Protector and energy storage module

The protector with elastically deformable strip-shaped portions and slits allows the external connection bus bar to be directed in various ways, simplifying manufacturing and reducing costs by eliminating the need for multiple protector designs.

JP7801271B2Active Publication Date: 2026-01-16AUTONETWORKS TECH LTD +3
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Patent Information

Application Number
JP2023024408
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-02-20
Publication Date
2026-01-16
Estimated Expiration
2043-02-20

AI Technical Summary

Technical Problem

Existing power storage modules require different shaped protectors when the direction of the external connection bus bar needs to change, increasing manufacturing complexity and cost.

Method used

A protector with a main body having multiple openings in different directions, partition portions with elastically deformable strip-shaped portions, and slits, allowing the external connection bus bar to be led out in various directions while being partially blocked.

Benefits of technology

Enables the external connection bus bar to be led out in multiple directions without needing separate protectors, simplifying manufacturing and reducing costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a protector capable of leading out an external connection bus bar connected to an electrode terminal of a power storage element to a plurality of different directions.SOLUTION: A protector 30 is attached to a power storage element group 11S constructed by laminating a plurality of power storage elements 11 each having an electrode terminal, and comprises: a body part that in which a plurality of open parts 40 that is opened to a different direction each other is formed; and a plurality of separation parts 50 that is extended from an open edge part of the plurality of open parts 40 of the main body part, and can partially close the plurality of open parts 40. Each separation part 50 includes: a base part 56 that is rotatably connected to the main body part via a hinge part 57; a plurality of slit-like parts 53 that is extended from the base part 56, and is elastically deformed so as to partially open each open part 40; and a plurality of slits 54 that is formed between the adjacent slit-like parts 53.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present disclosure relates to a protector and a power storage module. [Background technology]

[0002] In a power storage module for an electric vehicle, a hybrid vehicle, or the like, a plurality of power storage elements, each consisting of a positive electrode terminal and a negative electrode terminal, are connected in series or parallel by a bus bar between adjacent electrode terminals of the power storage elements. A battery module described in JP 2018-106806 A (Patent Document 1 below) is a known example of such a power storage module. This battery module includes a group of unit cells, a bus bar connected to the electrode terminals of the unit cells, a detection wire connected to the bus bar, and an insulating protector that holds the bus bar and the detection wire.

[0003] The insulating protector includes a busbar holding portion that houses and holds the busbars and a protective cover that covers the busbar holding portion from above. The busbar holding portion includes a rectangular cylindrical peripheral wall. The peripheral wall includes a long side wall portion that extends in the direction in which the cells are arranged and a short side wall portion that extends in the short direction of the busbar holding portion. The busbar holding portions, which are located at both ends in the direction in which the cells are arranged, have openings formed by cutting out the short side wall portions. An external connection busbar connected to an electrode terminal serving as a common positive or negative electrode of the battery module can be led out of the battery module through this opening. The external connection busbar can connect, for example, two adjacent battery modules or between a battery module and an external device. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2018-106806 Summary of the Invention [Problem to be solved by the invention]

[0005] In the battery module of Patent Document 1, the external connection bus bar is extended in the same direction as the cells are arranged relative to the battery module. However, depending on the arrangement of the battery modules or the arrangement of external devices, it may be necessary to change the direction in which the external connection bus bar extends from the battery module. In such cases, it is necessary to form a new insulating protector with a different shape. [Means for solving the problem]

[0006] The protector disclosed herein is a protector that is attached to a group of energy storage elements that are formed by stacking multiple energy storage elements each having an electrode terminal, and includes a main body portion in which multiple openings that open in different directions are formed, and multiple partition portions that extend from the edges of the multiple openings in the main body portion and are capable of closing the multiple openings, each partition portion having a base portion that is rotatably connected to the main body portion via a hinge portion, multiple strip-shaped portions that extend from the base and are elastically deformable to partially open each of the openings, and multiple slits formed between adjacent strip-shaped portions.

[0007] The protector disclosed herein is a protector that is attached to a group of energy storage elements that are formed by stacking a plurality of energy storage elements each having an electrode terminal, and includes a main body portion in which a plurality of openings that open in different directions are formed, and a plurality of partition portions that extend from the edges of the plurality of openings in the main body portion and are capable of at least partially blocking the plurality of openings, each of which has a plurality of strip-shaped portions that are elastically deformable to partially open each of the openings, and a plurality of slits formed between adjacent strip-shaped portions. [Effects of the Invention]

