Power storage device, power storage device manufacturing kit, and power storage device manufacturing method
The electricity storage device design addresses bonding issues by using an exterior body with a smaller intermediate portion and rounded corners, ensuring secure bonding without damaging the electrode body.
Patent Information
- Application Number
- JP2025151199
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-10-06
- Filing Date
- 2025-09-11
- Publication Date
- 2025-11-26
AI Technical Summary
The manufacturing process of electricity storage devices faces issues with poor bonding between the exterior film and the lid body due to gaps, leading to subsequent repair work, and excessive tension can cause damage to the electrode body.
The design includes an exterior body with an intermediate portion having a smaller outer periphery than the bonding surface, and corners with rounded surfaces, ensuring proper bonding without excessive pressure on the electrode body.
This design suppresses poor bonding between the exterior film and the lid body, preventing damage to the electrode body while maintaining effective sealing.
Smart Images

Figure 2025172967000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an electricity storage device, an electricity storage device manufacturing kit, and a method for manufacturing an electricity storage device. [Background technology]
[0002] Patent Document 1 discloses an example of an electricity storage device. This electricity storage device includes an electrode assembly and an exterior body that seals the electrode assembly. The exterior body includes an exterior film that wraps the electrode assembly so as to form an opening, and a lid that is placed over the opening. The exterior film and the lid are joined together. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Publication No. 2022-123686 Summary of the Invention [Problem to be solved by the invention]
[0004] In the manufacture of the above-described energy storage device, a process may be performed in which an exterior film is wrapped around the outer peripheral surfaces of the electrode body and the lid body to encase the electrode body, for example, by wrapping the exterior film around the outer peripheral surfaces of the electrode body and the lid body. After achieving this wrapped state, a process of bonding the exterior film to the outer peripheral surface of the lid body is then performed. If there is a gap between the exterior film and the lid body in this wrapped state, poor bonding between the exterior film and the lid body occurs, which undesirably requires subsequent repair work to repair the poor bonding. However, due to the elasticity of the exterior film, it is difficult to achieve a wrapped state without sagging around the outer peripheral surface of the lid body. However, if the tension applied to the exterior film is too high during the process of achieving the wrapped state, such as wrapping it around the lid body, unnecessary pressure may be applied to the electrode body, which may have undesirable effects on the electrode body, such as the collapse of the laminated structure of the electrode foil, etc. of the electrode body. Therefore, a technology has been sought that suppresses poor bonding between the exterior film and the lid body while eliminating any effects on the electrode body.
[0005] The present invention aims to provide an electricity storage device in which poor bonding between an exterior film and a lid is appropriately suppressed, a kit for manufacturing an electricity storage device, and a method for manufacturing an electricity storage device. [Means for solving the problem]
[0006] An electricity storage device according to a first aspect of the present invention is an electricity storage device comprising an electrode assembly and an exterior body sealing the electrode assembly, wherein the electrode assembly comprises a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end. The exterior body comprises an exterior film enclosing the intermediate portion, and a lid body disposed on at least one of the first end and the second end, the lid body having a bonding surface bonded to the exterior film. The outer periphery of the intermediate portion is smaller than the outer periphery of the bonding surface.
[0007] An electricity accumulation device according to a second aspect of the present invention is the electricity accumulation device according to the first aspect, wherein the difference between the outer periphery of the intermediate portion and the outer periphery of the joint surface is 1 mm or more.
[0008] An electricity storage device according to a third aspect of the present invention is the electricity storage device according to the first or second aspect, wherein the intermediate portion has one or more corners with rounded surfaces, and the bonding surface has one or more corners with rounded surfaces, and the radius of curvature of the one or more corners of the intermediate portion is larger than the radius of curvature of the one or more corners of the bonding surface.
[0009] A fourth aspect of the present invention provides an electricity storage device manufacturing kit for manufacturing an electricity storage device including an electrode assembly and an exterior body that seals the electrode assembly, wherein the electrode assembly includes a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end. The exterior body includes an exterior film for wrapping the intermediate portion, and a lid body to be placed on at least one of the first end and the second end, the lid body having a bonding surface to be bonded to the exterior film. The outer periphery of the intermediate portion is smaller than the outer periphery of the bonding surface.
[0010] A power storage device manufacturing kit according to a fifth aspect of the present invention is the power storage device manufacturing kit according to the fourth aspect, wherein the difference between the outer periphery of the intermediate portion and the outer periphery of the joining surface is 1 mm or more.
[0011] An electricity storage device manufacturing kit according to a sixth aspect of the present invention is the electricity storage device manufacturing kit according to the fourth or fifth aspect, wherein the intermediate portion has one or more corners with rounded surfaces, and the joining surface has one or more corners with rounded surfaces, and the radius of curvature of the one or more corners of the intermediate portion is larger than the radius of curvature of the one or more corners of the joining surface.
[0012] A seventh aspect of the present invention provides an electric storage device intermediate for manufacturing an electric storage device including an electrode assembly and an exterior housing that seals the electrode assembly, wherein the electrode assembly includes a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end. The exterior housing includes an exterior film that wraps the intermediate portion, and a lid that is located on at least one of the first end and the second end and has a bonding surface that is bonded to the exterior film. The electric storage device intermediate includes the electrode assembly, and the exterior film and the lid that are bonded to each other so as to house the electrode assembly, and the outer periphery of the intermediate portion is smaller than the outer periphery of the bonding surface. The electric storage device intermediate does not contain an electrolyte.
[0013] A manufacturing method for an electricity storage device according to an eighth aspect of the present invention is a manufacturing method for an electricity storage device comprising an electrode body and an exterior body sealing the electrode body, wherein the electrode body comprises a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end, and the exterior body comprises an exterior film and a lid having a bonding surface to be bonded to the exterior film. The manufacturing method includes the following steps. The lid and the electrode body are arranged so that the lid is located on at least one of the first end side and the second end side. The outer casing film is wrapped around the lid body and the electrode body so as to enclose the joint surface of the lid body and the middle part of the electrode body, and the joint surface and the outer casing film are joined to create an intermediate body of an electricity storage device in which the electrode body is housed between the lid body and the outer casing film, and which does not contain an electrolyte solution. In the intermediate body of the electricity storage device, the outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface.
[0014] A manufacturing method for an electricity storage device according to a ninth aspect of the present invention is the manufacturing method for an electricity storage device according to the eighth aspect, further comprising the step of injecting the electrolyte solution into the inside of the joined lid body and exterior film. Further includes:
[0015] A tenth aspect of the present invention relates to a method for manufacturing an electricity storage device comprising an electrode assembly and an exterior body sealing the electrode assembly, wherein the electrode assembly comprises a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end, the exterior body comprises an exterior film and a lid having a bonding surface to be bonded to the exterior film, and the outer periphery of the intermediate portion is smaller than the outer periphery of the bonding surface. The manufacturing method includes the following steps. The lid and the electrode body are arranged so that the lid is located on at least one of the first end side and the second end side. The exterior film is wrapped around the lid body and the electrode body so as to enclose the joint surface of the lid body and the middle part of the electrode body. The joining surface and the exterior film are joined together.
[0016] A manufacturing method for an electricity storage device according to an eleventh aspect of the present invention is a manufacturing method for an electricity storage device comprising an electrode body and an exterior body sealing the electrode body, wherein the electrode body comprises a first end, a second end spaced apart from the first end, and an intermediate portion extending continuously between the first end and the second end, and the exterior body comprises an exterior film and a lid having a bonding surface to be bonded to the exterior film. The manufacturing method includes the following steps. The lid and the electrode body are arranged so that the lid is located on at least one of the first end side and the second end side. The exterior film is wrapped around the lid body and the electrode body so as to enclose the joint surface of the lid body and the middle part of the electrode body. The joining surface and the exterior film are joined together. Furthermore, wrapping the exterior film around the lid body and the electrode body includes wrapping the exterior film around the lid body and the electrode body so that the pressure applied from the exterior film to the joint surface is greater than the pressure applied from the exterior film to the intermediate portion. [Effects of the Invention]
[0017] According to the electricity storage device, the electricity storage device manufacturing kit, and the electricity storage device manufacturing method of the present invention, it is possible to suppress poor bonding between the exterior film and the lid body without undesirably affecting the electrode body. [Brief explanation of the drawings]
[0018] [Figure 1] FIG. 1 is a perspective view of an electricity storage device according to an embodiment. [Figure 2] FIG. 2 is a perspective view of an electrode body included in the electricity storage device of FIG. [Figure 3] 2 is a cross-sectional view showing the layer structure of an exterior film included in the electricity storage device of FIG. 1. [Figure 4] FIG. 2 is a perspective view of a lid provided in the electricity storage device of FIG. 1. [Figure 5] 2A and 2B are diagrams illustrating a method for identifying the outer periphery of the joint surface of the power storage device in FIG. 1. [Figure 6] 5A to 5C are diagrams illustrating an example of a manufacturing process for an electricity storage device using an electricity storage device manufacturing kit according to an embodiment. [Figure 7] 3 is a flowchart showing an example of a method for manufacturing the electricity storage device of FIG. [Figure 8] 10A and 10B are diagrams illustrating the relationship in size between the outer peripheries of the joint surface and the intermediate portion. [Figure 9] FIG. 2 is a top view of an intermediate electricity storage device produced by the electricity storage device manufacturing method. [Figure 10A] 10A and 10B are diagrams illustrating the configuration of a lid body and an electrode body according to a modified example. [Figure 10B] 10A and 10B are diagrams illustrating the configuration of a lid body and an electrode body according to another modified example. [Figure 11]FIG. 10 is a cross-sectional view schematically showing a wound electrode body housed in an exterior body of an electricity storage device according to a modified example. DETAILED DESCRIPTION OF THE INVENTION
[0019] Hereinafter, an electricity storage device, an electricity storage device manufacturing kit, and a method for manufacturing an electricity storage device according to one embodiment of the present invention will be described with reference to the drawings. In this specification, a numerical range indicated by "to" means "greater than or equal to" or "less than or equal to." For example, the expression "2 to 15 mm" means 2 mm or greater and 15 mm or less. In addition, in this specification, a corner includes not only a right-angled corner, but also a corner formed with a rounded surface (chamfered surface).
