Busbar
The bus bar design addresses the issues of size and thermal stress by using alternating conductive members with protrusions and through holes, allowing for relative movement and reducing vertical size while preventing excessive thermal stress.
Patent Information
- Application Number
- JP2021169989
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-18
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-10-18
AI Technical Summary
Existing bus bars with protruding portions and spaces between convex curved surfaces result in increased vertical size and potential excessive thermal stress.
A bus bar design with conductive members featuring alternating first and second conductive members, each with protrusions and through holes, allowing for relative movement and reducing contact area to prevent thermal stress while minimizing vertical size.
The design prevents excessive thermal stress and reduces the bus bar's vertical size by enabling conductive members to move relative to each other, maintaining contact efficiency and reducing material costs.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a bus bar. [Background technology]
[0002] Bus bars are used to connect, for example, in series, multiple battery cells arranged in an array direction. Some bus bars of this type are plate-shaped, conductive, and include multiple conductive members stacked vertically (see, for example, Patent Document 1).
[0003] Furthermore, among bus bars having multiple conductive members, some have protrusions where each conductive member protrudes upward. The protrusions have a top convex curved surface located on the top surface of each conductive member in the vertical direction and a bottom convex curved surface located on the bottom surface in the vertical direction. A space is provided between the top convex curved surface of the lower conductive member and the bottom convex curved surface of the upper conductive member, and this space reduces the contact area between the lower conductive member and the upper conductive member. Therefore, when heat generated when multiple battery cells are electrically connected is applied to the bus bar, the upper conductive member is allowed to move relative to the lower conductive member in the arrangement direction, preventing excessive thermal stress from being applied to the bus bar. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] International Publication No. 2019 / 124109 Summary of the Invention [Problem to be solved by the invention]
[0005] However, the above-mentioned bus bar has a protruding portion that protrudes upward, and a space is provided between the convex curved top surface of the conductive member located below and the convex curved bottom surface of the conductive member located above, which could result in the bus bar becoming larger in size in the vertical direction.
[0006] The present invention has been made in view of the above circumstances, and has an object to provide a bus bar that can be made smaller in size in the vertical direction while suppressing the application of excessive thermal stress. [Means for solving the problem]
[0007] In order to solve the above problems, a busbar according to the present invention electrically connects electrode terminals of a plurality of battery cells arranged in an arrangement direction, and includes a plurality of conductive members formed in the shape of conductive plates and stacked in a vertical direction, the conductive members including a first conductive member and a second conductive member located below the first conductive member in the vertical direction, the first conductive member including a first conductive member main body and a plurality of first protrusions protruding upward in the vertical direction from the first conductive member main body, and first through holes penetrating the first conductive member main body in the vertical direction and adjacent to the first protrusions in at least one of the battery cell arrangement direction and an orthogonal direction perpendicular to the vertical direction, each of the first protrusions having a first top convex curved surface located above in the vertical direction and a first bottom convex curved surface located below in the vertical direction, and the second conductive member including a second conductive member main body and a plurality of first protrusions protruding upward in the vertical direction from the second conductive member main body and second through holes penetrating the second conductive member main body in the up-down direction adjacent to the second protrusions in at least one of the orthogonal directions, each of the second protrusions having a second top convex curved surface positioned above in the up-down direction and a second bottom convex curved surface positioned below in the up-down direction, the first conductive member and the second conductive member being alternately stacked in the up-down direction, a lower surface of the first conductive member main body being in contact with an upper surface of the second conductive member main body, and the second protrusions being inserted into the first through holes, so that, when viewed from above in the up-down direction, a gap is formed between an edge portion forming the first through hole and the second protrusion, and [Effects of the Invention]
[0008] The bus bar according to the present invention has the above-described configuration, and therefore can provide a bus bar that can be reduced in size in the vertical direction while preventing excessive thermal stress from being applied thereto. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a plan view of a bus bar module having a bus bar according to this embodiment. [Figure 2] FIG. 2 is a plan view of the bus bar according to this embodiment. [Figure 3] FIG. 3 is a plan view of the bus bar according to this embodiment with the uppermost first conductive member in the up-down direction removed. [Figure 4] FIG. 4 is a cross-sectional view taken along the line AA in FIG. [Figure 5] FIG. 5 is a cross-sectional view taken along the line BB in FIG. [Figure 6] FIG. 6 is a perspective view of a first conductive member included in the bus bar according to this embodiment. [Figure 7] FIG. 7 is a perspective view of a second conductive member included in the bus bar according to this embodiment. [Figure 8] FIG. 8 is an exploded perspective view of the bus bar according to this embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, busbars according to embodiments of the present invention will be described in detail with reference to the drawings. Note that the present invention is not limited to these embodiments. Furthermore, components in the following embodiments include those that can be easily imagined by a person skilled in the art or that are substantially the same.