[0008] According to the present disclosure, it is possible to provide a protector that allows an external connection bus bar connected to an electrode terminal of an energy storage element to be led out in a plurality of different directions. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a plan view of the electricity storage module according to the first embodiment. [Figure 2] FIG. 2 is a plan view of the energy storage module with a part of the second protector removed. [Figure 3] FIG. 3 is a perspective view of the electricity storage module. [Figure 4] FIG. 4 is an enlarged front view of the electricity storage module. [Figure 5] FIG. 5 is an enlarged side view of the electricity storage module. [Figure 6] FIG. 6 is a perspective view of an energy storage module including a first bus bar. [Figure 7] FIG. 7 is a perspective view of an energy storage module including a second bus bar. [Figure 8] FIG. 8 is a cross-sectional view taken along line AA in FIG. [Figure 9] 9 is a cross-sectional view of the energy storage module including the first bus bar taken along the line AA in FIG. [Figure 10] FIG. 10 is a cross-sectional view taken along the line BB in FIG. [Figure 11] FIG. 11 is a cross-sectional view of the energy storage module including the second bus bar taken along the line BB in FIG. [Figure 12] FIG. 12 is a perspective view of the electricity storage module according to the second embodiment. [Figure 13] FIG. 13 is a cross-sectional view of the electricity storage module of the second embodiment taken along the line AA in FIG. [Figure 14] FIG. 14 is a cross-sectional view of the energy storage module of the second embodiment, which includes a third bus bar, taken along the line AA in FIG. [Figure 15] FIG. 15 is a perspective view of the electricity storage module according to the third embodiment. [Figure 16] FIG. 16 is a cross-sectional view of the electricity storage module of the third embodiment taken along the line AA in FIG. [Figure 17] 17 is a cross-sectional view of the energy storage module of the third embodiment, which includes a fourth bus bar, taken along the line AA in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0010] [Description of the embodiments of the present disclosure] First, embodiments of the present disclosure will be listed and described.

[0011] (1) The protector disclosed herein is a protector attached to a group of energy storage elements formed by stacking a plurality of energy storage elements each having an electrode terminal, and includes a main body portion having a plurality of openings that open in different directions from each other, and a plurality of partition portions extending from the edges of the plurality of openings in the main body portion and capable of closing the plurality of openings, each of the partition portions having a base portion rotatably connected to the main body portion via a hinge portion, a plurality of strip-shaped portions extending from the base portion and capable of elastically deforming to partially open each of the openings, and a plurality of slits formed between adjacent strip-shaped portions.

[0012] With this configuration, the hinge portion and the plurality of strip-shaped portions are elastically deformed to allow the external connection bus bar to be led out through any of the plurality of openings, and the opening through which the external connection bus bar is not led out can be at least partially blocked by the partition portion.

[0013] (2) The protector disclosed herein is a protector that is attached to a group of energy storage elements that are formed by stacking a plurality of energy storage elements each having an electrode terminal, and includes a main body portion in which a plurality of openings that open in different directions are formed, and a plurality of partition portions that extend from the edges of the openings in the main body portion and are capable of at least partially blocking the openings, and each of the partition portions has a plurality of strip-shaped portions that are elastically deformable to partially open each of the openings, and a plurality of slits formed between adjacent strip-shaped portions.

[0014] With this configuration, the plurality of strip-shaped portions can be elastically deformed to allow the external connection bus bar connected to the electrode terminal to be led out through any of the plurality of openings, and the opening from which the external connection bus bar is not led out can be at least partially blocked by the partition portion.

[0015] (3) In the protector described in (1) or (2), it is preferable that each of the partitions has a connecting portion that connects the tip ends of the plurality of strip-shaped portions.

[0016] With this configuration, it becomes easier to collectively elastically deform the plurality of strip-shaped portions.

[0017] (4) In the protector according to any one of (1) to (3), it is preferable that the strips are positioned further outward from the opening as they approach the tip.

[0018] With this configuration, it is possible to prevent the plurality of strip-shaped portions from being disposed inside the protector through the opening.

[0019] (5) It is preferable that the protector described in any one of (1) to (4) comprises a first protector and a second protector attached to the first protector, the opening is formed by the first protector and the second protector, and the second protector comprises the plurality of partition portions.

[0020] With this configuration, it becomes easier to form a plurality of partitions.

[0021] (6) The energy storage module of the present disclosure includes a protector described in any one of (1) to (5), the energy storage element group, and an external connection bus bar electrically connected to the electrode terminal and extending to the outside of the protector through one of the plurality of openings.

[0022] With this configuration, it is possible to provide an energy storage module in which the external connection bus bars can be led out in different directions.

[0023] [Details of the embodiments of the present disclosure] The present disclosure will be described below with reference to exemplary embodiments. The present disclosure is not limited to these examples, but is defined by the scope of the claims, and is intended to include all modifications within the meaning and scope of the claims.

[0024] <Embodiment 1> A first embodiment of the present disclosure will be described with reference to FIGS. 1 to 11. An energy storage module 10 of this embodiment is mounted on a vehicle, such as an electric vehicle or a hybrid vehicle, as a power source for driving the vehicle. In the following description, the direction indicated by arrow Z is defined as upward, the direction indicated by arrow X as forward, and the direction indicated by arrow Y as leftward. Note that, in some cases, when multiple identical components are shown, only some of the components will be designated by reference numerals, and the reference numerals for the other components will be omitted.

[0025] [Energy storage module] As shown in FIG. 1 , the energy storage module 10 includes an energy storage element group 11S and a wiring module 20 attached to the energy storage element group 11S. As shown in FIGS. 3 to 5 , the energy storage module 10 has two openings 40 that open in different directions. As will be described later, external connection bus bars can be led out from the energy storage module 10 in different directions through these openings 40 (see FIGS. 6 and 7 ). In particular, the energy storage module 10 can be used in a configuration in which an external connection bus bar is led out to the outside through either one of the two openings 40. The energy storage module 10 and the wiring module 20 according to this embodiment may not include an external connection bus bar (see FIG. 3 ) or may include an external connection bus bar (see FIGS. 6 and 7 ).

