Energy storage device

A sensor with a protruding portion and penetrating fixing portion on the holding member ensures stable detection by preventing obstruction and maintaining contact with the power storage element.

JP7831489B2Active Publication Date: 2026-03-17GS YUASA CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-22
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

The holding member may separate from the power storage element due to warpage or tolerance, causing a gap between the sensor and the power storage element, leading to inaccurate detection.

Method used

A sensor with a protruding portion is attached to a holding member, where the holding member has a facing surface with a fixing portion that penetrates the protruding portion, creating a gap between them, allowing stable detection.

Benefits of technology

The sensor reliably detects the state of the power storage element by preventing the holding member from obstructing assembly and maintaining contact with the element.

✦ Generated by Eureka AI based on patent content.

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Abstract

This power storage device comprises a power storage element, a sensor mounted on the power storage element, and a holding member which holds the sensor with a detection surface thereof facing the power storage element. The sensor has a protrusion that protrudes to the side. The holding member has a facing surface which faces the protrusion, and a fixing part which is provided on the facing surface, passes through the protrusion and fixes said protrusion in place. A gap is provided between the protrusion and the facing surface.
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Description

Technical Field

[0001] The present invention relates to a power storage device including a sensor attached to a power storage element.

Background Art

[0002] Conventionally, a power storage device including a power storage element, an exterior body that houses the power storage element, and a holding member that is housed in the exterior body and holds a bus bar connected to the power storage element is known. Such a power storage device is provided with a sensor (thermistor) for detecting the state of the power storage element, and this sensor is fixed in a state of being pressed against the power storage element by the holding member. (See Patent Document 1).

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] By the way, the holding member may hold the sensor in a state of being separated from the power storage element due to warpage or tolerance of the holding member itself. In such a case, a gap may occur between the detection surface of the sensor and the power storage element, so there is a possibility that the sensor cannot accurately detect the state of the power storage element.

[0005] An object of the present invention is to provide a power storage device in which a sensor can stably detect the state of a power storage element.

Means for Solving the Problems

[0006] An energy storage device according to one aspect of the present invention comprises an energy storage element, a sensor attached to the energy storage element, and a holding member that holds the sensor with the detection surface of the sensor facing the energy storage element, wherein the sensor has a protruding portion that protrudes laterally, and the holding member has a facing surface that faces the protruding portion and a fixing portion provided on the facing surface that fixes the protruding portion while penetrating the protruding portion, and a gap is provided between the protruding portion and the facing surface.

[0007] Another embodiment of the present invention provides a power storage device comprising: a power storage element; a busbar electrically connected to the power storage element; a sensor attached to the busbar; and a holding member that holds the sensor with the detection surface of the sensor facing the busbar, wherein the sensor has a protruding portion that protrudes laterally, and the holding member has a facing surface that faces the protruding portion and a fixing portion provided on the facing surface that fixes the protruding portion while penetrating the protruding portion, and a gap is provided between the protruding portion and the facing surface. [Effects of the Invention]

[0008] The present invention provides an energy storage device in which a sensor can reliably detect the state of the energy storage element. [Brief explanation of the drawing]

[0009] [Figure 1] Figure 1 is a perspective view showing the external appearance of the energy storage device according to Embodiment 1. [Figure 2] Figure 2 is an exploded perspective view showing the components of the energy storage device according to Embodiment 1 when it has been disassembled. [Figure 3] Figure 3 is a perspective view showing the external appearance of the energy storage element according to Embodiment 1. [Figure 4] Figure 4 is a perspective view showing a busbar frame according to Embodiment 1. [Figure 5] Figure 5 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Embodiment 1. [Figure 6]Figure 6 is a cross-sectional view showing the sensor according to Embodiment 1 before it is assembled onto the busbar frame. [Figure 7] Figure 7 is a cross-sectional view showing the sensor according to Embodiment 1 in the process of being assembled onto the busbar frame. [Figure 8] Figure 8 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Modification 1. [Figure 9] Figure 9 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Modified Example 2. [Figure 10] Figure 10 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Modification 3. [Figure 11] Figure 11 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Modification 4. [Figure 12] Figure 12 is a cross-sectional view showing the assembly structure of the busbar frame and sensor according to Embodiment 2. [Modes for carrying out the invention]

[0010] (1) An energy storage device according to one aspect of the present invention comprises an energy storage element, a sensor attached to the energy storage element, and a holding member that holds the sensor with the detection surface of the sensor facing the energy storage element, wherein the sensor has a protruding portion that protrudes laterally, and the holding member has a facing surface that faces the protruding portion and a fixing portion provided on the facing surface that fixes the protruding portion while penetrating the protruding portion, and a gap is provided between the protruding portion and the facing surface.

[0011] According to the power storage device according to one aspect of the present invention, since a gap is formed between the protruding portion of the sensor and the opposing surface of the holding member, it is possible to suppress the holding member from becoming an obstacle when the detection surface of the sensor approaches the power storage element during assembly. Therefore, the detection surface of the sensor can be easily brought into contact with the power storage element with which the bottom surface of the holding member comes into contact. Further, since the protruding portion of the sensor is fixed to the holding member in a state where the fixing portion penetrates therethrough, the movement of the sensor in a direction orthogonal to the penetration direction is also restricted. Due to these factors, the detection surface of the sensor that has come into contact with the power storage element is less likely to be displaced from a predetermined position. Therefore, the sensor can stably detect the state of the power storage element.

[0012] (2) In the power storage device according to (1) above, the holding member includes a bottom surface that contacts the power storage element, and the first interval from the detection surface of the sensor to the protruding portion may be equal to or greater than the second interval from the bottom surface to the opposing surface.

[0013] According to the power storage device according to (2) above, when the bottom surface of the holding member and the detection surface of the sensor are brought into contact with a flat surface of the power storage element, the first interval from the detection surface of the sensor to the protruding portion is equal to or greater than the second interval from the bottom surface of the holding member to the opposing surface. If the first interval and the second interval are in such a relationship, a gap is formed between the opposing surface of the holding member and the protruding portion of the sensor. That is, it is suppressed that the holding member becomes an obstacle when the detection surface of the sensor approaches the power storage element during assembly. Therefore, the bottom surface of the holding member and the detection surface of the sensor can be more reliably brought into contact with a flat surface of the power storage element.

