Battery

The battery design addresses the need for improved sealing performance by using friction-welded electrode terminals with varying rigidity parts, enhancing the sealing between the exterior body and the electrode terminal.

JP7850346B2Active Publication Date: 2026-04-22VEHICLE ENERGY JAPAN INC
View PDF 11 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
VEHICLE ENERGY JAPAN INC
Filing Date
2023-08-31
Publication Date
2026-04-22

AI Technical Summary

Technical Problem

There is a demand for a battery that uses electrode terminals formed by friction welding members made of different materials while maintaining or improving the sealing performance between the exterior body and the electrode terminal by a sealing body.

Method used

The battery design includes an electrode terminal with a first part inserted into the outer casing and indirectly or directly joined to the charge/discharge element, and a second part exposed to the outside with lower rigidity, joined by friction welding. The second part includes features such as projections or machined portions that enhance sealing performance by contacting or interacting with the seal.

Benefits of technology

This design maintains or improves the sealing performance between the outer casing and the electrode terminals, ensuring effective sealing while using friction-welded components of different materials.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007850346000001
    Figure 0007850346000001
  • Figure 0007850346000002
    Figure 0007850346000002
  • Figure 0007850346000003
    Figure 0007850346000003
Patent Text Reader

Abstract

Provided is a battery using an electrode terminal formed by friction welding while maintaining or improving sealability. A battery 1 includes: a charging / discharging body 100; an exterior body (lid 420) accommodating the charging / discharging body and having a through-hole (negative electrode-side insertion hole 420b) formed therein; a sealing body (negative electrode-side gasket 630) provided to the exterior body; and an electrode terminal (negative electrode terminal 320) provided to the sealing body. The electrode terminal includes: a first part (insertion part 322) inserted into the through-hole of the exterior body and indirectly or directly joined to the charging / discharging body; and a second part (main body part 321) that is exposed to the outside of the exterior body, has lower rigidity than the first part, and is joined to a bus bar or an electric device. The first part and the second part are joined by friction welding. The second part includes a protruding part (raised part 320e or cut-formed part 320f) protruding toward the sealing body while annularly surrounding an outer peripheral surface 322b of the first part in the joining part with the first part. The protruding part is in contact with the sealing body.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to a battery.

Background Art

[0002] Conventionally, electrode terminals and the like formed by friction welding members made of different materials have been known (see Patent Documents 1 to 6).

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Patent Document 2

Patent Document 3

Patent Document 4

Patent Document 5

Patent Document 6

Summary of the Invention

Problems to be Solved by the Invention

[0004] There is a demand for a battery that uses an electrode terminal formed by friction welding members made of different materials while maintaining or improving the sealing performance between the exterior body and the electrode terminal by a sealing body.

Means for Solving the Problems

[0005] A first battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part exposed to the outside of the outer casing, having lower rigidity than the first part, and being joined to a busbar or electrical equipment. The first part and the second part are joined by friction welding. The second part includes a projection at the joint with the first part that protrudes toward the seal along the outer circumferential surface of the first part. The projection is in contact with the seal.

[0006] A second battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part exposed to the outside of the outer casing, having lower rigidity than the first part, and joined to a busbar or electrical equipment. The first part and the second part are joined by friction welding. The second part includes a machined flat portion adjacent to the joint with the first part.

[0007] A third battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having through holes formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through holes of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part exposed to the outside of the outer casing, having lower rigidity than the first part, and being joined to a busbar or electrical equipment. The first part and the second part are joined by friction welding. The first part includes a first shaft portion joined to the second part, and a second shaft portion connected to the first shaft portion and having a shape smaller than that of the first shaft portion along a direction intersecting the stacking direction with the first shaft portion.

[0008] A fourth battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having through holes formed therein, a seal provided on the outer casing, and electrode terminals provided on the seal. The electrode terminal includes a first part inserted into the through holes of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part exposed to the outside of the outer casing, having lower rigidity than the first part, and joined to a busbar or electrical equipment. The first part and the second part are joined by friction welding. In the portion of the second part exposed to the outside of the outer casing, it is in contact with the seal along the stacking direction with the first part, but is not in contact with the seal along a direction intersecting the stacking direction.

[0009] A fifth battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having through holes formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through holes of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part that includes a protrusion partially projecting toward the first part, is exposed to the outside of the outer casing, has lower rigidity than the first part, and is joined to a busbar or electrical equipment. The first part and the protrusion are joined by friction welding. The protrusion includes a projection projecting toward the seal in a direction intersecting the stacking direction of the first part and the second part. At the joint between the first part and the protrusion, the surface area of ​​the first part is larger than the surface area of ​​the protrusion excluding the protrusion.