[0026] [Energy storage element group] As shown in FIG. 1, the energy storage element group 11S is configured by stacking a plurality of energy storage elements 11 in the front-rear direction. Each energy storage element 11 has a rectangular parallelepiped shape that is flat in the front-rear direction. An energy storage element (not shown) is housed inside the energy storage element 11. Each energy storage element 11 has a pair of positive and negative electrode terminals 12 on its upper surface (see FIG. 8). Although not shown in detail, the positive electrode terminal 12 and the negative electrode terminal 12 are arranged on the upper surface of the energy storage element 11 so as to be spaced apart in the width direction (left-right direction) of the energy storage element 11. As shown in FIG. 1, the energy storage element group 11S includes end plates 13 that are arranged to sandwich the plurality of energy storage elements 11 from both sides in the stacking direction (front-rear direction) of the plurality of energy storage elements 11. The end plates 13 have a plate shape that is flat in the front-rear direction. As shown in FIG. 8, the end plates 13 include protrusions 14 that protrude from their upper surfaces.

[0027] [Wiring module] As shown in Fig. 2, the wiring module 20 includes bus bars 21 and a protector 30 that holds the bus bars 21. The bus bars 21 include connection bus bars 22 that connect adjacent electrode terminals 12 to each other, and output bus bars 23 that are connected to the electrode terminals 12 that serve as the total positive and negative electrodes of the energy storage element group 11S. The bus bars 21 are formed by processing a conductive metal plate material. Each bus bar 21 has a generally rectangular shape in a plan view. Each bus bar 21 and the electrode terminal 12 are connected by laser welding or the like.

[0028] 8, the output bus bar 23 includes a connection plate portion 24 connected to the electrode terminal 12 of the total positive electrode or total negative electrode, an engagement plate portion 25 disposed on the end plate 13, and a linking plate portion 26 connecting the connection plate portion 24 and the engagement plate portion 25. The engagement plate portion 25 has a through hole 25A through which the protrusion portion 14 is inserted. The linking plate portion 26 has a gate shape in a side view and protrudes upward relative to the connection plate portion 24 and the engagement plate portion 25. Although not shown in detail, the connection bus bar 22 includes a pair of connection plate portions 24 each connected to the electrode terminal 12, and a linking plate portion 26 connecting the pair of connection plate portions 24.

[0029] Although not shown, a voltage detection line is connected to each bus bar 21. The voltage detection line may be, for example, an electric wire or a conductive path formed on a circuit board such as a flexible printed circuit board. The voltage detection line is connected at its front end to a connector 27 (see Figures 1 to 3, etc.). The connector 27 is adapted to be connected to an external ECU (Electronic Control Unit) or the like. The ECU is equipped with a microcomputer, elements, etc. and has a well-known configuration having functions for detecting the voltage, current, temperature, etc. of each storage element 11 and controlling the charging and discharging of each storage element 11.

[0030] [Protector, 1st protector, 2nd protector] The protector 30 is made of insulating synthetic resin. As shown in FIG. 2, the protector 30 includes a busbar installation section 31 in which the busbar 21 is installed and an installation section 32 in which the voltage detection wire is installed. The protector 30 also includes a first protector 30A and a second protector 30B attached to the first protector 30A from the side opposite the energy storage device 11. As shown in FIG. 3, the first protector 30A and the second protector 30B include, for example, a locking section 33 protruding from the outer surface of each protector 30A, 30B, and a gate-shaped locking receiving section 34 that locks onto the locking section 33. This allows the second protector 30B to be fixed to the first protector 30A.

[0031] As shown in FIG. 2 , the busbar arrangement portions 31 are formed in a frame shape and arranged side by side in the stacking direction (front-rear direction) of the energy storage devices 11. The busbar arrangement portions 31 include a bottom wall 35 arranged between the energy storage devices 11 and the busbars 21, a pair of first walls 36 extending upward from both ends of the bottom wall 35 in the front-rear direction, a pair of second walls 37 connecting the pair of first walls 36 in the front-rear direction, and a ceiling wall 38 arranged opposite the bottom wall 35. For example, the first walls 36 may be shared between adjacent busbar arrangement portions 31 in the front-rear direction. The bottom wall 35, the pair of first walls 36, and the pair of second walls 37 are formed in the first protector 30A. The ceiling wall 38 is formed in the second protector 30B. That is, the busbar arrangement portion 31 is composed of the first protector 30A and the second protector 30B.