[0011] [Embodiment] FIG. 1 is a plan view of a busbar module 1 including a busbar 2 according to this embodiment. FIG. 2 is a plan view of the busbar 2 according to this embodiment. FIG. 3 is a plan view of the busbar 2 according to this embodiment with the uppermost first conductive member 21 in the vertical direction Z removed. FIG. 4 is a cross-sectional view taken along the line AA in FIG. 2. FIG. 5 is a cross-sectional view taken along the line BB in FIG. 2. FIG. 6 is a perspective view of the first conductive member 21 included in the busbar 2 according to this embodiment. FIG. 7 is a perspective view of the second conductive member 25 included in the busbar 2 according to this embodiment. FIG. 8 is an exploded perspective view of the busbar 2 according to this embodiment. Note that the voltage detection conductor 4 located in the upper half of FIG. 1 is omitted.
[0012] In the busbar 2 according to this embodiment, X in FIGS. 1 to 8 denotes the arrangement direction of the plurality of battery cells 101 electrically connected to the busbar 2. Similarly, Y denotes the orthogonal direction in the busbar 2 that is perpendicular to the arrangement direction X. Similarly, Z denotes the up-down direction in the busbar 2 that is perpendicular to both the arrangement direction X and the orthogonal direction Y. In the busbar 2 according to this embodiment, the side in the up-down direction Z that comes into contact with the cell bodies 102 is defined as the lower side, and the side opposite the lower side in the up-down direction Z is defined as the upper side.
[0013] The busbar module 1 in this embodiment is assembled into a battery module 100 as shown in FIG. 1. The battery module 100 is configured by modularizing a plurality of battery cells 101, such as secondary batteries, arranged in an arrangement direction X. The battery module 100 is mounted, for example, on an electric vehicle (EV) or a hybrid vehicle (HV, PHV), and is used to supply power to a rotating electric machine, which is a drive source, or to store (charge) power generated by the rotating electric machine. The battery module 100 can obtain a high output that meets the requirements of the vehicle by connecting, for example, a plurality of battery cells 101 in series.
[0014] Each battery cell 101 has a cell body 102 and two electrode terminals 103. The cell body 102 is the main part constituting the battery cell 101 and is formed, for example, in a substantially rectangular parallelepiped shape. The multiple electrode terminals 103 are provided on the cell body 102 in a state where they are exposed to the outside. Each battery cell 101 has, for example, a pair of electrode terminals 103 at both ends in the orthogonal direction Y. Of the pair of electrode terminals 103, the electrode terminal 103 located on one side in the orthogonal direction Y is a positive terminal, and the electrode terminal 103 located on the other side in the orthogonal direction Y is a negative terminal. In this embodiment, the multiple battery cells 101 in the battery module 100 form two rows of electrode terminal groups 104 spaced apart in the orthogonal direction Y, each row consisting of multiple electrode terminals 103 arranged side by side in the arrangement direction X. The battery module 100 functions as a desired power supply by assembling a busbar module 1 to an electrode terminal group 104, and connecting the electrode terminals 103 (positive terminals, negative terminals) of the multiple battery cells 101 in series or parallel via the busbar module 1. For example, to obtain a high output that meets the requirements of a vehicle (not shown) in which the battery module 100 is installed, the multiple battery cells 101 are connected in series.
[0015] The electrode terminal 103 according to this embodiment is formed, for example, in a cylindrical shape, and is disposed in the cell body 102 so as to protrude upward from the upper end surface of the cell body 102 in the vertical direction Z. A screw is formed on the outer peripheral surface of the cylindrical electrode terminal 103, and the bus bar 2 is fixed to the battery cell 101 by fastening a nut having a threaded hole that threads onto the screw while the electrode terminal 103 is inserted into the first connection through-holes 22AH, 22BH or the second connection through-holes 26AH, 26BH, which will be described later.
[0016] The busbar module 1 is used to connect multiple battery cells 101 in series or in parallel, and as shown in Fig. 1, includes multiple busbars 2, multiple housing cases 3, multiple voltage detection conductors 4, and a connector 5. The busbar module 1 outputs voltage information of the battery cells 101 connected to each busbar 2 via the voltage detection conductors 4 to the outside. The voltage information is output via the connector 5 to an ECU (Electronic Control Unit) (not shown) mounted on the vehicle, and the ECU uses the acquired voltage information for controlling the charging and discharging of the battery module 100, etc.
[0017] The busbar module 1 has a busbar 2 that electrically connects two electrode terminals 103 adjacent in the arrangement direction X when a plurality of battery cells 101 are connected in series or in parallel.
[0018] When viewed from the vertical direction Z, the busbar 2 is formed in a generally rectangular shape with a length in the arrangement direction X longer than a length in the orthogonal direction Y. In other words, the longitudinal direction of the busbar 2 is aligned with the arrangement direction X, and the lateral direction is aligned with the orthogonal direction Y.
