Battery module, battery pack and electric vehicle

The battery module design with insert posts and spacer plates provides stable, adhesive-free fixation, enhancing structural integrity and safety while maintaining volume efficiency, addressing loose module issues and space inefficiencies in battery packs.

JP7723070B2Active Publication Date: 2025-08-13SHANGHAI RUIPU ENERGY CO LTD
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Patent Information

Application Number
JP2023503222
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-06
Filing Date
2022-06-23
Publication Date
2025-08-13
Estimated Expiration
2042-06-23

AI Technical Summary

Technical Problem

Existing battery packs face issues with loose battery modules due to deteriorating adhesive connections, difficulty in monitoring adhesive performance, and lack of fixing points, leading to manufacturing defects and maintenance challenges.

Method used

A battery module design featuring insert posts with rounded corners and outer abutment layers, along with spacer plates and end plates, that provide multiple removable reinforcement points without relying on adhesives, ensuring stable fixation and increased mechanical strength.

Benefits of technology

The solution enhances the stability and safety of battery modules by increasing fixing points, improving structural integrity, and allowing for easier maintenance while maintaining volume utilization rates, thus addressing the adhesive-related issues and space inefficiencies in current battery packs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention provides a battery module, a battery pack, and an electric vehicle. The battery module includes a fixing assembly including a plurality of insert posts sandwiched between a plurality of battery cores. Furthermore, the edges of the battery cores are provided with rounded corner structures, and the insert posts abut against the rounded corner structures. This battery module uses the insert posts to provide multiple removable reinforcement points, enhancing the mechanical connection strength of the battery module without affecting the stacking density of the battery cores within the battery pack. The removable design of the battery module and the insert posts solves maintenance issues associated with integrated battery packs and improves the safety of the battery module, resulting in high structural strength, integrity, and stability.
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Description

[Technical Field]

[0001] The present invention relates to the field of batteries, and in particular to a battery module, a battery pack including the battery module, and an electric vehicle including the battery pack. [Background technology]

[0002] Some battery packs include a hollow box and battery modules arranged inside the box. To increase the success rate of grouping the battery modules, battery packs are typically made by joining aluminum alloy profiles, which increases the manufacturing cost of the battery pack.

[0003] Typically, to increase energy density, battery packs use as much space as possible for arranging the battery cores, leaving little space for structural components. A common method for securing battery modules is to attach them to the inner wall of a box with double-sided tape. However, the adhesiveness of the tape deteriorates over time, causing the battery module to loosen, significantly impacting battery pack use. Furthermore, the performance of the adhesive itself is difficult to monitor during the manufacturing process, making mass-produced products prone to defects. Furthermore, the battery modules are difficult to remove due to the adhesive, which is inconvenient.

[0004] Furthermore, in order to improve battery performance, the battery packs for power batteries are used with the battery cores stacked closely together, which makes it impossible to provide fixing points inside the battery pack, which would waste a lot of space both horizontally and vertically inside the battery pack. Summary of the Invention [Problem to be solved by the invention]

[0005] The technical problem to be solved by the present invention is to provide a battery module, a battery pack, and an electric vehicle that include a plurality of removable reinforcement points. [Means for solving the problem]

[0006] In order to solve the above-mentioned technical problems, the present invention proposes a battery module including a plurality of battery cores, the battery module comprising a fixing assembly including a plurality of insert posts sandwiched between the plurality of battery cores.

[0007] In one embodiment of the present invention, the edge of the battery core is provided with a rounded corner structure, and the insert post abuts against the rounded corner structure.

[0008] In one embodiment of the present invention, the insert post has an inner cavity and an outer abutment layer, the inner cavity being disposed inside the outer abutment layer, and the outer abutment layer abutting against the battery core.

[0009] In one embodiment of the present invention, the outer abutment layer is an insulating layer.

[0010] In one embodiment of the present invention, the insert post comprises a main body, the main body including an inner cavity penetrating the main body and an outer abutment layer, and the battery module further comprises a fastener inserted into the inner cavity to secure the insert post.

[0011] In one embodiment of the present invention, a support platform is provided on the top of the body for receiving the head of the fastener, and the width of the support platform is greater than the diameter of the body.

[0012] In one embodiment of the invention, a plurality of the insert posts are connected to form a fixed set.

[0013] In one embodiment of the invention, a plurality of said fixing sets are arranged in a linked manner.

[0014] In one embodiment of the present invention, the fixing sets are provided with a plurality of connecting pieces, and the fixing sets are connected to each other via the connecting pieces.

[0015] In one embodiment of the present invention, a battery core set and a spacer plate are provided, each battery core set including a plurality of battery cores having a width extending in a first direction, the plurality of battery cores being arranged in the first direction to form the battery core set, the spacer plate being disposed between adjacent battery core sets, the spacer plate being extended in the first direction, the plurality of insert posts being equally spaced on the spacer plate, the distance between adjacent insert posts corresponding to the width of the battery cores, and the battery cores being fixedly disposed between the adjacent insert posts.

[0016] In one embodiment of the present invention, the spacer plate has a flanging plate and a deformation region, the flanging plate is arranged perpendicular to the insert post, the flanging plate is arranged to protrude from the spacer plate, the flanging plate has a mounting hole arranged corresponding to the inner cavity, and the deformation region is provided at the end of the spacer plate.

[0017] In one embodiment of the present invention, the battery pack further includes end plates, which are provided at both ends of the battery core set and are locked in one direction with the spacer plates by an interlock mechanism.

[0018] In one embodiment of the invention, the spacer plates are perpendicular or parallel to the end plates.

[0019] In one embodiment of the present invention, the end plate is provided with a limiting groove and a give-away hole on one side of the limiting groove, and the deformation region is fixed to the limiting groove via the give-away hole, thereby forming the interlock mechanism.

[0020] In one embodiment of the present invention, a limiting block and a limiting groove are provided inside the limiting groove, and the limiting block and the limiting groove are provided corresponding to each other on both sides of the limiting groove, and the limiting block and the limiting groove are provided at an interval in a second direction, which is the upright direction of the end plate.

