Secondary battery
Patent Information
- Application Number
- JP2024131843
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-08-08
- Publication Date
- 2025-09-04
- Estimated Expiration
- 2041-12-06
AI Technical Summary
Conventional secondary batteries face challenges in miniaturization due to the need for a seal width exceeding 3 mm to ensure proper heat welding and prevent adhesive peeling, terminal penetration, and short circuit risks, which hinder further structural efficiency improvements.
The secondary battery design incorporates a cylindrical part with integrated inner lids and resins to seal the power generation element, using a first resin to cover gaps and integrate the cylindrical part and inner lid, and optionally a second resin to fill the interior, enhancing adhesion and preventing short circuits.
This design allows for a shorter seal width and eliminates the need for thermal welding, improving structural efficiency and water vapor barrier properties while reducing the risk of seal failure and short circuits.
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Abstract
Description
[Technical field]
[0001] The present application relates to a secondary battery. [Background technology]
[0002] Batteries such as lithium ion secondary batteries are widely used as portable power sources for personal computers and mobile terminals, and as power sources for driving vehicles. A laminated battery is known as an example of a battery. A laminated battery has a structure in which a power generating element is sealed inside a laminated exterior body formed by overlapping film-like laminate sheets. The laminated battery also has a seal area formed by welding edges of laminated exterior bodies arranged opposite each other, with terminals electrically connected to the power generating element protruding outward from the inside of the laminated exterior body. This seals the power generating element inside the laminated exterior body. The laminated battery also has a seal area formed by overlapping and welding laminate sheets on the outside of the power generating element.
[0003] Conventionally, efforts have been made to reduce the size of battery structures. For example, Patent Document 1 discloses a technique for reducing the size of a laminated battery by folding the sealed areas at the ends of the battery. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] JP 2020-173900 A Summary of the Invention [Problem to be solved by the invention]
[0005] Although the technology of Patent Document 1 makes it possible to reduce the size of laminate-type batteries, further improvements in the structural efficiency of secondary batteries have been desired.
[0006] The miniaturization of a laminated battery can be achieved, for example, by shortening the width of the sealing area (seal width) that sandwiches the electrode terminals, but the seal width must usually be set to a length of more than 3 mm. This is for the following reasons. (1) If the seal width is too short, proper heat welding may not be performed, resulting in poor sealing. (2) Since the laminated exterior body does not have high rigidity, if the seal width is too short, the adhesion of the sealing area may peel off due to external impact, and the adhesive surface may not be able to be maintained. (3) If the terminal is not parallel to the adhesive surface of the laminated exterior body during heat welding, a short seal width weakens the correction force to return the inclination to its original state, making it impossible to perform proper heat welding and increasing the probability of poor sealing. (4) If the seal width is too short during heat welding, the pressure per area applied to the seal area by the heat welding head becomes large, and there is a risk that the metal layer inside the laminated exterior body will cross the insulating layer and bite into the terminal. If the metal layer bites into the terminal, it is undesirable because it causes a short circuit. For the above reasons, it has been difficult to reduce the seal width and make the laminated battery smaller.
[0007] Therefore, an object of the present disclosure is to provide a secondary battery that can improve structural efficiency. [Means for solving the problem]
[0008] As one aspect for solving the above-mentioned problems, the present disclosure provides a secondary battery comprising a power generating element and an exterior part that houses the power generating element, the exterior part having a tubular part with openings on two opposing sides, an inner lid to be placed on each of the openings, and a first resin arranged to cover each of the openings and the opening-side surface of the inner lid, the first resin being arranged to fill the space between the tubular part and the inner lid, and the tubular part and the inner lid being integrated by the first resin.
[0009] The secondary battery may be in the following form: That is, the secondary battery may further include an electrode terminal connected to the power generating element, the inner lid has a surface disposed on the opening side of the cylindrical portion, a protruding portion protruding from the entire outer periphery of the surface toward the inside of the cylindrical portion, and a space surrounded by the protruding portion, at least one of the inner lids has a through hole on the surface, the electrode terminal is disposed so as to penetrate into the through hole, a first resin disposed on the inner lid side through which the electrode terminal penetrates is further disposed so as to cover at least a part of the outer periphery of the electrode terminal and to fill the space between the through hole and the electrode terminal, and the cylindrical portion, the inner lid, and the electrode terminal may be integrated with the first resin.
[0010] The secondary battery may have the following configuration. That is, the exterior part may have a second resin filled therein, and the cylindrical part, the inner lid, the electrode terminals, and the power generating element may be integrated with the second resin. Also, the power generating element may be wrapped in a resin film having insulating properties and water vapor barrier properties.