[0032] As shown in FIG. 8 , the busbar installation section 31 includes a curved positioning protrusion 35A that protrudes upward from the bottom wall 35. The positioning protrusion 35A is arranged along the connecting plate portion 26 of the busbar 21. This positions the busbar 21 within the busbar installation section 31. The busbar installation section 31 is formed with a connection hole 35B that penetrates the bottom wall 35 in the vertical direction. The connection hole 35B is arranged at a position corresponding to the connection plate portion 24 of the busbar 21 arranged in the busbar installation section 31. The connection plate portion 24 and the electrode terminal 12 are connected via the connection hole 35B. The busbar installation section 31 (hereinafter referred to as the output busbar installation section 39) in which the output busbar 23 is arranged is formed with an engagement hole 35C that penetrates the bottom wall 35 in the vertical direction. The engagement holes 35C are arranged at positions corresponding to the engagement plate portions 25 of the output bus bars 23 arranged in the output bus bar arrangement portions 39. The protrusions 14 of the end plates 13 are inserted into the engagement holes 35C.

[0033] 3 and 8 , a joint portion 38A that is thinner than the surrounding ceiling wall 38 is formed on the ceiling wall 38 of the output busbar arrangement portion 39. The joint portion 38A is elastically deformable. The joint portion 38A connects a front portion of the ceiling wall 38 of the output busbar arrangement portion 39 to a rear portion of the ceiling wall 38 of the output busbar arrangement portion 39 so as to be rotatable approximately about an axis extending in the left-right direction. With this configuration, with the second protector 30B attached to the first protector 30A, the locking portion 33 and the lock receiving portion 34, which are located at the front end of the output busbar arrangement portion 39, can be released, and the front portion of the ceiling wall 38 of the output busbar arrangement portion 39 can be rotated relative to the rear portion. This allows engagement plate portion 25 of output bus bar 23 and protrusion portion 14 of end plate 13 to be exposed to the outside without completely removing second protector 30B from first protector 30A (see FIG. 8).

[0034] 2, the wiring portion 32 is disposed adjacent to the bus bar arrangement portion 31 in the width direction (left-right direction) of the energy storage device 11, and extends in the stacking direction (front-rear direction) of the energy storage device 11. A connector 27 is disposed at the front end of the wiring portion 32. The wiring portion 32 is formed in the first protector 30A.

[0035] Opening As shown in FIG. 3, the output bus bar arrangement section 39 (an example of a main body section) is formed with the two openings 40 described above. The two openings 40 are a first opening 41 and a second opening 42. As shown in FIG. 4, the first opening 41 is configured by a first recess 36A formed by cutting out a first wall 36 arranged on the front side of the output bus bar arrangement section 39, and a ceiling wall 38. The first opening 41 is open in the stacking direction (front-rear direction) of the energy storage elements 11. Here, the outside of the first opening 41 refers to a direction (here, forward) away from the energy storage element group 11S in the front-rear direction in which the first opening 41 opens.

[0036] 5, the second opening 42 is composed of a second recess 37A formed by cutting out the second wall 37 disposed on the left side of the output bus bar arrangement portion 39, and a ceiling wall 38. The second opening 42 is open in the width direction (left-right direction) of the energy storage element 11. Here, the outside of the second opening 42 refers to the direction away from the energy storage element group 11S in the left-right direction in which the second opening 42 opens (here, the leftward direction).

[0037] The first opening 41 and the second opening 42 are arranged adjacent to the same electrode terminal 12 that serves as the common positive or negative electrode of the energy storage element group 11S. As shown in FIGS. 6 and 7 , the first opening 41 and the second opening 42 are holes for leading out an external connection bus bar that is electrically connected to the common positive or negative electrode terminal 12 to the outside of the wiring module 20. The external connection bus bar is a conductor that connects, for example, energy storage modules 10 to each other or to an external device (for example, a vehicle drive system). The external connection bus bar is made of a metal such as copper, a copper alloy, aluminum, an aluminum alloy, or stainless steel.

[0038] According to the above configuration, the external connection bus bar can be led out in different directions (forward or leftward) relative to the power storage module 10 depending on the arrangement of the power storage modules 10 relative to one another and the arrangement of the power storage module 10 relative to an external device. Therefore, in a configuration (for example, a battery pack) including a plurality of power storage modules 10, if it is necessary to lead out the external connection bus bar in different directions between one power storage module 10 and another power storage module 10, it is not necessary to create different protectors 30 for each direction in which the external connection bus bar is led out, which makes it easier to reduce the manufacturing cost of the power storage modules 10.

[0039] [External connection busbar] In this embodiment, the external connection bus bar is connected to the electrode terminal 12 via the output bus bar 23. As shown in FIG. 9 , the external connection bus bar extending from the first opening 41 is the first bus bar 60. The first bus bar 60 has a flat plate shape extending in the vertical direction. The first bus bar 60 has a connection portion 61 that is placed on the engagement plate portion 25 of the output bus bar 23 and an insertion hole 62 that passes through the connection portion 61 in the vertical direction. The protrusion 14 of the end plate 13 is inserted into the insertion hole 62. The connection portion 61 and the engagement plate portion 25 are electrically connected. For example, the protrusion 14 may have a male thread (not shown) formed on its outer circumferential surface, and a nut (not shown) with a female thread formed on its inner circumferential surface may be threaded onto the male thread to press the connection portion 61 against the engagement plate portion 25, thereby connecting the connection portion 61 and the engagement plate portion 25. Alternatively, the connection portion 61 and the engagement plate portion 25 may be connected by welding, for example.