[0021] In one embodiment of the present invention, the deformation region comprises a groove and an elastic piece, the grooves being arranged at equal intervals along the second direction at the end of the spacer plate, a first groove wall being provided on the inside of one end of the groove that is close to the end plate, and the elastic piece being arranged so that one end is fixed to the first groove wall and the other end is arranged so as to protrude into the plate body of the spacer plate.

[0022] In one embodiment of the present invention, the deformation area is fixed to the end plate by the yield hole compressing the elastic piece to move into the limiting groove, and the elastic piece springs back into the limiting groove to self-lock.

[0023] In one embodiment of the present invention, the battery core comprises a case and an inner winding core, the inner winding core is disposed within the case and is arranged in a wound structure, and the box body includes a rounded corner structure.

[0024] In one embodiment of the present invention, the cases of adjacent battery cores are in contact via the rounded corner structure, and the insert post is positioned within the gap formed by the contact with the rounded corner structure of the adjacent case.

[0025] In one embodiment of the present invention, the spacer plate is in close contact with the outer wall of the case, and the height of the spacer plate in the upright direction is equal to or greater than the height of the case.

[0026] In one embodiment of the present invention, a cable tie is provided around the outer periphery of the battery core set, and the cable tie surrounds the battery core set and the end plate and is shaped to the battery core set along the first direction.

[0027] In one embodiment of the present invention, the battery core comprises a square shell battery core.

[0028] In one embodiment of the present invention, the battery core set further includes a fixed bottom plate removably fixed to its surface, the outer edge of the fixed bottom plate is bent in a direction approaching the battery core set to form an accommodating cavity, the battery core set is positioned within the accommodating cavity, fixing holes are opened on the surface of the fixed bottom plate, and the fasteners pass through the fixing holes to fix the battery modules.

[0029] In one embodiment of the present invention, the battery core set further includes a connection assembly, which is arranged on a side of the battery core set away from the fixed bottom plate and is for realizing a series-parallel connection between the plurality of battery cores.

[0030] In order to solve the above-mentioned technical problems, the present invention proposes a battery pack including the above-mentioned battery module, and the battery pack is characterized by having a battery pack main body in which the plurality of battery cores are arranged.

[0031] In one embodiment of the present invention, a limit post is provided on the inner wall of the battery pack body, and the limit post abuts against the battery core and the inner wall of the battery pack body.

[0032] In order to solve the above-mentioned technical problems, the present invention proposes an electric vehicle, which is characterized by including the above-mentioned battery pack.

[0033] The present invention enlarges the rounded corners of the battery core case to ensure space for fastening at the intersections of multiple battery cores without affecting the stacking density of the battery cores within the battery pack. Multiple fastening sets of the present invention are interconnected by connecting pieces, improving overall strength. Other features can be added to the fastening sets and connecting pieces of the present invention, allowing them to be used as mounting platforms for fastening other components within the battery pack, thereby improving applicability.

[0034] The spacer plate for battery modules, battery pack, and electric vehicle of the present invention increases the number of fixing points in the battery module by arranging insert posts without affecting the current volume utilization rate, thereby increasing the mechanical connection strength of the battery module, improving the success rate of battery module grouping, and favoring volume increase. At the same time, the battery module is fixed without relying on adhesive connections, solving the maintenance problems in current highly integrated battery packs, improving the safety of the battery module, and having the characteristics of high structural strength, integrity, and stability.

[0035] In some embodiments of the present invention, spacer plates are placed between battery core sets, and positioning posts and flanging plates are placed on the spacer plates. Mounting holes are drilled in the flanging plates and the positioning posts, and fasteners are fixedly connected to the battery pack housing through the mounting holes, thereby achieving positioning in the Z direction between the spacer plates and the housing. The flanging plates contact the upper end surfaces of the battery core sets on both sides, restricting movement of the battery cores in the Z direction. End plates are placed on both ends of the battery core set, and an interlocking mechanism is used to lock the end plates and spacer plates together. The yield holes first compress and deform the elastic pieces in the deformation areas. After the deformation areas pass through the yield holes, the elastic pieces in the grooves spring back and engage with the limiting grooves in the X direction, completing the X-direction self-locking between the end plates and the middle spacer plates. An inner winding core with a winding structure is placed inside a single battery core, and case corners with large arc angles are placed outside the battery core, ensuring a certain internal space for fixing the assembly when multiple battery cores are stacked. Support beams are arranged around each battery core set and connected to the battery pack box, ensuring the rigidity of the connection between the battery pack and the entire vehicle. [Brief explanation of the drawings]

[0036] The features and performance of the present invention will be described in detail below with reference to the following embodiments and accompanying drawings.

[0037] [Figure 1] FIG. 1 is a structural schematic diagram of one battery core of a battery module according to an embodiment of the present invention. [Figure 2] FIG. 2 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention. [Figure 3] FIG. 3 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention. [Figure 4]FIG. 4 is a schematic diagram of the structure of an insert post in a battery module according to one embodiment of the present invention. [Figure 5] FIG. 5 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. [Figure 6] FIG. 6 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. [Figure 7] FIG. 7 is a structural schematic diagram of a battery core in a battery module according to one embodiment of the present invention. [Figure 8] FIG. 8 is a schematic diagram of an explosion structure of a battery module according to an embodiment of the present invention. [Figure 9] FIG. 9 is a schematic exploded view of a battery module according to an embodiment of the present invention. [Figure 10] FIG. 10 is a structural schematic diagram of a spacer plate in a battery module according to an embodiment of the present invention. [Figure 11] FIG. 11 is a structural schematic diagram of an insert post in a battery module according to an embodiment of the present invention. [Figure 12] FIG. 12 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention. [Figure 13] FIG. 13 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention. [Figure 14] FIG. 14 is a structural schematic diagram of a battery module and its battery pack according to one embodiment of the present invention. [Figure 15] FIG. 15 is a structural schematic diagram of a battery module according to one embodiment of the present invention. [Figure 16] FIG. 16 is a schematic diagram of an explosion of the battery module according to the embodiment shown in FIG. [Figure 17] FIG. 17 is a structural schematic diagram of the spacer plate of the battery module according to the embodiment shown in FIG. [Figure 18] FIG. 18 is a structural schematic diagram of an end plate of the battery module according to the embodiment shown in FIG. [Figure 19]19 is a structural schematic diagram of the deformation region of the spacer plate of the battery module according to the embodiment shown in FIG. [Figure 20] FIG. 20 is a plan view of the deformation area of the embodiment shown in FIG. [Figure 21] FIG. 21 is a partial enlarged view of the end plate of the embodiment shown in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0038] Specific Embodiments In order to make the above-mentioned objects, features and advantages of the present invention more clearly comprehensible, specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.