[0019] The bus bar 2 electrically connects the electrode terminals 103 of the battery cells 101 arranged in the arrangement direction X, and includes a plurality of conductive members 20 formed in the shape of conductive plates and stacked in the vertical direction Z. More specifically, the conductive members 20 electrically connect the electrode terminals 103 of two battery cells 101 adjacent to each other in the arrangement direction X. The conductive members 20 include a first conductive member 21 and a second conductive member 25 located below the first conductive member 21 in the vertical direction Z.
[0020] 2, 4, 5, and 6, the first conductive member 21 has a first conductive member main body 22, a plurality of first protrusions 23, and a plurality of first through holes 24. The first conductive member main body 22 is formed in a rectangular shape and is composed of a pair of first rectangular portions 22A, 22B that are spaced apart in the arrangement direction X. The pair of first rectangular portions 22A, 22B are connected by the first protrusion 23 that extends along the arrangement direction X. In the first conductive member 21 that is located highest in the up-down direction Z, one end of the voltage detection conductor 4 is electrically connected to an upper surface 22f1 of the first conductive member main body 22.
[0021] Each of the first rectangular portions 22A, 22B has a first connection through hole 22AH, 22BH formed therein, which penetrates the first conductive member body 22 in the up-down direction Z and serves to electrically connect to the electrode terminal 103 of the battery cell 101. The first connection through holes 22AH, 22BH are elliptical in shape. More specifically, the first connection through holes 22AH, 22BH are elliptical in shape such that the length in the arrangement direction X is longer than the length in the orthogonal direction Y. The length of the first connection through holes 22AH, 22BH in the orthogonal direction Y is slightly longer than the diameter of the electrode terminal 103 when viewed from above, and the length of the first connection through holes 22AH, 22BH in the arrangement direction X is longer than the diameter of the electrode terminal 103 when viewed from above. For these reasons, the electrode terminals 103 of the battery cells 101 can be inserted into the first connection through-holes 22AH, 22BH, and with the electrode terminals 103 inserted into the first connection through-holes 22AH, 22BH, the electrode terminals 103 can move inside the first connection through-holes 22AH, 22BH in the arrangement direction X. Therefore, when heat generated when multiple battery cells 101 are electrically connected is applied to the bus bar 2, the first conductive members 21 move in the arrangement direction X relative to the battery cells 101.
[0022] The first protrusions 23 protrude upward in the vertical direction Z relative to the first conductive member main body 22. The first conductive member 21 according to this embodiment has three first protrusions 23. Each first protrusion 23 is formed in a plate shape extending along the arrangement direction X. Each first protrusion 23 is formed in a curved shape such that first end portions 23A, 23B in the arrangement direction X are positioned downward and a first central portion 23C in the arrangement direction X is positioned upward. Each first protrusion 23 has a first top convex curved surface 23f1 positioned upward in the vertical direction Z and a first bottom convex curved surface 23f2 positioned downward in the vertical direction Z (see FIG. 4).
[0023] The first top convex curved surface 23f1 and the first bottom convex curved surface 23f2 are spaced apart from one end to the other end in the arrangement direction X at a constant interval in the up-down direction Z, for example.
[0024] The first through holes 24 are positioned between adjacent first protrusions 23 in the orthogonal direction Y and penetrate the first conductive member main body 22 in the up-down direction Z. The first conductive member 21 according to this embodiment has two first through holes 24. Each first through hole 24 is formed in a rectangular shape. Furthermore, the first conductive member 21 according to this embodiment has the first protrusions 23 and the first through holes 24 arranged alternately in the orthogonal direction Y.
[0025] The first conductive member 21 is formed, for example, by performing a first punching process on a sheet of plate material to form the first connection through holes 22AH, 22BH and the first through hole 24, and then performing a bending process to form the first protrusion 23, and then performing a second punching process to punch it out of the sheet material.
[0026] For example, when the first conductive member 21 is formed using a plate material having a thickness in the vertical direction Z of t1 [mm] by the process described above, the thickness in the vertical direction Z of the first conductive member main body 22 will be t1 [mm], and the thickness in the vertical direction Z of the first protrusion 23 will be t1 [mm].
[0027] In the vertical direction Z, the first conductive member 21 located below and the first conductive member 21 located above have the same shape and size.
[0028] 3, 4, 5, and 7, second conductive member 25 has second conductive member main body 26, a plurality of second protrusions 27, and a plurality of second through holes 28. Second conductive member main body 26 is formed in a rectangular shape and is composed of a pair of second rectangular portions 26A, 26B that are spaced apart in arrangement direction X. The pair of second rectangular portions 26A, 26B are connected by second protrusion 27 that extends along arrangement direction X.
