Wiring module and energy storage module

The wiring module simplifies the mounting structure of temperature measuring elements by using a flexible substrate and reinforcing member with a leaf spring to ensure efficient heat transfer to the temperature sensor, addressing complexity and cost issues in power storage devices.

JP7779368B2Active Publication Date: 2025-12-03AUTONETWORKS TECH LTD +2
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Patent Information

Application Number
JP2024223847
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-12-19
Publication Date
2025-12-03
Estimated Expiration
2041-05-17

AI Technical Summary

Technical Problem

The mounting structure of temperature measuring elements in power storage devices is complex, necessitating a simpler configuration for accurate temperature measurement while reducing weight and costs.

Method used

A wiring module attached to energy storage elements with electrode terminals and a temperature measurement surface, comprising a mounting section, relay section, flexible substrate, reinforcing member, connecting member, and a relay member with a leaf spring that ensures reliable contact with the temperature measurement surface for heat transfer.

Benefits of technology

Heat generated from the energy storage element is efficiently transferred to the temperature measuring element, maintaining reliable contact and simplifying the mounting structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a wiring module that can transmit heat, which is generated from a power storage element, to a temperature measurement element for sure.SOLUTION: A wiring module 20 includes a flexible substrate 30 including a mount part 32 and a relay part 33, a temperature measurement element 50 mounted on the mount part 32, a reinforcement member 60 fixed in the mount part 32, a bus bar 70 having conductivity and connected to electrode terminals 12 and 13, and a relay member 80 having conductivity and electrically connecting the relay part 33 and the bus bar 70. The relay member 80 includes a relay base part 81 connected to the bus bar 70, and a plate spring part 82 continuing to the relay base part 81, overlapping with and electrically connected to the relay part 33, and energizing the reinforcement member 60 toward a temperature measurement surface 11F.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The technology disclosed in this specification relates to a wiring module and a power storage module. [Background technology]

[0002] A known power storage device includes a storage battery, a temperature sensor for detecting the surface temperature of the storage battery, and a holding device for holding the temperature sensor. The holding device includes an elastic body that biases the temperature sensor against the surface of the storage battery. This allows the surface temperature of the storage battery to be detected stably. Because such a holding device requires a structure for receiving the reaction force from the elastic body, it is supported by some structure included in the power storage device, such as a housing that houses the storage battery or a support base that supports wiring members (see Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-206619 Summary of the Invention [Problem to be solved by the invention]

[0004] In the above configuration, the mounting structure of the temperature measuring element tends to be complicated. For the purpose of reducing weight and costs, there is a demand for a simpler configuration that enables accurate temperature measurement. [Means for solving the problem]

[0005] The wiring module disclosed in this specification is a wiring module that is attached to an energy storage element that has electrode terminals and a temperature measurement surface, and includes a mounting section, a relay section that is connected to the mounting section, and a flexible substrate that has a conductive path including a connection land that is arranged on the relay section, a temperature measurement element that is mounted on the mounting section, a reinforcing member that is arranged along the mounting section and the relay section and is fixed to the mounting section, a connecting member that is conductive and connected to the electrode terminals, and a relay member that is conductive and electrically connects the connection land and the connecting member, and the relay member includes a relay base that is connected to the connecting member, and a leaf spring that is connected to the relay base, overlaps the relay section, and is electrically connected to the connection land, and that urges the reinforcing member toward the temperature measurement surface.

[0006] The present specification also discloses an energy storage module comprising: an energy storage element having electrode terminals and a temperature measurement surface; and a wiring module attached to the energy storage element; the wiring module comprising: a mounting portion and a relay portion connected to the mounting portion; a flexible substrate having a conductive path including a connection land arranged on the relay portion; a temperature measurement element mounted on the mounting portion; a reinforcing member arranged along the mounting portion and the relay portion and fixed to the mounting portion; a connecting member that is conductive and connected to the electrode terminals; and a relay member that is conductive and electrically connects the connection land and the connecting member; the relay member comprising: a relay base that is connected to the connecting member; and a leaf spring that is connected to the relay base, overlaps the relay portion, and is electrically connected to the connection land, and urges the reinforcing member toward the temperature measurement surface. [Effects of the Invention]