[0014] (3) In the power storage device according to (1) or (2) above, the protruding portion may extend toward the holding member.

[0015] According to the power storage device according to (3) above, since the protruding portion extends toward the holding member, when assembling the sensor to the holding member, the protruding portion can be easily opposed to the opposing surface.

[0016] (4) In the power storage device according to any one of (1) to (3) above, the protruding portion may extend along the power storage element.

[0017] According to the power storage device described in (4) above, since the protruding portion extends along the power storage element, by fixing the protruding portion with the fixing portion, the detection surface of the sensor can be surely brought into contact with the power storage element.

[0018] (5) In the power storage device according to any one of (1) to (4) above, at least a part of the fixing portion may be integrally formed with the holding member.

[0019] According to the power storage device described in (5) above, since at least a part of the fixing portion is integrally formed with the holding member, it is possible to reduce the number of parts. Further, when the fixing portion receives a load, the holding member can easily support the fixing portion, so that the vibration resistance or shock resistance of the power storage device can be easily ensured.

[0020] (6) In the power storage device according to (5) above, the fixing portion has a shaft portion that penetrates the protruding portion, and a head portion provided on the shaft portion that presses the protruding portion from the side opposite to the opposing surface, and the shaft portion may be integrally formed with the holding member.

[0021] According to the power storage device described in (6) above, since the shaft portion of the fixing portion is integrally formed with the holding member, the shaft portion is less likely to be displaced with respect to the holding member than in a form where the shaft portion was originally separate from the holding member. Therefore, it is possible to more surely suppress the displacement of the protruding portion through which the shaft portion penetrates, that is, the displacement of the sensor.

[0022] (7) In the power storage device according to (6) above, the head portion and the shaft portion may be integrally formed with the holding member.

[0023] According to the energy storage device described in (7) above, the head and shaft are integrally molded with the holding member, making it possible to further reduce the number of parts. This is particularly suitable when the shaft, which is integral with the holding member, is passed through the protruding part of the sensor, and then the tip of the shaft is deformed by crimping to form the head.

[0024] (8) Another embodiment of the present invention provides an energy storage device comprising: an energy storage element; a busbar electrically connected to the energy storage element; a sensor attached to the busbar; and a holding member that holds the sensor with the detection surface of the sensor facing the busbar, wherein the sensor has a protruding portion that protrudes laterally, and the holding member has a facing surface that faces the protruding portion and a fixing portion provided on the facing surface that fixes the protruding portion while penetrating the protruding portion, and a gap is provided between the protruding portion and the facing surface.

[0025] In another embodiment of the present invention, the protruding portion of the sensor is fixed to the holding member with the fixing portion passing through the protruding portion, thereby restricting the movement of the sensor in a direction perpendicular to the penetration direction. As a result, the detection surface of the sensor in contact with the busbar is less likely to shift from its predetermined position. Therefore, the sensor can stably detect the state of the energy storage element via the busbar.

[0026] (Embodiment) The following description of an energy storage device according to an embodiment of the present invention will be given with reference to the drawings. Note that the embodiments described below are all general or specific examples. The numerical values, shapes, materials, components, arrangement positions of components, and connection configurations shown in the following embodiments are examples only and are not intended to limit the present invention. Furthermore, dimensions and other specifications in each drawing are not strictly illustrated.

[0027] Furthermore, in the following description and drawings, the direction in which the energy storage elements are arranged, the direction in which the long sides of the energy storage element containers face each other, or the thickness direction of the container is defined as the X-axis direction. Also, the direction in which the terminals of a single energy storage element are arranged, or the direction in which the short sides of the energy storage element containers face each other is defined as the Y-axis direction. Also, the direction in which the main body and the outer lid of the energy storage device are arranged, or the vertical direction is defined as the Z-axis direction. The Z-axis direction is also the insertion direction when inserting multiple energy storage elements into the opening of the main body. These X-axis, Y-axis, and Z-axis directions intersect each other (orthogonal in the following embodiments). Note that depending on the usage, the Z-axis direction may not be the vertical direction, but for the sake of explanation, the Z-axis direction will be described as the vertical direction below. Also, in the following description, for example, the positive side of the X-axis direction refers to the direction of the arrow on the X-axis, and the negative side of the X-axis direction refers to the opposite side from the positive side of the X-axis direction. The same applies to the Y-axis and Z-axis directions. Furthermore, expressions indicating relative directions or orientations, such as parallel and orthogonal, include cases where the directions or orientations are not strictly accurate. For example, two directions being orthogonal does not only mean that the two directions are perfectly orthogonal, but also that they are substantially orthogonal, meaning they may include a difference of, for example, a few percent.

[0028] (Embodiment 1) [General explanation of energy storage devices] First, a general description of the energy storage device 1 according to Embodiment 1 will be given using Figures 1 and 2. Figure 1 is a perspective view showing the external appearance of the energy storage device 1 according to Embodiment 1. Figure 2 is an exploded perspective view showing the individual components when the energy storage device 1 according to Embodiment 1 is disassembled.

[0029] The energy storage device 1 is a device that can charge electricity from an external source and discharge electricity to the outside, and in this embodiment, it has a substantially rectangular parallelepiped shape. Here, a rectangular parallelepiped refers to a hexahedron in which all faces are rectangles or squares. For example, the energy storage device 1 is a battery module (battery pack) used for power storage or power supply purposes. Specifically, the energy storage device 1 is used as a battery for driving or starting the engine of mobile vehicles such as automobiles, motorcycles, watercraft, ships, snowmobiles, agricultural machinery, construction machinery, or railway vehicles for electric railways. Examples of automobiles include electric vehicles (EVs), hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), and fossil fuel (gasoline, diesel, liquefied natural gas, etc.) vehicles. Examples of railway vehicles for electric railways include electric trains, monorails, linear motor cars, and hybrid trains equipped with both diesel engines and electric motors. The energy storage device 1 can also be used as a stationary battery for household or commercial use.