[0029] Each second rectangular portion 26A, 26B has a second connection through hole 26AH, 26BH formed therein, which penetrates the second conductive member body 26 in the up-down direction Z and electrically connects to the electrode terminal 103 of the battery cell 101. The second connection through holes 26AH, 26BH are elliptical. More specifically, the second connection through holes 26AH, 26BH are elliptical in shape such that the length in the arrangement direction X is longer than the length in the orthogonal direction Y. The length of the second connection through holes 26AH, 26BH in the orthogonal direction Y is slightly longer than the diameter of the electrode terminal 103 when viewed from above, and the length of the second connection through holes 26AH, 26BH in the arrangement direction X is longer than the diameter of the electrode terminal 103 when viewed from above. For these reasons, the electrode terminals 103 of the battery cells 101 can be inserted into the second connection through-holes 26AH, 26BH, and with the electrode terminals 103 inserted into the second connection through-holes 26AH, 26BH, the electrode terminals 103 can move inside the second connection through-holes 26AH, 26BH in the arrangement direction X. Therefore, when heat generated when multiple battery cells 101 are electrically connected is applied to the bus bar 2, the second conductive members 25 move in the arrangement direction X relative to the battery cells 101.
[0030] The second protrusions 27 protrude upward in the vertical direction Z relative to the second conductive member main body 26. The second conductive member 25 according to this embodiment has two second protrusions 27. Each second protrusion 27 is formed in a plate shape extending along the arrangement direction X. Each second protrusion 27 is formed in a curved shape such that second end portions 27A, 27B in the arrangement direction X are positioned downward and a second central portion 27C in the arrangement direction X is positioned upward. Each second protrusion 27 has a second top convex curved surface 27f1 positioned upward in the vertical direction Z and a second bottom convex curved surface 27f2 positioned downward in the vertical direction Z (see FIG. 5).
[0031] The second top convex curved surface 27f1 and the second bottom convex curved surface 27f2 are spaced apart at a constant interval in the up-down direction Z from one end to the other end in the arrangement direction X, for example.
[0032] The second through holes 28 penetrate the second conductive member main body 26 in the up-down direction Z, adjacent to the second protrusions 27 in at least one direction in the orthogonal direction Y. The second conductive member 25 according to this embodiment has three second through holes 28. Of the three second through holes 28, the second through hole 28 located in the center in the orthogonal direction Y is located between two second protrusions 27 adjacent to each other in the orthogonal direction Y. Of the three second through holes 28, the two second through holes 28 located at both ends in the orthogonal direction Y are adjacent to the second protrusions 27 in either direction in the orthogonal direction Y. Each second through hole 28 is formed in a rectangular shape. Furthermore, the second conductive member 25 according to this embodiment has the second protrusions 27 and the second through holes 28 arranged alternately in the orthogonal direction Y.
[0033] The second conductive member 25 is formed, for example, by performing a first punching process on a sheet of plate material to form the second connection through holes 26AH, 26BH and the second through hole 28, and then performing a bending process to form the second protrusion 27, and then performing a second punching process to punch it out of the sheet material.
[0034] For example, when the second conductive member 25 is formed using a plate material having a thickness in the vertical direction Z of t2 [mm] by the above-mentioned process, the thickness in the vertical direction Z of the second conductive member main body 26 will be t2 [mm], and the thickness in the vertical direction Z of the second protrusion 27 will be t2 [mm].
[0035] In the vertical direction Z, the second conductive member 25 located below and the second conductive member 25 located above have the same shape and size.
[0036] The housing case 3 shown in FIG. 1 is formed of an insulating synthetic resin, and has a pair of first opposing wall portions 31 that face each other in the orthogonal direction Y, a pair of second opposing wall portions 32 that face each other in the arrangement direction X, and a busbar housing space 3s that is formed by the pair of first opposing wall portions 31 and the pair of second opposing wall portions 32 and that houses the busbar 2.
[0037] The busbar module 1 in this embodiment has a plurality of accommodating cases 3, and forms two rows of accommodating case groups 300, each row consisting of a plurality of accommodating cases 3 arranged along the arrangement direction X, spaced apart in the orthogonal direction Y. The busbar module 1 forms a board arrangement space 300s in which a voltage detection conductor 4 is arranged, between the accommodating case group 300 located on one side of the orthogonal direction Y and the accommodating case group 300 located on the other side of the orthogonal direction Y.
[0038] One end of the voltage detection conductor 4 is electrically connected to each bus bar 2 , and the other end is connected to the connector 5 .
[0039] The other end of the voltage detection conductor 4 is electrically connected to the connector 5. The connector 5 electrically connects the other end of the voltage detection conductor 4 to, for example, the other end of an electric wire electrically connected to an ECU mounted on a vehicle. The voltage detection conductor 4 outputs voltage information of the battery cells 101 electrically connected to each bus bar 2 to the ECU, and is used for charging control of the battery module 100.
[0040] Next, a method for manufacturing the above-mentioned busbar 2 will be described. First, an operator determines the number of conductive members 20 to be used based on the specifications of the busbar module 1 to be manufactured and the requirements of the vehicle manufacturer, etc. In this embodiment, the number of conductive members 20 stacked in the vertical direction Z is four. More specifically, the number of first conductive members 21 is two, and the number of second conductive members 25 is two.