[0010] The sixth battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part that includes a protrusion partially projecting toward the first part, is exposed to the outside of the outer casing, has lower rigidity than the first part, and is joined to a busbar or electrical equipment. The first part and the protrusion are joined by friction welding. The protrusion includes a projection projecting toward the seal in a direction intersecting the stacking direction of the first part and the second part. The projection is in contact with the seal.

[0011] The seventh battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part that includes a protrusion partially projecting toward the first part, is exposed to the outside of the outer casing, has lower rigidity than the first part, and is joined to a busbar or electrical equipment. The first part and the protrusion are joined by friction welding. The protrusion includes a projection that projects toward the seal in a direction intersecting the stacking direction of the first part and the second part. The seal includes a concave recess in the portion facing the protrusion. The protrusion is inserted into the recess.

[0012] The eighth battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part including a protrusion partially projecting toward the first part, exposed to the outside of the outer casing, having lower rigidity than the first part, and joined to a busbar or electrical equipment. The first part and the protrusion are joined by friction welding. The protrusion includes a machined portion in the portion adjacent to the joint with the first part, which is machined along the stacking direction between the protrusion and the first part. The machined portion faces the seal in a direction intersecting the stacking direction.

[0013] The ninth battery of the present invention comprises a charge / discharge element, an outer casing housing the charge / discharge element and having a through hole formed therein, a seal provided on the outer casing, and an electrode terminal provided on the seal. The electrode terminal includes a first part inserted into the through hole of the outer casing and indirectly or directly joined to the charge / discharge element, and a second part exposed to the outside of the outer casing, having higher rigidity than the first part, and joined to a busbar or electrical equipment. The first part and the second part are joined by friction welding. At the joint with the first part, the second part includes a projection that protrudes toward the seal along the outer circumferential surface of the first part. The projection is in contact with the seal. [Effects of the Invention]

[0014] According to the present invention, a battery can be obtained that uses electrode terminals formed by friction-pressing components of different materials, while maintaining or improving the sealing performance between the outer casing and the electrode terminals provided by the sealing body. [Brief explanation of the drawing]

