Connection structure, assembly, and operating jig
The connection structure with busbars, a connecting member, and an elastic member addresses the issue of inconsistent contact pressure in battery module connections, ensuring reliable electrical contact and cost-effective assembly.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- YAZAKI CORP
- Filing Date
- 2024-01-10
- Publication Date
- 2026-04-28
AI Technical Summary
Existing connection structures between battery modules and devices, such as those described in Patent Document 1, often fail to ensure consistent contact pressure at the conduction portions, leading to potential connectivity issues and increased part costs.
A connection structure comprising a first and second busbar with through holes, a connecting member with protruding portions, and an elastic member that ensures contact pressure by biasing the busbars together, facilitating easy assembly and verification of connection states.
The solution provides reliable contact pressure between busbars, simplifies assembly, reduces the need for high fastening forces, and lowers part costs while ensuring secure electrical connections, particularly in high-voltage applications.
Smart Images

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Abstract
Description
Technical Field
[0001] Embodiments of the present invention relate to a connection structure, an assembly, and an operation jig.
Background Art
[0002] It is widely known that a battery pack as a power supply is connected to a device. For example, Patent Document 1 discloses that a battery module is connected to a fuse contact unit of an electric vehicle.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the assembly disclosed in Patent Document 1, male power supply side terminal portions provided in a battery module are detachably attached to each of a plurality of female power receiving side terminal portions connected to a fuse contact unit. However, in such a connection structure using terminal portions, it may not be possible to ensure the contact pressure of the conduction portions of both units.
[0005] An embodiment of the present invention provides a connection structure, an assembly, and an operation jig that can easily ensure the contact pressure of the conduction portion.
Means for Solving the Problems
[0006] A connecting structure according to one embodiment of the present invention comprises: a first busbar having a first opposing surface, a first pressed surface on the back side of the first opposing surface, and a first through hole penetrating from the first pressed surface to the first opposing surface in a penetrating direction intersecting the first opposing surface; a second busbar having a second opposing surface facing the first opposing surface, a second pressed surface on the back side of the second opposing surface, and a second through hole penetrating from the second opposing surface to the second pressed surface in the penetrating direction; a connecting member having a first end and a second end, a shaft portion extending from the first end to the second end in the penetrating direction so as to communicate the first through hole and the second through hole, a first protruding portion extending radially from the first end to the shaft portion, and a second protruding portion extending radially; and an elastic member through which the shaft portion passes, wherein the first through hole has a cross-sectional shape along the circumference of a virtual circle, and the first pair The shaft is defined by a first circumferential surface extending from the opposing surface to the first pressed surface and a first concave surface extending from the first opposing surface to the first pressed surface with a cross-sectional shape recessed from the circumference, the second through hole is defined by a second circumferential surface extending from the second opposing surface to the second pressed surface with a cross-sectional shape along the circumference and a second concave surface extending from the second opposing surface to the second pressed surface with a cross-sectional shape recessed from the circumference, the elastic member has an outer diameter larger than the circumference and an inner diameter smaller than at least the maximum diameter of the first protruding portion, the second protruding portion is insertable into the first through hole and the second through hole while fitting into the recess defined by the first concave surface and the second concave surface, and the second protruding portion overlaps with the second pressed surface when viewed from the through direction. [Effects of the Invention]
[0007] According to one embodiment of the present invention, the connection structure, assembly, and operating jig make it easier to ensure contact pressure at the conductive parts. [Brief explanation of the drawing]
[0008] [Figure 1] This is a perspective view of the assembly before fastening according to each embodiment. [Figure 2] This is a perspective view of the connection structure before connection according to the first embodiment. [Figure 3] This is a plan view of the connection structure before connection according to the first embodiment. [Figure 4] This is a perspective view of the connecting member and elastic member according to the first embodiment. [Figure 5] This is a perspective view of the connection structure after connection according to the first embodiment. [Figure 6] This is a plan view of the connection structure after connection according to the first embodiment. [Figure 7] This is a perspective view of an assembly according to a modified example of the first embodiment. [Figure 8] This is a perspective view of the connection structure before connection according to the second embodiment. [Figure 9] This is a perspective view of the connection structure after connection according to the second embodiment. [Figure 10] This is a perspective view of the connection structure and operating jig according to the third embodiment. [Figure 11] This is a perspective view of the bar according to the third embodiment. [Figure 12] This is a plan view of a part of the connection structure and operating jig according to the third embodiment. [Figure 13] This is a plan view of the connection structure before connection according to the third embodiment. [Figure 14] This is a plan view of the connection structure after connection according to the third embodiment. [Figure 15] This is a plan view of an arc-shaped opening and connection structure according to a modified example of the third embodiment. [Figure 16] This is a perspective view of a part of the operating jig according to a modified example of the third embodiment. [Modes for carrying out the invention]
[0009] <First Embodiment> The following describes a connection structure and assembly of one embodiment with reference to the figures.
[0010] (Assembly structure) As shown in FIG. 1, the assembly 9 of the present embodiment includes a plurality of connection structures 1, a device 91, a battery pack 92, and a fastening member 93. The device 91 and the battery pack 92 are fastened by the fastening member 93, whereby the assembly 9 is unitized. For example, the assembly 9 may be mounted on a mobility unit such as an electric vehicle.