[0041] Next, the worker places the busbar module 1 on top of the battery module 100 in the vertical direction Z, and exposes the electrode terminals 103 of the battery cells 101 from the through holes formed in the busbar module 1 inside the accommodating case 3.
[0042] Next, the worker places the second conductive member 25 located lowest in the vertical direction Z inside the accommodating case 3. At this time, the worker inserts the electrode terminals 103 of the battery cells 101 into the second connection through-holes 26AH, 26BH of the second conductive member 25.
[0043] 8, the worker places the first conductive member 21 on top of the second conductive member 25 that is located lowest in the vertical direction Z. At this time, the worker inserts the electrode terminals 103 of the battery cell 101 into the first connection through-holes 22AH, 22BH of the first conductive member 21.
[0044] Next, the worker places the second conductive member 25 on the first conductive member 21. At this time, the worker inserts the electrode terminals 103 of the battery cell 101 into the second connection through-holes 26AH, 26BH of the second conductive member 25.
[0045] Next, the worker places the first conductive member 21 on the second conductive member 25. At this time, the worker inserts the electrode terminals 103 of the battery cell 101 into the first connection through-holes 22AH, 22BH of the first conductive member 21.
[0046] Then, with the electrode terminal 103 inserted through the first connection through-holes 22AH, 22BH and the second connection through-holes 26AH, 26BH, the worker fastens a nut having a threaded hole that screws onto a screw formed on the circumferential surface of the electrode terminal 103, thereby fixing the bus bar 2 to the battery cell 101 inside the storage case 3.
[0047] The worker repeats the above-described operations in the same steps to secure the bus bar 2 made up of multiple conductive members 20 to the battery cells 101 inside each storage case 3.
[0048] In the bus bar 2, the first conductive members 21 and the second conductive members 25 are alternately stacked in the vertical direction Z. Therefore, as shown in Fig. 5, the lower surface 22f2 of the first conductive member main body 22 of the first conductive member 21 and the second conductive member 25 contacts the upper surface 26f1 of the second conductive member main body 26, and the second protrusion 27 is inserted into the first through hole 24. When viewed from above in the vertical direction Z, a gap g1 is formed between the edge portion that forms the first through hole 24 and the second protrusion 27 in the orthogonal direction Y, as shown in Fig. 2.
[0049] Furthermore, in this embodiment, the thickness t1 [mm] of the first conductive member body 22 in the vertical direction Z and the thickness t2 [mm] of the second conductive member body 26 in the vertical direction Z are the same, and these thicknesses are denoted as t [mm]. If the height of the first top convex curved surface 23f1 relative to the top surface 22f1 of the first conductive member body 22 is denoted as x1 [mm], then x1 is equal to or less than t1(t). Furthermore, if the height of the first bottom convex curved surface 23f2 relative to the bottom surface 22f2 of the first conductive member body 22 is denoted as x2 [mm], then x2 is equal to or less than t1(t). Preferably, the height x2 [mm] of the first bottom convex curved surface 23f2 is equal to the height x1 of the first top convex curved surface 23f1.
[0050] Furthermore, as shown in Figure 4, the first conductive member 21 and the second conductive member 25 are configured such that the lower surface 26f2 of the second conductive member main body 26 is in contact with the upper surface 22f1 of the first conductive member main body 22, and the first protrusion 23 is inserted into the second through hole 28, and when viewed from above in the vertical direction Z, a gap g2 is formed between the edge forming the second through hole 28 in the perpendicular direction Y and the first protrusion 23, as shown in Figure 3.
[0051] Furthermore, as shown in Figure 4, the first conductive member 21 and the second conductive member 25 have a space s1 between the first bottom convex curved surface 23f2 of the first conductive member 21 located at the top in the vertical direction Z and the first top convex curved surface 23f1 of the first conductive member 21 located across the second conductive member 25 from the first conductive member 21.
[0052] Furthermore, when the height of second top convex curved surface 27f1 relative to top surface 26f1 of second conductive member body 26 is defined as x3 [mm], x3 is equal to or less than t2(t). Furthermore, when the height of second bottom convex curved surface 27f2 relative to bottom surface 26f2 of second conductive member body 26 is defined as x4 [mm], x4 is equal to or less than t1(t). Furthermore, height x4 [mm] of second bottom convex curved surface 27f2 is preferably the same as height x1 of second top convex curved surface 27f1.
[0053] Furthermore, as shown in Figure 5, the first conductive member 21 and the second conductive member 25 have a space s2 between the second bottom convex curved surface 27f2 of the second conductive member 25 located at the top in the vertical direction Z and the second top convex curved surface 27f1 of the second conductive member 25 located across the first conductive member 21 from the second conductive member 25.