[0007] According to the wiring module and the electricity storage module disclosed in this specification, heat generated from the electricity storage element is reliably transferred to the temperature measuring element via the reinforcing member and the mounting portion. [Brief explanation of the drawings]

[0008] [Figure 1]FIG. 1 is an overall perspective view of an electricity storage module according to an embodiment. [Figure 2] FIG. 2 is a partially enlarged plan view of the electricity storage module according to the embodiment. [Figure 3] FIG. 3 is a cross-sectional view taken along line AA in FIG. [Figure 4] FIG. 4 is a cross-sectional view taken along line BB in FIG. [Figure 5] FIG. 5 is a cross-sectional view taken along line CC in FIG. [Figure 6] FIG. 6 is an enlarged view of the area within the frame F in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0009] [Outline of the embodiment] The wiring module disclosed in this specification is a wiring module that is attached to an energy storage element that has electrode terminals and a temperature measurement surface, and includes a mounting section, a relay section that is connected to the mounting section, and a flexible substrate that has a conductive path including a connection land that is arranged on the relay section, a temperature measurement element that is mounted on the mounting section, a reinforcing member that is arranged along the mounting section and the relay section and is fixed to the mounting section, a connecting member that is conductive and connected to the electrode terminals, and a relay member that is conductive and electrically connects the connection land and the connecting member, and the relay member includes a relay base that is connected to the connecting member, and a leaf spring that is connected to the relay base, overlaps the relay section, and is electrically connected to the connection land, and that urges the reinforcing member toward the temperature measurement surface.

[0010] The present specification also discloses an energy storage module comprising: an energy storage element having electrode terminals and a temperature measurement surface; and a wiring module attached to the energy storage element; the wiring module comprising: a mounting portion and a relay portion connected to the mounting portion; a flexible substrate having a conductive path including a connection land arranged on the relay portion; a temperature measurement element mounted on the mounting portion; a reinforcing member arranged along the mounting portion and the relay portion and fixed to the mounting portion; a connecting member that is conductive and connected to the electrode terminals; and a relay member that is conductive and electrically connects the connection land and the connecting member; the relay member comprising: a relay base that is connected to the connecting member; and a leaf spring that is connected to the relay base, overlaps the relay portion, and is electrically connected to the connection land, and urges the reinforcing member toward the temperature measurement surface.

[0011] According to the above configuration, the reinforcing member is kept in reliable contact with the temperature measuring surface, and heat generated from the electricity storage element is reliably transferred to the temperature measuring element via the reinforcing member and the mounting portion.

[0012] [Details of the embodiment] Specific examples of the technology disclosed in this specification will be described below with reference to the drawings. Note that the present invention is not limited to these examples, but is defined by the claims, and is intended to include all modifications within the meaning and scope of the claims.

[0013] <Embodiment> An embodiment will be described with reference to Fig. 1 to Fig. 6. The energy storage module 1 of this embodiment is a power supply device used as a drive source for electric vehicles and hybrid vehicles, and includes a plurality of energy storage elements 10 and a wiring module 20 connected to the energy storage elements 10, as shown in Fig. 1.

[0014] [Electricity storage element 10] The energy storage elements 10 are, for example, secondary batteries. Each energy storage element 10 has a metal case 11, and a power generation element is housed inside the case 11. One of the multiple outer surfaces of the case 11 (the upper surface in FIG. 1) serves as a temperature measurement surface 11F. Two electrode terminals 12, 13 are arranged on the temperature measurement surface 11F. One of the two electrode terminals 12, 13 is a positive terminal 12, and the other is a negative terminal 13. Note that FIGS. 3 and 4 do not show a cross section of the energy storage element 10 in detail, but only show the entire structure schematically.