[0011] The cylindrical part may be in the following form. That is, the cylindrical part may be a cylindrical metal body or a metal laminate film formed into a cylindrical shape. Alternatively, the cylindrical part may be composed of two U-shaped metal plates stacked upside down, and the ends of the metal plates may overlap on each of the opposing side surfaces of the cylindrical part, the cylindrical part may have a third resin arranged to cover each side surface, and the ends of the overlapping metal plates may be integrated with the third resin. Alternatively, the cylindrical part may be composed of one metal plate, and the ends of the metal plates may overlap on one side surface of the cylindrical part, the cylindrical part may have a third resin arranged to cover one side surface of the cylindrical part, and the ends of the overlapping metal plates may be integrated with the third resin. Effect of the Invention
[0012] According to the secondary battery of the present disclosure, it is possible to improve the structural efficiency. [Brief description of the drawings]
[0013] [Figure 1] FIG. 2 is a plan view of the secondary battery 100. [Diagram 2] FIG. 2 is a cross-sectional view taken along line II-II in FIG. [Diagram 3] FIG. 2 is a plan view of an example of a secondary battery in which a positive electrode terminal 31 and a negative electrode terminal 32 are arranged to protrude from the same surface in the width direction of an exterior part 20. [Figure 4] 1A is a plan view of the tubular portion 21. FIG. 1B is a widthwise cross-sectional view of the tubular portion 21. FIG. 1C is a side view of the tubular portion 21 as viewed from the widthwise direction. [Diagram 5] 1A is a cross-sectional view of the vicinity of an opening 21a of a tubular portion 21 having protrusions 21b at each end of a surface in the thickness direction, and FIG. 1B is a cross-sectional view of the vicinity of an opening 21a of a tubular portion 21 having protrusions 21b bent inward. [Figure 6] 1A is a perspective view of the inner lid 22. FIG. 1B is a cross-sectional view taken along line bb in FIG. 1A. FIG. 1C is a cross-sectional view taken along line cc in FIG. [Figure 7] (a) is a cross-sectional view of the inner lid 22 having the taper 22e, and (b) is an example of use of the inner lid 22 having the taper 22e. [Figure 8] FIG. 1 is a comparison of longitudinal cross-sectional views of a conventional laminated battery (a) and a secondary battery 100 (b). [Figure 9] FIG. 1 is a plan view comparing a conventional laminated battery (a) with a secondary battery 100 (b). [Figure 10] 2 is a longitudinal cross-sectional view of a secondary battery 101. FIG. [Figure 11] 2 is a longitudinal cross-sectional view of the secondary battery 102. FIG. [Figure 12] FIG. 2 is a plan view of a power generating element 10 wrapped in a resin film 11. [Figure 13] 1A is a plan view of the cylindrical portion 121. FIG. [Figure 14] 1A is a plan view of the cylindrical portion 221. FIG. [Figure 15] 13 is a diagram showing one cooling mode of a secondary battery using a cylindrical portion 221. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0014] The secondary battery of the present disclosure will be described mainly using a secondary battery 100 as one embodiment. Fig. 1 shows a plan view of the secondary battery 100. Fig. 2 shows a cross-sectional view taken along line II-II in Fig. 1. Here, in Figs. 1 and 2, the length direction of the secondary battery 100 is represented by x, the width direction of the secondary battery 100 is represented by y, and the thickness direction of the secondary battery 100 is represented by z. These directions are perpendicular to each other.
[0015] The secondary battery 100 includes a power generating element 10 and an exterior part 20 that houses the power generating element 10. The secondary battery 100 also includes a positive electrode terminal 31 and a negative electrode terminal 32 (hereinafter, these may be collectively referred to as "electrode terminals 30") for connection to an external power source or a power load. The positive electrode terminal 31 and the negative electrode terminal 32 are arranged so as to protrude from different faces in the width direction of the exterior part 20. However, the arrangement positions of the positive electrode terminal 31 and the negative electrode terminal 32 are not limited thereto, and they may be arranged so as to protrude from the same face in the width direction of the exterior part 20. As an example, FIG. 3 shows a secondary battery in which the positive electrode terminal 31 and the negative electrode terminal 32 are arranged so as to protrude from the same face in the width direction of the exterior part 20.
[0016] <Power generation element 10> The power generating element 10 is formed by stacking a positive electrode collector foil, a positive electrode active material layer, an electrolyte layer, a negative electrode active material layer, and a negative electrode collector foil (hereinafter, these may be collectively referred to as "electrode elements"). The electrode elements are stacked in the thickness direction. There is no particular limit to the number of each electrode element to be stacked. The power generating element 10 in FIG. 2 has a configuration in which a plurality of these electrode elements are stacked. Furthermore, these electrode elements may be stacked so as to be electrically connected in series, or so as to be electrically connected in parallel.
[0017] The power generating element 10 in Fig. 2 has a sheet-like shape and is rectangular in a plan view. However, the shape of the power generating element 10 is not particularly limited as long as it has a shape that can be accommodated inside the exterior part 20. As shown in Fig. 2, each current collecting foil of the power generating element 10 may have tabs 11, 12 for connecting to each electrode terminal 30. The tab 11 is provided on each positive current collecting foil and is electrically connected to the positive terminal 31. Similarly, the tab 12 is provided on each negative current collecting foil and is electrically connected to the negative terminal 32.
[0018] The power generating element 10 may be subjected to a predetermined insulation treatment in order to prevent a short circuit due to contact with the cylindrical portion 21. For example, the power generating element 10 may be wrapped in an insulating film, an insulating sheet may be disposed between the power generating element 10 and the cylindrical portion 21, or insulating tape may be attached to the inner surface of the power generating element 10 or the cylindrical portion 21. In this manner, an insulation treatment may be performed in which a predetermined insulating layer is disposed on the outer periphery of the power generating element 10.
[0019] The power generating element 10 and the cylindrical portion 23 may be in contact with each other as long as either of them is insulated. In this case, the thickness of the inner lid terminal 22 may be thinner than the thickness of the power generating element 10 by the thickness of the first resin 23 filled between the cylindrical portion 21 and the inner lid terminal 22.
[0020] The power generating element 10 may be a solid-state battery or a liquid battery. A solid-state battery is preferable. The type of the power generating element 10 is not particularly limited, and may be a power generating element for a lithium-ion secondary battery or a power generating element for a sodium-ion secondary battery. The material of the power generating element for a lithium-ion secondary battery will be described below.
[0021] (Positive electrode current collector foil, negative electrode current collector foil) The positive electrode current collector foil and the negative electrode current collector foil are sheet-shaped metal foils. The metal constituting the positive electrode current collector foil and the negative electrode current collector foil is not particularly limited, but examples thereof include Cu, Ni, Cr, Au, Pt, Ag, Al, Fe, Ti, Zn, Co, stainless steel, etc. The metal constituting the positive electrode current collector foil is preferably Al. The material constituting the negative electrode current collector foil is preferably Cu.
[0022] The positive and negative current collector foils may have some coating layer (e.g., a carbon coating layer) on their surfaces to adjust the resistance. The thickness of the positive and negative current collector foils may be, for example, 0.1 μm or more and 1 mm or less.
[0023] (Cathode active material layer) The positive electrode active material layer is a sheet-like layer containing a positive electrode active material. The positive electrode active material is not particularly limited as long as it is a positive electrode active material that can be used in a lithium ion secondary battery. For example, various lithium-containing composite oxides such as lithium cobalt oxide, lithium nickel oxide, lithium manganate, lithium nickel cobalt manganate, and spinel-based lithium compounds can be mentioned.
