Battery pack
The battery pack design with a guide member and partition wall addresses the issue of short circuits by ensuring adequate insulation between wiring and housing, thereby improving safety and reliability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2026-04-01
AI Technical Summary
In battery packs, there is a risk of short circuits occurring between the wiring and the housing due to insufficient insulation, which can lead to electrical failures and safety hazards.
The battery pack incorporates a guide member with a partition wall that separates the wiring and housing, ensuring a significant overlap in the orthogonal direction to prevent short circuits, and optionally using insulating or conductive side walls to further enhance insulation.
This configuration effectively suppresses short circuits between the wiring and housing, enhancing safety and reducing the risk of electrical failures while potentially reducing component count.
Smart Images

Figure 2026056018000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a battery pack.
Background Art
[0002] In recent years, various battery packs have been developed. A battery pack includes a battery module and a housing that houses the battery module.
[0003] Patent Document 1 describes a battery wiring module. The battery wiring module includes a terminal electrically connected to a bus bar that connects terminals of a plurality of battery cells, a housing portion that houses the terminal, a hole portion provided in the housing portion, and a cover portion that closes the hole portion and has insulating properties.
[0004] Patent Document 2 describes a battery storage rack. The battery storage rack includes two insulating sleeves through which two conductors penetrate, and an insulating spacer located between the two insulating sleeves.
Prior Art Documents
Patent Documents
[0005]
Patent Document 1
Patent Document 2
Summary of the Invention
Problems to be Solved by the Invention
[0006] In a battery pack, a battery module and wiring may be housed in a housing. When the battery module and wiring are housed in the housing, it may be necessary to suppress a short circuit between the wiring and the housing.
[0007] An example of the object of the present invention is to suppress a short circuit between the wiring and the housing. Other objects of the present invention will become apparent from the description herein. [Means for solving the problem]
[0008] One aspect of the present invention is as follows: 1. Battery module and, Wiring and, A housing that accommodates the battery module and the wiring, A partition wall that separates the wiring and the housing at least partially from each other, A battery pack equipped with the following features. 2. Further comprising a guide member for guiding the aforementioned wiring, The battery pack according to 1, wherein the guide member has at least a portion of the partition wall. 3. The partition wall is at least partially located between the wiring and the housing in a first orthogonal direction perpendicular to the longitudinal direction of the wiring, from the wiring toward the housing. The battery pack according to 1. or 2., wherein, in the projection of the wiring and the partition wall onto a plane perpendicular to the first orthogonal direction, the dimensions of the overlapping portion of the wiring and the partition wall in the longitudinal direction and the second orthogonal direction perpendicular to the first orthogonal direction are 50% or more of the dimensions of the wiring in the second orthogonal direction. [Effects of the Invention]
[0009] According to the above embodiment of the present invention, short circuits of wiring and housing can be suppressed. [Brief explanation of the drawing]
[0010] [Figure 1] This is a perspective view of the battery pack according to the embodiment. [Figure 2] This is an enlarged view of a portion of the first battery module and its surroundings according to an embodiment in which the upper plate has been removed. [Figure 3] This is a cross-sectional view along line AA in Figure 1. [Modes for carrying out the invention]
[0011] Embodiments of the present invention will be described below with reference to the drawings. In all drawings, similar components are denoted by the same reference numerals, and their descriptions are omitted where appropriate.
[0012] Figure 1 is a perspective view of the battery pack 10 according to the embodiment. Figure 2 is an enlarged view of a portion of the first battery module 100a and its surroundings according to the embodiment, with the upper plate 530 removed. Figure 3 is a cross-sectional view along line AA in Figure 1.
[0013] Each figure shows the X, Y, and Z directions for explanatory purposes. In Figure 3, the white circle with an X indicating the X direction indicates that the tip of the arrow pointing in the X direction is facing away from the viewer. The X direction indicates the front-to-back direction of the battery pack. The Y direction is perpendicular to the X direction. The Y direction indicates the left-to-right direction of the battery pack. The Z direction is perpendicular to both the X and Y directions. The Z direction indicates the up-to-down direction of the battery pack. The arrows pointing to the X direction, the Y direction, and the Z direction indicate the rear, right, and up directions of the battery pack, respectively.
[0014] Hereafter, where necessary, the side indicated by the arrow showing the X direction will be referred to as the +X side, and the opposite side of the side indicated by the arrow showing the X direction will be referred to as the -X side. Hereafter, where necessary, the side indicated by the arrow showing the Y direction will be referred to as the +Y side, and the opposite side of the side indicated by the arrow showing the Y direction will be referred to as the -Y side. Hereafter, where necessary, the side indicated by the arrow showing the Z direction will be referred to as the +Z side, and the opposite side of the side indicated by the arrow showing the Z direction will be referred to as the -Z side.