[0011] (Device) The device 91 receives and supplies power to and from the battery pack 92. For example, the device 91 may be a high-voltage device such as a high-voltage J / B (junction box), an OBC (on-board charger), or a DC-DC converter. The device 91 has a first installation surface 94 on the side facing the battery pack 92.
[0012] Hereinafter, the direction in which the first installation surface 94 faces is defined as the Z direction. Hereinafter, the Z direction is also referred to as the "penetration direction". Also, in the plane facing the Z direction, the directions intersecting each other are defined as the X direction and the Y direction. Hereinafter, the X direction is also referred to as the "parallel direction". For example, the X direction, the Y direction, and the Z direction may be perpendicular to each other. For example, the Z direction may be the "vertical direction". For example, the first installation surface 94 may be a flat surface facing downward.
[0013] The first installation surface 94 is an insulating surface made of an insulator material. For example, the first installation surface 94 may be an insulating housing, a cover having partial insulation, or the like.
[0014] The device 91 has flange portions 96 protruding on both sides in the X direction. The device 91 and the battery pack 92 are fastened together by a fastening member 93 passing through the flange portions 96.
[0015] (Configuration of Battery Pack) The battery pack 92 includes a plurality of battery cells. The battery pack 92 has a second installation surface 97 on the side facing the device 91. The second installation surface 97 faces the first installation surface 94. For example, the second installation surface 97 may be a flat surface facing upward.
[0016] The battery pack 92 has a screw hole 92h on the second mounting surface 97. The fastener 93, which passes through the flange portion 96, is tightened into the screw hole 92h.
[0017] The second mounting surface 97 is an insulating surface made of an insulating material. For example, the second mounting surface 97 may be an insulating housing, a partially insulating cover, or the like.
[0018] (Connection structure configuration)
[0019] The multiple connection structures 1 are structures for electrically connecting the device 91 and the battery pack 92. The multiple connection structures 1 are arranged in parallel. Each connection structure 1 is provided extending from the first mounting surface 94 to the second mounting surface 97.
[0020] As shown in Figure 2, each connection structure 1 comprises an equipment busbar 2 (first busbar), a battery busbar 3 (second busbar), a connecting member 4, and an elastic member 5.
[0021] (Structure of the equipment busbar) The equipment busbar 2 is a conductive part connected to the equipment 91. Specifically, the equipment busbar 2 is electrically connected to an electrode included in the equipment 91. Multiple equipment busbars 2 are arranged in the X direction and provided on the first mounting surface 94. The equipment busbars 2 extend in the Y direction while in contact with the first mounting surface 94. For example, the equipment busbars 2 may protrude from the equipment 91 in the +Y direction. The equipment busbars 2 are made of a conductive material such as copper or aluminum.
[0022] The equipment busbar 2 has a first opposing surface 21, a first pressed surface 22, and a first through hole 23.
[0023] The first opposing surface 21 is the surface for contacting the battery busbar 3. The first opposing surface 21 has a plane parallel to the XY plane that extends in the Y direction. The first opposing surface 21 is the plate surface on the -Z direction side of the plate surface of the equipment busbar 2.
[0024] The first pressed surface 22 is the surface that is pressed against the battery busbar 3 by the connecting member 4 when the equipment busbar 2 and the battery busbar 3 are connected by the connecting member 4. The first pressed surface 22 is the back surface of the first opposing surface 21. The first pressed surface 22 has a plane parallel to the XY plane that extends in the Y direction. The first pressed surface 22 is the plate surface of the equipment busbar 2 on the +Z direction side.
[0025] The first through-hole 23 is a hole through which the connecting member 4 passes. The first through-hole 23 penetrates in the Z direction from the first pressed surface 22 to the first opposing surface 21. As shown in Figure 3, the first through-hole 23 is defined by the first circumferential surface 23a and a pair of first concave surfaces 23b.
[0026] The first circumferential surface 23a has a cross-sectional shape that follows the circumference of the virtual circle CC and extends from the first opposing surface 21 to the first pressed surface 22.
[0027] The pair of first concave surfaces 23b are aligned in the X direction. The pair of first concave surfaces 23b face each other in the X direction. Each first concave surface 23b has a cross-sectional shape that is recessed in the X direction, away from the circumference of the virtual circle CC, and extends in the Z direction from the first opposing surface 21 to the first pressed surface 22. For example, each first concave surface 23b may be recessed in a rectangular shape from the circumference of the virtual circle CC when viewed from the Z direction.
[0028] The first through-hole 23 defined in this way may, for example, have a keyhole shape.
[0029] (Battery busbar structure) The battery busbar 3 is a conductive part connected to the battery pack 92. Specifically, the battery busbar 3 is electrically connected to electrodes included in the battery pack 92. Multiple battery busbars 3 are arranged in the X direction and provided on the second mounting surface 97. The battery busbars 3 extend in the Y direction on the second mounting surface 97. In the portion extending in the Y direction, the battery busbars 3 face the corresponding equipment busbar 2.
[0030] For example, the battery busbar 3 may protrude from the device 91 in the +Y direction. Furthermore, beyond the protruding portion, the battery busbar 3 may extend in the +Y direction while curving, having a step in the +Z direction along its length. The battery busbar 3 is formed of a conductive material such as copper or aluminum.
[0031] As shown in Figure 2, the battery busbar 3 has a second opposing surface 31, a second pressure-receiving surface 32, and a second through-hole 33.