[0039] In the following description, numerous specific details are set forth to facilitate a thorough understanding of the present invention; however, the present invention is not limited to the specific embodiments disclosed below, as the present invention may be practiced in other ways apart from those described herein.

[0040] As used in this application and the claims, terms such as "a," "one," "a kind," and / or "the" do not specifically refer to the singular but may also include the plural, unless the context clearly indicates an exceptional circumstance. In general, the terms "comprising" and "including" do not constitute an exclusive list but merely indicate the inclusion of explicitly identified steps and elements, and a method or apparatus may include other steps or elements.

[0041] In describing the embodiments of the present invention in detail, for ease of explanation, the cross-sectional views showing the structure of the device are not enlarged to a general scale, and the above schematic views are merely examples and should not limit the scope of protection of the present invention. In addition, in actual fabrication, the three-dimensional spatial dimensions of length, width and depth must be included.

[0042] For ease of explanation, the relationship of one element or feature to other elements or features shown in the figures may be described herein using spatial relationship terms such as "below," "belower," "lower," "underside," "above," and "on." It will be understood that these spatial relationship terms are intended to include other orientations of the device in use or operation than those shown in the figures. For example, if a device in the figures is inverted, the orientation of an element described as being "below" or "beneath" or "below" another element or feature will be changed to "above" said other element or feature. Thus, the exemplary terms "below" and "beneath" can include both an upward and downward orientation. A device may have another orientation (rotated 90 degrees or at another orientation), and the spatial relationship descriptive terms used herein should be interpreted accordingly. Furthermore, when a layer is referred to as being "between" two layers, it will be understood that it may be the only layer between the two layers, or that there may be one or more intervening layers.

[0043] In the context of the present invention, the described structure of a first feature "on" a second feature can include embodiments in which the first and second features are formed in direct contact, or can include embodiments in which other features are formed between the first and second features. Thus, the first and second features may not be in direct contact.

[0044] When a component is referred to as being "on top of another component," "connected to another component," "coupled to another component," or "in contact with another component," it should be understood that it may be directly on top of, connected to, coupled to, or in contact with another component, or that an interposed component may be present. In contrast, when a component is referred to as being "directly on," "directly connected to," "directly coupled to," or "in direct contact with," no interposed component is present. Similarly, when a first component is referred to as being "in electrical contact with" or "electrically coupled to" a second component, an electrical path exists between the first and second components, allowing current to flow between them. This electrical path may include capacitors, coupled inductors, and / or other components that allow current to flow without direct contact between conductive members.

[0045] The present invention provides a battery module including a plurality of battery cores and a fixing assembly including a plurality of insert posts sandwiched between the plurality of battery cores. The battery module of the present invention and a battery pack including the battery module can be used in any electric device that requires the placement of a battery pack, such as an electric vehicle.

[0046] First Embodiment FIG. 1 is a structural schematic diagram of one battery core in a battery module according to one embodiment of the present invention. As shown in FIG. 1, the battery core 110 is a square battery core. FIG. 1 illustrates the actual orientation of the battery core 110 when installed in a battery module, i.e., the battery core 110 is installed in an upright direction, which is also referred to as the Z direction or Z-axis direction, as indicated by the arrow in FIG. 1. The square battery core 110 has multiple edges extending in the upright direction, each of which has a rounded corner structure 120. In the embodiment shown in FIG. 1, the battery core 110 has four rounded corner structures 120 arranged on the four edges of the square battery core.

[0047] Fig. 2 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. Referring to Fig. 2, four battery cores 110 are closely arranged in two rows and two columns. Fig. 2 also shows a battery pack body 210, inside which the four battery cores 110 are arranged. A first cavity 220 is formed in the center of the four battery cores 110. The fixing assembly of the battery module is not yet included in Fig. 2.

[0048] While a typical square battery core does not have rounded corners, the present invention provides rounded corners with a larger radian on the edge of the battery core case to form a first cavity 220, and the insert post is placed in this first cavity 220.

[0049] It should be noted that the illustration of FIG. 2 is not used to limit the number and specific arrangement of battery cores 110 within a battery module.

[0050] Figure 3 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. Compared to Figure 2, Figure 3 shows a fixing assembly 310 placed in a first cavity 220 formed by four battery cores 110, and one battery core 110 removed to expose the fixing assembly 310. The fixing assembly 310 includes a plurality of insert posts 320, and Figure 3 shows one insert post 320 located between four adjacent battery cores 110, abutting against the rounded corner structures of each adjacent battery core 110, i.e., in contact with each other.

[0051] 4 is a structural schematic diagram of an insert post in a battery module according to one embodiment of the present invention. As shown in FIG. 4, one insert post 320 includes an inner cavity 321 and an outer abutment layer 322, and the inner cavity 321 is disposed within the outer abutment layer 322. As shown in FIG. 3, the outer abutment layer 322 abuts against the battery core 110.

[0052] 3 and 4, the outer abutment layer 322 of the insert post 320 in this embodiment includes four concave surfaces 323, and the radians and dimensions of each concave surface 323 match the rounded corner structures of the battery core 110, causing the four rounded corner structures of the four battery cores 110 adjacent to the insert post 320 to abut against the four concave surfaces 323 of one insert post 320, respectively, to form a stable abutment relationship.

[0053] In some embodiments, the outer abutment layer 322 is a plastic layer and the material of the inner cavity 321 is metal.

[0054] In some embodiments, the outer abutment layer 322 is an insulating layer.

[0055] In some embodiments, a fastener 324 is provided in the inner cavity 321, and the insert post 320 is connected and positioned on the battery pack body 210 through the fastener 324, and the fastener 324 is a bolt.

[0056] 5 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. As shown with reference to FIG. 5, in some embodiments, a plurality of insert posts 320 are connected and arranged to form a plurality of fastening sets 510. The plurality of insert posts 320 are integrally molded and installed. The plurality of fastening sets 510 are connected and arranged. A plurality of connecting pieces 520 are arranged on the fastening sets 510, and the plurality of fastening sets 510 are connected via the connecting pieces 520.