[0040] 11, the external connection bus bar extending from the second opening 42 is a second bus bar 63. The second bus bar 63 is configured similarly to the first bus bar 60, and has a connection portion 61 and an insertion hole 62.

[0041] [Divider] As shown in Fig. 3, the protector 30 has a plurality of partitions 50. The plurality of partitions 50 includes a first partition 51 and a second partition 52. The first partition 51 extends from the rim of the first opening 41 and is configured to be able to close a portion of the first opening 41. The second partition 52 extends from the rim of the second opening 42 and is configured to be able to close a portion of the second opening 42. The first partition 51 and the second partition 52 are formed in the second protector 30B.

[0042] [Hinge, base, strip, slit, connecting part] The first partition 51 includes a hinge portion 57, a base 56, a plurality of (eight in this example) strip-shaped portions 53 extending substantially downward from the base 56, a plurality of (seven in this example) slits 54 formed between adjacent strip-shaped portions 53, and a connecting portion 55 connecting end portions (tips) of the strip-shaped portions 53 on the opposite side from the ceiling wall 38. The base 56 is rod-shaped and extends in the width direction (left-right direction) of the energy storage element 11. The base 56 is connected via the hinge portion 57 to the ceiling wall 38 of the output bus bar installation portion 39 disposed on the edge of the first opening 41. As shown in FIG. 8 , the hinge portion 57 is thinner than the ceiling wall 38 and is elastically deformable. The base 56 is rotatable substantially around an axis extending in the left-right direction relative to the ceiling wall 38. The plurality of strip-shaped portions 53 are elastically deformable with respect to the base portion 56. The elastic deformation of the plurality of strip-shaped portions 53 allows the first opening 41 to be partially opened. That is, the plurality of strip-shaped portions 53 are elastically deformable so as to reduce the area of ​​the first opening 41 that is blocked by the first partition wall 51. Specifically, the plurality of strip-shaped portions 53 can elastically deform outward from the first opening 41. When the plurality of strip-shaped portions 53 are elastically deformed, the area of ​​the lower end region of the first opening 41 that is blocked by the first partition wall 51 is reduced.

[0043] On the other hand, unlike the present embodiment, it is also possible to close the first opening 41 by forming a partition portion in which all of the plurality of strip-shaped portions 53 are connected, i.e., a plate-shaped partition portion, without providing the plurality of slits 54. However, such a plate-shaped partition portion is thick in the width direction (left-right direction) of the energy storage element 11 and is therefore difficult to elastically deform. Therefore, for example, when the partition portion is deformed to partially open the first opening 41, bending stress may be concentrated on the hinge portion 57. In the present embodiment, the partition portion 50 is provided with an elastically deformable hinge portion 57, and the plurality of strip-shaped portions 53 are made elastically deformable by forming the slits 54.

[0044] When the hinge portion 57 and the plurality of strip-shaped portions 53 are in their natural state without elastic deformation, most of the first opening 41 is blocked (see FIG. 8 ). Therefore, when the first bus bar 60 is not led out through the first opening 41 (for example, when the second bus bar 63 is led out through the second opening 42), it is possible to prevent the output bus bar 23 from being exposed through the first opening 41. Furthermore, as shown in FIGS. 6 and 9 , the first bus bar 60 can be led out through the first opening 41 by elastically deforming the hinge portion 57 and the plurality of strip-shaped portions 53.

[0045] For example, the first bus bar 60 can be led out of the first opening 41 by the following procedure. First, the first protector 30A holding the bus bar 21 is attached to the energy storage element group 11S, and the bus bar 21 is connected to the electrode terminal 12. The second protector 30B is attached to the first protector 30A. Here, the locking portion 33 and the lock receiving portion 34 arranged at the front end of the output bus bar installation portion 39 are released. Next, the front portion of the ceiling wall 38 of the output bus bar installation portion 39 is rotated relative to the rear portion, exposing the engagement plate portion 25 of the output bus bar 23 and the protrusion 14 of the end plate 13 to the outside. The first bus bar 60 is passed through the first recess 36A, and the protrusion 14 is inserted into the insertion hole 62. The connection portion 61 and the engagement plate portion 25 are connected.

[0046] Next, the front portion of the ceiling wall 38 of the output bus bar installation section 39 is returned to its original position, and the locking portion 33 and the locking receiving portion 34 arranged at the front end of the output bus bar installation section 39 are engaged with each other. This causes the multiple strip-shaped portions 53 to elastically deform, and the first bus bar 60 is received in the first opening 41. The first bus bar 60 is biased by the hinge portion 57 and the multiple strip-shaped portions 53, and comes into contact with the multiple strip-shaped portions 53 or the connecting portion 55. This prevents the first opening 41 from opening more than necessary. As a result, the first bus bar 60 can be led out of the protector 30 through the first opening 41.

[0047] In the above-described derivation procedure, when the hinge portion 57 and the plurality of strip-shaped portions 53 bias the first bus bar 60, the connecting portion 55 prevents the plurality of strip-shaped portions 53 from individually elastically deforming. For example, it is possible to prevent some of the plurality of strip-shaped portions 53 from entering inside the first opening 41 (inside the output bus bar installation portion 39, in this case, the rear side). This makes it difficult for the first bus bar 60 to be exposed to the outside more than necessary.