[0032] The second opposing surface 31 is a surface that is made to contact the first opposing surface 21. The second opposing surface 31 has a plane parallel to the XY plane that extends in the Y direction, at least at a position facing the first opposing surface 21 in the Z direction. The second opposing surface 31 is the plate surface of the battery busbar 3 that is on the +Z direction side.
[0033] The second pressure surface 32 is the surface that is pressed against the first opposing surface 21 by the connecting member 4 when the equipment busbar 2 and the battery busbar 3 are connected by the connecting member 4. The second pressure surface 32 is the back surface of the second opposing surface 31. The second pressure surface 32 has a plane parallel to the XY plane extending in the Y direction, at least at a position where the second opposing surface 31 faces the first opposing surface 21 in the Z direction. The second pressure surface 32 is the plate surface on the -Z side of the plate surface of the battery busbar 3.
[0034] The second through-hole 33 is a hole through which the connecting member 4 passes. The second through-hole 33 extends in the Z direction from the second opposing surface 31 to the second pressed surface 32. Specifically, as shown in Figure 3, the second through-hole 33 is defined by the second circumferential surface 33a and a pair of second concave surfaces 33b.
[0035] The second circumferential surface 33a has a cross-sectional shape that follows the circumference of the virtual circle CC and extends from the second opposing surface 31 to the second pressed surface 32. For example, the second circumferential surface 33a may be coaxial with the first circumferential surface 23a and have the same diameter.
[0036] The pair of second concave surfaces 33b are aligned in the X direction. The pair of second concave surfaces 33b face each other in the X direction. Each second concave surface 33b has a cross-sectional shape that is recessed in the X direction, away from the circumference of the virtual circle CC, and extends from the second opposing surface 31 to the second pressed surface 32. For example, the pair of second concave surfaces 33b may be in the same position in the X and Y directions as the pair of first concave surfaces 23b, and have the same shape with the same dimensions in the X and Y directions. For example, each second concave surface 33b may be recessed in a rectangular shape from the circumference of the virtual circle CC when viewed from the Z direction.
[0037] The second through-hole 33 defined in this way may have, for example, the same keyhole shape as the first through-hole 23.
[0038] (Structure of connecting members) The connecting member 4 is a member for connecting the equipment busbar 2 and the battery busbar 3. As shown in Figures 3 and 4, the connecting member 4 comprises a shaft portion 41, a first protruding portion 42, and a second protruding portion 43. The connecting member 4 is made of a metal material.
[0039] The shaft portion 41 has a first end 41a and a second end 41b. The shaft portion 41 extends in the Z direction from the first end 41a to the second end 41b. The shaft portion 41 extends in the Z direction through the first through hole 23 and the second through hole 33 so as to connect the first through hole 23 and the second through hole 33. Specifically, the shaft portion 41 has a cylindrical shape. This cylindrical shape has an outer diameter smaller than the inner diameters of the first through hole 23 and the second through hole 33, and an axial length in the AX direction that is longer than the combined length of the hole length of the first through hole 23 and the hole length of the second through hole 33.
[0040] The first protruding portion 42 extends radially DR from the first end 41a, which is the radial direction of the shaft portion 41. For example, the first protruding portion 42 may be integrally formed with the shaft portion 41. For example, the first protruding portion 42 may have a maximum diameter greater than the maximum diameter of the first through hole 23. For example, the first protruding portion 42 may have a maximum diameter greater than the maximum diameter of the second through hole 33. The first protruding portion 42 has a first disc portion 421 and a pair of first projections 422.
[0041] The first disc portion 421 has a disc shape. For example, the first disc portion 421 may have an outer diameter larger than the diameter of the first circumferential surface 23a of the first through hole 23. For example, the first disc portion 421 may have an outer diameter larger than the diameter of the second circumferential surface 33a of the second through hole 33. For example, the first disc portion 421 may have an outer diameter larger than the inner circumferential diameter DA5 of the elastic member 5.
[0042] The pair of first protrusions 422 project in opposite directions from each other. Each first protrusion 422 projects from the first disc portion 421 in one direction radially DR. For example, each first protrusion 422 may project from the first disc portion 421 in a rectangular shape when viewed from the Z direction.
[0043] The second protrusion 43 extends radially DR from the first end 41a. For example, the second protrusion 43 may be integrally formed with the shaft portion 41. The second protrusion 43 has a second disc portion 431 and a pair of second projections 432. Viewed from the Z direction, the contour of the second protrusion 43 has a similar shape to the contour of the first protrusion 42. The contour of the second protrusion 43 is slightly smaller than the contour of the first protrusion 42 so that it fits within the contour of the first protrusion 42.
[0044] The second disc portion 431 has a disc shape. The second disc portion 431 has an outer diameter smaller than the circumference of the virtual circle CC. For example, the second disc portion 431 may have an outer diameter slightly smaller than the diameter of the first circumferential surface 23a of the first through hole 23. For example, the second disc portion 431 may have an outer diameter slightly smaller than the diameter of the second circumferential surface 33a of the second through hole 33.
[0045] The pair of second protrusions 432 project in opposite directions from each other. Each second protrusion 432 projects radially DR from the second disc portion 431. Each second protrusion 432 projects in one direction radially DR from which the corresponding first protrusion 422 projects.
