[0067] While preferred embodiments of the present invention have been illustrated and described above, the present invention is not limited to the specific embodiments described above. It goes without saying that various modifications can be made by those having ordinary skill in the art to which the invention pertains without departing from the gist of the present invention as claimed in the claims, and such modifications should not be understood individually from the technical ideas and perspectives of the present invention. [Explanation of symbols]

[0068] 1 Battery Pack 10 Battery Module 50 pack case 100 Battery Cells 150 Electrode Lead 200 Cooling Channels 300 Cooling fin unit 310 Fin Body 330 Fin Channel 350 Support Rib 352 Channel support 354 Cell support 400 Channel Connection 450 Connection hole C Cooling water

Claims

1. A plurality of battery cells; At least one cooling channel is provided on at least one side of the plurality of battery cells, through which coolant flows to cool the plurality of battery cells; at least one cooling fin unit disposed in contact with at least one of the cooling channels and including at least one support rib for supporting the at least one of the cooling channels; a channel connection portion between the cooling channel and the cooling fin unit and connected to the cooling channel, the channel connection portion at least partially melting, or separating from the cooling channel, or detaching from the cooling channel when overheating occurs in the battery cell; a battery module.

2. The cooling channel is provided in plurality, The plurality of cooling channels include The battery module according to claim 1 , provided on the upper and lower sides of a plurality of the battery cells.

3. At least one of the cooling fin units includes: The battery module according to claim 2 , wherein the battery module is disposed in contact with cooling channels provided on upper and lower sides of a plurality of the battery cells.

4. The cooling fin unit is provided in plurality, The plurality of cooling fin units include The battery module according to claim 3 , disposed between a plurality of the battery cells.

5. At least one of the cooling fin units includes: The battery module of claim 3 in communication with a plurality of said cooling channels.

6. At least one of the cooling fin units has: The battery module according to claim 5 , further comprising a fin flow passage connected to the plurality of cooling channels and into which the cooling water flows.

7. At least one of the support ribs is a channel support extending from an end of at least one of the cooling fin units and supporting at least one of the cooling channels; 2. The battery module of claim 1, further comprising: a cell support extending from the channel support and supporting a plurality of the battery cells.

8. The cell support portion is The battery module according to claim 7 , wherein the channel support is bent at a predetermined angle.

9. At least one of the support ribs is The battery module according to claim 1 , wherein the cooling fin unit is integrally formed with at least one of the cooling fin units.

10. The support rib is provided in plurality, The plurality of support ribs include The battery module according to claim 1 , wherein the cooling fin units are disposed opposite each other at at least one end thereof.

11. At least one battery module according to any one of claims 1 to 10; A pack case that houses at least one of the battery modules; Including the battery pack.

12. 12. An energy storage device comprising at least one battery pack according to claim 11.

13. A motor vehicle comprising at least one battery pack according to claim 11.

Citation Information

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