[0024] The positive electrode active material layer may optionally contain a conductive assistant and a binder. The binder is not particularly limited as long as it is a binder that can be used in lithium ion secondary batteries. Examples include butadiene rubber (BR), butylene rubber (IIR), acrylate butadiene rubber (ABR), polyvinylidene fluoride (PVdF), and the like. The conductive assistant is not particularly limited as long as it is a conductive assistant that can be used in lithium ion secondary batteries. Examples include carbon materials such as acetylene black and ketjen black, and metal materials such as nickel, aluminum, and stainless steel.
[0025] When the secondary battery 100 is an all-solid-state battery, the positive electrode active material layer may optionally contain a solid electrolyte. The solid electrolyte is not particularly limited as long as it is a solid electrolyte that can be used in a lithium ion secondary battery. For example, it may be an organic polymer electrolyte or an inorganic solid electrolyte. An inorganic solid electrolyte is preferable. This is because it has higher ionic conductivity and superior heat resistance compared to an organic polymer electrolyte. The inorganic solid electrolyte may be an oxide solid electrolyte or a sulfide solid electrolyte. A sulfide solid electrolyte is preferable. Examples of oxide solid electrolytes include lithium lanthanum zirconate, LiPON, Li 1+X AlXGe 2-X Examples of the sulfide solid electrolyte include Li2S-P2S5, Li2S-SiS2, LiI-Li2S-SiS2, LiI-Si2S-P2S5, Li2S-P2S5-LiI-LiBr, LiI-Li2S-P2S5, LiI-Li2S-P2O5, LiI-Li3PO4-P2S5, Li2S-P2S5-GeS2, etc.
[0026] The content of each component in the positive electrode active material layer may be appropriately set depending on the purpose. The surface of the positive electrode active material may be covered with an oxide layer such as a lithium niobate layer, a lithium titanate layer, or a lithium phosphate layer. The thickness of the positive electrode active material layer may be, for example, 0.1 μm or more and 1 mm or less.
[0027] (Negative electrode active material layer) The negative electrode active material layer is a sheet-like layer containing a negative electrode active material. The negative electrode active material is not particularly limited as long as it is a negative electrode active material that can be used in a lithium ion secondary battery. For example, silicon and Si alloys, silicon-based active materials such as silicon oxide, carbon-based active materials such as graphite and hard carbon, various oxide-based active materials such as lithium titanate, metallic lithium, lithium alloys, etc. can be mentioned.
[0028] The negative electrode active material layer may optionally contain a conductive assistant and a binder. The conductive assistant and the binder may be appropriately selected from the conductive assistant and the binder that can be used in the positive electrode active material layer. In addition, when the secondary battery 100 is an all-solid-state battery, the negative electrode active material layer may optionally contain a solid electrolyte. The solid electrolyte may be appropriately selected from the solid electrolytes that can be used in the positive electrode active material layer.
[0029] The content of each component in the negative electrode active material layer may be appropriately set depending on the purpose. The thickness of the negative electrode active material layer may be, for example, 0.1 μm or more and 1 mm or less.
[0030] (electrolyte layer) When the secondary battery 100 is an all-solid-state battery, the electrolyte layer is a sheet-shaped solid electrolyte layer. The solid electrolyte layer includes a solid electrolyte. The solid electrolyte can be appropriately selected from solid electrolyte layers that can be used in the positive electrode active material layer. The solid electrolyte layer may also include a binder. The binder can be appropriately selected from binders that can be used in the positive electrode active material layer. The content of each component in the solid electrolyte layer may be appropriately set depending on the purpose. The thickness of the solid electrolyte layer may be, for example, 0.1 μm or more and 1 mm or less.
[0031] When the secondary battery 100 is a liquid battery, the electrolyte layer includes an electrolyte and a separator. The electrolyte and the separator are not particularly limited as long as they are electrolyte and separator that can be used in a lithium ion secondary battery. The separator may be, for example, a porous sheet (film) made of polyolefin such as polyethylene (PE) or polypropylene (PP). The thickness of the separator may be, for example, 0.1 μm or more and 1 mm or less. The electrolyte usually contains a non-aqueous solvent and a supporting salt. Examples of the non-aqueous solvent include carbonates, ethers, esters, nitriles, sulfones, lactones, etc. Examples of the supporting salt include LiPF6, LiBF4, lithium bis(fluorosulfonyl)imide (LiFSI), lithium bis(trifluoromethane)sulfonimide (LiTFSI), etc. The concentration of the supporting salt in the electrolyte is not particularly limited, but may be, for example, 0.5 mol / L or more and 5 mol / L or less. The electrolyte may further contain any optional components such as a gas generating agent, a film forming agent, a dispersing agent, a thickening agent, etc.
[0032] <Exterior part 20> The exterior part 20 has a cylindrical part 21 having openings 21a on two opposing surfaces, inner lids 22 arranged in each of the openings 21a, and a first resin 23 arranged so as to cover each of the openings 21a and the opening side surface 22a of the inner lid 22. The first resin 23 is arranged so as to fill the gap between the cylindrical part 21 and the inner lid 22, and the cylindrical part 21 and the inner lid 22 are integrated by the first resin 23.
[0033] (Cylindrical portion 21) The cylindrical portion 21 has a hollow shape with openings 21a on two opposing surfaces. The openings 21a are provided on both longitudinal surfaces of the cylindrical portion 21. The cross section of the cylindrical portion 21 in the width direction is rectangular. However, the cross section of the cylindrical portion is not limited to this shape. Fig. 4 (a) shows a plan view of the cylindrical portion 21, (b) shows a cross section of the cylindrical portion 21 in the width direction, and (c) shows a side view of the cylindrical portion 21 as viewed from the width direction.
[0034] The cylindrical portion 21 is made of a metal having a high water vapor barrier property from the viewpoint of preventing deterioration of the power generating element. -4 g / m 2 ·24h or less. The lower the water vapor permeability, the higher the water vapor barrier property. Examples of such metals include aluminum, stainless steel, SUS, and duralumin. From the viewpoint of light weight and workability, aluminum may be used as the material for the cylindrical portion 21. Another advantage of aluminum is that it is inexpensive.