[0020] <1. Configuration of the power storage device> FIG. 1 is a perspective view schematically showing an electricity storage device 10 according to this embodiment. FIG. 2 is a perspective view of an electrode body 20 included in the electricity storage device of FIG. 1A. FIG. 3 is a cross-sectional view showing the layer structure of an exterior film 50 included in the electricity storage device 10 of FIG. 1. FIG. 4 is a perspective view of a lid body 60 included in the electricity storage device 10 of FIG. 1. In FIG. 1, the direction of arrows UD indicates the thickness direction of the electricity storage device 10, the direction of arrows LR indicates the width direction of the electricity storage device 10, and the direction of arrow FB indicates the depth direction of the electricity storage device 10. The directions indicated by the arrows UDLRFB are common to the subsequent figures.
[0021] The energy storage device 10 includes an electrode assembly 20, an electrode terminal 30, and an exterior housing 40. The electrode assembly 20 includes electrodes (positive and negative electrodes) constituting an energy storage component such as a lithium-ion battery, a capacitor, an all-solid-state battery, a semi-solid battery, a quasi-solid battery, a polymer battery, an all-resin battery, a lead-acid battery, a nickel-metal hydride battery, a nickel-cadmium battery, a nickel-iron battery, a nickel-zinc battery, a silver oxide-zinc battery, a metal-air battery, a polycation battery, or a capacitor, as well as a separator. In this embodiment, the electrode assembly 20 has a substantially rectangular parallelepiped shape formed by a laminate in which multiple rectangular flat electrode foils and separators are stacked in the UD direction. Note that the term "substantially rectangular parallelepiped" includes not only a perfect rectangular parallelepiped but also a solid that can be considered a rectangular parallelepiped by modifying the shape of a portion of its outer surface. The electrode assembly 20 may have a cylindrical or polygonal prism shape, for example.
[0022] In this embodiment, the electricity storage device 10 includes two electrode terminals 30. The electrode terminals 30 are metal terminals used for inputting and outputting electric power to and from the electrode body 20. One end of the electrode terminal 30 is electrically connected to an electrode (positive electrode or negative electrode) included in the electrode body 20. The other end of the electrode terminal 30 protrudes outward from, for example, an edge of the exterior body 40. Note that the electrode terminal 30 may be any terminal as long as it is capable of inputting and outputting electric power to and from the electrode body 20, and may not, for example, protrude from the exterior body 40. When the lid body 60 described below is made of, for example, metal, the lid body 60 may also function as the electrode terminal 30. In this case, the lid body 60, which functions as an electrode terminal, may or may not protrude from the exterior body 40.
[0023] As shown in FIG. 2 , in this embodiment, the electrode assembly 20 has a front surface 21, a back surface 22, an upper surface 23, a lower surface 24, a first side surface 25, and a second side surface 26. The front surface 21 faces one of the lid bodies 60 (lid body 60A). The back surface 22 faces the other of the lid bodies 60 (lid body 60B). The upper surface 23, the lower surface 24, the first side surface 25, and the second side surface 26 respectively constitute the upper surface 41, the lower surface 42, the first side surface 43, and the second side surface 44 of the exterior body 40 described below. The front surface 21, the back surface 22, the first side surface 25, and the second side surface 26 are imaginary surfaces when the laminate is viewed as a substantially rectangular parallelepiped, based on the upper surface 23 and the lower surface 24 formed by the laminate. The front surface 21 and the back surface 22 respectively constitute a first end 201 and a second end 202 of the electrode assembly 20 that are spaced apart from each other in the FB direction. Furthermore, the upper surface 23, the lower surface 24, the first side surface 25, and the second side surface 26 constitute an intermediate portion 203 of the electrode body 20 that extends continuously between the first end portion 201 and the second end portion 202. The first end portion 201 may include, in addition to the front surface 21, an element that protrudes from the front surface 21 toward the lid body 60A (in the direction of arrow F). Similarly, the second end portion 202 may include, in addition to the back surface 22, an element that protrudes from the back surface 22 toward the lid body 60B (in the direction of arrow B).
[0024] The electrode body 20 has corners 20A, 20B, 20C, and 20D. Corner 20A is formed at the boundary between the upper surface 23 and the first side surface 25. Corner 20B is formed at the boundary between the upper surface 23 and the second side surface 26. Corner 20C is formed at the boundary between the first side surface 25 and the lower surface 24. Corner 20D is formed at the boundary between the second side surface 26 and the lower surface 24. At least one of corners 20A to 20D may have a rounded surface. Examples in which corners 20A to 20D have rounded surfaces will be described later.
[0025] Here, let the outer perimeters of the intermediate portion 203 be L1 and L1'. The outer perimeter L1 is the outer perimeter of the intermediate portion 203 of the electrode body 20 that constitutes the power storage device manufacturing kit 100 or the intermediate body 10A of the power storage device. The power storage device manufacturing kit 100 (see FIG. 6) and the intermediate body 10A of the power storage device (see FIG. 9) will be described later. The outer perimeter L1' is the outer perimeter of the intermediate portion 203 of the electrode body 20 that constitutes the power storage device 10. More specifically, the outer perimeters L1 and L1' are the lengths of the outer peripheral edges of the intermediate portion 203 in a plane that passes through the middle between the front surface 21 and the back surface 22 and is orthogonal to the FB direction. The measurement of the outer perimeters L1 and L1' shall be performed at an environmental temperature of 20°C ± 2°C with a tape measure conforming to JIS B 7522:2018 Class 1 Grade 1, at the tension indicated on a part of the tape measure (for tape measures without the tension indicated, the tension shall be 5 N for a nominal dimension of 2 m or less, and 50 N for those with a width of 50 mm or more). As will be described later, the outer perimeter L1 is smaller than the outer perimeter L2 of the bonding surface 63 of the lid body 60 in a state before constituting the power storage device 10 and not bonded to the exterior film 50. That is, in the power storage device manufacturing kit 100 to be described later, L1 < L2 holds. Further, the outer perimeter L1 is smaller than the outer perimeter L3 of the bonding surface 63 of the lid body 60 in a state bonded to the exterior film 50 before constituting the power storage device 10. That is, in the intermediate body 10A of the power storage device 10 to be described later, L1 < L3 holds. Also, for a power storage device in which the outer perimeter L1' is smaller than the outer perimeter L3 of the bonding surface of the lid body 60 that constitutes the power storage device, that is, L1' < L3 holds, in the power storage device manufacturing kit for manufacturing the power storage device, L1 < L2 holds, or in the intermediate body of the power storage device, L1 < L3 holds.
[0026] As described above, a power storage device in which L1´ < L3 holds is included in the scope of the present invention. Further, for a power storage device manufacturing kit 100 in which L1 < L2 holds, even if L1´ ≧ L3 in the power storage device 10 manufactured using this kit, or even if L1 ≧ L3 in an intermediate body 10A of the power storage device manufactured using the same power storage device manufacturing kit 100, it is included in the scope of the present invention. Furthermore, for an intermediate body 10A of a power storage device in which L1 < L3 holds, even if L1´ ≧ L3 in the power storage device 10 manufactured via the intermediate body 10A of the power storage device, it is included in the scope of the present invention.
[0027] The metal material constituting the electrode terminal 30 is, for example, aluminum, nickel, copper, or the like. For example, when the electrode body 20 is a lithium ion battery, the electrode terminal 30 connected to the positive electrode is usually constituted by aluminum or the like, and the electrode terminal 30 connected to the negative electrode is usually constituted by copper, nickel, or the like. Note that the outermost layer of the electrode body 20 does not necessarily have to be an electrode, and may be, for example, a protective tape or a separator.
[0028] The exterior body 40 seals the electrode assembly 20. The exterior body 40 according to the present embodiment includes an exterior film 50 and a pair of lid bodies 60. The exterior film 50 according to the present embodiment wraps the electrode assembly 20 so as to surround the entire intermediate portion 203 from the outside. In the present embodiment, the exterior film 50 is wrapped around the electrode assembly 20 so that the first end 201 side and the second end 202 side are open. The pair of lid bodies 60 are respectively arranged on the first end 201 side and the second end 202 side of the electrode assembly 20 to close the openings. In a winding step in a manufacturing method for the electricity storage device 10 described below, the exterior film 50, to which tension is applied, is wrapped around the pair of lid bodies 60 and the electrode assembly 20 arranged in this manner (hereinafter, this state will also be referred to as the "wound state"). The above-described wound state can also be achieved by rolling the exterior film 50 into a cylindrical shape to form a pair of openings, or by rolling the exterior film 50 into a cylindrical shape and temporarily fastening at least a portion of the rolled film to maintain that state, and then housing the electrode body 20 inside the cylinder, then placing a lid 60 in each of the pair of openings, and then applying tension to the exterior film 50. Alternatively, the electrode body 20 can be previously prepared with a pair of lids 60 joined to the first end 201 and the second end 202 of the electrode body 20, respectively, and then housing the rolled exterior film 50 inside a cylindrically rolled exterior film 50, or inside a cylindrically rolled exterior film 50 with at least a portion temporarily fastened to maintain that state, and then applying tension to the exterior film 50. As described above, if a wound state in which the exterior film 50 is wrapped around the pair of lids 60 and the electrode body 20 (with a certain degree of tension) can be achieved, the pair of openings can be closed and the electrode body 20 can be sealed by joining the pair of lids 60 and the exterior film 50.