[0048] As shown in FIG. 8 , the strip portions 53 of the first partition 51 are positioned further outward from the first opening 41 (outside the output bus bar installation section 39, in this case, toward the front) as they approach the tip. For example, the strip portions 53 are curved toward the outside of the first opening 41. This makes it easier to control the direction in which the strip portions 53 elastically deform. For example, when attaching the second protector 30B to the first protector 30A, it is possible to prevent the strip portions 53 from elastically deforming toward the inside of the first opening 41, i.e., toward the inside of the output bus bar installation section 39. This makes it less likely that the output bus bar 23 and the first bus bar 60 will be exposed to the outside more than necessary.

[0049] Furthermore, with the above-described configuration, the strip-shaped portions 53, the slits 54, and the hinge portions 57 can be formed by removing the mold in the vertical direction. That is, the second protector 30B can be formed using a simple mold.

[0050] The second partitioning portion 52 is configured in substantially the same manner as the first partitioning portion 51, and therefore, in the following description, the same reference numerals will be used to designate components common to the first partitioning portion 51. As shown in Fig. 5, the second partitioning portion 52 has a hinge portion 57, a base portion 56, a plurality of (here, five) strip-shaped portions 53 extending substantially downward from the base portion 56, a plurality of (here, four) slits 54 formed between adjacent strip-shaped portions 53, and a connecting portion 55 connecting the tips of the strip-shaped portions 53. The hinge portion 57 and the plurality of strip-shaped portions 53 are elastically deformable.

[0051] When the hinge portion 57 and the plurality of strip-shaped portions 53 are in their natural state without elastic deformation, most of the second opening 42 is blocked (see FIG. 10 ). Therefore, when the second bus bar 63 is not led out through the second opening 42 (for example, when the first bus bar 60 is led out through the first opening 41), it is possible to prevent the output bus bar 23 from being exposed through the second opening 42. Furthermore, as shown in FIGS. 7 and 11 , the second bus bar 63 can be led out through the second opening 42 by elastically deforming the hinge portion 57 and the plurality of strip-shaped portions 53. The procedure for leading the second bus bar 63 out of the second opening 42 is similar to the procedure for leading the first bus bar 60 out of the first opening 41 described above.

[0052] As shown in FIG. 10 , the strip portions 53 of the second partition 52 are positioned more outside the second opening 42 (outside the output bus bar installation section 39, in this case, on the left side) as they approach the tip. For example, the strip portions 53 are curved toward the outside of the second opening 42. This makes it easier to control the direction in which the strip portions 53 elastically deform. For example, when attaching the second protector 30B to the first protector 30A, it is possible to prevent the strip portions 53 from elastically deforming toward the inside of the second opening 42, i.e., toward the output bus bar installation section 39. This makes it less likely that the output bus bar 23 and the second bus bar 63 will be exposed to the outside more than necessary.

[0053] [Effects of the First Embodiment] According to the first embodiment, the following actions and effects are achieved. The protector 30 of embodiment 1 is a protector 30 attached to a storage element group 11S composed of a plurality of stacked storage elements 11 each having an electrode terminal 12, and comprises a main body portion (output bus bar arrangement portion 39) in which a plurality of openings 40 opening in different directions are formed, and a plurality of partition portions 50 extending from the edges of the plurality of openings 40 in the main body portion and capable of at least partially blocking the plurality of openings 40, each partition portion 50 having a base portion 56 rotatably connected to the main body portion via a hinge portion 57, a plurality of strip-shaped portions 53 extending from the base portion 56 and elastically deformable to partially open each opening 40, and a plurality of slits 54 formed between adjacent strip-shaped portions 53.

[0054] With this configuration, by elastically deforming the hinge portion 57 and the plurality of strip-shaped portions 53, it is possible to lead out the external connection bus bars (first bus bar 60, second bus bar 63) connected to the electrode terminals 12 through any of the plurality of openings 40. The openings 40 through which the external connection bus bars are not led out can be at least partially blocked by the partition portion 50.

[0055] In the first embodiment, each partition 50 has a connecting portion 55 that connects the tip ends of the plurality of strip-shaped portions 53 together.

[0056] With this configuration, the plurality of strip-shaped portions 53 can be easily elastically deformed collectively.

[0057] In the first embodiment, the strips 53 are positioned further outward from the opening 40 as they approach the tip end.

[0058] With this configuration, it is possible to prevent the plurality of strip-shaped portions 53 from being disposed inside the protector 30 through the opening 40 .

[0059] The protector 30 in embodiment 1 comprises a first protector 30A and a second protector 30B attached to the first protector 30A, and the opening 40 is formed by the first protector 30A and the second protector 30B, and the second protector 30B comprises a plurality of partitions 50.

[0060] With this configuration, it becomes easier to form a plurality of partitions 50.

[0061] The energy storage module 10 according to the first embodiment includes a protector 30, an energy storage element group 11S, and an external connection bus bar electrically connected to the electrode terminal 12 and extending to the outside of the protector 30 through one of a plurality of openings 40.

[0062] With this configuration, it is possible to provide an energy storage module 10 in which external connection bus bars can be led out in different directions.