[0035] The water vapor permeability can be measured by the cup method in accordance with JIS Z 0208 or the gas chromatography method in accordance with JIS K 7129.
[0036] Here, the cylindrical portion 21 may be subjected to a predetermined insulating treatment from the viewpoint of suppressing a short circuit due to contact with the power generating element 10. For example, an insulating material such as an insulating resin sheet may be disposed between the power generating element 10 and the cylindrical portion 21. The insulating material may be disposed, for example, between the surface of the power generating element 10 in the thickness direction and the cylindrical portion 21. This can suppress electrical connection between the power generating element 10 and the cylindrical portion 21, and suppress a short circuit of the secondary battery 100. Also, a metal laminate film (e.g., an aluminum laminate film) in which at least the inner surface of the cylindrical portion 21 is covered with an insulating resin may be used. This can suppress electrical connection between the power generating element 10 and the cylindrical portion 21 without the need to dispose an insulating material, and suppress a short circuit of the secondary battery 100. The metal laminate film is a multilayer body in which a resin (e.g., polypropylene, nylon, PET, etc.) is disposed on the surface of a metal layer. In this way, an insulating treatment may be performed to dispose a predetermined insulating layer on the inner peripheral portion of the cylindrical portion 21.
[0037] However, the thickness of the metal layer of the metal laminate film is usually about 0.04 mm, which is relatively thin and therefore has a problem of low strength. Therefore, the cylindrical part 21 is preferably made of a metal having a thickness of, for example, 0.05 mm to 0.2 mm, and more preferably made of a metal having a thickness of 0.1 mm to 0.2 mm. In addition, a metal laminate film including a metal layer having a thickness in the above range may be used as the cylindrical part 21. When a metal laminate film is used for the cylindrical part 21, the metal laminate film is formed into a cylindrical shape.
[0038] The cylindrical portion 21 may have a protruding portion 21b at an end in the length direction. More specifically, the cylindrical portion 21 may have a protruding portion 21b at at least one of the thickness direction surface and the width direction surface at the end in the length direction. Providing the protruding portion 21b ensures an adhesive area with the first resin 23 and improves adhesive strength. The protruding portion 21b refers to a portion that protrudes outward beyond the inner lid 22.
[0039] Fig. 5(a) shows a cross-sectional view of the vicinity of the opening 21a of the tubular portion 21 having the protrusions 21b at each end of the surface in the thickness direction, and Fig. 5(b) shows a cross-sectional view of the vicinity of the opening 21a of the tubular portion 21 having the protrusions 21b bent inward.
[0040] The cylindrical portion 21 shown in FIG. 5(a) has a protrusion 21b at each end of the surface in the thickness direction. That is, the end of the surface in the thickness direction of the cylindrical portion 21 protrudes more than the end of the surface in the width direction of the cylindrical portion 21. As shown in FIG. 5(a), the cylindrical portion 21 has the protrusion 21b, so that the adhesion area with the first resin 23 can be increased, and the adhesive force can be improved. In other words, peeling of the first resin 23 can be suppressed. If the first resin 23 peels off, the water vapor barrier property cannot be ensured, which is undesirable. Also, as shown in FIG. 5(b), the protrusion 21b may have a shape that is bent toward the inside of the cylindrical portion 21. This makes it easier to position the inner lid 22. In this case, the opening formed by the two protrusions 21 becomes the opening 21a. The angle between the protrusion 21b and the surface of the cylindrical portion 21 (the surface having the protrusion 21b) is not particularly limited, and can be any angle between 0° and 180°. It is preferably 15° to 135°. The length of the protrusion 21b is not particularly limited, but is in the range of 0.5 mm to 2 mm, for example.
[0041] (Inner lid 22) The inner lids 22 are disposed in the respective openings 21a of the cylindrical portion 21. The inner lids 22 have a rectangular outer peripheral shape. However, the outer peripheral shape of the inner lids 22 is not particularly limited, and it is sufficient that the inner lids 22 have a shape that conforms to the cross-sectional shape of the cylindrical portion 21 in the width direction. Fig. 6(a) shows a perspective view of the inner lid 22, (b) shows a cross-sectional view taken along line bb in (a), and (c) shows a cross-sectional view taken along line cc in (a).
[0042] The inner lid 22 has a surface 22a disposed on the opening 21a side of the cylindrical portion 21, a protruding portion 22b protruding from the entire outer periphery of the surface 22a toward the inside of the cylindrical portion 21, and a space 22c surrounded by the protruding portion 22b. The space 22c opens toward the inside of the cylindrical portion 21.
[0043] The "protruding portion 22b protruding from the entire outer periphery of the surface 22a to the inside of the cylindrical portion 21" refers to a portion protruding from both ends in the thickness direction and both ends in the width direction of the surface 22a to the inside of the cylindrical portion 21, and these portions are connected to each other at the respective corners of the surface 22a. That is, the protruding portion 22b is a member protruding from the entire outer periphery of the surface 22a. The length L1 of the protruding portion 22b is not particularly limited, but it is sufficient that the protruding portion 22b exhibits sufficient water vapor barrier properties when the cylindrical portion 21 and the inner lid 22 are integrated with the first resin 23. For example, it may be 0.5 mm or more and 3 mm or less.
[0044] The surface 22a of the inner lid 22 has a through hole 22d, and the electrode terminal 30 (positive terminal 31 or negative terminal 32) is disposed so as to penetrate the through hole 22d. As shown in FIG. 1, when the electrode terminals 30 are disposed on different surfaces in the width direction of the exterior part 20, both of the inner lids 22 have the through hole 22d. On the other hand, as shown in FIG. 3, when the electrode terminals 30 are disposed on the same surface in the width direction of the exterior part 20, it is sufficient that at least one of the inner lids 22 (the inner lid 22 on the side where the electrode terminals 30 are disposed) is provided with the through hole 22d. In this case, the number of the through holes 22d may be two so that each electrode terminal 30 is disposed. Alternatively, each electrode terminal 30 may be disposed in one through hole 22d.