[0046] The pair of second protrusions 432 protrude in a shape that fits into a pair of recesses CV defined by a pair of first recesses 23b and a pair of second recesses 33b.
[0047] For example, each second projection 432 may protrude from the second disc portion 431 in a rectangular shape when viewed from the Z direction. For example, each second projection 432 may have a projection width smaller than the recess width of the corresponding first concave surface 23b when viewed from the Z direction. For example, each second projection 432 may have a projection length smaller than the recess depth of the corresponding first concave surface 23b when viewed from the Z direction. For example, each second projection 432 may have a projection width smaller than the recess width of the corresponding second concave surface 33b when viewed from the Z direction. For example, each second projection 432 may have a projection length smaller than the recess depth of the corresponding second concave surface 33b when viewed from the Z direction.
[0048] At the first rotational position RP1 of the shaft portion 41 around the axis AX, each second protruding portion 43 can be inserted into the first through hole 23 and the second through hole 33 while fitting into the corresponding recess CV of the pair of recesses CV.
[0049] On the other hand, as shown in Figures 5 and 6, at the second rotation position RP2 around the axis AX, the second protruding portion 43 overlaps with the second pressure surface 32 when viewed from the Z direction. Specifically, at the second rotation position RP2, a portion of the second protruding portion 43 having a pair of second projections 432 overlaps with the second pressure surface 32 when viewed from the Z direction. Due to this overlap, at the second rotation position RP2, the connecting member 4 does not come out of the battery busbar 3 in the +Z direction, but instead catches on the second pressure surface 32.
[0050] Furthermore, the first protruding portion 42 has a shape that prevents it from entering the first through-hole 23, regardless of the presence or absence of the elastic member 5, from the first rotation position RP1 to the second rotation position RP2, and has a shape that interferes with the first through-hole 23.
[0051] (Structure of elastic members) The elastic member 5 is a member that provides a biasing force to press the equipment busbar 2 toward the battery busbar 3 when the equipment busbar 2 and battery busbar 3 are connected by the connecting member 4. As shown in Figures 3 and 4, the shaft portion 41 of the connecting member 4 passes through the elastic member 5. The elastic member 5 has an outer diameter DB5 that is larger than the circumference of the virtual circle CC. The elastic member 5 also has an inner diameter DA5 that is smaller than at least the maximum diameter of the first protruding portion 42. As described above, for example, the inner diameter DA5 may be smaller than the diameter of the first disc portion 421 of the first protruding portion 42. For example, the elastic member 5 may be made of a conductive material such as metal.
[0052] For example, the elastic member 5 may be a coil spring that extends coaxially with the shaft portion 41 and rotates in the direction of the axis AX. For example, the coil spring may be inserted into the shaft portion 41 by being pushed and rotated from one end of the connecting member 4. For example, the coil spring may be inserted into the shaft portion 41 while its diameter is expanded by twisting both ends in opposite directions.
[0053] (Connection method) First, the worker, with the second protruding portion 43 facing the first pressed surface 22, inserts the connecting member 4 into the first through hole 23 and the second through hole 33 from the first pressed surface 22 side at the first rotation position RP1, thereby connecting the connecting member 4 to the first through hole 23 and the second through hole 33.
[0054] Here, the elastic member 5 is larger than the circumference of the virtual circle CC. That is, since the elastic member 5 has an outer diameter DB5 that is larger than the diameter of the first circumferential surface 23a of the first through hole 23, when inserted, the elastic member 5 is compressed in the axial direction AX between the first protruding portion 42 and the first pressed surface 22. On the other hand, when inserted, the elastic member 5 biases the first pressed surface 22 so as to press it toward the battery busbar 3.
[0055] The worker further inserts the connecting member 4 against the biasing force of the elastic member 5 until the second protruding portion 43 protrudes from the second pressed surface 32. Once the second protruding portion 43 is protruding, the worker rotates the inserted connecting member 4 around the axis AX relative to the equipment busbar 2 and the battery busbar 3 so that it moves from the first rotation position RP1 to the second rotation position RP2 as shown in Figures 5 and 6.
[0056] (Mechanism of Action and Effects) According to this embodiment, the connection structure 1 allows the equipment busbar 2 and the battery busbar 3 to be connected by the connecting member 4 such that the first opposing surface 21 and the second opposing surface 31 are in surface contact, with the elastic member 5 provided between the first protruding portion 42 and the first pressed surface 22. With this connection structure 1, the elastic member 5 biases the equipment busbar 2 toward the battery busbar 3, while the inserted connecting member 4 maintains the connection between the equipment busbar 2 and the battery busbar 3. Therefore, the connection structure 1 makes it easier to ensure contact pressure between the equipment busbar 2, which acts as the first busbar, and the battery busbar 3, which acts as the second busbar.
[0057] As a comparative example, let's assume the structure of the assembly is such that, as disclosed in Patent Document 1, a connector is provided on the battery pack, and the vehicle-side connector and the battery-side connector are connected when the battery pack is attached to the vehicle body. With such a comparative example structure, if there are multiple connection points, the mating state of each connector cannot be confirmed, there may be partially mated connectors, a very large insertion force may be required when connecting all at once, and the cost of parts may be high.