[0063] <Embodiment 2> A second embodiment of the present disclosure will be described with reference to FIGS. 12 to 14. As shown in FIG. 12, the power storage module 110 of the second embodiment includes a wiring module 120 and a power storage element group 11S. The protector 130 of the wiring module 120 of the second embodiment includes a first protector 30A and a second protector 130B that are the same as those of the first embodiment. The second protector 130B has the same configuration as the second protector 30B of the first embodiment, except for the configuration of the partition section 150. Hereinafter, descriptions of the same members and functions and effects as those of the first embodiment may be omitted. Furthermore, for multiple identical members, reference numerals may be assigned to only some of the members, and reference numerals for the other members may be omitted.

[0064] Partition portion 150 of second protector 130B includes first partition portion 151 and second partition portion 152. First partition portion 151 includes hinge portion 157, plate-shaped portion 156 (an example of a base portion), a plurality of (eight here) elastically deformable strip-shaped portions 153 extending from plate-shaped portion 156, a plurality of (seven here) slits 154 formed between adjacent strip-shaped portions 153, and connecting portion 155 connecting the tips of the plurality of strip-shaped portions 153. As shown in FIG. 13 , plate-shaped portion 156 has a flat plate shape in the stacking direction (front-rear direction) of energy storage elements 11. Plate-shaped portion 156 is connected via hinge portion 157 to ceiling wall 38 of output bus bar arrangement portion 39 arranged on the rim of first opening 41. Hinge portion 157 is elastically deformable, and plate-like portion 156 is rotatable with respect to ceiling wall 38 substantially about an axis extending in the width direction (left-right direction) of energy storage device 11 .

[0065] When hinge portion 157 and multiple strip-shaped portions 153 are in their natural state without elastic deformation, most of first opening 41 is closed. As shown in FIG. 14 , hinge portion 157 and multiple strip-shaped portions 153 of first partition portion 151 elastically deform, allowing third bus bar 160, which is an example of an external connection bus bar, to be led out from first opening 41. Third bus bar 160 is biased by hinge portion 157 and multiple strip-shaped portions 153 and abuts against multiple strip-shaped portions 153 or connecting portion 155. Therefore, first opening 41 is not opened more than necessary.

[0066] Although not shown in detail, like the first partitioning portion 151, the second partitioning portion 152 also has a hinge portion 157, a plate-shaped portion 156, a plurality (five in this case) of strip-shaped portions 153, a plurality (four in this case) of slits 154, and a connecting portion 155 (see FIG. 12 ). The second partitioning portion 152 is capable of partially closing the second opening 42 in its natural state. The hinge portion 157 and the plurality of strip-shaped portions 153 of the second partitioning portion 152 elastically deform, allowing an external connection bus bar (not shown) to be led out of the second opening 42.

[0067] In this embodiment, the plate-like portion 156 is formed to be longer in the vertical direction than the base portion 56 of Embodiment 1. Therefore, it is easier to block each opening 40 over a wider area than the partition portion 50 of Embodiment 1.

[0068] <Embodiment 3> A third embodiment of the present disclosure will be described with reference to FIGS. 15 to 17. As shown in FIG. 15, an energy storage module 210 of the third embodiment includes a wiring module 220 and an energy storage element group 11S. A protector 230 of the wiring module 220 of the third embodiment includes a first protector 30A and a second protector 230B that are the same as those of the first embodiment. The second protector 230B has the same configuration as the second protector 30B of the first embodiment, except for the configuration of the partition section 250. Hereinafter, descriptions of the same members and functions and effects as those of the first embodiment may be omitted. Furthermore, for multiple identical members, reference numerals may be assigned to only some of the members, and reference numerals for the other members may be omitted.

[0069] The partition 250 of the second protector 230B includes a first partition 251 and a second partition 252. The first partition 251 has a plurality of (eight in this example) strip-shaped portions 253 extending substantially downward from the ceiling wall 38, a plurality of (seven in this example) slits 254 formed between adjacent strip-shaped portions 253, and a connecting portion 255 connecting the tips of the strip-shaped portions 253. The strip-shaped portions 253 are elastically deformable with respect to the ceiling wall 38. The elastic deformation of the strip-shaped portions 253 makes it possible to partially open the first opening 41. Specifically, the strip-shaped portions 253 are elastically deformable toward the outside of the first opening 41.

[0070] As shown in Fig. 16, when the plurality of strip-shaped portions 253 are in a natural state without elastic deformation, most of the first opening 41 is blocked. As shown in Fig. 17, when the plurality of strip-shaped portions 253 of the first partition portion 251 elastically deform, a fourth bus bar 260, which is an example of an external connection bus bar, can be led out from the first opening 41. The fourth bus bar 260 is biased by the plurality of strip-shaped portions 253 and abuts against the plurality of strip-shaped portions 253 or the connecting portion 255. Therefore, the first opening 41 is not opened more than necessary.

[0071] Similar to the first partitioning portion 251, the second partitioning portion 252 also has a plurality of (here, five) strip-shaped portions 253, a plurality of (here, four) slits 254, and a connecting portion 255. The second partitioning portion 252 is capable of partially closing the second opening 42 in its natural state. The plurality of strip-shaped portions 253 of the second partitioning portion 252 elastically deform, allowing an external connection bus bar (not shown) to be led out from the second opening 42.