[0057] 5, in this embodiment, two insert posts 320 are connected to each other to form one fixing set 510. This fixing set 510 may be disposed in two adjacent first cavities 220. Between the two insert posts 320, a plurality of connecting structures 511 for connecting the tops of the two insert posts 320 and connecting structures 512, 513 for connecting the outer abutment layers 322 of the two insert posts 320 at different heights are provided. The provision of the fixing set 510 can further enhance the stability of the insert posts 320, thereby providing better support and fixation to the battery module.

[0058] 5, the connecting piece 520 has a long, rectangular sheet structure, and in the case of a fixing set 510 having two insert posts 320, the two connecting pieces 520 are used to connect the tips of the insert posts 320. As shown in FIG. 5, the connecting piece 520 has several connecting holes 521 formed therein that correspond to the inner cavities 321 at the tops of the insert posts 320. When mounted, the connecting pieces 520 abut against the tops of all the corresponding fixing sets 510, and each connecting hole 521 is aligned with the inner cavities 321 at the tops of the corresponding insert posts 320. The fasteners 324 pass through the connecting holes 521 and the inner cavities 321, thereby fixing the connecting pieces 520 and the fixing sets 510 together to the battery pack body 210.

[0059] Fig. 6 is a schematic diagram of a partial structure of a battery module according to one embodiment of the present invention. As shown in Fig. 6, a limit post 610 is provided on the inner wall of the battery pack body 210, and the limit post 610 abuts against the battery core 110 and the inner wall of the battery pack body 210. As shown in Fig. 2, a second cavity 230 is formed between the battery core 110 and the inner wall of the battery pack body 210, and the limit post 610 shown in Fig. 6 is adapted to fit into the second cavity 230. In addition, an escape space can be added to the battery pack body, or sufficient space can be secured for adding fixing points to the battery pack body and the battery core.

[0060] 1 to 6, when fixing the rectangular shell battery cores, the rectangular shell battery cores are placed inside the battery pack body, insert posts are positioned between the rectangular shell battery cores and abut against the rectangular shell battery cores, structural adhesive is applied to the outside of the insert posts, the insert posts are fixed to the bottom inner wall of the battery pack via fasteners, and are connected to the surrounding rectangular shell battery cores via the structural adhesive, and the insert posts are connected via connecting pieces. By setting up in this way, it is possible to achieve fixation while improving the volume utilization rate of the battery pack.

[0061] In the present invention, gaps are provided between the battery cores by large rounded corners, and parts are placed between the gaps in the battery cores and used to fix the battery cores in the height direction, allowing multiple fixing assemblies to be interconnected and combined, further increasing the volume utilization rate of the battery pack.

[0062] 7 is a schematic diagram of the structure of a battery core in a battery module according to one embodiment of the present invention. Referring to FIG. 7, the internally wound structure of the battery core 110 is highlighted. The battery core 110 includes a case 710 in which a wound internal battery core 720 is disposed.

[0063] In the embodiment shown in FIGS. 1-7, the battery core 110 is sometimes referred to as a square-shell battery core, and the rounded corner structure is sometimes referred to as rounded corners.

[0064] Embodiment 2 8 is a schematic diagram of an explosion structure of a battery module according to one embodiment of the present invention. As shown in FIG. 8, a battery module 800 includes a battery core set 810, a fixed bottom plate 820, and a connection assembly 830. In this embodiment, the battery core set 810 includes two battery core sets 811 and 812, and each battery core set includes a plurality of closely arranged battery cores 813. The battery cores 813 in FIG. 8 may be the same as or different from the battery cores 110 in FIGS. 1 to 7.

[0065] 9 is a schematic exploded view of a battery module according to one embodiment of the present invention, in which a spacer plate 910 is included in the battery core set 810. As shown in FIG.

[0066] Fig. 10 is a structural schematic diagram of a spacer plate in a battery module according to one embodiment of the present invention. Fig. 11 is a structural schematic diagram of an insert post in a battery module according to one embodiment of the present invention. As shown with reference to Fig. 10, a spacer plate 910 includes at least two barrier sheets 911, and an insert post is disposed between two adjacent barrier sheets 911. As shown in Fig. 11, the insert post includes a main body 921 and an outer abutment layer 922 disposed on the outer wall of the main body 921. Furthermore, an inner cavity 923 is provided penetrating the interior of the main body 921, and a fastener is inserted into the inner cavity 923 and used to fasten the insert post and the spacer plate 910.

[0067] In some embodiments, the diameter of the body 921 is equal to or greater than the thickness of the barrier sheet 911. The thickness of the barrier sheet 911 can be referred to as the thickness of the spacer plate 910.

[0068] In some embodiments, the body 921 comprises a hollow rectangular, cylindrical, or prismatic structure.

[0069] In some embodiments, the body 921 is fabricated using a metallic material.

[0070] In some embodiments, the metallic material comprises any one or a combination of at least two of copper, zinc, aluminum or iron, and alloys thereof.

[0071] In some embodiments, the barrier sheet 911 is manufactured using a metal and / or plastic material.

[0072] In some embodiments, the outer abutment layer 922 comprises any one or a combination of at least two of aerogel felt, insulating foam cotton board, or PP material.

[0073] It should be noted that the barrier sheet of the separator provided by the present invention can be selected from metal and / or plastic materials. When the barrier sheet and the main body are made of the same metal material, a person skilled in the art can press the metal materials together according to the actual situation to obtain an integrally molded separator, and an insulating layer must be provided on both the main body and the outer wall of the barrier sheet.

[0074] Furthermore, a support platform 924 for receiving the head of a fastener is provided on the top of the main body 921. The diameter of the support platform 924 is equal to or greater than the diameter of the main body 921. The width of the support platform 924 is greater than the diameter of the main body 921. As shown in Figure 10, the support platform 924 is annular, with a circular hole therein that exposes the inner cavity 923.

[0075] The thickness of the support platform is preferably 0.5 mm or greater.

[0076] The body 921 of the present invention has an inner cavity 923, which allows a connecting or fixing member to extend into the inner cavity 923 for connecting or fixing the spacer plate 910. The hollow structure reduces the overall weight of the spacer plate 910, and a support platform 924 at one end of the body 921 can accommodate the head of a fastener, increasing the strength of the separator.