[0015] [Figure 1] A perspective view showing battery 1 of the first embodiment. [Figure 2]A side view showing in cross section the components around the positive electrode terminal 310 of the battery 1 in the region 2A-2B of FIG. 1. [Figure 3] A side view showing in cross section the components around the negative electrode terminal 320 of the battery 1 in the region 3A-3B of FIG. 1. [Figure 4] A perspective view showing the battery 1 partially disassembled. [Figure 5] A perspective view showing the charge / discharge body 100 of FIG. 4. [Figure 6] A side view showing in cross section a part of the charge / discharge body 100 in the region 6A-6B of FIG. 5. [Figure 7] A perspective view showing the components around the positive electrode terminal 310 of the battery 1 in FIG. 1 disassembled. [Figure 8] A perspective view showing the components around the rupture valve 430 and the sealing plug 440 of the battery 1 in FIG. 1 disassembled. [Figure 9] A perspective view showing the components around the negative electrode terminal 320 of the battery 1 in FIG. 1 disassembled. [Figure 10] Regarding the manufacturing method of the negative electrode terminal 320 of the battery 1 in FIG. 1, a side view showing in cross section the state where the first part 320P and the second part 320Q of the negative electrode terminal 320 are separated. [Figure 11] Following FIG. 10, a side view showing in cross section the state where the first part 320P and the second part 320Q of the negative electrode terminal 320 are in contact. [Figure 12] Following FIG. 11, a side view showing in cross section the state where the first part 320P and the second part 320Q of the negative electrode terminal 320 are frictionally pressure-welded to generate a recess 320d and a bulge 320e. [Figure 13] Following FIG. 12, a side view showing in cross section the state where the bulge 320e of the negative electrode terminal 320 is machined by cutting to form a cutting formed part 320f. [Figure 14] A side view showing in cross section the state where a triangular cutting formed part 330f is formed in the negative electrode terminal ३३० of the first modification of the first embodiment. [Figure 15] A side view showing in cross section the state where a relatively long rectangular cutting formed part 340f is formed along the longitudinal direction X and the short transverse direction Y in the negative electrode terminal 340 of the second modification of the first embodiment. [Figure 16] A cross-sectional side view showing the negative electrode terminal 350 of the modified example 3 of the first embodiment, in which a relatively long rectangular cut-formed portion 350f is formed along the height direction Z. [Figure 17] This is a cross-sectional side view of the negative electrode terminal 360 of the modified example 4 of the first embodiment, showing a state in which the raised portion has been removed and a flat portion 360r has been formed without the formation of a machined portion. [Figure 18] A cross-sectional side view showing the state of the negative electrode terminal 370 of the modified example 5 of the first embodiment before friction welding. [Figure 19] A cross-sectional side view showing the state of the negative electrode terminal 370 of the modified example 5 of the first embodiment after friction welding. [Figure 20] A cross-sectional side view showing the components around the negative terminal 380 of the battery 2 in the second embodiment. [Figure 21] Regarding the manufacturing method of the negative electrode terminal 380 of battery 2 shown in Figure 20, this is a cross-sectional side view showing the state in which the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q of the negative electrode terminal 380 are relatively aligned and the first part 380P and the second part 320Q are in contact. [Figure 22] This is a bottom view of the negative terminal 380 in Figure 21, excluding the cross-sectional view. [Figure 23] Following Figures 21 and 22, this is a cross-sectional side view showing the state after friction-pressure contact has been made between the first part 380P and the second part 320Q of the negative electrode terminal 380, where the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q do not relatively coincide. [Figure 24] This is a bottom view of the negative terminal 380 in Figure 23, excluding the cross-sectional view. [Figure 25] Following Figures 23 and 24, this is a cross-sectional side view showing the state in which the outer peripheral surface 380b of the first part 380P of the negative electrode terminal 380 has been machined so that the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q are relatively aligned. [Figure 26] This is a bottom view of the negative terminal 380 in Figure 25, excluding the cross-sectional view. [Figure 27]A cross-sectional side view showing the components around the negative terminal 390 of the battery 3 in a modified example 1 of the second embodiment. [Figure 28] Figure 27 shows a cross-sectional side view of the manufacturing method for the negative electrode terminal 390 of the battery 3, where the central axis S2 of the first part 320P and the central axis S1 of the second part 320Q of the negative electrode terminal 390 are relatively aligned, and the first part 320P and the second part 320Q are in contact. [Figure 29] This is a bottom view of the negative terminal 390 in Figure 28, excluding the cross-sectional view. [Figure 30] Following Figures 28 and 29, this is a cross-sectional side view showing the state after friction-pressure contact has been made between the first part 320P and the second part 320Q of the negative electrode terminal 390, where the central axis S2 of the first part 320P and the central axis S1 of the second part 320Q do not relatively coincide. [Figure 31] This is a bottom view of the negative terminal 390 in Figure 30, excluding the cross-sectional view. [Figure 32] A cross-sectional side view showing the components surrounding the negative terminal 710 of the battery 4 in the third embodiment. [Figure 33] Regarding the manufacturing method of the negative electrode terminal 710 shown in Figure 32, this is a cross-sectional side view showing the state in which the first part 710P and the second part 710Q of the negative electrode terminal 710 are in contact. [Figure 34] Following Figure 33, this is a cross-sectional side view showing the state in which the first part 710P and the second part 710Q of the negative electrode terminal 710 are frictionally pressed together, resulting in the formation of a raised portion 710e. [Figure 35] A cross-sectional side view showing the components around the negative terminal 720 of the battery 5 in a modified example 1 of the third embodiment. [Figure 36] A cross-sectional side view showing the components around the negative terminal 720 of the battery 6 in a modified example 2 of the third embodiment. [Figure 37] A cross-sectional side view showing the components around the negative terminal 730 of the battery 7 in a modified example 3 of the third embodiment. [Figure 38] A cross-sectional side view showing the components surrounding the negative terminal 810 of the battery 8 in the fourth embodiment. [Figure 39]Regarding the manufacturing method of the negative electrode terminal 810 shown in Figure 38, this is a cross-sectional side view showing the state in which the first part 710P and the second part 810Q of the negative electrode terminal 810 are in contact. [Figure 40] Following Figure 39, this is a cross-sectional side view showing the state in which the first part 710P and the second part 810Q of the negative electrode terminal 810 are frictionally pressed together, resulting in the formation of a raised portion 810e. [Figure 41] A cross-sectional side view showing the components around the negative terminal 810 of the battery 9 in a modified example 1 of the fourth embodiment. [Figure 42] A cross-sectional side view showing the components around the negative terminal 820 of the battery 10 in a modified example 2 of the fourth embodiment. [Figure 43] A cross-sectional side view showing the components surrounding the negative terminal 910 of the battery 11 in the fifth embodiment. [Figure 44] A cross-sectional side view showing the components surrounding the positive terminal 1010 of the battery 12 in the sixth embodiment. [Modes for carrying out the invention]