[0030] As shown in Figures 1 and 2, the energy storage device 1 comprises an energy storage element 200 and an outer casing 10 that houses the multiple energy storage elements 200. The outer casing 10 has a main body 11 that houses the multiple energy storage elements 200, a busbar frame 17 positioned above the multiple energy storage elements 200, and an outer cover 12 that covers the top of the busbar frame 17.

[0031] The outer casing 10 is a roughly rectangular parallelepiped (box-shaped) container (module case) that constitutes the outer casing of the energy storage device 1. In other words, the outer casing 10 is a component that fixes the multiple energy storage elements 200 and the busbar frame 17, etc., in predetermined positions and protects these elements from impacts and the like.

[0032] The main body 11 is a bottomed rectangular cylindrical member with an open top, the open portion of which is the main body opening 111. The main body opening 111 is approximately square in shape when viewed from above. Inside the main body opening 111 of the main body 11 are multiple energy storage elements 200, a busbar frame 17, multiple busbars 33 held by the busbar frame 17, a connection unit 80 including a control circuit, and a pair of end plates 39.

[0033] The outer cover 12 is a rectangular member that closes the opening 111 of the main body 11. The outer cover 12 is joined to the main body 11 in a manner that covers the opening 111 of the main body 11. The outer cover 12 has a positive external terminal 91 and a negative external terminal 92. The external terminals 91 and 92 are electrically connected to a plurality of energy storage elements 200 via a connection unit 80 and a busbar 33, and the energy storage device 1 charges with electricity from the outside and discharges electricity to the outside via these external terminals 91 and 92. The external terminals 91 and 92 are formed of a conductive metal such as brass, copper alloy, copper, aluminum, or aluminum alloy.

[0034] Furthermore, the main body 11 and outer cover 12 of the casing 10 are formed from insulating materials such as polycarbonate (PC), polypropylene (PP), polyethylene (PE), polystyrene (PS), polyphenylene sulfide resin (PPS), polyphenylene ether (PPE (including modified PPE)), polyethylene terephthalate (PET), polybutylene terephthalate (PBT), polyetheretherketone (PEEK), tetrafluoroethylene perfluoroalkyl vinyl ether (PFA), polytetrafluoroethylene (PTFE), polyethersulfone (PES), ABS resin, or composite materials thereof, or from metal with an insulating coating. The casing 10 thereby prevents the energy storage element 200, etc. from coming into contact with external metal components. The casing 10 may be formed from a conductive material such as metal, as long as the electrical insulation of the energy storage element 200, etc. is maintained.

[0035] The energy storage element 200 is a secondary battery (single cell) capable of charging and discharging electricity, and more specifically, a non-aqueous electrolyte secondary battery such as a lithium-ion secondary battery. The energy storage element 200 has a flattened rectangular parallelepiped shape (square), and in this embodiment, eight energy storage elements 200 are arranged in the X-axis direction. The shape of the energy storage element 200 and the number of energy storage elements 200 arranged are not limited. Furthermore, the energy storage element 200 is not limited to a non-aqueous electrolyte secondary battery, but may be a secondary battery other than a non-aqueous electrolyte secondary battery, or it may be a capacitor, or it may be a primary battery that allows the user to use the stored electricity without charging. In addition, the energy storage element 200 may be a solid electrolyte battery.

[0036] Figure 3 is a perspective view showing the external appearance of the energy storage element 200 according to Embodiment 1. The energy storage element 200 comprises a container 210, a pair of terminals 240 (positive and negative electrodes), and an upper gasket 250. The container 210 also contains a lower gasket, electrode bodies, a pair of current collectors (positive and negative electrodes), and an electrolyte (non-aqueous electrolyte), but these are not shown in the illustration. There are no particular restrictions on the type of electrolyte, as long as it does not impair the performance of the energy storage element 200, and various types can be selected.

[0037] In addition to the above-mentioned components, the energy storage element 200 may also have spacers positioned to the side or below the electrode body, and an insulating film that encloses the electrode body, etc. Furthermore, an insulating film (such as a shrink tube) may be placed around the container 210 to cover the outer surface of the container 210. The material of the insulating film is not particularly limited as long as it can ensure the necessary insulation for the energy storage element 200, but examples include insulating resins such as PC, PP, PE, PPS, PET, PBT, or ABS resin, epoxy resin, Kapton®, Teflon®, silicon, polyisoprene, and polyvinyl chloride.

[0038] The container 210 is a rectangular parallelepiped (square or box-shaped) case having a container body 220 with an opening formed therein and a lid 230 that closes the opening of the container body 220. The container body 220 is a rectangular cylindrical member with a bottom that constitutes the main body of the container 210, and has an opening formed on the Z-axis positive side. The lid 230 is a rectangular flat plate that constitutes the lid of the container 210, is positioned in the Z-axis positive direction of the container body 220 and extends in the Y-axis direction. The lid 230 is provided with a gas discharge valve 231 that releases pressure when the pressure inside the container 210 rises excessively, and an injection part (not shown) for injecting electrolyte into the container 210. The material of the container 210 (container body 220 and lid 230) is not particularly limited and can be a weldable (joinable) metal such as stainless steel, aluminum, aluminum alloy, iron, or plated steel sheet, but resin can also be used. The container 210 has a structure in which the inside is sealed by joining the container body 220 and the lid 230 together by welding or the like after the electrode body and the lid 220 are placed inside the container body 220.

[0039] The container 210 has a pair of long sides 211 on both sides in the X-axis direction, a pair of short sides 212 on both sides in the Y-axis direction, and a bottom surface 213 on the negative Z-axis side. The long sides 211 are rectangular planar portions that form the long sides of the container 210. The long sides 211 are adjacent to the short sides 212 and the bottom surface 213. The short sides 212 are rectangular planar portions that form the short sides of the container 210. The bottom surface 213 is a rectangular planar portion that forms the bottom surface of the container 210 and is located adjacent to the long sides 211 and the short sides 212.

[0040] Terminals 240 are terminal members (positive and negative terminals) of the energy storage element 200, which is placed on the cover 230, and are electrically connected to the positive and negative plates of the electrode body via a current collector. In other words, terminals 240 are metal members that lead the electricity stored in the electrode body to the external space of the energy storage element 200 and introduce electricity into the internal space of the energy storage element 200 in order to store electricity in the electrode body. Terminals 240 are made of aluminum, aluminum alloy, copper, copper alloy, or the like.