[0029] An adhesive film 31 is preferably bonded to the electrode terminal 30 from the viewpoint of favorable adhesion to the lid 60. The adhesive film 31 can be any film that can bond the metal electrode terminal 30 and the resin lid 60. For example, the adhesive film 31 can be a polyolefin resin such as a polyethylene resin or a polypropylene resin, a cyclic polyolefin resin, or an acid-modified polyolefin resin obtained by graft-modifying these polyolefin resins with an acid such as maleic anhydride. The adhesive film 31 can be a single-layer film or a film of two or more layers. In this embodiment, the adhesive film 31 is bonded to substantially the entire portion of the electrode terminal 30 that is covered by the lid 60.
[0030] For example, there is a method of forming a storage portion (recess) in the exterior film 50 through cold forming to store the electrode assembly 20. However, it is not necessarily easy to form a deep storage portion using this method. Attempting to form a deep storage portion (recess) through cold forming (for example, a forming depth of 15 mm) increases the likelihood of pinholes or cracks occurring in the exterior film 50, resulting in a decrease in battery performance. On the other hand, the exterior body 40 seals the electrode assembly 20 by wrapping the electrode assembly 20 with the exterior film 50, and therefore can easily seal the electrode assembly 20 regardless of the thickness of the electrode assembly 20. Note that in order to reduce the dead space between the electrode assembly 20 and the exterior film 50 and thereby improve the volumetric energy density of the electricity storage device 10, it is preferable that the exterior film 50 wraps the electrode assembly 20 so that it is in contact with or close to the outer surface of the middle portion 203. Furthermore, in all-solid-state batteries, it is necessary to apply high pressure uniformly from the outer surface of the battery in order to exert battery performance, and therefore it is necessary to eliminate the space between the electrode body 20 and the exterior film 50. Therefore, it is preferable that the exterior film 50 is wrapped around the electrode body 20 so as to contact the outer surface of the electrode body 20.
[0031] 3, the exterior film 50 is a laminate (laminate film) having, for example, a base material layer 51, a barrier layer 52, and a heat-sealable resin layer 53 in this order. Note that the exterior film 50 does not need to include all of these layers, and for example, it may not include the barrier layer 52. That is, the exterior film 50 only needs to be made of a flexible and easily bendable material, and may be made of, for example, a resin film. Note that the exterior film 50 is preferably weldable by methods such as heat sealing, ultrasonic sealing, and high-frequency sealing.
[0032] The exterior film 50 may be composed of a laminate including at least a barrier layer 52 and a heat-sealable resin layer 53 in this order. In this laminate, the base layer 51 is an optional layer, and the side of the barrier layer 52 opposite to the heat-sealable resin layer 53 is the outermost layer, and the heat-sealable resin layer 53 is the innermost layer.
[0033] The overall thickness of the exterior film 50 can be selected arbitrarily. From the viewpoint of strength, the thickness of the exterior film 50 is preferably 50 μm or more. From the viewpoint of formability or conformability, the thickness of the exterior film 50 is preferably 1200 μm or less. The thickness of the exterior film 50 is preferably within the range of 50 μm or more and 1200 μm or less.
[0034] The substrate layer 51 included in the exterior film 50 is a layer that imparts heat resistance to the exterior film 50 and suppresses the occurrence of pinholes that may occur during processing or distribution. The substrate layer 51 is composed of, for example, at least one layer of a stretched polyester resin layer and a stretched polyamide resin layer. For example, by including at least one layer of a stretched polyester resin layer and a stretched polyamide resin layer in the substrate layer 51, the barrier layer 52 can be protected during processing of the exterior film 50, and breakage of the exterior film 50 can be suppressed. Furthermore, from the viewpoint of increasing the tensile elongation of the exterior film 50, the stretched polyester resin layer is preferably a biaxially stretched polyester resin layer, and the stretched polyamide resin layer is preferably a biaxially stretched polyamide resin layer. Furthermore, from the viewpoint of excellent puncture strength or impact strength, the stretched polyester resin layer is more preferably a biaxially stretched polyethylene terephthalate (PET) film, and the stretched polyamide resin layer is more preferably a biaxially stretched nylon (ONy) film. The substrate layer 51 may be composed of both a stretched polyester resin layer and a stretched polyamide resin layer. The thickness of the base layer 51 is preferably, for example, 5 to 300 μm, and more preferably 5 to 150 μm, from the viewpoint of film strength.
[0035] The barrier layer 52 is a layer that prevents at least the penetration of moisture. The barrier layer 52 is bonded to the base layer 51 via, for example, an adhesive layer 54. Examples of the barrier layer 52 include metal foils, vapor-deposited films, and resin layers having barrier properties. Vapor-deposited films include metal vapor-deposited films, inorganic oxide vapor-deposited films, and carbon-containing inorganic oxide vapor-deposited films. Resin layers include fluorine-containing resins such as polyvinylidene chloride, polymers mainly composed of chlorotrifluoroethylene (CTFE), polymers mainly composed of tetrafluoroethylene (TFE), polymers having fluoroalkyl groups, and polymers mainly composed of fluoroalkyl units, as well as ethylene-vinyl alcohol copolymers. The barrier layer 52 may also be a resin film having at least one of these vapor-deposited films and resin layers. The barrier layer 52 may be formed of multiple layers. The barrier layer 52 preferably includes a layer made of a metal material. Specific examples of the metal material constituting the barrier layer 52 include aluminum alloys, stainless steel, titanium steel, and steel plates. When used as a metal foil, it is preferable that the metal material contains at least one of an aluminum alloy foil and a stainless steel foil.
[0036] In the barrier layer 52, the layer made of the aforementioned metallic material may contain recycled metallic material. Examples of recycled metallic material include recycled aluminum alloy, stainless steel, titanium steel, and steel plate. These recycled materials can be obtained by known methods. Recycled aluminum alloy material can be obtained, for example, by the manufacturing method described in International Publication No. 2022 / 092231. The barrier layer 52 may be made solely of recycled material, or may be made of a mixture of recycled and virgin material. Note that recycled metallic material refers to metallic material that has been made reusable by collecting, isolating, and refining various products used in the market or waste from manufacturing processes. Furthermore, virgin metallic material refers to new metallic material refined from natural metallic resources (raw materials) and is not recycled material.
[0037] From the viewpoint of improving the formability or conformability of the exterior film 50, the aluminum alloy foil is preferably a soft aluminum alloy foil made of, for example, an annealed aluminum alloy. From the viewpoint of further improving the formability or conformability, an iron-containing aluminum alloy foil is preferred. In the iron-containing aluminum alloy foil (100% by mass), the iron content is preferably 0.1 to 9.0% by mass, more preferably 0.5 to 2.0% by mass. By having an iron content of 0.1% by mass or more, an exterior film 50 with better formability can be obtained. By having an iron content of 9.0% by mass or less, an exterior film 50 with better flexibility can be obtained. Furthermore, silicon, magnesium, copper, manganese, etc. may be added to the aluminum alloy foil as needed. Furthermore, softening can be achieved by annealing or the like. From the viewpoint of improving the mechanical strength of the exterior film 50, the aluminum alloy foil is more preferably a hard aluminum alloy foil made of, for example, a work-hardened aluminum alloy. Examples of hard aluminum alloy foils include aluminum alloy foils having a composition defined in JIS H4160:1994 A8021H-H18, JIS H4160:1994 A8079H-H18, JIS H4000:2014 A8021P-H14, or JIS H4000:2014 A8079P-H14. From the viewpoint of improving the mechanical strength of the packaging film 50, the aluminum alloy foil is preferably an aluminum alloy foil containing magnesium. In the aluminum alloy foil containing magnesium (100% by mass), the magnesium content is preferably 0.2 to 5.6% by mass, and more preferably 0.2 to 3.0% by mass. Examples of aluminum alloy foils containing magnesium include aluminum alloy foils having compositions specified in JIS H4000:2017 A5005P-O, JIS H4000:2017 A5050P-O, and JISH4000:2017 A5052P-O.
[0038] Examples of stainless steel foil include austenitic, ferritic, austenitic-ferritic, martensitic, and precipitation hardened stainless steel foils. Furthermore, from the viewpoint of providing an exterior film 50 with excellent formability, the stainless steel foil is preferably made of austenitic stainless steel.
[0039] Specific examples of austenitic stainless steels that can be used to form the stainless steel foil include SUS304, SUS301, and SUS316L, with SUS304 being particularly preferred.