[0077] In one specific embodiment, the present invention provides a battery module 800 including a battery core set 810 including at least two side-by-side battery core sets 811, 812, and a spacer plate 910 provided in one specific embodiment and disposed between two adjacent battery core sets 811, 812. Each battery core set includes a plurality of closely-spaced single battery cores 813.

[0078] The battery module according to the present invention is compact, small, and lightweight, and has a high grouping success rate, a high integration degree, and improved packaging efficiency.

[0079] 9, end plates 930 are provided on both sides of the battery core set 810. In this embodiment, a total of two end plates 930 are included, one disposed at each end of the battery core set 810.

[0080] In some embodiments, the spacer plates 910 are positioned perpendicular or parallel to the end plates 930. In the embodiment shown in FIG.

[0081] As shown with reference to FIG. 9, in some embodiments, the battery core 813 of the battery core set 810 includes a housing 814 with an inner battery core (not shown) wound therein.

[0082] In some embodiments, the height of the barrier sheet 11 of the spacer plate 910 is equal to or greater than the height of the case 814 .

[0083] Furthermore, the battery module 800 further includes a fixed bottom plate 820, the surface of which is removably fixed the battery core set 810. As shown in FIG. 8 , the fixed bottom plate 820 includes a bottom plate 821, and the surface of the fixed bottom plate 820 represents the bottom plate 821.

[0084] In some embodiments, the outer edge of the fixed bottom plate 820 is bent toward the battery core set 810 to form an accommodating cavity, and the battery core set 810 is positioned within the accommodating cavity. Fixing holes 823 for fixing the battery core set 810 are formed on the surface of the fixed bottom plate 820. As shown in Fig. 8, the outer edge of the fixed bottom plate 820 is bent toward the battery core set 810 to form two standing plates 822, which together with the bottom plate 821 form an accommodating cavity.

[0085] It should be noted that the present invention does not include a specific definition or special requirements for the specific structure of the fixed bottom plate. For example, the fixed bottom plate can include a bottom plate for supporting a battery core module, with standing plates provided on both sides of the bottom plate, and end plates of the battery core module disposed adjacent to the standing plates. As shown in Fig. 8, limit posts 824 for fixing the end plates may be disposed on the bottom plate. In the present invention, fasteners are inserted sequentially into the hollow cavities and fixing holes to fix the fixed bottom plate and the battery core module. This increases the number of fixing points inside the battery module and improves the mechanical strength of the battery module, while not affecting the current volume utilization rate, and ensures a high grouping success rate while maintaining the battery core module's replaceable function within the battery module.

[0086] As shown with reference to Fig. 8, the battery module 800 further includes a connection assembly 830 disposed on the side of the battery core set 810 away from the fixed bottom plate 820 for enabling series-parallel connection of the battery cores 813. As shown in Fig. 8, the fixed bottom plate 820 is located on the underside of the battery core set 810, and the connection assembly 830 is located on the upper side of the battery core set 810. In the compact configuration after assembly, the underside of the battery core set 810 abuts against the bottom plate 821, and the upper side of the battery core set 810 abuts against the underside of the connection assembly 830.

[0087] It should be noted that the present invention does not have any specific limitations or special requirements regarding the structural features and connection methods of the connection assembly. For example, connection assembly 830 includes a connection plate 831 and a sampling unit 832. As shown in FIG. 8 , connection plate 831 is connected to the battery core module by bolts, welding, or buckles. Sampling unit 832 electrically connects the battery core. Those skilled in the art can select a connection assembly according to the actual situation or the desired structure of the battery module. Therefore, other types of connection assemblies disclosed in the prior art or not disclosed in the new art can also be applied to the present invention.

[0088] The connecting plate 831 shown in FIG. 8 functions similarly to the connecting piece 520 shown in FIG. 5, but has a different structure.

[0089] In another specific embodiment, the present invention provides a battery pack including the battery module provided in the specific embodiment, wherein the battery pack further includes a housing disposed on an outer wall of the battery module, and fasteners of the battery module 800 are connected to the housing through fastening holes in the fixed bottom plate 820, thereby realizing detachable fastening of the battery module 800 to the housing.

[0090] In the embodiment shown in Figures 8 to 13, the box body of the battery pack corresponds to the battery pack main body 210 in the embodiment shown in Figures 1 to 7, and its role is the same, but the structure may be different.

[0091] It should be noted that the present invention does not impose any specific limitations or special requirements on the structure of the box. Those skilled in the art can select a structure according to specific circumstances. For example, a rectangular parallelepiped structure can be adopted. Since the battery modules in the battery pack of the present invention are fixed without relying on adhesives, there is no need to specifically limit the size of the contact surface between the box and the battery modules. Therefore, those skilled in the art can improve the characteristics of the box according to actual circumstances, which can facilitate forming by sheet metal press, thereby reducing the manufacturing cost of the box.

[0092] In another specific embodiment, the present invention provides an electric vehicle employing a battery pack provided in one specific embodiment.

[0093] It should be noted that the present invention provides a fastener for assembling a battery module. Those skilled in the art will understand that, while conventional battery module assembly generally involves adhesive bonding, resulting in low strength of the battery module, the battery module can be assembled by inserting a fastener into the hollow chamber of the separator of the present invention without relying on adhesive bonding, which is advantageous in improving the structural strength of the battery module and the success rate of grouping the battery module.

[0094] The second embodiment specifically includes the first to third embodiments, and the technical solution of the present invention will be further described below through the specific embodiments in conjunction with the accompanying drawings.

[0095] Example 1 FIG. 12 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention.

[0096] In this embodiment, a battery pack is provided that includes a battery module and a box that is fitted to the outer wall of the battery module. The battery module includes a fixed bottom plate 820, a battery core set 810, and a connection assembly 830. The battery core set 810 is located within the fixed bottom plate 820, and the connection assembly 830 is located on the side of the battery core set 810 that is away from the fixed bottom plate 820.