[0041] The electrode body is an energy storage element (power generation element) formed by laminating a positive electrode plate, a negative electrode plate, and a separator. The positive electrode plate has a positive electrode active material layer formed on a positive electrode base layer which is a current collector foil made of a metal such as aluminum or an aluminum alloy. The negative electrode plate has a negative electrode active material layer formed on a negative electrode base layer which is a current collector foil made of a metal such as copper or a copper alloy. As for the active material used in the positive electrode active material layer and the negative electrode active material layer, any known material can be used as long as it is capable of intercalating and releasing lithium ions. The separator can be a microporous sheet or nonwoven fabric made of resin. In this embodiment, the electrode body is formed by laminating electrode plates (positive electrode plate and negative electrode plate) in the X-axis direction. The electrode body may take any form, such as a wound electrode body formed by winding electrode plates (positive electrode plate and negative electrode plate), a laminated (stacked) electrode body formed by laminating a plurality of flat electrode plates, or a bellows-type electrode body in which the electrode plates are folded in a bellows shape.

[0042] The current collector is a conductive member (positive electrode current collector and negative electrode current collector) that is electrically connected to the terminal 240 and the electrode body. The positive electrode current collector is made of aluminum or an aluminum alloy, similar to the positive electrode base layer of the positive electrode plate, and the negative electrode current collector is made of copper or a copper alloy, similar to the negative electrode base layer of the negative electrode plate.

[0043] The upper gasket 250 is positioned between the cover 230 and the terminal 240, and is a gasket that insulates and seals the space between the cover 230 and the terminal 240. The lower gasket is positioned between the cover 230 and the current collector, and is a gasket that insulates and seals the space between the cover 230 and the current collector. The upper gasket 250 and the lower gasket may be made of any material that has electrical insulating properties.

[0044] The busbar 33 is a rectangular plate-shaped member that is held by the busbar frame 17 and positioned on at least two energy storage elements 200, electrically connecting the terminals 240 (positive terminal and negative terminal) of the at least two energy storage elements 200. The busbar 33 is made of a conductive metal such as copper, copper alloy, aluminum, aluminum alloy, nickel, or clad material. In this embodiment, five busbars 33 are used to connect two energy storage elements 200 in parallel to form four sets of energy storage element groups, and these four sets of energy storage element groups are connected in series.

[0045] The connection unit 80 is a unit having multiple busbars and a control board, etc., and connects the group of energy storage elements consisting of eight energy storage elements 200 to external terminals 91 and 92. The control board of the connection unit 80 has multiple electrical components, and these multiple electrical components form a detection circuit for detecting the state of each energy storage element 200, and a control circuit for controlling charging and discharging. The connection unit 80 is provided with a connector portion 89 for the detection circuit or control circuit. In this embodiment, the connection unit 80 is fixed to the busbar frame 17. The detection circuit and control circuit may be formed on separate boards. The connection unit 80 does not have a control board. In this case, for example, a control device located outside the energy storage device 1 may control the charging and discharging of each energy storage element 200. Also, a sensor 81 (see Figure 4, etc.) attached to the energy storage element 200 is electrically connected to the detection circuit. Here, the sensor 81 is a sensor that detects the state of the energy storage element 200. Specifically, examples of the sensor 81 include a temperature sensor (thermistor) for detecting the temperature of the energy storage element 200, and a voltage sensor for detecting the voltage of the energy storage element 200.

[0046] The busbar frame 17 is a component positioned above the multiple energy storage elements 200 (on the side where the terminals 240 are located) and is an example of a holding component. In this embodiment, the busbar frame 17 is a component that holds the busbars 33 and the sensors 81 attached to the energy storage elements 200. More specifically, the busbar frame 17 is a component that holds the multiple busbars 33, the connection unit 80, the sensors 81, and other wiring etc. (not shown), and can restrict the position of these components. The busbar frame 17 is also provided with multiple busbar openings 17a that hold each of the multiple busbars 33 and expose a portion of each of the multiple busbars 33 to the side of the multiple energy storage elements 200. Furthermore, by being fixed to the main body 11, the busbar frame 17 also serves to restrict the upward movement of the multiple energy storage elements 200 (towards the positive Z-axis direction).

[0047] The busbar frame 17 may also be called, for example, a "busbar plate" or "inner cover." The busbar frame 17 is formed from insulating materials such as PC, PP, PE, PS, PPS, PPE (including modified PPE), PET, PBT, PEEK, PFA, PTFE, PES, ABS resin, or composite materials thereof, or from metal with an insulating coating.

[0048] The pair of end plates 39 are rectangular plates positioned within the main body 11 to sandwich multiple energy storage elements 200 together. Specifically, the pair of end plates 39 are positioned parallel to the YZ plane, sandwiching the multiple energy storage elements 200 in the X-axis direction. In other words, the pair of end plates 39 are positioned to overlap the long side surface 211 of the container 210 of the outermost energy storage element 200. The end plates 39 are made of, for example, metal with an insulating coating.

[0049] [Assembly structure of busbar frame and sensor] Next, the assembly structure of the busbar frame 17 and the sensor 81 will be described. Figure 4 is a perspective view showing the busbar frame 17 according to Embodiment 1. Specifically, Figure 4 is a perspective view of the busbar frame 17 viewed from above. Figure 5 is a cross-sectional view showing the assembly structure of the busbar frame 17 and the sensor 81 according to Embodiment 1. Specifically, Figure 5 is a cross-sectional view of the cut surface including the VV line in Figure 4.

[0050] First, the busbar frame 17 will be described in detail. As shown in Figure 4, the busbar frame 17 has a gas path section 71, a sensor placement section 72, and a busbar installation section 73. The gas path section 71 is located in the center of the busbar frame 17 in the Y-axis direction and extends in the X-axis direction. The gas path section 71 is the path for the gas discharged from the gas discharge valve 231 of the energy storage element 200.