[0045] The inner lid 22 may be made of one member, or may be made of two or more members. From the viewpoint of easily arranging the electrode terminal 30, the inner lid 22 may be made of two members cut so as to divide the length in the thickness direction so as to include the through-hole 22c. The inner lid 22 may also have a tapered portion 22e between the surface 22a and the protruding portion 22b. As an example, FIG. 7(a) shows a cross-sectional view of the inner lid 22 having the tapered portion 22e, and FIG. 7(b) shows an example of using the inner lid 22 having the tapered portion 22e.
[0046] The inner lid 22 may be made of a material having high water vapor barrier properties from the viewpoint of preventing deterioration of the power generating element. -4 g / m 2A material with a hardness of less than 24 hours. Such materials are, for example, metal and glass. From the viewpoint of workability, a metal may be adopted as the material of the inner lid 22. Examples of metals include aluminum, stainless steel, SUS, and duralumin. From the viewpoint of light weight and workability, aluminum may be adopted as the material of the inner lid 22. Another advantage of aluminum is that it is inexpensive.
[0047] Here, when the inner lid 22 is made of metal, a predetermined insulation treatment may be performed from the viewpoint of suppressing a short circuit caused by contact between the inner lid 22 and the power generating element 10, the cylindrical portion 21, and the electrode terminal 30. For example, an insulating material such as an insulating resin sheet may be disposed between the inner lid 22 and the power generating element 10 from the viewpoint of suppressing a short circuit caused by contact with the power generating element 10. This suppresses electrical connection between the power generating element 10 and the inner lid 22, and suppresses a short circuit in the secondary battery 100. In addition, from the viewpoint of suppressing a short circuit caused by contact between the inner lid 22 and the cylindrical portion 21, a laminate metal in which at least the inner surface of the cylindrical portion 21 is covered with an insulating resin may be used. This suppresses electrical connection between the power generating element 10 and the cylindrical portion 21 without the need for the arrangement of an insulating material, and suppresses a short circuit in the secondary battery 100. In addition, in order to suppress a short circuit caused by contact with the cylindrical portion 21, the outer periphery of the inner lid 22 may be wrapped with an insulating film, or an insulating tape may be attached to the outer periphery of the inner lid 22. In this manner, an insulating process may be performed by disposing a predetermined insulating layer on the outer periphery of the inner lid 22. Furthermore, in order to prevent a short circuit due to contact between the inner lid 22 and the electrode terminal 30, an insulating process may be performed by disposing a predetermined insulating layer on either the through hole 22d or the electrode terminal 30.
[0048] (First resin 23) The first resin 23 is arranged so as to cover each of the openings 21a and the surface 22a on the opening side of the inner lid 22. The first resin 23 is arranged so as to fill the gap between the cylindrical portion 21 and the inner lid 22, and the cylindrical portion 21 and the inner lid 22 are integrated with each other by the first resin 23. When the electrode terminal 30 is arranged on the inner lid 22, the first resin 23 is arranged so as to further cover at least a part of the outer periphery of the electrode terminal 30 and to fill the gap between the through hole 22d and the electrode terminal 30. The cylindrical portion 21, the inner lid 22, and the electrode terminal are integrated with the first resin 23. This allows the secondary battery 100 to ensure sufficient water vapor barrier properties.
[0049] As shown in FIG. 2, the first resin 23 covers the opening 21a and the surface 22a of the inner lid 22 on the opening 21a side, and fills the gap between the cylindrical portion 21 and the inner lid 22. The "gap between the cylindrical portion 21 and the inner lid 22" refers to the gap between the inner surface of the cylindrical portion 21 and the outer periphery of the inner lid 22. The opening 21a covered by the first resin 23 refers to the surface of the gap on the opening 21a side. In order to form such a gap, it is preferable to make the inner lid 22 one size smaller than the outer shape of the cylindrical portion 21. By disposing the first resin 23 as described above, the cylindrical portion 21 and the inner lid 22 are integrated by the first resin 23. Here, it is sufficient that the first resin 23 fills at least a part of the gap between the cylindrical portion 21 and the inner lid 22, but from the viewpoint of ensuring water vapor barrier properties, it is preferable to fill the entire gap as shown in FIG. 2. However, as described below, when filling the inside of the tubular portion 21 with the second resin 24, the second resin 24 may be placed in the gap formed between the tubular portion 21 and the inner lid 22 in addition to the first resin 23.
[0050] In addition, the first resin 23 covers the entire outer periphery of at least a part of the electrode terminal 30, and fills the gap between the electrode terminal 30 and the through hole 22d. "The entire outer periphery of at least a part of the electrode terminal 30" refers to the entire outer periphery of a region of a predetermined length extending from the surface 22a of the electrode terminal 30 toward the outside. The predetermined length is the length L2 in FIG. 2. "The gap between the electrode terminal 30 and the through hole 22d" refers to the gap between the outer periphery of the electrode terminal 30 and the inner surface of the through hole 22d. In order to form such a gap, it is preferable to make the through hole 22d one size larger than the electrode terminal 30. By disposing the first resin 23 as described above, the inner lid 22 and the electrode terminal 30 are integrated by the first resin 23.
[0051] In this way, the exterior part 20 fills the paths (gaps) through which water vapor penetrates from the outside to the inside with the first resin 23, and therefore can sufficiently suppress the penetration of water vapor into the interior of the exterior part 20. In other words, this means that the exterior part 20 may have gaps through which water vapor can penetrate between the tubular part 21 and the inner lid 22 and between the electrode terminal 30 and the through-hole 22. Because such gaps are filled with the first resin 23, the tubular part 21 and the inner lid 22 do not need to be designed strictly.
[0052] Here, "integration" means that each material is bonded by resin and integrated to the extent that it can be recognized as a single member. "Integration" using the first resin can be achieved by placing an intermediate member, in which the cylindrical portion 21 housing the power generating element 10 and the inner lid 22 are placed on the opening 21a of the cylindrical portion 21, in a predetermined mold, and injecting the first resin into the mold and allowing it to harden. In this manner, the exterior body 20 can be manufactured by integral molding using the first resin 23.
[0053] Here, as shown in Figure 7 (b), when the inner lid 22 has a tapered portion 22e, the first resin 23 can penetrate between the tapered portion 22e and the tubular portion 21, thereby increasing the bonding area between the first resin 23 and the inner lid 22 and improving the bonding strength between these components.