[0015] The temperature measurement surfaces 11F of the energy storage elements 10 are arranged flush with each other. Two adjacent energy storage elements 10 are arranged so that the electrode terminals 12, 13 of opposite polarities are adjacent to each other, that is, so that the positive electrode terminal 12 of one energy storage element 10 and the negative electrode terminal 13 of the adjacent energy storage element 10 are adjacent to each other.

[0016] [Wiring module 20] 2, the wiring module 20 is arranged along the temperature measurement surfaces 11F of the multiple energy storage elements 10. This wiring module 20 includes a flexible substrate 30, multiple temperature measurement elements 50 mounted on the flexible substrate 30, a reinforcing member 60 arranged to overlap the flexible substrate 30, multiple bus bars 70 connecting adjacent electrode terminals 12, 13, and a relay member 80 connecting the flexible substrate 30 and the bus bars 70.

[0017] [Temperature measurement element 50] The temperature measuring element 50 is, for example, a known thermistor element. The temperature measuring element 50 has two lead terminals 51.

[0018] [Flexible substrate 30] The flexible substrate 30 is a flexible printed circuit board, and as shown in Figures 2 and 3, it comprises a strip-shaped substrate main body 31, a plurality of mounting sections 32 on which temperature measuring elements 50 are mounted, a plurality of relay sections 33 connected to each of the plurality of mounting sections 32 and to which relay members 80 are connected, and a plurality of movable sections 34 connecting the substrate main body 31 and each of the plurality of mounting sections 32.

[0019] 2, the movable part 34 includes a movable part main body 34A connecting the substrate main body 31 and the mounting part 32, a protrusion 34B extending from the movable part main body 34A, and an annular part 34C connected to the tip of the protrusion 34B. The movable part main body 34A and the protrusion 34B have a slit S extending from the annular part 34C to the side edge of the movable part main body 34A. This shape allows the movable part 34 to deform so that the portions on both sides of the slit S move away from each other or are displaced from the same plane. This allows the mounting part 32 and the relay part 33 to move freely relative to the substrate main body 31 to a certain extent.

[0020] As shown in FIGS. 4, 5, and 6, the flexible substrate 30 includes a base layer 41 made of an insulating film made of synthetic resin, conductive paths 42 and 43 formed on one surface of the base layer 41 by printed wiring technology, and a coverlay 44 made of an insulating film made of synthetic resin and covering the conductive paths 42 and 43. The conductive paths 42 and 43 are made of a metal such as copper or a copper alloy and are conductive. The conductive paths 42 and 43 include a first conductive path 42 and a second conductive path 43. The flexible substrate 30 is disposed along the temperature measuring surface 11F, with the surface on which the base layer 41 is disposed facing the temperature measuring surface 11F. The surface of the mounting section 32 on which the coverlay 44 is disposed (the upper surface in FIG. 4) is the mounting surface 32F on which the temperature measuring element 50 is mounted.

[0021] As shown in FIGS. 4 and 6, the temperature measuring element 50 is connected in series to the first conductive path 42. Part of the first conductive path 42 arranged in each of the multiple mounting sections 32 forms two temperature measuring lands 42A. The coverlay 44 has a first opening 44A at the location where the temperature measuring element 50 is mounted, and the two temperature measuring lands 42A are exposed from the coverlay 44 inside this first opening 44A. Each of the two lead terminals 51 of the temperature measuring element 50 is connected to each of the two temperature measuring lands 42A. The lead terminals 51 and the temperature measuring lands 42A are connected by, for example, solder H. The temperature measuring element 50 and the temperature measuring lands 42A are covered by an overcoat C made of synthetic resin.

[0022] The second conductive path 43 serves as a voltage detection line for detecting the voltage of the energy storage element 10. As shown in Figures 5 and 6, a part of the second conductive path 43 arranged in each of the multiple relay sections 33 serves as a connection land 43A for connecting the relay member 80. The coverlay 44 has a second opening 44B at the location where the connection land 43A is arranged, and a part of the connection land 43A is exposed from the coverlay 44 inside this second opening 44B.