[0051] The sensor placement section 72 is a pair of parts that sandwich the gas path section 71 in the Y-axis direction, and each extends in the X-axis direction. In the sensor placement section 72, two sensor fixing sections 74 are arranged in the X-axis direction in the Y-positive direction. On the other hand, in the sensor placement section 72, two sensor fixing sections 74 are also arranged in the X-axis direction in the Y-negative direction. Each sensor fixing section 74 is positioned at a different location in the X-axis direction. In other words, each sensor fixing section 74 is positioned so as not to overlap when viewed from the Y-axis direction. Each sensor fixing section 74 is the part to which the sensor 81 is fixed.

[0052] As shown in Figure 5, the sensor fixing portion 74 has a holding portion 75 for holding the sensor 81 and a wall portion 76 surrounding the holding portion 75.

[0053] The holding portion 75 has a base portion 751 and a pair of fixing portions 752. The base portion 751 is supported on the cover 230 of the energy storage element 200, and has an opening 753 formed in the center in the Y-axis direction that penetrates in the Z-axis direction. The bottom surface (lower surface) of the base portion 751 may be in direct contact with the cover 230, or it may be indirectly in contact with it via an adhesive or the like. The top surface of the base portion 751 is provided with a pair of fixing portions 752 positioned to sandwich the opening 753 in the X-axis direction.

[0054] Each pair of fixing parts 752 has a shaft portion 754 extending upward from the upper surface of the base portion 751, and a head portion 755 that is continuous with the tip of the shaft portion 754 and has a larger diameter than the shaft portion 754. The shaft portion 754 and the head portion 755 are integrally molded with the base portion 751. In other words, the shaft portion 754 and the head portion 755 are integrally molded with the busbar frame 17, and they form a single component.

[0055] As shown in Figure 4, the wall portion 76 surrounds the holding portion 75 such that one end of the holding portion 75 in the Y-axis direction is partially open. For example, in the sensor fixing portion 74 located in the negative Y-axis direction in the sensor placement portion 72, the wall portion 76 surrounds the holding portion 75 such that only the central part in the X-axis direction of the end of the holding portion 75 in the positive Y-axis direction is open. On the other hand, in the sensor fixing portion 74 located in the positive Y-axis direction in the sensor placement portion 72, the wall portion 76 surrounds the holding portion 75 such that only the central part in the X-axis direction of the end of the holding portion 75 in the negative Y-axis direction is open. Wiring (not shown) connected to the sensor 81 is led out from the open portion of the wall portion 76. This wiring is routed to the connector portion 89 of the connection unit 80 and connected to the connector portion 89.

[0056] Next, the sensor 81 will be described in detail. As shown in Figure 5, the sensor 81 comprises a sensor body 82 and a mounting member 83.

[0057] The sensor body 82 is the part that measures the state of the energy storage element 200. The sensor body 82 is formed in a rectangular shape in plan view, and its bottom surface is the measurement surface 821. The sensor body 82 is provided with wiring (not shown) that is connected to the detection circuit of the connection unit 80.

[0058] The sensor body 82 has a roughly rectangular parallelepiped shape that is elongated in the Y-axis direction. In other words, the sensor body 82 is positioned so that the Y-axis direction is its longitudinal direction. The wiring leading out from the sensor body 82 is routed out from the end of the sensor body 82 in the Y-axis direction.

[0059] The mounting member 83 is a member for attaching the sensor body 82 to the busbar frame 17. Preferably, the mounting member 83 is made of a thermally conductive material with relatively high thermal conductivity. For example, a bent sheet of metal such as aluminum or copper can be used as the mounting member 83. The mounting member 83 integrally has a housing portion 84 and a pair of protruding portions 85, and is approximately the same size as the sensor body 82 in the Y-axis direction.

[0060] The housing section 84 is the part that houses the sensor body 82 and is formed in a roughly U-shape when viewed in the Y-axis direction. The measuring surface 821 of the sensor body 82 is in contact with the inner bottom surface of the housing section 84. On the other hand, the cover 230 of the energy storage element 200 is in contact with the outer bottom surface of the housing section 84. As mentioned above, since the mounting member 83 is made of a thermally conductive material with relatively high thermal conductivity, the heat from the energy storage element 200 received by the outer bottom surface of the housing section 84 is conducted from the inner bottom surface of the housing section 84 to the measuring surface 821 of the sensor body 82. For this reason, the outer bottom surface of the housing section 84 can be said to be the detection surface 87 of the sensor 81.

[0061] Here, by forming an opening at the bottom of the housing 84, the measuring surface 821 of the sensor body 82 can be exposed through the opening and brought into contact with the cover 230 of the energy storage element 200. In this case, the measuring surface 821 of the sensor body 82 can be called the detection surface 87 of the sensor 81.

[0062] In addition, a thermal conductive sheet with relatively high thermal conductivity may be laminated on the outer bottom surface of the housing 84. The outer surface of the thermal conductive sheet is in contact with the lid 230 of the energy storage element 200. In other words, heat from the energy storage element 200 is conducted to the measuring surface 821 of the sensor body 82 via the thermal conductive sheet and the mounting member 83. In this case, the outer surface of the thermal conductive sheet can be called the detection surface 87 of the sensor 81. The thermal conductive sheet may be made of resin or metal, as long as it has insulating properties.

[0063] The pair of protrusions 85 project outward (sideways) along the XY plane from each of the ends of the housing portion 84. Specifically, of the pair of protrusions 85, the protrusion 85 in the positive X-axis direction projects in the positive X-axis direction, and the protrusion 85 in the negative X-axis direction projects in the negative X-axis direction. Therefore, each protrusion 85 is located in the energy storage element 200. Lid It can be said that the projections extend along 230, or that they extend toward the wall portion 76 of the busbar frame 17. Each projection 85 is formed in a flat shape and has a through hole 851 that penetrates in the Z-axis direction. The shaft portion 754 of each fixing portion 752 passes through each through hole 851. The shaft portion 754 is in contact with the inner circumferential surface of the through hole 851 by fitting, so that the movement of the sensor 81 in the direction along the XY plane is restricted. The head portion 755 of each fixing portion 752 is in contact with the upper surface of each projection 85, thereby restricting the upward movement of the sensor 81 (in the Z-axis positive direction). In this state, the housing portion 84 and the sensor body 82 are arranged in the opening 753 of the base portion 751, and the detection surface 87 of the sensor 81 is in contact with the cover 230 of the energy storage element 200. In other words, the sensor 81 is in a state where it can detect the temperature or voltage of the energy storage element 200. In this state, the upper surface of the base portion 751 can be said to be the opposing surface 757 that faces the protruding portion 85.