[0058] In contrast to this comparative example, in the assembly 9 of this embodiment, the elastic member 5 biases the equipment busbar 2 toward the battery busbar 3, while the inserted connecting member 4 maintains the connection between the equipment busbar 2 and the battery busbar 3. Due to this structure, even when there are multiple connection points, it is easy to ensure contact pressure between each equipment busbar 2 and the associated battery busbar 3 while suppressing fastening pressure and the number of parts.
[0059] In particular, when the device 91 is a high-voltage device, the electrical connection between the device 91 and the battery pack 92 will consist largely of electrical connections between busbars. Therefore, ensuring contact pressure between the device busbar 2 and the battery busbar 3, as in this embodiment, is effective.
[0060] Furthermore, according to this embodiment, the first disc portion 421 has an outer diameter larger than the diameter of the first circumferential surface 23a of the first through hole 23. Due to this outer diameter, the first disc portion 421 is less likely to fit into the first through hole 23. Therefore, with the connection structure 1, it is easier to connect the equipment busbar 2, which is the first busbar, and the battery busbar 3, which is the second busbar, and it is easier to ensure contact pressure.
[0061] Furthermore, according to this embodiment, the second protrusion 432 protrudes in the same radial direction as the first protrusion 422. That is, the first protrusion 422 and the second protrusion 432 protrude in the same radial direction DR. With this protrusion structure, the relationship between the rotational position of the second protrusion 432 and the second through-hole 33 can be easily estimated by visually observing the relationship between the rotational position of the first protrusion 422 and the first through-hole 23. Therefore, it is easy to confirm the connection state between the equipment busbar 2, which is the first busbar, and the battery busbar 3, which is the second busbar, by the connecting member 4.
[0062] Furthermore, according to this embodiment, the first protruding portion 42 and the second protruding portion 43 have similar shapes when viewed from the Z direction. Due to these similar shapes, it is easy to estimate the overlap state of the second protruding portion 43 and the second through hole 33 by visually observing the overlap state of the first protruding portion 42 and the first through hole 23 when viewed from the Z direction. Therefore, it is easy to confirm the connection state between the equipment busbar 2, which is the first busbar, and the battery busbar 3, which is the second busbar, by the connecting member 4.
[0063] (modified version) In one example of this embodiment, the device busbar 2 and the battery busbar 3, which protrude from the device 91 in the +Y direction, are connected to each other, thereby connecting the device busbar 2 and the battery busbar 3 outside the device 91. However, the connection structure 1 may be configured in any way as long as the connecting member 4 connects the device busbar 2 and the battery busbar 3. As a modified example, as shown in Figure 7, the connecting member 4 may be provided in the region AA where the opening OP of the device 91 is open when viewed from the Z direction, thereby connecting the device busbar 2 and the battery busbar 3 within the housing 95 of the device 91. The opening OP opens from the +Z direction side to the battery busbar 3 within the housing 95 of the device 91. For example, the device busbar 2 may protrude in the -X direction into the region having the opening OP when viewed from the Z direction. The battery busbar 3 may protrude in the -X direction into the region having the opening OP when viewed from the Z direction. After connecting the device busbar 2 and the battery busbar 3 with the connecting member 4, the operator closes the housing 95. With this modified example, the connecting member 4 can connect the device busbar 2 and the battery busbar 3 within the area of the device 91. Therefore, the connection structure between the device busbar 2 and the battery busbar 3 can be made compact.
[0064] In one example of this embodiment, the first protruding portion 42, the second protruding portion 43, and the shaft portion 41 are integrally formed. However, the connecting member 4 may be configured in any way as long as the first protruding portion 42 and the second protruding portion 43 protrude from the shaft portion 41. As a variation, the first protruding portion 42 and the shaft portion 41 may be formed separately. In the case of separate components, the connecting member 4 may be formed by fastening a female thread provided on one of the first protruding portion 42 and the shaft portion 41 to a male thread provided on the other. Furthermore, the fastening force may be increased by providing a double nut to the male thread. In addition, such fastening may be performed after inserting the elastic member 5 into the shaft portion 41.
[0065] <Second Embodiment> The connection structure of one embodiment will be described below with reference to the figures. Each component of the connection structure 101 of this embodiment has the same configuration as each component of the connection structure 1 of the first embodiment, is connected in the same way, and produces the same functions and effects, except for the points shown below.
[0066] While the connection structure 1 of the first embodiment is configured to insert the connecting member 4 from the equipment busbar side, the connection structure 101 of this embodiment is configured to insert the connecting member 4 from the battery busbar side. That is, the connection structure 101 of this embodiment includes a battery busbar 103 as the first busbar, instead of the equipment busbar 2, compared to the connection structure 1 of the first embodiment. On the other hand, the connection structure 101 of this embodiment includes an equipment busbar 102 as the second busbar, instead of the battery busbar 3, compared to the connection structure 1 of the first embodiment.
[0067] (Connection structure configuration) As shown in Figure 8, each connection structure 101 comprises a battery busbar 103 (first busbar), an equipment busbar 102 (second busbar), a connecting member 4, and an elastic member 5.
[0068] (Battery bus configuration) The battery busbar 103 has a first opposing surface 131, a first pressed surface 132, and a first through hole 133.
[0069] The first opposing surface 131 is the surface for contacting the equipment busbar 102. The first opposing surface 131 has a similar configuration to the second opposing surface 31.