[0040] In the case of a metal foil, the thickness of the barrier layer 52 should be sufficient to at least function as a barrier layer that prevents moisture penetration, and may be, for example, about 5 to 1000 μm. The thickness of the barrier layer 52 is preferably about 85 μm or less, more preferably about 50 μm or less, even more preferably about 40 μm or less, and particularly preferably about 35 μm or less. The thickness of the barrier layer 52 is preferably about 9.0 μm or more, more preferably about 20 μm or more, and more preferably about 25 μm or more. Preferred ranges for the thickness of the barrier layer 52 include about 9.0 to 1000 μm, about 9.0 to 1000 μm, about 9.0 to 1000 μm, about 9.0 to 1000 μm, about 9.0 to 85 μm, about 9.0 to 50 μm, about 9.0 to 40 μm, about 9.0 to 35 μm, about 20 to 85 μm, about 20 to 50 μm, about 20 to 40 μm, about 20 to 35 μm, about 25 to 85 μm, about 25 to 50 μm, about 25 to 40 μm, and about 25 to 35 μm. When the barrier layer 52 is made of an aluminum alloy foil, the above-mentioned ranges are particularly preferred. From the viewpoint of imparting high formability and high rigidity to the exterior film 50, the thickness of the barrier layer 52 is preferably about 35 μm or more, more preferably about 45 μm or more, even more preferably about 50 μm or more, and even more preferably about 55 μm or more, and is preferably about 200 μm or less, more preferably about 85 μm or less, even more preferably about 75 μm or less, and even more preferably about 70 μm or less. Preferred ranges are approximately 35 to 200 μm, approximately 35 to 85 μm, approximately 35 to 75 μm, approximately 35 to 70 μm, approximately 45 to 200 μm, approximately 45 to 85 μm, approximately 45 to 75 μm, approximately 45 to 70 μm, approximately 50 to 200 μm, approximately 50 to 85 μm, approximately 50 to 75 μm, approximately 50 to 70 μm, approximately 55 to 200 μm, approximately 55 to 85 μm, approximately 55 to 75 μm, and approximately 55 to 70 μm. The high formability of the exterior film 50 facilitates deep drawing, which can contribute to increasing the capacity of the electricity storage device. Furthermore, while increasing the capacity of the electricity storage device increases the weight of the electricity storage device, increasing the rigidity of the exterior film 50 can contribute to high sealing performance of the electricity storage device.In particular, when the barrier layer 52 is made of stainless steel foil, the thickness of the stainless steel foil is preferably about 60 μm or less, more preferably about 50 μm or less, even more preferably about 40 μm or less, even more preferably about 30 μm or less, and particularly preferably about 25 μm or less. The thickness of the stainless steel foil is preferably about 10 μm or more, more preferably about 15 μm or more. Preferred ranges for the thickness of the stainless steel foil include about 10 to 60 μm, about 10 to 50 μm, about 10 to 40 μm, about 10 to 30 μm, about 10 to 25 μm, about 15 to 60 μm, about 15 to 50 μm, about 15 to 40 μm, about 15 to 30 μm, and about 15 to 25 μm.
[0041] Furthermore, when the barrier layer 52 is an aluminum foil, it is preferable that a corrosion-resistant coating be provided on at least the surface opposite the substrate layer 51 to prevent dissolution and corrosion. The barrier layer 52 may be provided with a corrosion-resistant coating on both sides. Here, the corrosion-resistant coating refers to a thin film that is provided with corrosion resistance (e.g., acid resistance, alkali resistance, etc.) by performing, for example, a hydrothermal conversion treatment such as boehmite treatment, a chemical conversion treatment, an anodizing treatment, a plating treatment using nickel or chromium, or a corrosion prevention treatment such as applying a coating agent on the surface of the barrier layer 52. Specifically, the corrosion-resistant coating refers to a coating that improves the acid resistance of the barrier layer 52 (acid-resistant coating), a coating that improves the alkali resistance of the barrier layer 52 (alkali-resistant coating), or the like. The corrosion-resistant coating may be formed by one type of treatment or a combination of two or more types. Furthermore, the barrier layer 52 may be formed not only as a single layer but also as a multi-layer. Furthermore, among these treatments, hydrothermal conversion treatment and anodizing treatment are treatments in which the surface of the metal foil is dissolved using a treatment agent to form a metal compound with excellent corrosion resistance. Note that these treatments may also be included in the definition of chemical conversion treatment. Furthermore, if the barrier layer 52 has a corrosion-resistant coating, the corrosion-resistant coating is also included in the barrier layer 52.
[0042] The corrosion-resistant coating prevents delamination between the barrier layer 52 (e.g., aluminum alloy foil) and the base layer 51 during molding of the exterior film 50, prevents dissolution and corrosion of the surface of the barrier layer 52 due to hydrogen fluoride produced by a reaction between an electrolyte and water, and particularly prevents dissolution and corrosion of aluminum oxide present on the surface of the barrier layer 52 when the barrier layer 52 is an aluminum alloy foil, and also improves the adhesion (wettability) of the surface of the barrier layer 52, thereby preventing delamination between the base layer 51 and the barrier layer 52 during welding such as heat sealing, and between the base layer 51 and the barrier layer 52 during molding.
[0043] The heat-sealable resin layer 53 is bonded to the barrier layer 52 via, for example, an adhesive layer 55. The heat-sealable resin layer 53 included in the exterior film 50 is a layer that provides sealing properties to the exterior film 50 by welding, such as heat sealing. Examples of the heat-sealable resin layer 53 include resin films made of polyester resins such as polyethylene terephthalate resins and polybutylene terephthalate resins, polyolefin resins such as polyethylene resins and polypropylene resins, or acid-modified polyolefin resins obtained by graft-modifying these polyolefin resins with an acid such as maleic anhydride. From the viewpoints of sealing properties and strength, the thickness of the heat-sealable resin layer 53 is preferably, for example, 20 to 300 μm, and more preferably 40 to 150 μm.
[0044] The exterior film 50 preferably has one or more layers with a buffer function (hereinafter referred to as "buffer layer") outside the heat-sealable resin layer 53, more preferably outside the barrier layer 52. The buffer layer may be laminated on the outside of the base material layer 51, or the base material layer 51 may also function as a buffer layer. When the exterior film 50 has multiple buffer layers, the multiple buffer layers may be adjacent to each other, or may be laminated with the base material layer 51, the barrier layer 52, or the like interposed therebetween.
[0045] The material constituting the buffer layer can be arbitrarily selected from materials having cushioning properties. Examples of the material having cushioning properties include rubber, nonwoven fabric, and foam sheet. Examples of rubber include natural rubber, fluororubber, and silicone rubber. The rubber hardness is preferably about 20 to 90. The material constituting the nonwoven fabric is preferably a material having excellent heat resistance. When the buffer layer is made of nonwoven fabric, the lower limit of the thickness of the buffer layer is preferably 100 μm, more preferably 200 μm, and even more preferably 1000 μm. When the buffer layer is made of nonwoven fabric, the upper limit of the thickness of the buffer layer is preferably 5000 μm, and even more preferably 3000 μm. The thickness of the buffer layer is preferably in the range of 100 μm to 5000 μm, 100 μm to 3000 μm, 200 μm to 5000 μm, 200 μm to 3000 μm, 1000 μm to 5000 μm, or 1000 μm to 3000 μm, and most preferably in the range of 1000 μm to 3000 μm.
[0046] When the buffer layer is made of rubber, the lower limit of the buffer layer thickness is preferably 1 mm, more preferably 0.5 mm. When the buffer layer is made of rubber, the upper limit of the buffer layer thickness is preferably 10 mm, more preferably 5 mm, and even more preferably 2 mm. When the buffer layer is made of rubber, the preferred ranges of the buffer layer thickness are 1 mm to 10 mm, 1 mm to 5 mm, 1 mm to 2 mm, 0.5 mm to 10 mm, 0.5 mm to 5 mm, and 0.5 mm to 2 mm.
[0047] When the exterior film 50 has a buffer layer, the buffer layer functions as a cushion, thereby preventing the exterior film 50 from being damaged by impact when the energy storage device 10 is dropped or by handling during the manufacture of the energy storage device 10.
[0048] The lid body 60 shown in FIG. 4 has, for example, a rectangular parallelepiped shape and is, for example, a resin molded product made of a resin material. The lid body 60 may be formed by, for example, cold-forming the exterior film 50, or may be a metal molded product. The material constituting the lid body 60 may include at least two or more materials selected from the group consisting of metal oxide, carbon material, and rubber material. When distinguishing between the pair of lid bodies 60, the lid body 60 disposed on the first end 201 side of the electrode body 20 in the FB direction may be referred to as lid body 60A, and the lid body 60 disposed on the second end 202 side may be referred to as lid body 60B. In this embodiment, the lid body 60A and the lid body 60B have the same configuration, and therefore, when no particular distinction is made, they will simply be referred to as lid body 60.
[0049] The lid body 60 has a first surface 61, a second surface 62, and a bonding surface 63. The first surface 61 faces the electrode assembly 20. The second surface 62 is the surface opposite to the first surface 61. The bonding surface 63 is connected to the first surface 61 and the second surface 62 and is bonded to the heat-sealable resin layer 53 of the exterior film 50. In this embodiment, the bonding surface 63 and the heat-sealable resin layer 53 are bonded by heat sealing. The bonding surface 63 and the exterior film 50 may be bonded by any method other than heat sealing, such as welding. Specific welding methods include, for example, laser welding, ultrasonic welding, and any other method. The lid body 60 may be configured by integrally combining a member constituting the bonding surface 63 (hereinafter also referred to as the "bonding surface portion") and a member constituting at least one portion other than the bonding surface 63 (hereinafter also referred to as the "lid main body portion"). In this case, the lid main body and the joint surface may be made of the same material or different materials. For example, the lid main body may be made of a substantially plate-shaped metal, and the joint surface may be a resin frame-shaped member that is injection molded onto the lid main body and surrounds the periphery of the lid main body. The joint surface 63 will be described below.