[0097] 9, 10, and 12, an end plate 930 is provided on each side of a battery core set 810. The battery core set 810 includes two battery core groups 811, 812, each of which has 17 battery cores 813 arranged side by side. A spacer plate 910 is disposed between each of the battery core sets 811, 812, perpendicular to the end plate 930. The spacer plate 910 includes 17 barrier sheets 911, and an insert post is disposed between two adjacent barrier sheets 911, including a main body 921 and an outer abutment layer 922 attached to the outer wall of the main body 921. The insert post is made of an aluminum alloy, the barrier sheets 911 are made of plastic, and the outer abutment layer 922 is made of insulating foam cotton.

[0098] The body 921 has a through-hole inner cavity 923 formed therein, and a support platform 924 at one end thereof. The body 921 has a hollow cylindrical structure, and the diameter of the body 921 is greater than the thickness of the barrier sheet 11. The support platform 924 has a disk structure with a through hole on its surface, and the radius of the support platform 924 is greater than the radius of the cross section of the body 921. The battery core 813 includes an aluminum shell and a wound inner battery core disposed within the aluminum shell. The surface of the aluminum shell close to the body 921 is an arcuate surface. The barrier sheet 11 of the spacer plate 910 is in close contact with the outer wall of the case, and the support platform 924 is located above the aluminum shell.

[0099] The fixed bottom plate 820 has a bottom plate 821 with standing plates 822 installed upright on both sides, and one end of the body 921 of the spacer plate 910 away from the support platform 924 is located adjacent to the bottom plate 821. A row of fixing holes 823 is formed on the surface of the bottom plate 821, and the spacer plate 910 further includes 16 fasteners that are inserted into the inner cavities 923 of the spacer plate 910 and pass through the fixing holes 823 to connect the battery core set 810 and the fixed bottom plate 820. The bottom plate 820 supports the battery core set 810, and the standing plates 822 are in close contact with both sides of the battery core set 810.

[0100] Example 2 FIG. 13 is a schematic diagram of a partial structure of a battery module according to an embodiment of the present invention.

[0101] In the embodiment, a battery pack is provided that includes a battery module and a box that is fitted to the outer wall of the battery module. The battery module includes a fixed bottom plate 820, a battery core set 840, and a connection assembly 830. The battery core set 840 is located within the fixed bottom plate 820, and the connection assembly 830 is located on the side of the battery core set 840 that is away from the fixed bottom plate 820.

[0102] As shown in Figures 9, 10, and 13, the battery module includes a battery core set 840. End plates 930 are provided on both sides of the battery core set 840. The battery core set 840 includes 11 battery core sets 841 arranged side by side. Each battery core set 841 includes three battery cores 813 connected in series, and a total of 10 spacer plates 910 are arranged parallel to the end plates 930 between two adjacent battery core sets 841. Each spacer plate 910 includes three barrier sheets 911, and an insert post including a main body 921 and an outer abutment layer 922 provided on the outer wall of the main body 921 is arranged between two adjacent barrier sheets 911. Here, the insert post is made of an iron alloy, the barrier sheet 911 is made of plastic, and the outer abutment layer 922 is made of aerogel felt.

[0103] The body 921 has a through-hole inner cavity 923 formed therein, and a support platform 924 at one end thereof. The body 921 has a hollow cylindrical structure, and the diameter of the body 921 is greater than the thickness of the barrier sheet 11. The support platform 924 has a disk structure with a through hole on its surface, and the radius of the support platform 924 is greater than the radius of the body 921. The battery core 813 includes a case and a wound internal battery core disposed within the steel case. The surface of the spacer plate 910 of the steel case that is adjacent to the body 921 is an arcuate surface. The barrier sheet 911 of the spacer plate 910 is in close contact with the outer wall of the steel case, and the support platform 924 is located above the steel case.

[0104] The fixed bottom plate 820 has a bottom plate 821 with standing plates 822 installed upright on both sides, and one end of the body 921 of the spacer plate 910 away from the support platform 924 is located close to the bottom plate 821. The surface of the bottom plate 821 is provided with ten rows of fixing holes 823, and the spacer plate 910 further includes twenty fasteners that are inserted into the inner cavities 923 of the spacer plate 910 and pass through the fixing holes to connect the battery core set 840 to the fixed bottom plate 820. The bottom plate 821 supports the battery core set 840, and the standing plates 822 are in close contact with both sides of the battery core set 840.

[0105] Example 3 The difference between Example 3 and Example 2 is that the insert post is made of stainless steel, the barrier sheet 911 is made of plastic, and the outer abutment layer 922 is made of PP. Other parts of Example 3 are the same as those of Example 2, and the description of Example 2 can be referred to.

[0106] The battery module provided by the present invention has a higher grouping success rate and a high degree of integration. While not affecting the current volume utilization rate, the placement of the spacer plates 910 increases the number of fixing points within the battery module, strengthens the mechanical connection strength of the battery module, and increases the volume of the battery module, while enabling the battery module to be fixed without relying on adhesive connections. This solves the maintenance problems within current highly integrated battery packs, improves the safety of the battery module, and provides the characteristics of high structural strength, integrity, and stability.

[0107] The battery pack provided by the present invention increases the number of fixing points in the battery module without affecting the current volume utilization rate, and by connecting to the box at multiple points, the mechanical connection strength between the battery module and the box is increased, and the volume of the battery module is increased while connecting to the box without relying on adhesives, thereby solving the maintenance problems in current highly integrated battery packs.

[0108] In the embodiment shown in Figures 8 to 13, the spacer plate 910 is also called a separator, the inner cavity 923 is also called a hollow cavity, the outer abutment layer 922 is also called an insulating layer, the insert post is also called a pressure-receiving member, and each battery core set 811, 812 is also called a battery core module.

[0109] Embodiment 3 The structure of the battery module and its battery pack is shown in Fig. 14, the structure of the battery module is shown in Fig. 15, and the explosion diagram of the battery module is shown in Fig. 16, which includes a battery core set 1410, an end plate 1420, and a spacer plate 1430. The battery core set 1410 includes a plurality of battery cores 1411 with charging and discharging functions, and the plurality of battery cores 1411 are arranged as the battery core set 1410.

[0110] As shown in Fig. 1 and Fig. 7, a schematic structural diagram of a battery core 1411 is shown. Referring to Fig. 7, the battery core 1411 includes a case 710 and an inner winding core 720. The inner winding core 720 is disposed within the case 710 in a wound structure. The case 710 is disposed in a rounded corner structure. The battery cores 1411 are disposed in contact with each other via the case 710 with rounded corners.