[0054] The busbar 2 according to this embodiment has the following configuration. The first conductive members 21 and the second conductive members 25 are alternately stacked in the vertical direction Z, the lower surfaces 22f2 of the first conductive member bodies 22 are in contact with the upper surfaces 26f1 of the second conductive member bodies 26, and the second protrusions 27 are inserted into the first through-holes 24. Therefore, with the busbar 2 according to this embodiment, the first conductive members 21 and the second conductive members 25 can be brought out of contact with each other at the portions where the second protrusions 27 are inserted into the first through-holes 24, thereby reducing the contact area between the first conductive members 21 and the second conductive members 25. As a result, with the busbar 2 according to this embodiment, when heat generated when a plurality of battery cells 101 are electrically connected is applied to the busbar 2, the upper conductive members 20 are allowed to move relative to the lower conductive members 20 in the arrangement direction X, thereby preventing excessive thermal stress from being applied. Furthermore, first protrusion 23 of first conductive member 21 is located inside second through hole 28. Regarding first conductive member 21 and second conductive member 25, when the thickness of first conductive member 21 in the vertical direction Z and the thickness of second conductive member 25 in the vertical direction Z are t [mm] and the height of first top convex curved surface 23f1 relative to upper surface 22f1 of first conductive member main body 22 is x1 [mm], x1 is equal to or less than t. Therefore, busbar 2 according to this embodiment can effectively utilize the space of second through hole 28 of second conductive member 25 and prevent second protrusion 27 from protruding above first protrusion 23 in the vertical direction Z. Additionally, the height of busbar 2 according to this embodiment in the vertical direction Z is calculated by multiplying the thickness of first conductive member main body 22 in the vertical direction Z and the thickness of second conductive member main body 26 in the vertical direction Z by the number of conductive members 20, and then adding the height x1 of first top convex curved surface 23f1 in the vertical direction Z. As a result, the busbar 2 according to this embodiment can be made smaller in size in the vertical direction Z.
[0055] The busbar 2 according to this embodiment has the following configuration. The conductive member 20 includes at least two first conductive members 21 and at least one second conductive member 25. The first conductive members 21 and the second conductive member 25 have a space s1 between a first bottom convex curved surface 23f2 of the first conductive member 21 located at the top in the vertical direction Z and a first top convex curved surface 23f1 of the first conductive member 21 located on either side of the first conductive member 21 with the second conductive member 25 interposed therebetween, and the first protrusion 23 of the first conductive member 21 located lower in the vertical direction Z is located inside the second through-hole 28. Therefore, when the busbar 2 according to this embodiment is formed using at least three conductive members 20, the first protrusion 23 of the first conductive member 21 located below is located inside the second through-hole 28, and a space s1 is provided between the first top convex curved surface 23f1 of the first conductive member 21 located below and the first bottom convex curved surface 23f2 of the first conductive member 21 located above. As a result, when the busbar 2 according to this embodiment is formed using at least three conductive members 20, the first top convex curved surface 23f1 of the first conductive member 21 located below and the first bottom convex curved surface 23f2 of the first conductive member 21 located above can be kept out of contact with each other. Therefore, the busbar 2 according to this embodiment can keep a portion of the first conductive member 21 located below and a portion of the first conductive member 21 located above out of contact with each other. Therefore, when heat generated when a plurality of battery cells 101 are electrically connected is applied to the busbar 2, the first conductive member 21 located above is allowed to move relative to the first conductive member 21 located below in the arrangement direction X, thereby preventing excessive thermal stress from being applied.
[0056] The busbar 2 according to this embodiment has the following configuration: The first conductive members 21 and the second conductive members 25 have a space s2 between the second bottom convex curved surface 27f2 of the second conductive member 25 located above in the vertical direction Z and the second top convex curved surface 27f1 of the second conductive member 25 located on either side of the first conductive member 21 relative to the second conductive member 25, and the second protrusion 27 of the second conductive member 25 located below in the vertical direction Z is located inside the first through hole 24. Therefore, when the busbar 2 according to this embodiment is formed by at least two first conductive members 21 and two second conductive members 25, the second protrusion 27 of the second conductive member 25 located below is located inside the first through hole 24, and a space s2 is provided between the second top convex curved surface 27f1 of the second conductive member 25 located below and the second bottom convex curved surface 27f2 of the second conductive member 25 located above. As a result, when the busbar 2 according to this embodiment is formed of at least two first conductive members 21 and two second conductive members 25, the second top convex curved surface 27f1 of the lower second conductive member 25 can be kept out of contact with the second bottom convex curved surface 27f2 of the upper second conductive member 25. Therefore, the busbar 2 according to this embodiment can keep a part of the lower second conductive member 25 out of contact with a part of the upper second conductive member 25. Therefore, when heat generated when a plurality of battery cells 101 are electrically connected is applied to the busbar 2, the upper second conductive member 25 is allowed to move relative to the lower second conductive member 25 in the arrangement direction X, thereby preventing excessive thermal stress from being applied.