[0050] The joining surface 63 includes a first sealing surface 63A, a second sealing surface 63B, a third sealing surface 63C, and a fourth sealing surface 63D. The first sealing surface 63A constitutes the upper surface of the lid body 60. The first sealing surface 63A extends in a first direction (in the present embodiment, the LR direction) in the power storage device 10. The second sealing surface 63B and the third sealing surface 63C are connected to the first sealing surface 63A and constitute side surfaces of the lid body 60. The second sealing surface 63B and the third sealing surface 63C extend in a second direction (in the present embodiment, the UD direction) that intersects with the first direction in the power storage device 10. In the present embodiment, the first direction and the second direction are orthogonal to each other. However, the first direction and the second direction do not have to be orthogonal to each other. The fourth sealing surface 63D constitutes the lower surface of the lid body 60. The fourth sealing surface 63D extends in the first direction (LR direction in this embodiment) in the electricity storage device 10.
[0051] When the lid body 60 is plate-shaped, it is preferable that the lid body 60 has a certain thickness so that deformation of the exterior body 40 is suppressed even when the electricity storage device 10 is placed on top of it. From another perspective, when the lid body 60 is plate-shaped, it is preferable that the joining surface 63 of the lid body 60 has a certain thickness so that the joining surface 63 of the lid body 60 and the exterior film 50 can be suitably heat-sealed when forming the second sealing portion 80 described below. The minimum thickness of the lid body 60 is, for example, 1.0 mm, more preferably 3.0 mm, and even more preferably 4.0 mm. The maximum thickness of the lid body 60 is, for example, 20 mm, more preferably 15 mm, and even more preferably 10 mm. The maximum thickness of the lid body 60 may be 20 mm or more. The preferred ranges for the thickness of the material constituting the lid body 60 are 1.0 mm to 20 mm, 1.0 mm to 15 mm, 1.0 mm to 10 mm, 3.0 mm to 20 mm, 3.0 mm to 15 mm, 3.0 mm to 10 mm, 4.0 mm to 20 mm, 4.0 mm to 15 mm, and 4.0 mm to 10 mm. In this embodiment, when the lid body 60 is described as being plate-shaped, this does not include embodiments in which the lid body 60 is composed solely of a film defined by the JIS (Japanese Industrial Standards) "Packaging Terminology" standard. The thickness of the lid body 60 may vary depending on the region of the lid body 60. When the thickness of the lid body 60 varies depending on the region, the thickness of the lid body 60 is the thickness of the thickest portion.
[0052] The cover 60 further includes corners 64, 65, 66, and 67. The corner 64 is the boundary between the first seal surface 63A and the second seal surface 63B. The corner 65 is the boundary between the first seal surface 63A and the third seal surface 63C. The corner 66 is the boundary between the fourth seal surface 63D and the second seal surface 63B. The corner 67 is the boundary between the fourth seal surface 63D and the third seal surface 63C. The shape of at least one of the corners 64 to 67 may be a corner, or may be rounded by being rounded, in other words, by forming a rounded surface. In this embodiment, the corners 64 to 67 are corners. An example in which a rounded surface is formed on the corners 64 to 67 will be described later.
[0053] Here, the outer periphery of the bonding surface 63 is designated as L2. As described above, the outer periphery L2 is the outer periphery of the bonding surface 63 when not bonded to the exterior film 50. The outer periphery L2 is determined by converting the pixels corresponding to the outline of the lid body 60A or 60B determined in step (V) into actual dimensions based on image data of the lid body 60A or 60B alone captured under conditions (I) to (IV), which will be described later in the measurement of the outer periphery L3. As described above, in the lid body 60A and the lid body 60B, the outer periphery L2 of the bonding surface 63 is larger than the outer periphery L1 of the electrode body 20. It is preferable that the difference between the outer periphery L2 and the outer periphery L1 be 1 mm or more.
[0054] Furthermore, when the lid body 60 constitutes the electricity storage device 10 or constitutes the intermediate body 10A of the electricity storage device, and the bonding surface 63 is bonded to the exterior film 50, the outer periphery of the bonding surface 63 is defined as L3. In the electricity storage device 10, if the outer periphery L3 of the bonding surface 63 of the lid body 60A and the lid body 60B is larger than the outer periphery L1' of the electrode body 20, the difference between the outer periphery L3 and the outer periphery L1' is preferably 1 mm or more. In the intermediate body 10A of the electricity storage device, the outer periphery L3 of the bonding surface 63 of the lid body 60A and the lid body 60B is larger than the outer periphery L1 of the electrode body 20. The difference between the outer periphery L3 and the outer periphery L1 is preferably 1 mm or more. The outer periphery L3 is determined by counting the number of pixels corresponding to the outer periphery of the second surface 62 of the lid body 60A or the lid body 60B in image data in which the entire lid body 60A or the lid body 60B is captured, and converting the number of pixels to actual size. The correspondence between the pixels of the image data and the actual length is assumed to be specified in advance. The conditions for acquiring the image data are as follows: (I) The electricity storage device 10 or the electricity storage device intermediate body 10A is placed on a horizontal plane so that the lower surface 42 of the electricity storage device 10 faces downward, or the surface of the electricity storage device intermediate body 10A corresponding to the lower surface 42 faces downward, and the second surface 62 of the lid body 60A or 60B faces the lens of the digital camera and is perpendicular to the optical axis of the lens. The digital camera used is one that has an autofocus function, uses a CMOS as an image sensor, and has an optical zoom of 5x or more, such as the WG-40 manufactured by RICHO. (II) The background during imaging is a plain color that is not similar to the color of the electricity storage device 10 including the lid 60 or the intermediate body 10A of the electricity storage device. The imaging is performed using the autofocus function of the digital camera. (III) The number of pixels of the image data output from the image sensor of the digital camera shall be 4608 x 3456 (pixels), and the number of recording pixels shall be the same. (IV) Of the number of recorded pixels, the number of pixels corresponding to the lid body 60A or the lid body 60B is 30% or more.
[0055] The outer periphery L3 is specified based on the image data in the following manner. (V) From the image data, the contour of the end face of the power storage device 10 or the power storage device intermediate 10A in a plane perpendicular to the FB direction is extracted. The contour is extracted using image processing software ImageJ (National Institutes of Health). First, noise removal processing is performed on the image data. Next, the contour of the end face of the power storage device 10 or the power storage device intermediate 10A is detected by edge detection. (VI) Pixels corresponding to the exterior film 50 are excluded from the area surrounded by the extracted outline. Here, the exterior film 50 forms the first sealing portion 70 in the energy storage device 10. The first sealing portion 70 is a portion formed by joining the edges of the exterior film 50. In this embodiment, the base 70X of the first sealing portion 70 is present at the boundary between the upper surface 41 and the first side surface 43 of the exterior body 40. In the image data, the area corresponding to the first sealing portion 70 is distinguished by a virtual line C1 extending from the outline of the first side surface 43 of the exterior body 40 in the UD direction (see FIG. 5). This makes it possible to exclude pixels corresponding to the first sealing portion 70 from the area surrounded by the extracted outline. Furthermore, in the energy storage device intermediate 10A, pixels corresponding to the portions of the exterior film 50 where the first sealing portion 70 and the base 70X are to be formed are determined in the same manner as in the energy storage device 10, and these pixels are excluded from the area surrounded by the extracted outline. (VII) By further excluding a number of pixels corresponding to the thickness of the exterior film 50 from the outer periphery of the remaining region, pixels corresponding to the outer periphery of the second surface 62 of the lid body 60A or 60B are identified. The thickness of the exterior film 50 is determined by analyzing image data obtained by capturing a cross section of an arbitrary location on the exterior film 50 included in the power storage device 10 or the power storage device intermediate 10A, which is not joined to other components or processed by sealing, using a laser microscope (e.g., a combination of a VK-X3000 controller and a VK-X3050 head, manufactured by KEYENCE Corporation), using an image analysis program (e.g., a multi-file analysis application VK-X3050, manufactured by KEYENCE Corporation). The observation magnification of the head is set to 20x objective lens and 480x total magnification. The image analysis program measures the thickness of the exterior film 50, including the outermost layer (in this embodiment, the base layer 51) to the innermost layer (in this embodiment, the heat-sealable resin layer 53), which can be identified from the image data.
[0056] In this embodiment, the lid 60 is made up of a resin material. Here, "made up of a resin material" means that, when the entire material constituting the lid 60 is taken as 100% by mass, the content of the resin material is 50% by mass or more, preferably 80% by mass or more, more preferably 90% by mass or more, and even more preferably 95% by mass or more. In other words, the material constituting the lid 60 can contain materials other than the resin material in addition to the resin material.
[0057] Specific examples of resins include thermoplastic resins such as polyester, polyolefin, polyamide, epoxy resin, acrylic resin, fluororesin, polyurethane, silicone resin, and phenolic resin, as well as modified versions of these resins. The resin material may be a mixture of these resins, a copolymer, or a modified copolymer. Among these, the resin material is preferably a heat-sealable resin such as polyester or polyolefin, and more preferably polyolefin. When the resin material is a resin, the lid 60 may be molded using any molding method.
[0058] The resin material contained in the material constituting the lid 60 is preferably an olefin-based random copolymer, more preferably a resin containing a polyolefin skeleton as a main component, even more preferably a polyolefin as a main component, and even more preferably a polypropylene as a main component. The polyolefin may be an acid-modified polyolefin. The resin material contained in the material constituting the lid 60 preferably contains multiple types of amide-based lubricants. Furthermore, the resin material contained in the material constituting the lid 60 preferably contains, in addition to saturated fatty acid amides, multiple types of amide-based lubricants further containing unsaturated fatty acid amides. The resin material contained in the material constituting the cover 90 may be a polyolefin resin to which a propylene-based elastomer having a melting point higher than 150°C has been added.