[0111] FIG. 17 is a structural schematic diagram of a spacer plate in a battery module according to one embodiment of the present invention. As shown in FIG. 17, insert posts 1710 are disposed in the gaps formed by the contact of the rounded corner structures of adjacent boxes 710, maintaining a certain internal space for arranging a fixing assembly. In this embodiment, the battery cores 1411 are square-shell battery cores. A longitudinally shaped cable tie 1510 is provided on the outside of the battery core set 1410, and the cable tie 1510 is disposed around the battery core set 1410 and the end plate 1420.

[0112] As shown in FIG. 15, a first direction D1 and a second direction D2 perpendicular to each other are shown, the battery core 1411 has a width extending in the first direction D1, multiple battery cores 1411 are arranged in the first direction D1 to form a battery core set 1410, and the spacer plate 1430 extends in the first direction D1.

[0113] Figure 17 is a schematic structural diagram of a spacer plate 1430, in which the spacer plate 1430 is provided between adjacent battery core sets 1410, and the spacer plate 1430 has multiple insert posts 1710 arranged at equal intervals, with the distance between adjacent insert posts 1710 corresponding to the width of the battery cores 1411, and the battery cores 1411 being fixedly arranged between the insert posts 1710.

[0114] As shown in Figures 17 and 18, a flanging plate 1720 and a deformation region 1730 are provided on the spacer plate 1430. The flanging plate 1720 and the insert post 1710 are arranged perpendicular to each other. The flanging plate 1720 protrudes from the spacer plate 1430 and abuts against the upper end surface of the battery core set 1410. The deformation region 1730 is provided at the end of the spacer plate 1430. The flanging plate 1720 has mounting holes 1721, and the insert post 1710 has through holes that correspond to the mounting holes 1721.

[0115] 18 is a structural schematic diagram of the end plate 1420. FIG. 21 is a partially enlarged view of FIG.

[0116] As shown in Fig. 16, end plates 1420 are provided on both ends of the battery core set 1410, and the end plates 1420 are provided so as to be locked in one direction with the spacer plates 1430 by an interlock mechanism. As shown in Fig. 18, the end plates 1420 are provided with limiting grooves 1421, and on the limiting groove 1421 side, there are openings 1422 corresponding to the spacer plates 1430, and the deformation regions 1730 on the spacer plates 1430 are fixed to the limiting grooves 1421 via the openings 1422, thereby forming an interlock mechanism.

[0117] As shown in FIG. 21, a limiting block 1423 and a limiting groove 1424 are provided within the limiting groove 1421, and the limiting block 1423 and the limiting groove 1424 are provided corresponding to each other on both sides of the limiting groove 1421, and the limiting block 1423 and the limiting groove 1424 are provided in the limiting groove 1421 at a vertical interval.

[0118] FIG. 19 shows a schematic diagram of the structure of the deformation region 1730, and FIG. 20 shows a plan view of the deformation region 1730. As shown in FIG. 19, the deformation region 1730 includes a groove 1731 and an elastic piece 1732. The grooves 1731 are arranged at equal intervals along the longitudinal direction at the end of the end plate 1420, and a first groove wall is provided on the inside of one end of the groove 1731 that is closest to the end plate 1420. One end of the elastic piece 1732 is fixed to the first groove wall, and the other end protrudes from the plate body of the spacer plate 1430. The deformation region 1730 is fixed to the end plate 1420 by the yield hole 1422 compressing the elastic piece 1732 and moving it into the limiting groove 1421, and the elastic piece 1732 springing back into the limiting groove 1424 and self-locking.

[0119] As shown in FIG. 14 , the present invention further provides a battery pack. The battery modules employed include a box 1440 with support beams 1442 disposed therein between adjacent battery modules. The battery modules are fixedly disposed within the box 1440 by fasteners 1441. The fasteners 1441 are provided so as to penetrate the insert posts 1710 via mounting holes 1721. In this embodiment, bolts are used as the fasteners 1441.

[0120] Comparing the embodiment shown in FIG. 14 with the embodiment shown in FIG. 2, the box 1440 corresponds to the battery pack main body 210.

[0121] In the embodiment shown in FIGS. 14 to 21, the insert post 1710 is also called a positioning post, the limiting block 1423 is also called a Y-direction limiting block, and the limiting groove 1424 is also called an X-direction limiting groove.

[0122] In the process of installing the battery modules and battery packs in the third embodiment, each battery core 1411 of one battery core set 1410 is positioned between the corresponding insert posts 1710 on the spacer plate 1430, and then the battery cores 1411 are attached to the spacer plate 1430 using adhesive, tape, or other methods. After the battery core set 1410 on one side of the spacer plate 1430 is placed, the battery core set 1410 on the other side of the spacer plate 1430 is fixed in the same manner. End plates 1420 are placed on both ends of the battery core set 1410, and the end plates 1420 and the spacer plates 1430 are fixed to each other as shown by the arrows in FIG. 18 , with the yield holes 1422 first compressing and deforming the elastic pieces 1732 of the deformation region 1730. After the deformation region 1730 passes through the yield hole 1422, the elastic piece 1732 in the groove 1731 springs back and engages with the limiting groove 1424, completing the X-direction self-locking between the end plate 1420 and the intermediate spacer plate 1430. After the entire battery module is assembled, it is shaped in the longitudinal direction using cable ties 1510. After shaping is complete, bolts are fixed into the box 1440 through the mounting holes 1721 and insert posts 1710. Support beams 1442 are provided around each battery module and connected to the outer frame of the box 1440, ensuring the rigidity of the connection between the battery pack and the entire vehicle.