[0054] The length L2 from the end of the first resin 23 to the surface 22a of the inner lid 22 on the opening side is not particularly limited, but may be in the range of 0.5 mm or more and 2 mm or less in consideration of the water vapor barrier property.
[0055] In this way, the secondary battery 100 seals the power generating element 10 using the exterior part 20 instead of the conventional laminate exterior body, and thus has water vapor barrier properties equal to or better than those of the conventional laminate exterior body. Furthermore, with the conventional laminate exterior body, sealing defects may occur when the end of the power generating element is heat-sealed after the power generating element is housed inside. In such a case, water vapor may enter through the defective sealing area, and water vapor barrier properties cannot be guaranteed. In contrast, the secondary battery 100 seals the power generating element 10 inside the exterior part 20 using the first resin 23, and therefore sealing defects are very unlikely to occur. Therefore, it is not necessary to carry out a water vapor barrier property inspection (leak inspection) after the secondary battery 100 is manufactured.
[0056] From the viewpoint of preventing deterioration of the power generating element, a resin having water vapor barrier properties is used as the first resin 23. The resin having water vapor barrier properties is, for example, a resin having a water vapor permeability of 1.0×10 -4 g / m 2 24 hours or more 50 x 10 -4 g / m 2 The resin is a resin having a shelf life of 24 hours or less. The type of such a resin is not particularly limited, but examples thereof include thermoplastic resins. Examples of thermoplastic resins include polypropylene and polyester.
[0057] <Electrode terminal 30> The electrode terminal 30 includes a positive terminal 31 and a negative terminal 32, and is electrically connected to the power generating element 10. Specifically, the positive terminal 31 is electrically connected to the positive current collector foil (tab 11), and the negative terminal 32 is electrically connected to the negative current collector foil (tab 12). The connection method is not particularly limited, and the electrode terminal and the current collector foil may be joined using ultrasonic waves, for example.
[0058] As described above, the electrode terminal 30 is disposed so as to penetrate the through-hole 22d of the inner lid 22, and protrudes outward from the opening 21a. The first resin 23 covers at least a part of the entire outer periphery of the electrode terminal 30 and fills the gap between the electrode terminal 30 and the through-hole 21, thereby integrating the inner lid 22 and the electrode terminal with the first resin 23.
[0059] The material of the electrode terminal 30 is not particularly limited, and can be appropriately selected from metals that can be used for current collector foils.
[0060] <Structural efficiency> Next, the structural efficiency of the secondary battery 100 will be described. Figures 8 and 9 show a comparison between a conventional laminated battery and the secondary battery 100. Figure 8 is a comparison of longitudinal cross-sectional views of the conventional laminated battery (a) and the secondary battery 100 (b). Figure 9 is a comparison of plan views of the conventional laminated battery (a) and the secondary battery 100 (b).
[0061] As shown in Figure 8(a), a conventional laminated battery has a terminal portion (region A) protruding from the laminated outer casing, a heat-welded portion (region B) where the laminated outer casing is heat-welded, a joint portion (region C) where the electrode terminal and the current collecting foil are joined, and a current collecting foil portion (region D) where multiple current collecting foils connected to the power generating element are present.
[0062] 8(b), in the secondary battery 100, the length of the portions corresponding to the regions A and D is equivalent to that of a conventional laminated battery. On the other hand, by using the exterior part 20, the length of the portions corresponding to the regions B and C of the secondary battery 100 can be made shorter than that of a conventional laminated battery. Specifically, this is as follows.
[0063] First, the reason why the length of the portion corresponding to region B is short will be explained. Region B (seal width) of a conventional laminated battery must usually be set to a length exceeding 3 mm. This is for the following reasons. (1) If the seal width is short, proper heat welding cannot be performed, and there is a possibility that the seal will be defective. (2) Since the laminated exterior body does not have a high rigidity, if the seal width is short, the adhesion of the seal area may peel off due to an external impact, and the adhesive surface may not be maintained. (3) If the terminal is not parallel to the adhesive surface of the laminated exterior body during heat welding, the correction force to return the inclination to the original state is weak if the seal width is short, so that heat welding cannot be performed properly and the probability of a seal defect increases. (4) If the seal width is short during heat welding, the pressure per area applied to the seal area by the heat welding head becomes large, and there is a risk that the metal layer inside the laminated exterior body will cross the insulating layer and bite into the terminal. If the metal layer bites into the terminal, it is undesirable because it causes a short circuit.
[0064] On the other hand, the secondary battery 100 uses an exterior part 20 in which the cylindrical part 21 and the inner lid 22 are integrated with the first resin 23. In this way, by integrating with the first resin 23, it is possible to highly suppress poor adhesion between the cylindrical part 21 and the inner lid 22. In addition, even if the inner lid 22 is tilted and the gap between the cylindrical part 21 and the inner lid 22 is not parallel, they can be properly bonded. Furthermore, since no thermal welding is performed, short circuits hardly occur. In addition, since the rigidity is ensured by integrating with the first resin 23, peeling of the adhesive part is also suppressed. Therefore, in the secondary battery 100, the length (L1+L2) of the part corresponding to the region B of the conventional laminated battery can be set to 3 mm or less. It may also be 2 mm or less. Therefore, in the secondary battery 100, the width of the part corresponding to the region B can be shortened compared to the conventional laminated battery.
[0065] Next, the reason why the length of the portion corresponding to region C is shortened will be explained. As shown in FIG. 8, the inner lid 22 of the secondary battery 100 has a space 22c inside the protruding portion 22b, and the electrode terminal 30 and the current collecting foil are joined in the space 22c. In this way, the secondary battery 100 can effectively use the space 22c of the inner lid 22. Therefore, in the secondary battery 100, the length of the portion that appears to correspond to region C can be shortened. Also, as shown in FIG. 8(b), the secondary battery 100 can also fulfill the roles of regions B and C in one region. This allows the secondary battery 100 to have a more efficient structure than conventional laminated batteries.