[0064] Figure 5 illustrates a case in which the bottom surface of the base portion 751 and the detection surface 87 of the sensor 81 are in contact with the same flat surface of the energy storage element 200 (the top surface of the cover 230) in the busbar frame 17. In this case, the first interval H1, which is the length in the Z-axis direction from the detection surface 87 of the sensor 81 to each protrusion 85 when viewed from the Y-axis direction, is greater than or equal to the second interval H2, which is the length in the Z-axis direction from the bottom surface of the base portion 751 that contacts the energy storage element 200 to the opposing surface 757. The first interval H1 is the energy storage device 1 The area is imaged using X-ray CT, and the determination is made based on the average value of the intervals at any three locations obtained from the image data. The same applies to the second interval H2. In addition, a gap S is provided between the opposing surface 757 and each protrusion 85, and this gap S allows the detection surface 87 of the sensor 81 to easily come into contact with the energy storage element 200. This will be explained later.

[0065] As shown in Figure 4, the busbar installation section 73 is a pair of parts that sandwich the gas path section 71 and the pair of sensor placement sections 72 in the Y-axis direction, and each extends in the X-axis direction. The busbar installation section 73 is the part where multiple busbars 33 are installed. Multiple busbar openings 17a are formed in the busbar installation section 73, which expose the part of each busbar 33 that is connected to the energy storage element 200.

[0066] [How to assemble the sensor and busbar frame] Next, the assembly method of the sensor 81 and the busbar frame 17 will be described. Figure 6 is a cross-sectional view showing the state of the sensor 81 according to Embodiment 1 before it is assembled to the busbar frame 17. Figure 7 is a cross-sectional view showing the state of the sensor 81 according to Embodiment 1 during its assembly to the busbar frame 17. Figures 6 and 7 correspond to Figure 5.

[0067] As shown in Figure 6, in the pre-assembly state, the busbar frame 17 is mounted on each energy storage element 200, and each fixing part 752 of the busbar frame 17 does not have a head 755 but consists only of a shaft part 754. The worker inserts the sensor 81 into the wall part 76 from above the base part 751. At this time, the worker inserts the shaft part 754 of each fixing part 752 into the through hole 851 of each protrusion 85 of the sensor 81, and then lowers the sensor 81. During insertion, the tip of each protrusion 85 of the sensor 81 is in contact with the inner wall surface of the wall part 76, so the sensor 81 is guided by the inner wall surface of the wall part 76, making it possible to lower the sensor 81 smoothly.

[0068] As the sensor 81 descends, the housing portion 84 and sensor body 82 of the sensor 81 are inserted into the opening 753 of the base portion 751, and finally the detection surface 87 contacts the cover 230 of the energy storage element 200 (see Figure 7). As mentioned above, a gap S is provided between the opposing surface 757 of the base portion 751 and each protrusion 85. The dimensions of each component are set so that this gap S is formed, so that each protrusion 85 does not interfere with the base portion 751 when the sensor 81 descends. In other words, the base portion 751 is prevented from becoming an obstacle when the detection surface 87 of the sensor 81 approaches the energy storage element 200 during assembly. Therefore, the detection surface 87 of the sensor 81 can be easily brought into contact with the energy storage element 200.

[0069] Next, the worker deforms the tip of the shaft portion 754 of each fixing portion 752 by heat crimping to form the head portion 755. The head portion 755 has a larger shape in the axial direction (Z-axis direction) than the shaft portion 754, and presses the protruding portion 85 from the opposite side of the opposing surface 757. In other words, the head portion 755 prevents the protruding portion 85 from coming off by pressing the upper surface of the protruding portion 85. As a result, the movement of the sensor 81 in the positive Z-axis direction is restricted, and the detection surface 87 of the sensor 81 can be kept in contact with the energy storage element 200. Note that although the example here illustrates the deformation of the tip of the shaft portion 754 by heat crimping, the tip of the shaft portion 754 may also be deformed by other crimping methods.

[0070] Thus, the manufacturing method of the energy storage device 1 includes a step of fixing the sensor 81 by passing the fixing portion 752 of the busbar frame 17, which is placed on the energy storage element 200, through the protruding portion 85 of the sensor 81 such that a gap is formed between the opposing surface 757 of the base portion 751 and the protruding portion 85 of the sensor 81.

[0071] [Effects, etc.] As described above, in the energy storage device 1 according to this embodiment, a gap S is formed between the protruding portion 85 of the sensor 81 and the opposing surface 757 of the busbar frame 17. Therefore, it is possible to suppress the busbar frame 17 from becoming an obstacle when the detection surface 87 of the sensor 81 approaches the energy storage element 200 during assembly. This ensures that the detection surface 87 of the sensor 81 makes reliable contact with the energy storage element 200, which is in contact with the bottom surface of the busbar frame 17. Furthermore, since the protruding portion 85 of the sensor 81 is fixed to the busbar frame 17 with the fixing portion 752 passing through it, the movement of the sensor 81 in a direction perpendicular to the penetration direction (Z-axis direction) is also restricted. As a result, the detection surface 87 of the sensor 81 that is in contact with the energy storage element 200 is less likely to shift position from its predetermined position. Therefore, the sensor 81 can stably detect the state of the energy storage element 200.

[0072] Furthermore, because there is a gap S, it is possible to press the protruding portion 85 with the fixing portion 752 so that it undergoes elastic deformation. As the protruding portion 85 attempts to return to its original shape due to this elastic deformation, the detection surface 87 of the sensor 81 is pressed against the energy storage element 200, and separation of the detection surface 87 from the energy storage element 200 can be suppressed. In other words, the sensor 81 can detect the state of the energy storage element 200 more stably.

[0073] If the protrusion 85 is deformed to the point of contact with the opposing surface 757, a large stress will act on the protrusion 85, potentially causing damage. By forming a gap S between the elastically deformed protrusion 85 and the opposing surface 757, the amount of elastic deformation of the protrusion 85 can be suppressed, thereby preventing damage to the protrusion 85.