[0016] Embodiments for carrying out the present invention will be described with reference to the drawings. In order to facilitate understanding of each embodiment, the size and proportions of the components may be exaggerated in each drawing. For example, in the negative electrode terminal 380 shown in Figures 25 and 26, the relative positional displacement between the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q is exaggerated in the illustration. The same reference numerals are assigned to the same components in each drawing. In each drawing, the longitudinal direction X, the short direction Y, and the height direction Z of the battery 1 are indicated by arrows. In each drawing, the longitudinal direction X, the short direction Y, and the height direction Z of the battery 1 indicate the relative positional relationship within the same drawing. That is, if the battery 1 is rotated 180 degrees and the top and bottom surfaces are reversed, or if the battery 1 is rotated 90 degrees and the top surface is placed as a side surface, the longitudinal direction X, the short direction Y, and the height direction Z of the battery 1 will change.

[0017] In each embodiment and each modified embodiment, components similar to those described above are denoted by the same reference numerals, and redundant explanations are omitted. Components similar to those described above include not only components identical to those described above, but also components that are substantially identical to those described above.

[0018] (Battery 1 of the first embodiment) (Battery 1 configuration) The battery 1 of the first embodiment corresponds to a specific example of the first battery described in the means for solving the problem. The configuration of the battery 1 will be described with reference to Figures 1 to 9.

[0019] Figure 1 is a perspective view showing battery 1 of the first embodiment. Figure 2 is a cross-sectional side view showing the components around the positive terminal 310 of battery 1 in region 2A-2B of Figure 1. Figure 3 is a cross-sectional side view showing the components around the negative terminal 320 of battery 1 in region 3A-3B of Figure 1. Figure 4 is a perspective view showing battery 1 partially disassembled. Figure 5 is a perspective view showing the charge / discharge unit 100 of Figure 4. Figure 6 is a cross-sectional side view showing a part of the charge / discharge unit 100 in region 6A-6B of Figure 5. Figure 7 is a disassembled perspective view showing the components around the positive terminal 310 of battery 1 in Figure 1. Figure 8 is a disassembled perspective view showing the components around the opening valve 430 and sealing plug 440 of battery 1 in Figure 1. Figure 9 is a disassembled perspective view showing the components around the negative terminal 320 of battery 1 in Figure 1.

[0020] Battery 1 includes a charge / discharge element 100 for charging and discharging electricity, a current collector 200 connected to the charge / discharge element 100, and electrode terminals 300 connected to the current collector 200. Battery 1 also includes an outer casing 400 in which the components of battery 1 are housed or mounted, an insulator 500 that insulates the components of battery 1 from the outer casing 400, and a seal 600 that seals the components of battery 1 from the outer casing 400.

[0021] The charge / discharge unit 100 charges and discharges electricity. The charge / discharge unit 100 shown in Figures 2 to 6 includes a positive electrode 110, a negative electrode 120, a separator 130, and an electrolyte 140. The charge / discharge unit 100 is constructed by winding components, in which the positive electrode 110, separator 130, negative electrode 120, and separator 130 are stacked in that order, into a rectangular shape. The charge / discharge unit 100 may be constructed by winding or by stacking.

[0022] The positive electrode 110 includes a long positive electrode current collector layer 111 and a positive electrode active material layer 112 bonded to both sides of the positive electrode current collector layer 111. As shown in Figure 5, the positive electrode 110 is wound together with the negative electrode 120 and the separator 130 to form a rectangular parallelepiped shape with its ends curved in a convex shape. One side portion 111a of the positive electrode current collector layer 111 is not covered by the separator 130 and is exposed to the outside. The positive electrode active material layer 112 is not bonded to the side portion 111a. The central portion of the side portion 111a is compressed in the short direction Y of the battery 1 when bundled, as shown in Figure 4. The side portion 111a is bonded to the positive electrode current collector plate 210. The positive electrode active material layer 112 is bonded to the portion of the positive electrode current collector layer 111 excluding the side portion 111a. The positive electrode active material layer 112 is bonded to both sides of the positive electrode current collector layer 111. The positive electrode 110 may also have a configuration in which the positive electrode active material layer 112 is bonded to only one side of the positive electrode current collector layer 111. The positive electrode current collector layer 111 is formed of, for example, aluminum or an aluminum alloy. The positive electrode active material layer 112 contains a positive electrode active material composed of a lithium-containing composite oxide, a binder, and a conductive additive. Examples of lithium-containing composite oxides include metallic elements such as nickel (Ni), cobalt (Co), and manganese (Mn), and lithium (Li).