[0059] Specific examples of polyesters include polyethylene terephthalate, polybutylene terephthalate, polyethylene naphthalate, polybutylene naphthalate, polyethylene isophthalate, and copolymer polyesters. Examples of copolymer polyesters include copolymer polyesters whose repeating units are primarily ethylene terephthalate. Specific examples include copolymer polyesters in which ethylene terephthalate is the main repeating unit and is polymerized with ethylene isophthalate (hereinafter abbreviated as polyethylene (terephthalate / isophthalate)), polyethylene (terephthalate / adipate), polyethylene (terephthalate / sodium sulfoisophthalate), polyethylene (terephthalate / sodium isophthalate), polyethylene (terephthalate / phenyl dicarboxylate), and polyethylene (terephthalate / decane dicarboxylate). Among these, polybutylene terephthalate is preferred as the resin material from the viewpoint of improving heat resistance and pressure resistance.
[0060] Specific examples of polyolefins include polyethylenes such as low-density polyethylene, medium-density polyethylene, high-density polyethylene, and linear low-density polyethylene; ethylene-α-olefin copolymers; polypropylenes such as homopolypropylene, block copolymers of polypropylene (e.g., block copolymers of propylene and ethylene), and random copolymers of polypropylene (e.g., random copolymers of propylene and ethylene); propylene-α-olefin copolymers; and ethylene-butene-propylene terpolymers. When the polyolefin resin is a copolymer, it may be a block copolymer or a random copolymer. Among these, polypropylene is preferred as the resin material because of its excellent heat-sealing properties and electrolyte resistance.
[0061] The resin as the resin material may contain a filler as needed. Specific examples of the filler include glass beads, graphite, glass fiber, and carbon fiber. By including the filler in the resin as the resin material, the deformation resistance of the lid 60 against temperature changes can be improved.
[0062] The melt mass flow rate of the resin material contained in the material constituting the lid 60 is preferably in the range of 1 g / 10 min to 100 g / 10 min, and more preferably in the range of 5 g / 10 min to 80 g / 10 min. The melt mass flow rate is measured in accordance with JIS K7210-1:2014. The measurement temperature for the melt mass flow rate is 230°C.
[0063] In another example, the lid body 60 may be made of a metal material. Here, "made of a metal material" means that, when the entire material constituting the lid body 60 is taken as 100% by mass, the content of the metal material is 50% by mass or more, preferably 80% by mass or more, more preferably 90% by mass or more, and even more preferably 95% by mass or more. That is, the material constituting the lid body 60 may contain materials other than metal materials in addition to metal materials. The metal material constituting the lid body 60 can be selected arbitrarily. Examples of the metal material constituting the lid body 60 include aluminum, aluminum alloy, nickel, copper, and copper alloy. For example, when the electrode body 20 is a lithium-ion battery, the lid body 60 connected to the positive electrode is preferably made of aluminum or an aluminum alloy. The lid body 60 connected to the negative electrode is preferably made of nickel, copper, or a copper alloy. The material constituting the lid body 60 connected to the negative electrode may be nickel-plated copper. The material constituting the lid body 60 may include recycled metal materials.
[0064] In this embodiment, the lid 60 has a through-hole 60X formed therein, into which the electrode terminal 30 is inserted. The through-hole 60X penetrates the first surface 61 and the second surface 62. When the electrode body 20 is wrapped in the exterior film 50, the electrode terminal 30 passes through the through-hole 60X formed in the lid 60 and protrudes to the outside of the exterior body 40. A small gap between the through-hole 60X of the lid 60 and the electrode terminal 30 is filled with, for example, resin. Note that, in the energy storage device 10, the position from which the electrode terminal 30 protrudes to the outside can be selected arbitrarily. For example, the electrode terminal 30 may protrude to the outside from a hole formed in any one of the six surfaces of the exterior body 40. In this case, a small gap between the exterior body 40 and the electrode terminal 30 is filled with, for example, resin. In another example, the electrode terminal 30 may protrude to the outside of the exterior body 40 from between the bonding surface 63 of the lid 60 and the exterior film 50. In this case, the through-hole 60X does not have to be formed in the lid body 60. In the electricity storage device 10, the lid body 60 and the electrode terminal 30 are provided as separate bodies, but the lid body 60 and the electrode terminal 30 may be formed integrally. Note that, even when the electrode terminal 30 does not protrude from the edge of the exterior body 40, the lid body 60 does not have to have the through-hole 60X.
[0065] In this embodiment, the first sealing portion 70 is formed by wrapping an exterior film 50 around the middle portion 203 of the electrode body 20 and the joining surfaces 63 of the pair of lid bodies 60, and then heat-sealing the opposing surfaces of the exterior film 50 (heat-fusible resin layers 53).
[0066] The first sealing portion 70 extends in the longitudinal direction (FB direction) of the exterior body 40. The position at which the first sealing portion 70 is formed in the exterior body 40 can be selected arbitrarily. In the present embodiment, the base 70X of the first sealing portion 70 is located on the boundary between the upper surface 41 and the first side surface 43 of the exterior body 40. The upper surface 41 has a larger area than the first side surface 43. The base 70X of the first sealing portion 70 may be located on any surface of the exterior body 40. In the present embodiment, the first sealing portion 70 protrudes outward beyond the electrode body 20 in a plan view. The first sealing portion 70 may be folded, for example, toward the upper surface 41 or toward the first side surface 43 of the exterior body 40. However, when specifying the outer periphery L3, it is preferable that the first sealing portion 70 extend along the upper surface 41 or the first side surface 43.
[0067] In this embodiment, the second sealed portion 80 is formed by heat-sealing the heat-fusible resin layer 53 of the exterior film 50 and the joining surface 63 of the lid 60 together.
[0068] <2. Energy Storage Device Manufacturing Kit> The electrode assembly 20, exterior film 50, and pair of lid bodies 60 described above constitute an electricity storage device manufacturing kit 100 (see FIG. 6 ) for manufacturing the electricity storage device 10 according to the above embodiment. In this electricity storage device manufacturing kit 100, the outer periphery L1 of the middle portion 203 of the electrode assembly 20 is smaller than the outer periphery L2 of the joining surfaces 63 of the pair of lid bodies 60. This makes it possible to wrap the exterior film 50 around the joining surfaces 63 of the pair of lid bodies 60 without applying unnecessary pressure to the electrode assembly 20 and preventing the exterior film 50 from sagging or wrinkling, for example. Note that the electricity storage device manufacturing kit 100 may include at least one of an electrode terminal 30 and an adhesive film 31 in addition to the electrode assembly 20, exterior film 50, and pair of lid bodies 60, for example.
[0069] 3. Method for manufacturing an electricity storage device 7 is a flowchart showing an example of a method for manufacturing an electricity storage device 10 using an electricity storage device manufacturing kit 100. The method for manufacturing an electricity storage device 10 includes, for example, a first step, a second step, a third step, a fourth step, a fifth step, a sixth step, a seventh step, and an eighth step. The first step to the eighth step are performed, for example, by a manufacturing apparatus for the electricity storage device 10. Note that the first step to the eighth step are names of the steps in the method for manufacturing an electricity storage device 10 specified for convenience, and do not necessarily indicate the order of the steps. The order of the following steps can be changed as desired.
[0070] In the first process (lid unit production process) of step S11, the manufacturing equipment joins each of the pair of lid bodies 60 to each of the two electrode terminals 30. By completing the first process, a pair of lid units in which the electrode terminals 30 are joined to the lid bodies 60 are produced.
[0071] The second step of step S12 (electrode body arrangement step) is carried out in parallel with or after the first step. In the second step, the manufacturing apparatus arranges the electrode body 20 on the heat-sealable resin layer 53 of the exterior film 50. The exterior film 50 may be provided with a mark for aligning the electrode body 20 in an appropriate position relative to the exterior film 50.
[0072] The third step (lid unit arrangement step) of step S13 is performed in parallel with or after the second step. In the third step, the manufacturing apparatus arranges the pair of lid units prepared in step S11 on the first end 201 side and the second end 202 side of the electrode assembly 20, respectively, and bonds the electrode terminal 30 to the electrode assembly 20. As a result, the exterior film 50, the electrode assembly 20, and the pair of lid units are in a state as shown in FIG. 6. The exterior film 50 may be provided with marks for appropriately aligning the pair of lid units with respect to the exterior film 50. Note that the manufacturing method of the electricity storage device 10 may include, instead of the first step and the third step, a step of first bonding the electrode assembly 20 and the two electrode terminals 30, and then arranging a pair of lid bodies 60 on the first end 201 side and the second end 202 side, respectively, and bonding the pair of lid bodies 60 to the pair of electrode terminals. Furthermore, the method for manufacturing the electricity storage device 10 may involve arranging a pair of lid bodies 60 or a pair of lid units so that they are spaced apart from each other, and then arranging the electrode body 20 between the pair of lid bodies 60 or the pair of lid units, with the pair of lid bodies 60 or the pair of lid units being arranged on the first end 201 side and the second end 202 side of the electrode body 20, respectively. In other words, the lid unit arranging step may be performed before the electrode body arranging step.