[0066] Next, FIG. 9 will be described. As shown in FIG. 9, a conventional laminated battery requires heat-sealed parts S on a maximum of four sides of the outer periphery. In contrast, both ends in the length direction of the secondary battery 100 are structurally efficient by the exterior parts 20, as described above. In addition, since the secondary battery 100 uses the cylindrical part 21, which is a cylindrical metal body, heat-sealed parts are not required on both sides in the width direction. Therefore, the secondary battery 100 has structural efficiency in this respect. In addition, the absence of heat-sealed parts on both sides in the width direction also improves the water vapor barrier property.
[0067] As described above, the secondary battery 100 has a significantly improved structural efficiency compared to conventional laminated batteries.
[0068] Here, the advantages of the secondary battery 100 compared to a secondary battery in which the power generating element is sealed using a laminated exterior body and an inner lid will be described. By disposing the inner lid on the opening of the cylindrical laminated exterior body and heat-welding the laminated exterior body and the outer circumferential surface of the inner lid, it is thought that the secondary battery can be made more efficient in structure than a conventional laminated battery. This is because the internal space of the inner lid can be used. However, since the laminated exterior body and the inner lid are bonded by heat welding, it is difficult to shorten the seal width to 3 mm or less. Specifically, this is due to the following reasons. (1) If the seal width is short, there is a possibility that the seal will be poor. (2) Since the laminated exterior body does not have high rigidity, if the seal width is short, the adhesion of the seal area may peel off due to an external impact, and the adhesive surface may not be maintained. (3) In addition, when the inner lid is tilted due to an external impact, the corrective force for returning the tilt to its original state is weakened, so that the adhesive surface may not be properly maintained. (4) When the outer peripheral surface of the inner lid is not parallel to the welded surface of the laminated exterior body during heat welding, if the seal width is short, the force to correct the inclination will be weak, increasing the probability of poor sealing. Also, if the laminated exterior body is formed into a cylindrical shape, a sealing area may be required on the side. For these reasons, the secondary battery 100 has improved structural efficiency compared to a secondary battery that combines a laminated exterior body and an inner lid.
[0069] There are also advantages in terms of manufacturing. When the laminated exterior body and the outer circumferential surface of the inner lid are heat-welded, the inner lid cannot be held down from the inside, which makes the heat-welding difficult. On the other hand, the secondary battery 100 does not have such a problem because the cylindrical portion 21 and the inner lid 22 are placed in a predetermined mold and the first resin 23 is filled in to integrate these components. In addition, the power generating element 10 is accommodated in the cylindrical portion 21, and then the components are integrated in a predetermined mold, which makes it easier to assemble the components and provides better dimensional accuracy than when a laminated exterior body is used.
[0070] <Prevention of Short Circuit Between Power-Generating Element 10 and Exterior Part 20> When the cylindrical portion 21 and the inner lid 22 are made of metal, an insulating material may be disposed between the power generating element 10 and these members, as described above, from the viewpoint of suppressing a short circuit due to contact between the power generating element 10 and these members. A specific form in which the insulating material is disposed will be described below.
[0071] First, a description will be given of a secondary battery 101 in which the inside of the exterior part 20 is filled with the second resin 24. A longitudinal cross-sectional view of a secondary battery 101 in which the entire inside of the exterior part 20 is filled with the second resin 24 is shown in FIG.
[0072] As shown in Fig. 10, the exterior part 20 has a second resin 24 filled therein. The second resin 24 can be the same resin as the first resin 23. In Fig. 10, the second resin 24 is disposed throughout the interior of the exterior part 20, but this is not limited thereto, and it is sufficient that the second resin 24 is disposed in a position where the power generating element 10 and the exterior part 20 can come into contact with each other. Preferably, the second resin 24 is disposed throughout the interior of the exterior part 20.
[0073] In this way, by providing the exterior part 20 with the second resin 24 inside, the cylindrical part 21, the inner lid 22, the electrode terminal 30, and the power generating element 10 can be integrated with the second resin 24. This makes it possible to suppress a short circuit caused by contact between the power generating element 10 and the exterior part 20. For example, even if a predetermined insulating layer is arranged on the power generating element 10 or the exterior part 20, there is a risk that the insulating layer will be broken by an external impact, causing the power generating element 10 and the exterior part 20 to come into contact with each other and cause a short circuit. In contrast, by arranging the second resin 24 inside the exterior part 20, it is possible to suppress contact between the power generating element 10 and the exterior part 20 more effectively than when only an insulating layer is arranged, and thus it is possible to suppress a short circuit of the battery.
[0074] Moreover, the secondary battery 100 can further improve the water vapor barrier property by including the second resin 24. Furthermore, by integrating the various components with the second resin 24, movement of the power generating element 10 due to external impact can be suppressed, and therefore, cutting of the current collecting foil and tabs 11 and 12 due to movement of the power generating element 10 can be suppressed. In addition, chipping or slipping of the power generating element 10 due to external impact can also be suppressed.
[0075] The method of filling the second resin 24 inside the exterior part 20 is not particularly limited, but for example, a hole for injecting the second resin 24 may be provided at a predetermined position of the cylindrical part 21 and / or the inner lid 22. The shape of the hole is not particularly limited, and may be circular, elliptical, or rectangular. At least one hole may be provided in the cylindrical part 21, and at least one hole may be provided in the inner lid 22. For example, as shown in FIG. 4(c), a plurality of holes 21c and 21d having different shapes may be provided on the side surface of the cylindrical part 21. Also, as shown in FIG. 6(a), a plurality of holes 22f may be provided on the surface 22a of the inner lid 22. When a power generating element of a liquid battery is used as the power generating element, a predetermined electrolyte may be injected through the hole after the second resin 24 is filled.
[0076] Next, a secondary battery 102 in which the power generating element 10 is wrapped in a resin film 13 having insulating properties and water vapor barrier properties will be described. Fig. 11 shows a longitudinal cross-sectional view of the secondary battery 102 in which the power generating element 10 is wrapped in the resin film 13. Fig. 12 shows a plan view of the power generating element 10 wrapped in the resin film 13.