[0015] The battery pack 10 according to this embodiment is mounted in a vehicle such as an automobile. For example, the battery pack 10 is mounted between the front and rear wheels of the vehicle. The position in which the battery pack 10 is mounted in the vehicle is not limited to between the front and rear wheels. The battery pack 10 is not limited to use in vehicles. The battery pack 10 may also be used for purposes other than those in vehicles.
[0016] As shown in FIGS. 1 to 3, the battery pack 10 according to the embodiment includes a plurality of battery modules 100, a wiring 200, a guide member 300, a plurality of clips 400, and a housing 500. In FIG. 1, for the sake of explanation, the outer outlines of the plurality of battery modules 100 housed in the internal space of the wiring 200 are schematically illustrated by broken lines.
[0017] In the example shown in FIG. 1, the battery pack 10 includes a battery module 100 housed in the internal space at the rear part on the +X side of the housing 500 and another battery module 100 housed in the internal space at the front part on the -X side of the housing 500. Each battery module 100 has a plurality of battery cells stacked in a predetermined direction such as the Y direction. The plurality of battery cells of each battery module 100 are electrically connected to each other in series, in parallel, or in a combination of series and parallel. The number and arrangement of the battery modules 100 included in the battery pack 10 are not limited to the example shown in FIG. 1. Hereinafter, unless otherwise specified, the first battery module 100a refers to the battery module 100 housed in the internal space at the rear part on the +X side of the wiring 200, and the second battery module 100b refers to the battery module 100 housed in the internal space at the front part on the -X side of the wiring 200.
[0018] As shown in FIG. 3, the housing 500 houses a plurality of battery modules 100, a wiring 200, a guide member 300, and a plurality of clips 400. As shown in FIGS. 1 to 3, the housing 500 has a lower plate 510, side frames 520, an upper plate 530, and a support frame 540. The lower plate 510, the side frames 520, and the upper plate 530 are made of a conductor such as metal. The lower plate 510 and the side frames 520 may be collectively referred to as a lower case. The upper plate 530 may be referred to as an upper case.
[0019] The lower plate 510 is disposed substantially perpendicular to the Z direction. The plurality of battery modules 100 are located on the +Z side with respect to the surface of the lower plate 510 on the +Z side. As shown in FIG. 1, the lower plate 510 has a substantially rectangular shape having a pair of long sides substantially parallel to the X direction and a pair of short sides substantially parallel to the Y direction. The shape of the lower plate 510 is not limited to the example shown in FIG. 1.
[0020] The side frame 520 extends from the entire circumference of the surface of the lower plate 510 on the +Z side toward the +Z side. When viewed from the Z direction, the side frame 520 surrounds the region where the plurality of battery modules 100 are located.
[0021] The upper plate 530 is located on the +Z side with respect to the plurality of battery modules 100 and the side frame 520. When viewed from the Z direction, the lower plate 510 and the upper plate 530 have substantially the same shape. The side frame 520 and the portion of the upper plate 530 that overlaps the side frame 520 in the Z direction are fastened to each other by a fastening member such as a bolt (not shown). In a state where the side frame 520 and the portion of the upper plate 530 that overlaps the side frame 520 in the Z direction are fastened to each other, the lower plate 510, the side frame 520, and the upper plate 530 form an internal space for accommodating the plurality of battery modules 100, the wiring 200, the guide member 300, and the plurality of clips 400.
[0022] As shown in FIG. 1, the upper plate 530 has a first raised portion 532 and a second raised portion 534. The first raised portion 532 and the second raised portion 534 protrude upward on the +X side with respect to the lower plate 510 and the side frame 520. The first raised portion 532 covers the first battery module 100a, and the second raised portion 534 covers the second battery module 100b.
[0023] As shown in Figures 1 and 3, the first raised portion 532 includes a first top portion 532a and a first side portion 532b. The first top portion 532a is located on the +Z side relative to the first battery module 100a and is positioned substantially perpendicular to the Z direction. The first side portion 532b extends from the entire circumference of the first top portion 532a around the Z direction toward the -Z side and is located around the Z direction of the +Z side portion of the first battery module 100a.
[0024] As shown in Figure 1, the second protrusion 534 includes a second top portion 534a and a second side portion 534b. The second top portion 534a is located on the +Z side relative to the second battery module 100b and is positioned substantially perpendicular to the Z direction. The second side portion 534b extends from the entire circumference of the second top portion 534a around the Z direction toward the -Z side and is located around the Z direction of the +Z side portion of the second battery module 100b.