[0023] [Reinforcing member 60] The reinforcing member 60 is a rigid, plate-like member that does not have flexibility and reinforces the mounting portion 32. As shown in FIG. 3 , the reinforcing member 60 is arranged along the mounting portion 32 and the relay portion 33, and is fixed to the surface of the mounting portion 32 opposite to the mounting surface 32F (the surface on which the base layer 41 is arranged). A part of the reinforcing member 60 is arranged along the mounting portion 32 and serves as a fixed portion 60A that is fixed to the mounting portion 32, and the remaining part is arranged along the relay portion 33 but serves as an extended portion 60B that is not fixed to the relay portion 33. In this embodiment, the reinforcing member 60 is adhered to the mounting portion 32 with an adhesive A.

[0024] 3, the reinforcing member 60 is disposed in contact with the temperature measuring surface 11F. The reinforcing member 60 is preferably made of a metal material with excellent thermal conductivity, such as aluminum or an aluminum alloy. This is because the heat of the energy storage element 10 can be easily transferred to the temperature measuring element 50.

[0025] [Busbar 70] The bus bar 70 is made of a conductive metal plate. Examples of materials for the bus bar 70 include copper, copper alloy, aluminum, aluminum alloy, and stainless steel (SUS). In this embodiment, the bus bar 70 is made of aluminum. As shown in FIGS. 1 and 2, the bus bar 70 is placed on two adjacent electrode terminals 12, 13 and fixed to the electrode terminals 12, 13 by, for example, laser welding. This electrically connects the pair of adjacent electrode terminals 12, 13.

[0026] [Relay member 80] The relay member 80 is a conductive metal plate that electrically connects the second conductive path 43 and the bus bar 70. The relay member 80 is preferably made of a metal material that can be well bonded to both the second conductive path 43 and the bus bar 70. In this embodiment, the relay member 80 is made of nickel.

[0027] As shown in FIG. 3 , the relay member 80 includes a plate-shaped relay base 81 connected to the bus bar 70 and a plate-shaped leaf spring 82 extending obliquely from the relay base 81 and connected to the relay portion 33. The relay member 80 has a plate shape bent so as to be convex on the side opposite the temperature measurement surface 11F. The leaf spring 82 has a through hole 83. As shown in FIG. 6 , the through hole 83 has a hole with a hole edge shape smaller than the outline of the connection land 43A. The relay base 81 is overlaid on the bus bar 70 and electrically connected to the bus bar 70 by, for example, laser welding. As shown in FIG. 5 , the leaf spring 82 is overlaid on the surface of the relay portion 33 on which the cover lay 44 is arranged and is electrically connected to the connection land 43A exposed from the cover lay 44. In this embodiment, the leaf spring 82 is connected to the connection land 43A by solder H.

[0028] [Attaching the wiring module 20 to the energy storage element 10] When the wiring module 20 is attached to the energy storage elements 10, as shown in Figures 1 and 2, the wiring module 20 is arranged along the temperature measurement surfaces 11F of the parallel-arranged energy storage elements 10, and each bus bar 70 is fixed to the electrode terminals 12, 13 by laser welding. As described above, the movable portion 34 is allowed to deform to a certain extent, and therefore the mounting portion 32, relay portion 33, relay member 80, and bus bar 70 are allowed to move freely to a certain extent relative to the board body 31. This makes it easy to attach the wiring module 20 to the energy storage elements 10.

[0029] When the wiring module 20 is attached to the energy storage element 10, the reinforcing member 60 abuts against the temperature measurement surface 11F, as shown in FIG. 3 . The leaf spring 82 and the relay portion 33 tilt away from the reinforcing member 60 as they approach the relay base 81. When the reinforcing member 60 attempts to displace in a direction that lifts it away from the temperature measurement surface 11F, the leaf spring 82 attempts to deform in a direction that expands relative to the relay base 81, and the resilient restoring force of this deformation urges the reinforcing member 60 toward the temperature measurement surface 11F. This ensures that the reinforcing member 60 is kept in close contact with the temperature measurement surface 11F, and heat generated by the energy storage element 10 is reliably transferred to the temperature measurement element 50 via the reinforcing member 60 and the mounting portion 32.