[0074] For example, when the bottom surface of the base portion 751 and the detection surface 87 of the sensor 81 are brought into contact with a flat surface of the energy storage element 200, the first distance H1 from the detection surface 87 of the sensor 81 to the protrusion 85 is greater than or equal to the second distance H2 from the bottom surface of the base portion 751 to the opposing surface 757. If the first distance H1 and the second distance H2 are in this relationship, a gap S is formed between the opposing surface 757 of the busbar frame 17 and the protrusion 85 of the sensor 81. In other words, the busbar frame 17 is prevented from becoming an obstacle when the detection surface 87 of the sensor 81 approaches the energy storage element 200 during assembly. As a result, the bottom surface of the base portion 751 and the detection surface 87 of the sensor 81 can be brought into contact with a flat surface of the energy storage element 200 more reliably.

[0075] Since at least a portion of the fixing portion 752 is integrally molded with the busbar frame 17, the number of parts can be reduced. Furthermore, when the fixing portion 752 is subjected to a load, the busbar frame 17 can easily support the fixing portion 752, thus easily ensuring the vibration resistance or shock resistance of the energy storage device 1.

[0076] In particular, in this embodiment, since the shaft portion 754 of the fixed portion 752 is integrally molded with the busbar frame 17, the shaft portion 754 is less prone to misalignment with the busbar frame 17 than in the configuration where the shaft portion 754 was originally a separate part from the busbar frame 17. Therefore, misalignment of the protruding portion 85 through which the shaft portion 754 passes, that is, misalignment of the sensor 81, can be suppressed more reliably.

[0077] Furthermore, in this embodiment, since the head portion 755 and the shaft portion 754 are integrally molded with the busbar frame 17, it is possible to further reduce the number of parts. This is preferable when the shaft portion 754, which is integral with the busbar frame 17, is passed through the protruding portion 85 of the sensor 81, and then the tip of the shaft portion 754 is deformed by crimping to form the head portion 755.

[0078] [Explanation of variations] The following describes various modifications of Embodiment 1 described above. In the following description, parts identical to those in the above embodiment or other modifications may be denoted by the same reference numerals and their descriptions may be omitted.

[0079] (Variation 1) In the above embodiment 1, the case in which the first interval H1 is greater than or equal to the second interval H2 was illustrated. In this modified example 1, the case in which the first interval H11 is smaller than the second interval H2 will be described. Figure 8 is a cross-sectional view showing the assembly structure of the busbar frame 17 and the sensor 81 according to modified example 1.

[0080] As shown in Figure 8, the cover 230a of the energy storage element 200a has a protrusion 231a that projects inward into the opening 753 of the busbar frame 17. The upper surface of the protrusion 231a is flat and is a different plane from the other upper surfaces of the cover 230a. The bottom surface of the base portion 751 is in contact with the other upper surfaces of the cover 230a, and the detection surface 87 of the sensor 81 is in contact with the upper surface of the protrusion 231a. In this case, the first distance H11 from the detection surface 87 of the sensor 81 to the protrusion 85 is smaller than the second distance H2 from the bottom surface of the base portion 751 to the opposing surface 757. Even in this case, it is sufficient that a gap S is formed between the protrusion 85 of the sensor 81 and the opposing surface 757 of the busbar frame 17.

[0081] (Modification 2) In the above embodiment 1, an example was given in which the fixing part 752 has a head 755 formed by heat crimping. In this modified example 2, a fixing part 752b employing a snap-fit ​​structure will be described. Figure 9 is a cross-sectional view showing the assembly structure of the busbar frame 17b and the sensor 81 according to modified example 2.

[0082] The fixed portion 752b has a shaft portion 754b and a head portion 755b integrally molded with the busbar frame 17b. The shaft portion 754b has an outer shape narrower than the inner diameter of the through hole 851 of the protruding portion 85, and is elastically deformable within the through hole 851. The head portion 755b has a tapered shape with an inclined surface, and its base portion protrudes outward from the shaft portion 754b. The base portion of the head portion 755b is formed to be large enough to pass through the through hole 851.

[0083] When assembling the sensor 81 to the busbar frame 17b, the worker inserts the head portion 755b into the through-hole 851 of each protrusion 85 of the sensor 81. At this time, the inclined surface of the head portion 755b is pressed by the protrusion 85, causing the shaft portion 754b to elastically deform. After the head portion 755b passes through the through-hole 851 of the protrusion 85, the shaft portion 754b elastically returns to its original shape. As a result, the base end of the head portion 755b presses against the upper surface of the protrusion 85, preventing the protrusion 85 from coming loose.

[0084] (Variation 3) In the above embodiment 1, an example was given in which the shaft portion 754 and the head portion 755 are integrally molded with the busbar frame 17. In this modified example 3, a fixed portion 752c in which only the shaft portion 754c is integrally molded with the busbar frame 17c will be described. Figure 10 is a cross-sectional view showing the assembly structure of the busbar frame 17c and the sensor 81 according to modified example 3.

[0085] As shown in Figure 10, in the fixed part 752c according to the modified example 3, a shaft portion 754c, integrally molded with the busbar frame 17c, is provided extending upward from the opposing surface 757 of the base portion 751. A head portion 755c, separate from the shaft portion 754c, is attached to the tip of this shaft portion 754c. The head portion 755c is fixed to the shaft portion 754c by fitting, press-fitting, screw fastening, bonding, or welding. As a result, the head portion 755c presses against the upper surface of the protruding portion 85, preventing the protruding portion 85 from coming off.

[0086] (Modification 4) In the above embodiment 1, an example was given in which the shaft portion 754 and the head portion 755 are integrally molded with respect to the busbar frame 17. In this modified example 4, the fixing portion 752d, in which the shaft portion 754d and the head portion 755d were originally separate from the busbar frame 17d, will be described. Figure 11 is a cross-sectional view showing the assembly structure of the busbar frame 17d and the sensor 81 according to modified example 4.