[0025] The support frame 540 is positioned at least partially around each battery module 100 in the Z direction. In the example shown in Figures 2 and 3, the portion of the support frame 540 located on the -Y side with respect to the first battery module 100a is illustrated.
[0026] The battery pack 10 will be described with reference to Figures 2 and 3.
[0027] The wiring 200 is located at least partially around the Z direction of the first battery module 100a. In the example shown in Figure 2, the wiring 200 is routed from a region located on the +X side relative to the +X side of the first battery module 100a to a region located on the -Y side relative to the -Y side of the first battery module 100a.
[0028] The wiring 200 is used in conjunction with the battery module 100. The wiring 200 has multiple wires bundled together by a binding material such as a tube or tape. Examples of the wires constituting the wiring 200 include low-voltage wiring such as wiring that operates as a signal line and wiring that constitutes a circuit consisting of a vehicle power supply, and high-voltage wiring such as voltage detection lines that detect the voltage of each battery cell contained in the battery module 100 and signal lines for thermistors that detect the temperature of each battery cell contained in the battery module 100.
[0029] As shown in Figures 2 and 3, the guide member 300 is located on the -Y side with respect to the first battery module 100a. In the example shown in Figures 2 and 3, the guide member 300 guides the portion of the wiring 200 that is located on the -Y side with respect to the -Y side surface of the first battery module 100a in the X direction. As shown in Figures 2 and 3, the guide member 300 includes an extension 310 and a pair of support legs 320.
[0030] As shown in Figures 2 and 3, the extending body 310 includes a base plate 312 and side walls 314. The base plate 312 and side walls 314 extend in the X direction. The base plate 312 has a substantially plate shape that is substantially perpendicular to the Z direction. A pair of support legs 320 are provided at both ends of the base plate 312 in the X direction. The base plate 312 is supported by the pair of support legs 320 away from the +Z side upper surface of the support frame 540 toward the +Z side. In the example shown in Figure 2, each support leg 320 and the +Z side upper surface of the support frame 540 are fixed to each other by fasteners 322. The side walls 314 protrude toward the +Z side from the -Y side end of the base plate 312. As shown in Figure 3, when viewed from the X direction, the base plate 312 and side walls 314 have a substantially L shape. Therefore, the +Y side portion of the extending body 310 is open toward the +Y side. Therefore, compared to the case where a side wall corresponding to the side wall 314 is also provided on the +Y side portion of the extension body 310, it is possible to route the wiring 200 along the extension body 310. A side wall corresponding to the side wall 314 may also be provided on the +Y side portion of the extension body 310.
[0031] As shown in Figure 2, multiple clips 400 are attached to the wiring 200. As shown in Figure 3, each clip 400 includes a holder 410 and a through shaft 420. As shown in Figure 3, the holder 410 holds the wiring 200 by surrounding it around its longitudinal direction. In the example shown in Figure 3, the X direction corresponds to the longitudinal direction of the wiring 200. The through shaft 420 protrudes from the -Z end of the holder 410 toward the -Z side and is inserted into the base plate 312 in the Z direction. The extension 310 and the clips 400 are attached to each other with the through shaft 420 inserted into the base plate 312.
[0032] As shown in Figures 2 and 3, the wiring 200 and the extension 310 are mounted to each other with the holder 410 holding the wiring 200 and the insertion shaft 420 inserted into the bottom plate 312. As shown in Figures 2 and 3, with the wiring 200 and the extension 310 mounted to each other, the portion of the wiring 200 located on the -Y side relative to the -Y side surface of the first battery module 100a is guided in the X direction. As shown in Figures 2 and 3, with the wiring 200 and the extension 310 mounted to each other, the wiring 200 is located on the +Z side relative to the bottom plate 312, and the side wall 314 is located on the -Y side relative to the wiring 200. In the example shown in Figure 3, the side wall 314 is at least partially located between the wiring 200 and the first side portion 532b in a first orthogonal direction perpendicular to the longitudinal direction of the wiring 200, from the wiring 200 toward the first side portion 532b. In the example shown in Figure 3, the X direction corresponds to the longitudinal direction of the wiring 200, and the Y direction corresponds to the first orthogonal direction. Therefore, the side wall 314 acts as a partition wall that separates the wiring 200 and the first side portion 532b from each other, at least partially. Consequently, short circuits between the wiring 200 and the first side portion 532b can be suppressed compared to the case where the side wall 314 is not provided. Furthermore, the number of components in the battery pack 10 can be reduced compared to the case where a partition wall is provided separately from the guide member 300. However, the member corresponding to the partition wall described above may be provided separately from the guide member 300 instead of the guide member 300.