[0030] [Action and effect] As described above, according to this embodiment, the energy storage module 1 includes the energy storage element 10 having the electrode terminals 12, 13 and the temperature measuring surface 11F, and the wiring module 20 attached to the energy storage element 10, and the wiring module 20 includes the mounting portion 32 and the relay portion 33 connected to the mounting portion 32, and the flexible substrate 30 including the conductive paths 42, 43 including the connection lands 43A arranged on the relay portion 33, the temperature measuring element 50 mounted on the mounting portion 32, and the conductive paths 42, 43 along the mounting portion 32 and the relay portion 33. The temperature measuring surface 11F includes a reinforcing member 60 arranged between the electrode terminals 12 and 13 and fixed to the mounting portion 32, a bus bar 70 that is conductive and connected to the electrode terminals 12 and 13, and a relay member 80 that is conductive and electrically connects the connection land 43A and the bus bar 70, and the relay member 80 includes a relay base 81 that is connected to the bus bar 70, and a leaf spring portion 82 that is continuous with the relay base 81, is placed on the relay portion 33, is electrically connected to the connection land 43A, and urges the reinforcing member 60 toward the temperature measuring surface 11F.

[0031] According to the above configuration, the reinforcing member 60 is kept in reliable contact with the temperature measuring surface 11F, and heat generated from the energy storage element 10 is reliably transferred to the temperature measuring element 50 via the reinforcing member 60 and the mounting portion 32.

[0032] <Other embodiments> (1) In the above embodiment, an example was shown in which the relay member 80 was fixed to the bus bar 70 by laser welding. However, the method of connecting the relay member and the bus bar is not limited to the above embodiment. For example, the connection may be by ultrasonic welding, soldering, or crimping. (2) In the above embodiment, the reinforcing member 60 is made of a metal material, but the reinforcing member may be made of a material other than metal, such as resin. [Explanation of symbols]

[0033] 1: Energy storage module 10: Energy storage element 11: Case 11F: Temperature measurement surface 12: Positive terminal (electrode terminal) 13: Negative terminal (electrode terminal) 20: Wiring module 30:Flexible substrate 31: Board body 32: Mounting section 32F: Mounting surface 33: Relay section 34: Moving part 34A: Movable body 34B: Protrusion 34C: Annular section 41: Base layer 42: First conductive path (conductive path) 42A: Temperature Measuring Land 43: Second conductive path (conductive path) 43A: Connection land 44: Coverlay 44A: 1st opening 44B:Second opening 50: Temperature measuring element 51: Lead terminal 60: Reinforcement member 60A: Fixed part 60B: Extension part 70: Busbar 80: Relay component 81: Relay base 82: Leaf spring part 83:Through hole A: Adhesive C: Overcoat H: Solder S: Slit

Claims

1. A wiring module that is attached to an energy storage element that has electrode terminals and a temperature measurement surface, a flexible substrate having a mounting portion and a relay portion; a temperature measuring element mounted on the mounting portion; a reinforcing member fixed to the mounting portion; a connecting member having electrical conductivity and connected to the electrode terminal; a relay member that is conductive and electrically connects the relay portion and the connection member, The relay member is a relay base connected to the connection member; a leaf spring portion that is connected to the relay base portion, overlaps the relay portion and is electrically connected thereto, and that urges the reinforcing member toward the temperature measurement surface.

2. a power storage element having an electrode terminal and a temperature measuring surface; and a wiring module attached to the power storage element; The wiring module is a flexible substrate having a mounting portion and a relay portion; a temperature measuring element mounted on the mounting portion; a reinforcing member fixed to the mounting portion; a connecting member having electrical conductivity and connected to the electrode terminal; a relay member that is conductive and electrically connects the relay portion and the connection member, The relay member is a relay base connected to the connection member; a plate spring portion that is connected to the relay base portion, overlaps the relay portion and is electrically connected thereto, and that urges the reinforcing member toward the temperature measurement surface.

Citation Information

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