[0070] The first pressure surface 132 is the surface that is pressed against the equipment busbar 102 by the connecting member 4 when the equipment busbar 2 and the battery busbar 3 are connected by the connecting member 4. The first pressure surface 132 has the same configuration as the second pressure surface 32.
[0071] The first through-hole 133 is a hole through which the connecting member 4 passes. The first through-hole 133 has a similar configuration to the second through-hole 33. Specifically, the first through-hole 133 is defined by a first circumferential surface 133a having a similar configuration to the second circumferential surface 33a, and a pair of first concave surfaces 133b having a similar configuration to the pair of second concave surfaces 33b.
[0072] (Battery bus configuration) The equipment busbar 102 has a second opposing surface 121, a second pressed surface 122, and a second through hole 123.
[0073] The second opposing surface 121 is the surface for contacting the battery busbar 103. The second opposing surface 121 has the same configuration as the first opposing surface 21.
[0074] The second pressure surface 122 is the surface that is pressed against the battery busbar 103 by the connecting member 4 when the equipment busbar 2 and the battery busbar 3 are connected by the connecting member 4. The second pressure surface 122 has the same configuration as the first pressure surface 22.
[0075] The second through-hole 123 is a hole through which the connecting member 4 passes. The second through-hole 123 penetrates in the Z direction from the second pressed surface 122 to the second opposing surface 121. The second through-hole 123 has a similar configuration to the first through-hole 23. Specifically, the second through-hole 123 is defined by a first circumferential surface 133a having a similar configuration to the first circumferential surface 23a, and a pair of first concave surfaces 133b having a similar configuration to the pair of first concave surfaces 23b.
[0076] (Connection method) First, the worker inserts the battery busbar 103 and the equipment busbar 102 into the waiting connecting member 4 at the first rotation position RP1. Specifically, the worker faces the first pressing surface 132 toward the waiting second protruding portion 43 and inserts the first through hole 133 and the second through hole 123 into the connecting member 4 at the first rotation position RP1. This insertion causes the connecting member 4 to be inserted into the first through hole 133 and the second through hole 123 from the first pressing surface 132 side. This insertion also connects the first through hole 133 and the second through hole 123 of the connecting member 4.
[0077] Next, the worker inserts the first through hole 133 and the second through hole 123 into the connecting member 4, against the biasing force of the elastic member 5, until the second protruding portion 43 protrudes from the second pressed surface 122.
[0078] Once the second protruding portion 43 is extended, the operator rotates the connecting member 4 around the axis AX relative to the equipment busbar 102 and the battery busbar 103 so that it moves from the first rotation position RP1 to the second rotation position RP2 as shown in Figure 9.
[0079] (Mechanism of Action and Effects) In connection structure 1, with the elastic member 5 provided between the first protruding portion 42 and the first pressed surface 132, the equipment busbar 102 and the battery busbar 103 can be connected by the connecting member 4 such that the first opposing surface 131 and the second opposing surface 121 are in surface contact. With this connection structure, the elastic member 5 biases the equipment busbar 102 toward the battery busbar 103, while the inserted connecting member 4 maintains the connection between the equipment busbar 102 and the battery busbar 103. Therefore, connection structure 1 makes it easier to ensure contact pressure between the battery busbar 103, which acts as the first busbar, and the equipment busbar 102, which acts as the second busbar.
[0080] In addition, according to this embodiment, the connecting member 4 has the same effects as in the first embodiment.
[0081] <Third Embodiment> The following describes an operating jig of one embodiment with reference to the figures. The multiple connection structures 1 operated by the operating jig 7 of this embodiment have the same configuration as each of the connection structures 1 of the first embodiment, are connected in the same way, and produce the same functions and effects. Furthermore, the multiple connection structures 101 operated by the operating jig 7 of this embodiment have the same configuration as each of the connection structures 101 of the second embodiment, are connected in the same way, and produce the same functions and effects.
[0082] (Configuration of the operating jig) The operating jig 7 is a jig for operating multiple connection structures 1, 101. As shown in Figure 10, the operating jig 7 comprises a bar 71 and a cover 75. The following describes the case in which the operating jig 7 is applied as a jig for operating multiple connection structures 1. However, the same applies when the operating jig 7 is applied as a jig for operating multiple connection structures 101.
[0083] (Bar composition) As shown in Figures 10 and 11, the bar 71 comprises an extended portion 72 and a plurality of pins 73.
[0084] The extension portion 72 extends in the X direction. The multiple pins 73 are aligned in the X direction with the same pitch as the multiple connection structures 1 are aligned in the X direction. Each pin 73 extends in the Z direction so as to protrude from the extension portion 72 toward the corresponding connection structure 1.
[0085] (Cover composition) As shown in Figure 12, the cover 75 extends in the X direction. In the Z direction, the cover 75 is provided between the extension portion 72 and the equipment busbar 2. The cover 75 has a plurality of arcuate openings 76.
[0086] Multiple arc-shaped openings 76 are provided in pairs for each connection structure 1. Each arc-shaped opening 76 extends from the bar 71 side to the equipment busbar 2 side. In each connection structure 1, each of the pair of arc-shaped openings 76 has an arc shape that follows the rotational trajectory of the corresponding first projection 422 of the pair of first projections 422. For example, the pair of arc-shaped openings 76 may have point-symmetrical arc shapes with respect to the axis AX and be provided in point-symmetrical positions.