[0077] As shown in FIG. 11 and FIG. 12, the resin film 13 has a cylindrical shape and has an opening on the side where the electrode terminal 30 is arranged. The resin film 13 wraps the entire power generating element 10. In FIG. 12, the members arranged inside the resin film 13 are indicated by dotted lines. The resin film 13 may wrap at least a part of the electrode terminal 30 in addition to the power generating element 10. For example, as shown in FIG. 11, the end of the resin film 13 may pass through the through hole 22d of the inner lid 22 and wrap the electrode terminal 30 arranged inside the first resin 23. This allows the resin film 13 to be fixed by the first resin 23. By wrapping the power generating element 10 entirely with the resin film 13 in this way, it is possible to suppress a short circuit caused by contact between the power generating element 10 and the exterior part 20. In addition, by providing the resin film 13, the secondary battery 100 can further improve the water vapor barrier property.
[0078] The resin film 13 may be any resin film having insulating properties and water vapor barrier properties. For example, a resin film on which aluminum or silica is vapor-deposited may be used. The type of resin is not particularly limited, but examples thereof include polypropylene and polyethylene terephthalate.
[0079] Alternatively, the power generating element 10 may be wrapped in the resin film 13 and the inside of the exterior part 20 may be filled with the second resin 24 .
[0080] <Other forms of the cylindrical portion> From the viewpoint of structural efficiency, the cylindrical portion 21 may be a cylindrical metal body or a metal laminate film formed into a cylindrical shape, as shown in Fig. 3. A cylindrical metal body is preferable. However, such a cylindrical portion has a problem in that it is difficult to accommodate the power generating element 10 inside. Therefore, the following cylindrical portions 121 and 221, which can easily accommodate the power generating element 10, may be used.
[0081] First, the cylindrical part 121 will be described. FIG. 13(a) shows a plan view of the cylindrical part 121, and FIG. 13(b) shows a widthwise cross-sectional view of the cylindrical part 121. As shown in FIG. 13, the cylindrical part 121 is composed of two metal plates 121a and a third resin 121d. The metal plate 121a is a so-called U-shaped member having a bottom surface 121b and protruding parts 121c protruding in the same direction from opposing ends of the bottom surface 121b. As shown in FIG. 13(b), the two metal plates 121a are stacked upside down, and the protruding parts 121c of the two metal plates 121a are stacked on each of the opposing side surfaces (side surfaces in the width direction) of the cylindrical part 121. The third resin 121c is arranged so as to cover each side surface of the cylindrical part 121. Specifically, the third resin 121c entirely covers the side surfaces of the protruding portions 121c of the overlapping metal plates 121a and fills the gaps between the protruding portions 121c of the overlapping metal plates 121a, so that the ends of the overlapping metal plates 121a are integrated with the third resin 121c.
[0082] Since the cylindrical portion 121 includes two metal plates 121a, the power generating element 10 is placed inside one of the metal plates 121a, and then the other metal plate 121a is placed upside down and the protruding portion 121c of the metal plate 121a is integrated with the third resin 121d to produce the cylindrical portion 121. In this manner, by using the cylindrical portion 121, the power generating element 10 can be easily accommodated inside the cylindrical portion 121.
[0083] Next, the cylindrical part 221 will be described. FIG. 14(a) shows a plan view of the cylindrical part 221, and FIG. 14(b) shows a widthwise cross-sectional view of the cylindrical part 221. As shown in FIG. 14, the cylindrical part 221 is composed of one metal plate 221a and a third resin 221d. The metal plate 221a is formed into a cylindrical shape, and the end 221b of the metal plate 221a is overlapped on one side surface of the cylindrical part 221. The third resin 221c is arranged so as to cover the side surface where the end 221b is overlapped. Specifically, the third resin 221c entirely covers the side surface side of the overlapping end 221b, and fills the gap of the end 221b of the overlapping metal plate 221a. As a result, the end 221b of the overlapping metal plate 221a is integrated with the third resin 221c.
[0084] Since the cylindrical portion 221 is made of one metal plate 121a, the power generating element 10 is placed inside the cylindrical metal plate 221a, and then the end portion 221b is integrated with the third resin 121c to produce the cylindrical portion 221. In this manner, by using the cylindrical portion 221, the power generating element 10 can be easily accommodated inside the cylindrical portion 221. Also, as shown in FIG. 15, the secondary battery can be easily cooled by contacting the side of the cylindrical portion 221 on which the third resin 221c is not placed with a predetermined cooling portion X. Note that such a cooling mode can also be applied to a secondary battery using the cylindrical portion 21.
[0085] The metal plate used in the above two forms may be a simple metal plate or a metal laminate film. It is preferably a metal plate. The type of metal may be a metal having high water vapor barrier properties. The third resin used in the above two forms may be the same resin as the first resin 23. In addition, "integration" by the third resin is possible by placing the overlapped metal plates 121a or the metal plate 221a molded into a cylindrical shape in a predetermined mold, and injecting the third resin into the mold and hardening it. This makes it possible to manufacture the cylindrical parts 121 and 221.
[0086] The secondary battery of the present disclosure has been described above mainly using the secondary battery 100 as one embodiment. As described above, the secondary battery of the present disclosure can achieve structural efficiency. The secondary battery of the present disclosure can be used for any purpose. For example, the secondary battery of the present disclosure can be used as an in-vehicle secondary battery. [Explanation of symbols]
[0087] 10 Power generation elements Tabs 11 and 12 13 Resin film 20 Exterior part 21, 121, 122 Cylindrical part 21a opening 21b Projection 21c hole 21d hole 22 Inner lid 22a side 22b Projection 22c space 22d through hole 22e Tapered section 22f hole 23 First Resin 24 Second Resin 30 electrode terminal 31 Positive terminal 32 Negative terminal 100, 101, 102 secondary battery 121a, 221a metal plate 121b Bottom 121c Protrusion 121d, 221c Third resin 221b End
Claims
[Claim 1] a power generating element and an exterior part that houses the power generating element; the exterior part has a cylindrical part having openings on two opposing surfaces, inner lids to be placed on the openings, and a first resin to be placed so as to cover the openings and the opening-side surfaces of the inner lids; the first resin is disposed so as to fill a space between the cylindrical portion and the inner lid, The power generating element is wrapped in a resin film that has insulating and water vapor barrier properties. Secondary battery.