[0123] Although the basic concepts have been described above, it is clear that the above disclosure is merely illustrative for those skilled in the art and is not intended to limit the present invention. Although not expressly stated herein, various modifications, improvements, and alterations may be made to the present invention by those skilled in the art. Such modifications, improvements, and alterations are proposed in the present invention and therefore fall within the spirit and scope of the exemplary embodiments of the present invention. [Explanation of symbols]

[0124] 11 Barrier sheet 110 Battery Core 120 rounded corner structure 210 Battery pack body 220 First Cavity 230 Second Cavity 310 Fixing Assembly 320 Insert Post 321 Inner cavity 322 Outer contact layer 323 Concave 324 Fixtures 510 Fixed Set 511 Connection structure 512 Connection structure 513 Connection structure 520 Connecting piece 521 Connection hole 610 Limit Post 710 Box body 720 Inner core 800 battery modules 810 Battery Core Set 811 Battery Core Set 812 Battery Core Set 813 Single Battery Core 814 Box body 820 Fixed bottom plate 821 Bottom plate 822 Standing board 823 Fixed hole 824 Limit Post 830 Connection Assembly 831 Connection plate 832 Sampling Unit 840 Battery Core Set 841 Battery Core Set 910 Spacer Plate 911 Barrier Sheet 921 Main Unit 922 Outer contact layer 923 inner cavity 924 Support Platform 930 End Plate 1410 Battery Core Set 1411 Battery Core 1420 End Plate 1421 Restriction groove 1422 holes 1423 Restricted Block 1424 Restriction groove 1430 spacer plate 1440 Box body 1441 Fasteners 1442 Support beam 1510 Cable ties 1710 Insert Post 1720 Flanging Plate 1721 Mounting hole 1730 Deformation Area 1731 Groove 1732 Elastic piece

Claims

1. A battery module including a plurality of battery cores, a fixing assembly including a plurality of insert posts sandwiched between a plurality of the battery cores, the insert posts having a body, the body having an internal cavity, the internal cavity extending through the body; the battery module further includes a fastener inserted into the inner cavity and configured to fasten the insert post; a support platform is provided on the top of the body for receiving the head of the fastener; The battery module, wherein the width of the support platform is greater than the diameter of the body.

2. The edge of the battery core is provided with a rounded corner structure, and the insert post abuts against the rounded corner structure. The battery module according to claim 1 .

3. the body includes an outer abutment layer; the inner cavity is disposed within the outer abutment layer; The outer contact layer is in contact with the battery core. The battery module according to claim 2 .

4. The outer contact layer is an insulating layer. The battery module according to claim 3 .

5. A plurality of the insert posts are connected to form a fixed set. The battery module according to claim 2 .

6. A plurality of the fixing sets are arranged in a linked manner. The battery module according to claim 5 .

7. The fixing set is provided with a plurality of connecting pieces, A plurality of the fixing sets are connected via the connecting pieces. The battery module according to claim 6 .

8. A battery core set and a spacer plate are provided. Each of the battery core sets includes a plurality of battery cores having a width extending in a first direction, and the plurality of battery cores are arranged in the first direction to form the battery core set; the spacer plates are disposed between adjacent battery core sets; the spacer plate extends in the first direction; the plurality of insert posts are equally spaced on the spacer plate; the distance between adjacent insert posts corresponds to the width of the battery core; The battery core is fixedly disposed between adjacent insert posts. The battery module according to claim 1 .

9. the spacer plate comprises a flanging plate and a deformation region; the flanging plate is disposed perpendicular to the insert post; The flanging plate is disposed so as to protrude from the spacer plate, The flanging plate has a mounting hole disposed corresponding to the inner cavity, The deformation region is provided at an end of the spacer plate. The battery module according to claim 8 .

10. Further comprising an end plate; the end plates are provided at both ends of the battery core set, The end plates are locked in one direction to the spacer plates by an interlocking mechanism. The battery module according to claim 9 .

11. The spacer plates are perpendicular or parallel to the end plates. The battery module according to claim 10.

12. The end plate is provided with a limiting groove, A give-way hole is provided on one side of the limiting groove, The deformation region is fixed to the limiting groove through the yield hole, thereby forming the interlock mechanism. The battery module according to claim 10.

13. The limiting groove is provided with a limiting block and a limiting groove; The limiting block and the limiting groove are provided on both sides of the limiting groove, corresponding to each other; The limiting block and the limiting groove are spaced apart in a second direction, which is the upright direction of the end plate. The battery module according to claim 12.

14. The deformation region includes a groove and an elastic piece, the grooves are arranged at equal intervals along the second direction on the edge of the spacer plate; a first groove wall is provided on the inside of one end of the groove that is close to the end plate; The elastic piece has one end fixed to the first groove wall and the other end protruding from the plate body of the spacer plate. The battery module according to claim 13.

15. The deformation region is moved into the limiting groove by the yield hole compressing the elastic piece, The elastic piece springs back into the limiting groove and self-locks, thereby being fixed to the end plate. The battery module according to claim 14.

16. The battery core includes a case and an inner winding core, The inner winding core is disposed within the case and is arranged in a wound structure, The case includes a rounded corner structure. The battery module according to claim 8 .

17. The cases of adjacent battery cores are in contact with each other via the rounded corner structures, and the insert post is disposed in a gap formed by the contact of the rounded corner structures of the adjacent cases. The battery module according to claim 16.

18. The spacer plate is in close contact with the outer wall of the case, and the height of the spacer plate in the upright direction is equal to or greater than the height of the case. The battery module according to claim 16.

19. A binding band is provided around the outer periphery of the battery core set, The cable tie surrounds the battery core set and the end plate and is shaped to fit the battery core set along the first direction. The battery module according to claim 10.

20. The battery core comprises a square shell battery core. The battery module according to claim 1 .

21. The battery core set further includes a fixed bottom plate removably fixed to a surface thereof; The outer edge of the fixed bottom plate is bent in a direction approaching the battery core set to form an accommodating cavity, and the battery core set is positioned within the accommodating cavity; The fixing base plate has a fixing hole formed on its surface, and the fastener passes through the fixing hole to fix the battery module. The battery module according to claim 8 .

22. a connection assembly; The connection assembly is disposed on the side of the battery core set away from the fixed bottom plate, and is for realizing series-parallel connection between the plurality of battery cores. The battery module according to claim 21.

23. A battery pack including the battery module according to claim 1, a battery pack body in which the plurality of battery cores are arranged; Battery pack.

24. A limit post is provided on the inner wall of the battery pack body, 24. The battery pack according to claim 23, wherein the limit post abuts against the battery core and an inner wall of the battery pack body.

25. The battery pack according to any one of claims 23 to 24 is provided. Electric car.

Citation Information

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