[0087] (How to operate) The worker places the bar 71 on the equipment busbar 2 with the cover 75 in between, so that each pin 73 fits into one of the pair of arc-shaped openings 76 of the corresponding connection structure 1. At this time, as shown in Figure 13, a pair of first protrusions 422 are aligned in the X direction on each connection member 4.
[0088] Next, the worker presses the first protruding portion 42 in the -Z direction while fixing the cover 75 to the equipment busbar 2 in the XY plane.
[0089] Next, while keeping the cover 75 pressed down, the operator manipulates the bar 71 to hook each pin 73 onto the first protrusion 422, simultaneously rotating the multiple connecting members 4 across the multiple connection structures 1 in the XY plane. This rotation connects the equipment busbar 2 and the battery busbar 3 via the multiple connecting members 4.
[0090] (Mechanism of Action and Effects) According to the operating jig 7 of this embodiment, multiple connection structures 1 arranged in a parallel direction can be rotated simultaneously. The arc-shaped opening 76 makes it easy to operate the multiple connection structures 1 according to the operating jig 7.
[0091] Furthermore, according to the operating jig 7 of this embodiment, the arc-shaped opening 76 allows the connecting member 4 to be operated along the rotational trajectory of the first protrusion 422. Therefore, the operator can easily rotate the connecting member 4.
[0092] (modified version) In this embodiment, each connecting structure 1 is provided with a pair of arc-shaped openings 76. However, if each connecting member 4 can be rotated, only one of the pair of arc-shaped openings 76 may be provided for each connecting structure 1.
[0093] In this embodiment, one of the pair of arc-shaped openings 76 is used to rotate the connecting member 4. However, in a modified example, the other arc-shaped opening 76 may also be used in addition to the one arc-shaped opening 76. In this modified example, a pair of bars 71 are prepared on one cover 75. The worker hooks the pin 73 of one of the pair of bars 71 through one arc-shaped opening 76 onto one of the pair of first protrusions 422 that each connecting member 4 has. The worker then hooks the pin 73 of the other bar 71 through the other arc-shaped opening 76 onto the other first protrusion 422 that each connecting member 4 has. The worker rotates the connecting member 4 using the pair of bars 71 hooked onto the pair of first protrusions 422. With this modification, by using two bars 71, the rotational force required to rotate the connecting member 4 can be shared between the two bars 71. As a result, the minimum force required to rotate the connecting member 4 is reduced.
[0094] In this embodiment, the pair of arc-shaped openings 76 have arc shapes that are point-symmetric with respect to the axis AX and are provided in point-symmetric positions. However, the pair of arc-shaped openings 76 may have any shape and positional relationship as long as each connecting member 4 can be rotated. As a modified example, as shown in Figure 15, instead of the pair of arc-shaped openings 76, the pair of arc-shaped openings 176 may have arc shapes that are line-symmetric with respect to the symmetry line LS and be provided in line-symmetric positions. In this configuration, one of the pair of arc-shaped openings 176 can be used to fix the connecting member 4, and the other arc-shaped opening 176 can be used to release the connecting member 4. With this modified example, the rotation angle of the connecting member 4 is determined by the shape of the hole, making it easier to control the rotation angle of the connecting member 4.
[0095] In some of the modifications described above, a pair of bars 71 are provided. In these modifications, one of the pair of bars 71 corresponds to one of the pair of arcuate openings 76, 176. The other of the pair of bars 71 corresponds to the other of the pair of arcuate openings 76, 176. In such modifications, as shown in Figure 16, the pair of bars 71 may be connected to each other by a link 74 so that the distance between them can be changed.
[0096] <Other variations> In each of the embodiments described above, the operator operates the operating jig 7. However, the operating jig 7 may be operated in any way as long as it can operate the connecting member 4. As a modification, the operating device may perform the operations that the operator would normally perform. For example, the operating device may operate the operating jig 7 according to the operator's command.
[0097] In the examples of the embodiments described above, the contour of the first protruding portion 42 has a similar shape to the contour of the second protruding portion 43. However, the contour of the first protruding portion 42 can have any shape as long as the connecting member 4 can connect the equipment busbar 2 and the battery busbar 3. As a modification, the contour of the first protruding portion 42 may have a dissimilar shape to the contour of the second protruding portion 43. With this modification, the shape of the first protruding portion 42 can be freely designed, regardless of the contour shape of the second protruding portion 43.
[0098] In the examples of the embodiments described above, the second protruding portion 43 has a second disc portion 431 and a pair of second protrusions 432. However, the second protruding portion 43 may have any contour shape as long as the connecting member 4 can connect the equipment busbars 2, 102 and the battery busbars 3, 103. As a modified example, the second protruding portion 43 may have a second disc portion 431 and only one of the pair of second protrusions 432. This modified example allows for a simpler structure of the second protruding portion 43. As yet another modified example, the second protruding portion 43 may have three or more second protrusions 432. This other modified example increases the number of points where the second protruding portion 43 can engage with the second pressed surfaces 32, 122, so that the connecting member 4 can stably connect the equipment busbars 2, 102 as the first busbars and the battery busbars 3, 103 as the second busbars.