[0033] In one example, the side wall 314 is an insulator such as resin. If the side wall 314 has electrical insulating properties, it is possible to electrically insulate the wiring 200 and the first side portion 532b from each other. Therefore, a short circuit between the wiring 200 and the first side portion 532b can be suppressed. In another example, the side wall 314 may be a conductor such as metal. If the side wall 314 is conductive, it is possible to make it easier for the current leaking from the wiring 200 to flow towards the side wall 314 rather than towards the first side portion 532b. Therefore, a short circuit between the wiring 200 and the first side portion 532b can be suppressed.
[0034] In this embodiment, as shown in Figure 3, in the projection of the wiring 200 and the side wall 314 onto a first plane P1 perpendicular to the Y direction, the dimension H1 in the second orthogonal direction, perpendicular to the X and Y directions, of the overlapping portion of the wiring 200 and the side wall 314 is 50% or more of the dimension H2 of the wiring 200 in the second orthogonal direction. In the example shown in Figure 3, the Z direction corresponds to the second orthogonal direction. In this embodiment, the wiring 200 and the first side portion 532b can be separated from each other more easily compared to the case where the dimension H1 in the Z direction of the projection of the overlapping portion of the wiring 200 and the side wall 314 onto the first plane P1 is less than 50% of the dimension H2 in the Z direction of the projection of the wiring 200 onto the first plane P1. The dimension H1 in the Z direction of the projection of the overlapping portion of the wiring 200 and the side wall 314 onto the first plane P1 may be less than 50% of the dimension H2 in the Z direction of the projection of the wiring 200 onto the first plane P1.
[0035] In this embodiment, as shown in Figure 3, the +Z side end of the side wall 314 is located on the -Z side with respect to a second plane P2 perpendicular to the Z direction, which includes the +Z side end of the wiring 200. Therefore, compared to the case where the +Z side end of the side wall 314 is located on the +Z side with respect to the second plane P2, it is possible to suppress discharge between the +Z side end of the side wall 314 and the first side portion 532b due to proximity between the two. However, the +Z side end of the side wall 314 may be located on the +Z side with respect to the second plane P2, as long as a distance is ensured between the +Z side end of the side wall 314 and the first side portion 532b so as to suppress discharge between them. Alternatively, the +Z side end of the wiring 200 and the +Z side end of the side wall 314 may be located in the same plane perpendicular to the Z direction.
[0036] The embodiments of the present invention have been described above with reference to the drawings, but these are merely examples of the present invention, and various other configurations can also be adopted.
[0037] In this embodiment, a short circuit between the portion of the wiring 200 located on the -Y side relative to the first battery module 100a and the portion of the upper plate 530 located on the -Y side relative to the first battery module 100a is suppressed by a partition wall, such as a side wall 314, located between the portions of the wiring 200 and the upper plate 530. This suppression of discharge in this embodiment is also applicable to other parts of the internal space of the housing 500. That is, a short circuit between the wiring 200 and the housing 500 can be suppressed by a partition wall that separates the wiring 200 and the housing 500 at least partially from each other. [Explanation of Symbols]
[0038] 10 Battery pack, 100 Battery module, 100a First battery module, 100b Second battery module, 200 Wiring, 300 Guide member, 310 Extension body, 312 Base plate 314 Side wall, 320 Support leg, 322 Fastener, 400 Clip, 410 Holder, 420 Through shaft, 500 Housing, 510 Lower plate, 520 Side frame, 530 Upper plate, 532 First raised section, 532a First top section, 532b First side section, 534 Second raised section, 534a Second top section, 534b Second side section, 540 Support frame, P1 First plane, P2 Second plane
Claims
1. Battery module and Wiring and, A housing that accommodates the battery module and the wiring, A partition wall that separates the wiring and the housing at least partially from each other, A battery pack equipped with the following features.
2. The system further includes a guide member for guiding the aforementioned wiring, The battery pack according to claim 1, wherein the guide member has at least a portion of the partition wall.
3. The partition wall is at least partially located between the wiring and the housing in a first orthogonal direction perpendicular to the longitudinal direction of the wiring, from the wiring toward the housing. The battery pack according to claim 1 or 2, wherein, in the projection of the wiring and the partition wall onto a plane perpendicular to the first orthogonal direction, the dimensions of the overlapping portion of the wiring and the partition wall in the longitudinal direction and the second orthogonal direction perpendicular to the first orthogonal direction are 50% or more of the dimensions of the wiring in the second orthogonal direction.
Citation Information
Patent Citations
Anti-short-circuit lithium battery assembly frame
CN219246854U
Battery wiring module
JP2020035615A