[0057] The busbar 2 according to this embodiment has the following configuration. In the vertical direction Z, the first conductive member 21 located below and the first conductive member 21 located above have the same shape and size. Therefore, the busbar 2 according to this embodiment can reduce the unit cost of parts when the first conductive members 21 are mass-produced.
[0058] The busbar 2 according to this embodiment has the following configuration. In the vertical direction Z, the second conductive member 25 located below and the second conductive member 25 located above have the same shape and size. Therefore, the busbar 2 according to this embodiment can reduce the unit cost of parts when the second conductive members 25 are mass-produced.
[0059] In the above-described embodiment, the busbar 2 has been described as having two first conductive members 21 and two second conductive members 25. However, the busbar 2 according to this embodiment is not limited to this, and the busbar 2 may be configured with one first conductive member 21 and one second conductive member 25. Of course, the busbar 2 according to this embodiment is not limited to this, and may be configured with three or more first conductive members 21 and three or more second conductive members 25.
[0060] Furthermore, in the busbar 2 according to the above-described embodiment, the number of first conductive members 21 and the number of second conductive members 25 have been described as being the same. However, the busbar 2 according to the present embodiment is not limited to this, and the number of first conductive members 21 and the number of second conductive members 25 may be different.
[0061] Furthermore, in the busbar 2 according to the above embodiment, the first conductive member 21 has three first protrusions 23 and two first through holes 24, and the second conductive member 25 has two second protrusions 27 and three second through holes 28. However, the busbar 2 according to the present embodiment is not limited to this, and the numbers of first protrusions 23 and first through holes 24, as well as the numbers of second protrusions 27 and second through holes 28, can be changed as appropriate. However, in order to insert the first protrusions 23 into the second through holes 28, the number of first protrusions 23 in the first conductive member 21 and the number of second through holes 28 in the second conductive member 25 must be the same. Furthermore, in order to insert the second protrusions 27 into the first through holes 24, the number of first through holes 24 in the first conductive member 21 and the number of second protrusions 27 in the second conductive member 25 must be the same.
[0062] Furthermore, the first through hole 24 according to the above-described embodiment has been described as being located between adjacent first protrusions 23 in the orthogonal direction Y. However, the first through hole 24 according to the present embodiment is not limited to this, and it is sufficient that the first through hole 24 is adjacent to a first protrusion 23 in at least one direction in the orthogonal direction Y.
[0063] In the busbar 2 according to the above-described embodiment, where the thickness of the first conductive member body 22 in the vertical direction Z and the thickness of the second conductive member body 26 in the vertical direction Z are t [mm] and the height of the first top convex curved surface 23f1 relative to the upper surface 22f1 of the first conductive member body 22 is x1 [mm], x1 is equal to or less than t. However, the busbar 2 according to the present embodiment is not limited thereto, and the height x1 [mm] of the first top convex curved surface 23f1 relative to the upper surface 22f1 of the first conductive member body 22 may be less than t. If the height x1 [mm] of the first top convex curved surface 23f1 relative to the upper surface 22f1 of the first conductive member body 22 is less than t, the busbar 2 having this configuration can be reliably downsized in the vertical direction Z.
[0064] Furthermore, in the busbar 2 according to the above embodiment, when the height x2 [mm] of the first bottom convex curved surface 23f2 relative to the lower surface 22f2 of the first conductive member main body 22 is set to x2, x2 is equal to or less than t. However, the busbar 2 according to the present embodiment is not limited to this, and the height x2 [mm] of the first bottom convex curved surface 23f2 relative to the lower surface 22f2 of the first conductive member main body 22 may be less than t. If the height x2 [mm] of the first bottom convex curved surface 23f2 relative to the lower surface 22f2 of the first conductive member main body 22 is less than t, the busbar 2 having this configuration can be reliably made smaller in size in the vertical direction Z.
[0065] In the busbar 2 according to the above-described embodiment, when the thickness of the first conductive member body 22 in the vertical direction Z and the thickness of the second conductive member body 26 in the vertical direction Z are t [mm] and the height of the second top convex curved surface 27f1 relative to the upper surface 26f1 of the second conductive member body 26 is x3 [mm], x3 is equal to or less than t. However, the busbar 2 according to the present embodiment is not limited thereto, and the height x3 [mm] of the second top convex curved surface 27f1 relative to the upper surface 26f1 of the second conductive member body 26 may be less than t. If the height x3 [mm] of the second top convex curved surface 27f1 relative to the upper surface 26f1 of the second conductive member body 26 is less than t, the busbar 2 having this configuration can be reliably downsized in the vertical direction Z.