[0073] The fourth step (winding step) of step S14 is performed after the third step. In the fourth step, the manufacturing apparatus wraps the exterior film 50 around a lid unit including the electrode assembly 20 and the pair of lid bodies 60. In the fourth step, the manufacturing apparatus wraps the electrode assembly 20 and the pair of lid units with the exterior film 50 so as to surround the middle portion 203 and the pair of joint surfaces 63 from the outside while folding the exterior film 50 at predetermined positions. In the fourth step, the manufacturing apparatus winds the exterior film 50 around the electrode assembly 20 and the pair of lid units while applying tension to the exterior film 50, while restricting the movement of the electrode assembly 20 and the pair of lid units with a restricting means. The restricting means is, for example, a groove into which the electrode assembly 20 and the pair of lid bodies 60 are fitted. The restricting means may be a device that applies an external force to the electrode assembly 20 and the pair of lid bodies 60 to prevent the electrode assembly 20 and the pair of lid bodies 60 from moving. The restricting means may be a device that applies a force to the electrode assembly 20 and the lid 60 in a direction opposite to the direction in which the exterior film 50 is pulled. The restricting means may include a roller that runs over the exterior film 50 while the exterior film 50 is being pulled in order to remove wrinkles in the exterior film 50. Furthermore, the procedure for achieving the wound state in the winding step is not limited to the above-described winding. For example, as described above, the electrode assembly 20 may be housed inside an exterior film 50 that has been rolled into a cylindrical shape, or an exterior film 50 that has been rolled into a cylindrical shape and at least a portion of which has been temporarily fastened to maintain that state, and then the lid 60 may be placed in each of the pair of openings, and then tension may be applied to the exterior film 50. Alternatively, a pair of lids 60 joined to the first end 201 and the second end 202 of the electrode assembly 20 may be housed inside an exterior film 50 that has been rolled into a cylindrical shape, or an exterior film 50 that has been rolled into a cylindrical shape and at least a portion of which has been temporarily fastened to maintain that state, and then tension may be applied to the exterior film 50.
[0074] As described above, the outer periphery L1 of the intermediate portion 203 is smaller than the outer periphery L2 of the bonding surface 63. Therefore, in the fourth step, pressure from the tensioned exterior film 50 is applied mainly to the pair of lid bodies 60, but is not applied, or is barely applied, to the electrode body 20. Therefore, when the fourth step is completed, the bonding surface 63, the intermediate portion 203, and the exterior film 50 have a relationship as shown in FIG. 8, and the pressure applied from the exterior film 50 to the intermediate portion 203 is smaller than the pressure applied from the exterior film 50 to the bonding surface 63. Note that FIG. 8 is exaggerated for ease of explanation and does not necessarily reflect the actual dimensions.
[0075] The fifth step (first sealing step) of step S15 is performed after the fourth step. In the fifth step, the manufacturing equipment forms a first sealing portion (hereinafter referred to as a "temporary first sealing portion") in which an unsealed portion for injecting an electrolyte solution is formed. In the temporary first sealing portion, the heat-sealable resin layers 53 of the exterior film 50 that face each other are bonded to each other. Note that if the electricity storage device 10 is, for example, an all-solid-state battery, the step of injecting an electrolyte solution is not necessary, and therefore, in the fifth step, the manufacturing equipment forms the first sealing portion 70.
[0076] The sixth step (second sealing step) of step S16 is performed after the fifth step. In the sixth step, the manufacturing apparatus forms the second sealed portion 80 by bonding the heat-sealable resin layer 53 constituting the inner surface of the exterior film 50 to the bonding surfaces 63 of the pair of lid bodies 60 facing the heat-sealable resin layer 53. In this embodiment, the bonding between the heat-sealable resin layer 53 and the bonding surfaces 63 is performed by heat sealing. However, the bonding may also be performed by ultrasonic sealing, high-frequency sealing, or bonding with an adhesive. The second sealing step produces an electric storage device intermediate 10A (see FIG. 9 ) in which the electrode body 20 is housed between the pair of lid bodies 60 and the exterior film 50 in a bonded state. The electric storage device intermediate 10A does not contain an electrolyte. In the electric storage device intermediate 10A according to this embodiment, the outer periphery L1 of the intermediate portion 203 is smaller than the outer periphery L3 of the bonding surfaces 63. This prevents unwanted effects such as the application of unnecessary pressure to the electrode body 20 and the collapse of the layered structure of the electrode body 20 in the intermediate body 10A of the electricity storage device.
[0077] The seventh step (electrolyte solution injection step) of step S17 is performed after the sixth step. In the seventh step, the manufacturing equipment injects the electrolyte solution through the unsealed portion formed in the temporary first sealed portion.
[0078] The eighth step (first sealing portion forming step) of step S18 is performed after the seventh step. In the eighth step, the manufacturing equipment heat-seals a portion of the temporary first sealing portion, including the unsealed portion, to form the first sealing portion 70. Note that when the power storage device 10 is, for example, an all-solid-state battery, the seventh and eighth steps are omitted.
[0079] <4. Features> According to the above-described electricity storage device manufacturing kit 100 and electricity storage device manufacturing method, the exterior film 50 can be tightly wrapped around the pair of lid bodies 60, while it is possible to avoid situations where unnecessary pressure on the electrode body 20 causes the layered structure of the electrode body 20 to collapse. As a result, the possibility of poor bonding between the exterior film 50 and the bonding surface 63 (in this embodiment, poor sealing of the second sealing portion 80) is reduced. This makes it possible to omit work such as repairing poor bonding in a manufactured electricity storage device after the fact. Furthermore, in the electricity storage device 10, wrinkles and the like in the second sealing portion 80 are prevented, ensuring sufficient sealing strength.
[0080] Furthermore, according to the above-mentioned energy storage device manufacturing kit 100 and the energy storage device manufacturing method, even if the size of the energy storage device 10 is changed, the above-mentioned effects can be achieved without significantly changing the tension (tensile force) in the wrapping process of the exterior film 50.
[0081] In an example of implementing the above-described manufacturing method for an electricity storage device, the fact that the pressure applied from the exterior film 50 to the intermediate portion 203 is smaller than the pressure applied from the exterior film 50 to the bonding surface 63 can be verified by the following method. In a first step, two electrode terminals 30 are bonded to each of a pair of lid bodies 60 of the electricity storage device manufacturing kit 100 to create a pair of lid units. In a second step and a third step, the electrode body 20 and the pair of lid units are arranged on the exterior film 50, with the lid units positioned on the first end 201 and the second end 202, respectively. The electrode body 20 and the two electrode terminals 30 are then bonded together. A pressure-sensitive sheet is then arranged to cover the entire bonding surfaces 63 of the electrode body 20 and the pair of lid bodies from above. In a fourth step, the exterior film 50 and the pressure-sensitive sheet are wrapped around the electrode body 20 and the pair of lid units while restricting their movement. At this time, tension is applied to the exterior film 50 and the pressure-sensitive sheet to prevent them from shifting. After wrapping the exterior film 50 and pressure-sensitive sheet around the entire periphery of the intermediate portion 203 and the joint surface 63 in this way, the exterior film 50 and pressure-sensitive sheet are unfolded, and the pressure distribution recorded by the pressure-sensitive sheet is verified. Alternatively, the pressure distribution is verified using analysis software that visualizes the pressure of the pressure-sensitive sheet when the exterior film 50 and pressure-sensitive sheet are wrapped around it. In this case, if there is an area where the gravity of the electrode body 20 is sensed due to the placement of the electrode body 20, the pressure distribution in that area is excluded.
[0082] <5. Variations> The above-described embodiments are examples of possible forms of the electricity storage device and the method for manufacturing the electricity storage device according to the present invention, and are not intended to limit the forms. The electricity storage device and the method for manufacturing the electricity storage device according to the present invention may take forms different from those exemplified in the embodiments. Examples of such forms include forms in which part of the configuration of the embodiments is replaced, changed, or omitted, or forms in which a new configuration is added to the embodiments. Some examples of modified forms of the embodiments are shown below. Note that the following modified forms can be combined with each other as long as there is no technical contradiction.
[0083] <5-1> In the above embodiment, the corners 20A to 20D of the electrode body 20 do not have rounded surfaces. However, at least one of the corners 20A to 20D may have rounded surfaces. In this case, as shown in FIG. 10A, the outer periphery L1 or L1' may be adjusted so that the outer periphery L1 or L1' is smaller than the outer periphery L2 or L3. That is, the circumscribed rectangle of the cross-sectional shape of the intermediate portion 203 taken on a cut surface perpendicular to the FB direction and the circumscribed rectangle of the cross-sectional shape of the joint surface 63 taken on a cut surface perpendicular to the FB direction are the same. However, by forming rounded surfaces at the corners 20A to 20D, the outer periphery L1 or L1' can be smaller than the outer periphery L2 or L3. Furthermore, at least one of the corners 64 to 67 of the pair of lid bodies 60 may have rounded surfaces. In this case, as shown in Fig. 10B, for example, the radius of curvature of corners 20A to 20D can be made larger than the radius of curvature of corners 64 to 67, thereby making outer periphery L1 or outer periphery L1' smaller than outer periphery L2 or outer periphery L3. Note that although Figs. 10A and 10B have been described using lid body 60B as an example, the same applies to lid body 60A.
[0084] <5-2> In the above embodiment, the exterior film 50 of the electricity storage device 10 may protrude outward beyond at least one of the two lid bodies 60 in the FB direction. The electrode body 20 is sealed by closing the portion of the exterior film 50 that protrudes outward beyond the lid body 60. The portion of the exterior film 50 that protrudes beyond the lid body 60 may be folded inward so that the outer surfaces of the exterior films 50 come into contact with each other, as in a Goebel-top container, or may be folded toward any surface of the exterior body 40, as in a brick container.