[0099] In the examples of the embodiments described above, the elastic member 5 is a coil spring. However, any member that provides a biasing force to press the equipment busbars 2 and 102 toward the battery busbars 3 and 103 may be used. As a modification, the elastic member 5 may be a rubber bushing, a disc spring, or the like that can be inserted through the shaft portion 41. Furthermore, these elastic members 5 may be made of a conductive material such as metal, or an insulating material such as rubber or resin.
[0100] In the examples of the embodiments described above, the inner circumference diameter DA5 of the elastic member 5 is smaller than the first disc portion 421 of the first protruding portion 42, but any inner circumference diameter is acceptable as long as it is smaller than at least the maximum diameter of the first protruding portion 42. However, the smaller the inner circumference diameter DA5 of the elastic member 5 is than the first disc portion 421 of the first protruding portion 42, the easier it is for the elastic member 5 to be held between the first protruding portion 42 and the first pressed surfaces 22, 132.
[0101] While embodiments of the present disclosure have been described above, these embodiments are provided as examples and are not intended to limit the scope of the present disclosure. These embodiments can be implemented in various other forms, and various omissions, substitutions, and modifications can be made without departing from the spirit of the present disclosure. [Explanation of Symbols]
[0102] 1. Connection structure 2. Equipment busbar (first busbar) 3. Battery busbar (second busbar) 4 Connecting Members 5 Elastic members 7. Operating jigs 9 Assembly 21 First opposing surface 22 First pressed surface 23 First through hole 23a First peripheral surface 23b First concave surface 31 Second opposing surface 32 Second pressed surface 33 Second through hole 33a Second peripheral surface 33b Second concave surface 41 Shaft 41a First end 41b Second end 42 First overhang 43 Second overhang 71 Bar 72 Stretching section 73 pins 74 links 75 Cover 76 Arc opening 91 Equipment 92 Battery Pack 92h hole 93 Fastening materials 94 First installation surface 95 cabinets 96 Flange section 97 Second installation surface 101 Connection Structure 102 Equipment busbar (second busbar) 103 Battery Busbar (First Busbar) 121 Second opposing surface 122 Second pressed surface 123 Second through hole 123a Second peripheral surface 123b Second concave surface 131 First opposing surface 132 First pressed surface 133 First through hole 133a First peripheral surface 133b First concave surface 176 Arc opening 421 First disc section 422 First protrusion 431 Second Disc Section 432 Second protrusion AA area AX axis CC Virtual Circle CV recess DA5 Inner diameter DB5 Outer diameter DR Radial direction LS symmetry line OP opening RP1 First rotation position RP2 Second rotation position
Claims
1. A first busbar having a first opposing surface, a first pressed surface on the back side of the first opposing surface, and a first through hole that penetrates from the first pressed surface to the first opposing surface in a through direction intersecting the first opposing surface, A second busbar having a second opposing surface facing the first opposing surface, a second pressed surface on the back side of the second opposing surface, and a second through hole penetrating in the through direction from the second opposing surface to the second pressed surface, A connecting member comprising: a shaft portion having a first end and a second end, extending from the first end to the second end in the through direction so as to connect the first through hole and the second through hole; a first protruding portion extending radially from the first end to the shaft portion; and a second protruding portion extending radially. The elastic member through which the aforementioned shaft portion passes, Equipped with, The first through-hole is defined by a first circumferential surface having a cross-sectional shape along the circumference of a virtual circle and extending from the first opposing surface to the first pressed surface, and a first concave surface having a cross-sectional shape recessed from the circumference and extending from the first opposing surface to the first pressed surface. The second through-hole is defined by a second circumferential surface having a cross-sectional shape along the circumference and extending from the second opposing surface to the second pressed surface, and a second concave surface having a cross-sectional shape recessed from the circumference and extending from the second opposing surface to the second pressed surface. The elastic member has an outer diameter larger than the circumference and an inner diameter smaller than at least the maximum diameter of the first protruding portion. At the first rotational position around the axis of the shaft portion, the second protruding portion is insertable into the first through hole and the second through hole while fitting into the recess defined by the first concave surface and the second concave surface. At the second rotational position around the axis, the second protruding portion overlaps with the second pressed surface when viewed from the through-direction. Connection structure.
2. The first protruding portion has a first disc portion having an outer diameter larger than the inner diameter. The connection structure according to claim 1.
3. The first protruding portion further has a first projection that protrudes from the first disc portion in one direction in the radial direction, The second protruding portion has a second disc portion having an outer diameter smaller than the circumference, and a second projection portion that further protrudes radially from the second disc portion. The second protrusion protrudes in the same direction as the first protrusion, The connection structure according to claim 2.
4. When viewed from the aforementioned penetrating direction, the contour of the second protruding portion has a shape similar to the contour of the first protruding portion. The connection structure according to claim 1.
5. A connection structure according to any one of claims 1 to 4, A battery pack connected to one of the first busbar and the second busbar, Equipment connected to the other side of the first busbar and the second busbar, Equipped with, assembly.
6. A bar comprising: an extension portion extending in a parallel direction in which a plurality of connection structures according to any one of claims 1 to 4 are arranged; and a plurality of pins extending from the extension portion in the penetrating direction toward the first pressed surface, each corresponding to the first pressed surface; A cover having a plurality of openings that extend in the parallel direction and each opening in an arc shape along the rotational trajectory of the corresponding first protrusion, Equipped with, Operating jig.
Citation Information
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