[0066] Furthermore, in the busbar 2 according to the above embodiment, when the height x4 [mm] of the second bottom convex curved surface 27f2 relative to the lower surface 26f2 of the second conductive member main body 26 is set to x4, x4 is equal to or less than t. However, the busbar 2 according to the present embodiment is not limited to this, and the height x4 [mm] of the second bottom convex curved surface 27f2 relative to the lower surface 26f2 of the second conductive member main body 26 may be less than t. If the height x2 [mm] of the second bottom convex curved surface 27f2 relative to the lower surface 26f2 of the second conductive member main body 26 is less than t, the busbar 2 having this configuration can be reliably made smaller in size in the vertical direction Z. [Explanation of symbols]
[0067] 2 busbars 20 Conductive material 21 First conductive member 22 First conductive member body 22f1 Upper surface of the first conductive member body 22 22f2 Lower surface of the first conductive member body 22 23 1st protrusion 23f1 First top convex surface 23f2 1st bottom convex curved surface 24 First through hole 25 Second conductive member 26 Second conductive member body 26f1 Upper surface of the second conductive member body 26 26f2 Lower surface of second conductive member body 26 27 Second protrusion 27f1 Second top convex surface 27f2 2nd bottom convex curved surface 28 Second through hole g1: A gap formed between the edge portion forming the first through hole 24 and the second protrusion 27 in the orthogonal direction Y g2: A gap formed between the edge portion forming the second through hole 28 and the first protrusion 23 in the orthogonal direction Y s1: a space provided between the first bottom convex curved surface 23f2 of the first conductive member 21 located at the top in the vertical direction Z and the first top convex curved surface 23f1 of the first conductive member 21 located with the second conductive member 25 sandwiched between the first conductive member 21 s2: a space provided between second bottom convex curved surface 27f2 of second conductive member 25 located above in the vertical direction Z and second top convex curved surface 27f1 of second conductive member 25 located across first conductive member 21 from second conductive member 25 t1(t) Thickness of the first conductive member body 21 in the vertical direction t2(t) Thickness of the second conductive member body 25 in the vertical direction x1: Height of the first top convex curved surface relative to the top surface of the first conductive member body x2: Height of the first bottom convex curved surface relative to the bottom surface of the first conductive member body x3 Height of the second top convex curved surface relative to the top surface of the second conductive member body x4 Height of the second bottom convex curved surface relative to the bottom surface of the second conductive member body X array direction Y orthogonal direction Z vertical direction
Claims
1. the battery pack includes a plurality of conductive members formed in the shape of conductive plates and stacked in a vertical direction, the conductive members electrically connecting the electrode terminals of the plurality of battery cells arranged in an arrangement direction, The conductive member is a first conductive member; a second conductive member located below the first conductive member in the up-down direction; and The first conductive member is a first conductive member body; a plurality of first protrusions protruding upward in the up-down direction from the first conductive member main body; a first through hole that penetrates the first conductive member main body in the up-down direction and is adjacent to the first protrusion in an orthogonal direction that is orthogonal to the arrangement direction of the battery cells and the up-down direction; and Each of the first protrusions has a first top convex curved surface located at an upper position in the vertical direction and a first bottom convex curved surface located at a lower position in the vertical direction, The second conductive member is a second conductive member body; a plurality of second protrusions protruding upward in the up-down direction from the second conductive member main body; a second through-hole that penetrates the second conductive member main body in the up-down direction adjacent to the second protrusion in at least one of the orthogonal directions of the battery cell; and Each of the second protrusions has a second top convex curved surface located at an upper position in the vertical direction and a second bottom convex curved surface located at a lower position in the vertical direction, The first conductive member and the second conductive member are the first conductive member bodies are alternately stacked in the vertical direction, the lower surface of the first conductive member body is in contact with the upper surface of the second conductive member body, and the second protruding portion is inserted into the first through hole, and when viewed from above in the vertical direction, a gap is formed between an edge portion that forms the first through hole and the second protruding portion in the orthogonal direction, a thickness of the first conductive member body in the vertical direction and a thickness of the second conductive member body in the vertical direction are defined as t [mm]; A busbar characterized in that, when the height of the first top convex curved surface relative to the top surface of the first conductive member body is x1 [mm], x1 is equal to or less than t.
2. When the height of the first top convex curved surface relative to the upper surface of the first conductive member body is x1 [mm], x1 is less than t. The busbar of claim 1 .
3. the conductive member includes at least two first conductive members and at least one second conductive member; the first conductive member and the second conductive member have a space between the first bottom convex curved surface of the first conductive member located at the top in the up-down direction and the first top convex curved surface of the first conductive member located with the second conductive member sandwiched between the first conductive member and the first conductive member; the first protruding portion of the first conductive member located lower in the up-down direction is located inside the second through hole; The bus bar according to claim 1 or 2.
4. In the vertical direction, the first conductive member located at the lower position and the first conductive member located at the upper position have the same shape and size. The bus bar according to claim 3 .
Citation Information
Patent Citations
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DE102006015566A1
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DE202009009607U1
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EP2535965A1