[0085] <5-3> In the above embodiment, the exterior body 40 of the electricity storage device 10 and the electricity storage device manufacturing kit 100 may not have one of the pair of lid bodies 60. In this modification, in the FB direction, in the portion of the exterior body 40 where the lid body 60 is omitted, the electrode body 20 is sealed by closing the portion of the exterior film 50 that protrudes outward beyond the electrode body 20. The portion of the exterior film 50 that protrudes outward beyond the electrode body 20 may be folded like a Goebel-top container or a brick container.
[0086] <5-4> In the above embodiment, the outer shape of the exterior body 40 can be changed as desired. The outer shape of the exterior body 40 may be a cylinder, a prism, or a cube. For example, the electrode body 20 may be formed into a substantially cylindrical shape so that the cross section of the middle portion 203 of the electrode body 20 is circular, and the lid body 60 may be formed into a disk shape. In this case, the outer diameter (outer periphery) L1 or the outer periphery L1' of the middle portion 203 may be configured to be smaller than the outer diameter (outer periphery) L2 or L3 of the lid body 60.
[0087] <5-5> In the above embodiment, the pair of lid bodies 60 are formed in a plate shape. However, at least one of the pair of lid bodies 60 may have a frame-shaped portion extending in the FB direction from the outer peripheral edge of the first surface 61. At least one of the first end 201 and the second end 202 of the electrode body 20 may be at least partially housed inside the area surrounded by the frame-shaped portion.
[0088] <5-6> In the above embodiment, the entire area between the first surface 61 and the second surface 62 of the lid body 60 is the bonding surface 63, but not all of the surfaces connecting the first surface 61 and the second surface 62 need to be configured as the bonding surface 63. Furthermore, when the frame-shaped portion is formed in the lid body 60, it is sufficient that at least a portion of the frame-shaped portion in the FB direction is the bonding surface.
[0089] <5-7> The joining surface of the lid body 60 may be an adhesive film integrally joined to the lid main body. The joining method between the lid main body and the joining surface (adhesive film) is not particularly limited, and may be adhesive, welded, or sealed. The adhesive film is not particularly limited. For example, when the joining surface is made of metal, a film similar to the adhesive film 31 described above is preferred. Alternatively, the adhesive film is preferably a laminated film having at least a heat-sealable resin layer, a heat-resistant substrate layer, and a heat-sealable resin layer in this order. In this case, the specifications for the heat-sealable resin layer of the adhesive film are the same as those for the heat-sealable resin layer 53. The materials constituting the two heat-sealable resin layers of the adhesive film may be the same or different, and are appropriately selected according to the materials constituting the heat-sealable resin layer 53 of the exterior film 50 and the material constituting the lid main body. The material constituting the heat-sealable resin layer of the adhesive film on the side to be bonded to the lid body is preferably an acid-modified polyolefin resin graft-modified with an acid such as maleic anhydride. The heat-sealable resin layer of the adhesive film on the side to be bonded to the exterior film 50 is preferably made of the same type of material as the material constituting the heat-sealable resin layer 53 of the exterior film 50.
[0090] The heat-resistant substrate layer may be any film made of a heat-resistant resin, such as a non-stretched or stretched film of polyethylene terephthalate, polyethylene naphthalate, polyphenylene sulfide, polymethylpentene (registered trademark), polyacetal cyclic polyolefin, polyethylene, polypropylene, etc. Polyethylene terephthalate is particularly preferred because it is inexpensive and has high strength.
[0091] <5-8> In the above embodiment, the electrode assembly 20 is of a so-called stack type, but the form of the electrode assembly 20 is not limited to this. The electrode assembly 20 may be of a so-called wound type, which is configured by winding a positive electrode and a negative electrode with a separator interposed therebetween. The electrode assembly 20 may also be configured by stacking multiple wound electrode assemblies.
[0092] Fig. 11 is a cross-sectional view that schematically shows a wound electrode body 20X housed in an exterior body 40. In the example shown in Fig. 11, the number of wound electrode bodies 20 housed in the exterior body 40 is two. The number of wound electrode bodies 20 housed in the exterior body 40 may be one, or three or more. The outer peripheries L1, L1' of the wound electrode body 20X are the sum of the tangents S1 to S4 of the electrode body 20X in a cross-sectional view.
[0093] <5-9> In the above embodiment, the exterior film 50 of the electricity storage device 10 may protrude outward beyond at least one of the two lid bodies 60 in the FB direction. The electrode body 20 is sealed by closing the portion of the exterior film 50 that protrudes outward beyond the lid body 60. The portion of the exterior film 50 that protrudes beyond the lid body 60 may be folded like a Goebel-top pouch or a brick pouch. The length of the electrode terminal in the FB direction is preferably such that it is exposed from the portion of the exterior film 50 that protrudes outward beyond the lid body 60.
[0094] <5-10> In the above embodiment, the exterior body 40 may not have one of the two lid bodies 60. In this modification, in the FB direction, in the portion of the exterior body 40 where the lid body 60 is omitted, the electrode body 20 is sealed by closing the portion of the exterior film 50 that protrudes outward beyond the electrode body 20. The portion of the exterior film 50 that protrudes outward beyond the electrode body 20 may be folded like a Gabeltop pouch or a brick pouch.
[0095] <5-11> In the above embodiment, the outer shape of the exterior body 40 can be changed as desired. The outer shape of the exterior body 40 may be a cylinder, a prism, or a cube. [Explanation of symbols]
[0096] 10: Energy storage device 20: Electrode body 20A, 20B, 20C, 20D: Corner 40: Exterior body 50: Exterior film 60: Lid 64~67: Corners 100: Energy storage device manufacturing kit L1: Outer circumference of middle part L1´: Outer circumference of middle part L2: Outer periphery of the joint surface L3: Outer periphery of the joint surface
Claims
1. An electrode body; an exterior body that seals the electrode body, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is an exterior film that wraps the middle portion; a lid body disposed on at least one of the first end side and the second end side, the lid body having a joining surface to be joined to the exterior film, The outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface. Energy storage device.
2. The difference between the outer periphery of the intermediate portion and the outer periphery of the joining surface is 1 mm or more. The electricity storage device according to claim 1 .
3. the intermediate portion has one or more corners on which a rounded surface is formed, the joining surface has one or more corners formed with R surfaces, The radius of curvature of one or more corners of the intermediate portion is larger than the radius of curvature of one or more corners of the joining surface. The electricity storage device according to claim 1 or 2.
4. An electrode body; an outer casing that seals the electrode assembly, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is an exterior film for wrapping the intermediate portion; a lid to be placed on at least one of the first end side and the second end side, the lid having a joining surface to be joined to the exterior film, The outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface. Energy storage device manufacturing kit.
5. The difference between the outer periphery of the intermediate portion and the outer periphery of the joining surface is 1 mm or more. The electricity storage device manufacturing kit according to claim 4 .
6. the intermediate portion has one or more corners on which a rounded surface is formed, the joining surface has one or more corners formed with R surfaces, The radius of curvature of one or more corners of the intermediate portion is larger than the radius of curvature of one or more corners of the joining surface. The electricity storage device manufacturing kit according to claim 4 or 5.
7. An electrode body; an outer casing that seals the electrode assembly, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is an exterior film that wraps the middle portion; a lid body disposed on at least one of the first end side and the second end side, the lid body having a joining surface to be joined to the exterior film, The intermediate of the electricity storage device is The electrode body; the exterior film and the lid body joined together so as to house the electrode body, The outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface, Contains no electrolyte, An intermediate for energy storage devices.
8. An electrode body; an exterior body that seals the electrode body, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is The exterior film, a lid having a joining surface to be joined to the exterior film, The manufacturing method includes: Arranging the lid body and the electrode body so that the lid body is located on at least one of the first end side and the second end side; The exterior film is wrapped around the lid body and the electrode body so as to cover the joint surface of the lid body and the middle part of the electrode body; by joining the joining surface and the exterior film, an intermediate body of an electricity storage device in which the electrode body is housed between the lid body and the exterior film is produced, the intermediate body not containing an electrolyte solution; Including, In the intermediate body of the electricity storage device, the outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface. A method for manufacturing an electricity storage device.
9. Injecting the electrolyte into the inside of the joined lid body and exterior film. further comprising: The method for manufacturing the electricity storage device according to claim 8 .
10. An electrode body; a packaging body that seals the electrode body, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is The exterior film, a lid having a joining surface to be joined to the exterior film, The outer periphery of the intermediate portion is smaller than the outer periphery of the joining surface, The manufacturing method includes: Arranging the lid body and the electrode body so that the lid body is located on at least one of the first end side and the second end side; The exterior film is wrapped around the lid body and the electrode body so as to cover the joint surface of the lid body and the middle part of the electrode body; joining the joining surface and the exterior film; Including, A method for manufacturing an electricity storage device.
11. An electrode body; a packaging body that seals the electrode body, The electrode body is A first end portion; a second end spaced apart from the first end; an intermediate portion extending continuously between the first end and the second end, The exterior body is The exterior film, a lid having a joining surface to be joined to the exterior film, The manufacturing method includes: Arranging the lid body and the electrode body so that the lid body is located on at least one of the first end side and the second end side; The exterior film is wrapped around the lid body and the electrode body so as to cover the joint surface of the lid body and the middle part of the electrode body; joining the joining surface and the exterior film; Including, The state in which the exterior film is wrapped around the lid body and the electrode body includes a state in which the exterior film is wrapped around the lid body and the electrode body such that the pressure applied from the exterior film to the joint surface is greater than the pressure applied from the exterior film to the intermediate portion. A method for manufacturing an electricity storage device.
Citation Information
Patent Citations
Secondary battery
JP2022123686A