[0072] In the third embodiment, the partition 250 does not include a hinge portion or a base portion, unlike the first and second embodiments, so that the partition 250 can be formed in the second protector 230B more easily.

[0073] [Effects of the Third Embodiment] According to the third embodiment, the following actions and effects are achieved. The protector 230 of embodiment 3 is a protector 230 attached to a storage element group 11S formed by stacking a plurality of storage elements 11 having electrode terminals 12, and comprises a main body portion (output bus bar arrangement portion 39) in which a plurality of openings 40 opening in different directions are formed, and a plurality of partition portions 250 extending from the rim portions of the plurality of openings 40 in the main body portion and capable of at least partially blocking the plurality of openings 40, each partition portion 250 having a plurality of strip-shaped portions 253 that are elastically deformable to partially open each opening 40, and a plurality of slits 254 formed between adjacent strip-shaped portions 253.

[0074] With this configuration, the plurality of strip-shaped portions 253 can be elastically deformed to allow an external connection bus bar (fourth bus bar 260) connected to the electrode terminal 12 to be led out through any of the plurality of openings 40. The openings 40 from which the external connection bus bar is not led out can be at least partially blocked by the partition portion 250.

[0075] <Other embodiments> (1) In the above-described first to third embodiments, two openings 40 are provided, but this is not limitative, and three or more openings may be provided. (2) In the above embodiments 1 to 3, the first opening 41 opens in the stacking direction of the storage element 11, and the second opening 42 opens in the width direction of the storage element 11, but this is not limited to this, and the opening directions of the multiple openings can be changed as desired. (3) Unlike the protectors 30, 130, and 230 of the first to third embodiments, the protector may be formed from a single member. (4) In the above-described first to third embodiments, the connecting portions 55, 155, and 255 are provided, but this is not limitative, and the connecting portions may be omitted. (5) In the above embodiments 1 to 3, the external connection busbars (first busbar 60, second busbar 63, third busbar 160, fourth busbar 260) were connected to the electrode terminals 12 via the output busbar 23, but this is not limited to this, and the external connection busbars may be connected directly to the electrode terminals. [Explanation of symbols]

[0076] 10,110,210: Energy storage module 11: Energy storage element 11S: Energy storage element group 12: Electrode terminal 13: End plate 14: Protrusion 20,120,220: Wiring module 21: Busbar 22: Connection busbar 23: Output busbar 24: Connection plate 25: Engagement plate 25A: Through hole 26: Connecting plate part 27: Connector 30,130,230: Protector 30A: First protector 30B, 130B, 230B: Second protector 31: Busbar installation section 32: Wiring section 33: Locking part 34: Locking part 35: Bottom wall 35A: Positioning protrusion 35B: Connection hole 35C: Engagement hole 36: 1st wall 36A: First recess 37: Second wall 37A: Second recess 38: Ceiling / Wall 38A: Joint 39: Output bus bar arrangement section (main body) 40: Opening 41: First opening 42: Second opening 50,150,250: Partition 51,151,251: First compartment 52,152,252: Second compartment 53,153,253: Strips 54,154,254: Slit 55,155,255: Connection part 56: Base 57,157: Hinge part 60: First bus bar (external connection bus bar) 61: Connection 62: Insertion hole 63: Second bus bar (external connection bus bar) 156: Plate-like part (base) 160: 3rd bus bar (external connection bus bar) 260: 4th bus bar (external connection bus bar)

Claims

1. A protector attached to a group of electric storage elements formed by stacking a plurality of electric storage elements each having an electrode terminal, a main body portion having a plurality of openings that open in different directions; a plurality of partitions extending from rims of the plurality of openings of the main body portion and capable of closing the plurality of openings; A protector in which each partition portion has a base portion rotatably connected to the main body portion via a hinge portion, a plurality of strip-shaped portions extending from the base portion and elastically deformable to partially open each opening, and a plurality of slits formed between adjacent strip-shaped portions.

2. A protector attached to a group of electric storage elements formed by stacking a plurality of electric storage elements each having an electrode terminal, a main body portion having a plurality of openings that open in different directions; a plurality of partitions extending from rims of the plurality of openings of the main body portion and capable of at least partially closing the plurality of openings; A protector in which each of the partitions has a plurality of strip-shaped portions that are elastically deformable so as to partially open each of the openings, and a plurality of slits formed between adjacent strip-shaped portions.

3. 3. The protector according to claim 1, wherein each of the partitions has a connecting portion that connects the tip ends of the plurality of strip-shaped portions.

4. 3. The protector according to claim 1, wherein the plurality of strip-shaped portions are positioned further outward from the opening as they approach their tip ends.

5. a first protector; a second protector attached to the first protector, the opening is defined by the first protector and the second protector, The protector according to claim 1 or 2, wherein the second protector includes the plurality of partitions.

6. The protector according to claim 1 or 2; The energy storage element group; an external connection bus bar electrically connected to the electrode terminal and extending to the outside of the protector through any one of the plurality of openings.

Citation Information

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