[0087] As shown in Figure 11, in the modified example 4, the fixing part 752d has a shaft portion 754d and a head portion 755d integrally molded. The busbar frame 17d has holes 759d recessed in the Z-axis direction formed on the opposing surfaces 757d of each base portion 751d. The shaft portion 754d of the fixing part 752d is attached to the hole portion 759d by passing through the through hole 851 of the protruding portion 85. The shaft portion 754d is fixed to the hole portion 759d by fitting, press-fitting, screw fastening, adhesive or welding. After fixing, the head portion 755d presses against the upper surface of the protruding portion 85 to prevent the protruding portion 85 from coming off. In addition, the shaft portion 754d and the head portion 755d of the fixing part 752d may originally be separate parts.

[0088] (Embodiment 2) In Embodiment 1 described above, the case in which the sensor 81 is in contact with the energy storage element 200 was illustrated. In Embodiment 2, the case in which the sensor 81 is in contact with the busbar 33 electrically connected to the energy storage element 200 will be described. In the following description, parts equivalent to those in Embodiment 1 will be denoted by the same reference numerals and their descriptions may be omitted.

[0089] Figure 12 is a cross-sectional view showing the assembly structure of the busbar frame 17e and the sensor 81 according to Embodiment 2. As shown in Figure 12, the busbar 33 is electrically connected to the terminal 240 of the energy storage element 200. The detection surface 87 of the sensor 81 is in contact with the upper surface of the busbar 33. The sensor 81 is arranged so that each protrusion 85 is aligned along the Y-axis direction.

[0090] The busbar frame 17e is provided with a sensor fixing portion 74e at a position corresponding to the busbar 33. The pair of fixing portions 752 of the sensor fixing portion 74e are located at the busbar opening. Department The components are positioned to sandwich 17a in the Y-axis direction. At each fixing portion 752, the shaft portion 754 penetrates the protruding portion 85 of the sensor 81, and the head portion 755 is in contact with the upper surface of the protruding portion 85. In this state, when viewed from the X-axis direction, the first interval H21, which is the length in the Z-axis direction from the detection surface 87 of the sensor 81 to each protruding portion 85, is greater than or equal to the second interval H22, which is the length in the Z-axis direction from the detection surface 87 of the sensor 81 to the opposing surface 757. As a result, a gap S is formed between the protruding portion 85 of the sensor 81 and the opposing surface 757 of the busbar frame 17e, so that the busbar frame 17e does not become an obstacle when the detection surface 87 of the sensor 81 approaches the energy storage element 200 during assembly.

[0091] As described above, in the energy storage device according to Embodiment 2, the protruding portion 85 of the sensor 81 is fixed to the busbar frame 17e with the fixing portion 752 passing through the protruding portion 85, so that the movement of the sensor 81 in a direction perpendicular to the penetration direction can be restricted. As a result, the detection surface 87 of the sensor 81 that is in contact with the busbar 33 is less likely to shift from its predetermined position. Therefore, the sensor 81 can stably detect the state of the energy storage element 200 via the busbar 33.

[0092] [others] Although an embodiment of the present invention has been described above, the present invention is not limited to the above-described embodiment. In other words, the embodiments disclosed herein are illustrative and not restrictive in all respects, and the scope of the present invention includes all modifications in the sense and scope of equivalence to the claims.

[0093] In the above embodiment, a busbar frame 17 was given as an example of a holding member for holding the sensor 81. However, any member other than the busbar frame 17 can be used as a holding member as long as it holds the sensor 81 with its detection surface 87 exposed toward the energy storage element 200.

[0094] Furthermore, in the above embodiment, a sensor 81 having a pair of protrusions 85 was illustrated. However, the sensor 81 only needs to be provided with at least one protrusion 85.

[0095] Furthermore, although the above embodiment illustrates a power storage device 1 having a plurality of energy storage elements 200, a power storage device with a single energy storage element may also be used.

[0096] Furthermore, forms constructed by arbitrarily combining the components included in the above embodiments are also included within the scope of the present invention. [Industrial applicability]

[0097] This invention can be applied to energy storage devices equipped with energy storage elements such as lithium-ion secondary batteries. [Explanation of symbols]

[0098] 1. Energy storage device 17, 17b, 17c, 17d, 17e Busbar frame (retaining member) 74, 74e Sensor fixing part 75 Holding part 76 Wall 80 connection units 81 Sensors 82 Sensor body 83 Mounting components 84 Storage Unit 85 Protrusion 87 Detection surface 200, 200A energy storage element 751, 751d Base 752, 752b, 752c, 752d fixed part 753 Opening 754, 754b, 754c, 754d shaft part 755, 755b, 755c, 755d head 757, 757d Opposite side 759d Hole 851 Through hole H1, H11, H21 first interval H2, H22 second interval S Gap

Claims

1. Energy storage element, A sensor attached to the aforementioned energy storage element, The sensor is held by a holding member, with the detection surface of the sensor facing the energy storage element. The sensor has a protruding portion that extends laterally, The retaining member has an opposing surface facing the protruding portion and a fixing portion provided on the opposing surface that penetrates the protruding portion and fixes the protruding portion in place. A gap is provided between the protruding portion and the opposing surface. Energy storage device.

2. The holding member includes a bottom surface that contacts the energy storage element. The first distance from the detection surface of the sensor to the protrusion is greater than or equal to the second distance from the bottom surface to the opposing surface. The energy storage device according to claim 1.

3. The protruding portion extends toward the retaining member. The energy storage device according to claim 1 or 2.

4. The protruding portion extends along the energy storage element. The energy storage device according to claim 1 or 2.

5. At least a portion of the fixed portion is integrally molded with the holding member. The energy storage device according to claim 1 or 2.

6. The fixing portion has a shaft portion that penetrates the protruding portion, and a head portion provided on the shaft portion that presses the protruding portion from the opposite side of the opposing surface. The shaft portion is integrally molded with the holding member. The energy storage device according to claim 5.

7. The head and shaft portions are integrally molded with the holding member. The energy storage device according to claim 6.

8. Energy storage element, A busbar electrically connected to the aforementioned energy storage element, A sensor attached to the busbar, The sensor is held by a holding member, with the detection surface of the sensor facing the busbar. The sensor has a protruding portion that extends laterally, The retaining member has an opposing surface facing the protruding portion and a fixing portion provided on the opposing surface that penetrates the protruding portion and fixes the protruding portion in place. A gap is provided between the protruding portion and the opposing surface. Energy storage device.

Citation Information

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