[0023] The negative electrode 120 includes a long negative electrode current collector layer 121 and a negative electrode active material layer 122 bonded to both sides of the negative electrode current collector layer 121. As shown in Figure 5, the negative electrode 120 is wound together with the positive electrode 110 and the separator 130 to form a rectangular parallelepiped shape with its ends curved in a convex shape. One side portion 121a of the negative electrode current collector layer 121 is not covered by the separator 130 and is exposed to the outside. The negative electrode active material layer 122 is not bonded to the side portion 121a. The central portion of the side portion 121a is compressed in the short direction Y of the battery 1 when bundled, as shown in Figure 4. As shown in Figure 5, the side portion 121a of the negative electrode current collector layer 121 faces the side portion 111a of the positive electrode current collector layer 111 along the longitudinal direction X of the battery 1. The side portion 121a is joined to the negative electrode current collector plate 220. The negative electrode active material layer 122 is joined to the portion of the negative electrode current collector layer 121 excluding the side portion 121a. The negative electrode active material layer 122 is joined to both sides of the negative electrode current collector layer 121. The negative electrode 120 may also be configured such that the negative electrode active material layer 122 is joined to only one side of the negative electrode current collector layer 121. The negative electrode current collector layer 121 is formed of, for example, copper or a copper alloy. The negative electrode active material layer 122 contains a negative electrode active material composed of a carbon-based material, a binder, and a conductive additive, etc. For example, graphite is used as the carbon-based material.

[0024] The separator 130 insulates the positive electrode 110 and the negative electrode 120 while allowing lithium ions to pass through. The separator 130 is formed in a long, rectangular shape. The separator 130 is made of a porous material. Polyethylene (PE) or polypropylene (PP) are used for the separator 130. An insulating material may be used instead of the separator 130. The insulating material may be provided on the side of the positive electrode 110 facing the negative electrode 120. The insulating material may be provided on the side of the negative electrode 120 facing the positive electrode 110. The insulating material may be heat-resistant. In such a configuration, the separator 130 is not essential.

[0025] The electrolyte 140 facilitates the flow of lithium ions between the positive electrode 110 and the negative electrode 120. The electrolyte 140 is also called an electrolyte solution. The electrolyte 140 contains a solvent and a solute. The electrolyte 140 may also contain additives. The solvent may include, for example, an organic solvent. For example, a carbonate ester such as ethylene carbonate is used as the organic solvent. The solute may include, for example, a lithium salt. For example, lithium hexafluoride phosphate (LiPF6) is used as the lithium salt.

[0026] The current collector 200 is connected to the charge / discharge unit 100. The current collector 200 is also called a current collector plate. The current collector 200 shown in Figures 2 to 4, 7 and 9 includes a positive electrode current collector plate 210 and a negative electrode current collector plate 220.

[0027] As shown in Figure 4, the positive electrode current collector plate 210 connects the positive electrode 110 and the positive electrode terminal 310. As shown in Figure 7, the positive electrode current collector plate 210 includes a base portion 211 and a current collector portion 212. As shown in Figure 2, the base portion 211 is joined to the joint portion 313 of the positive electrode terminal 310. The base portion 211 is joined to the joint portion 313, for example, by crimping the joint portion 313. As shown in Figure 7, the base portion 211 is formed in a plate shape. A circular insertion hole 211a is formed in the base portion 211. As shown in Figure 2, the joint portion 313 of the positive electrode terminal 310 is inserted into the insertion hole 211a of the base portion 211. The current collector portion 212 is joined to the side portion 111a of the positive electrode 110, for example, by ultrasonic bonding or laser welding. As shown in Figure 7, the current collector portion 212 is formed by bending downward in the height direction Z from the outer edge of the base portion 211. The current collector portion 212 extends perpendicularly to the base portion 211. The current collector portion 212 is formed integrally with the base portion 211. The current collector portion 212 is bent in the short direction Y along the outer shape of the side portion 111a of the positive electrode 110. The positive electrode current collector plate 210 is formed of, for example, aluminum or an aluminum alloy.

[0028] As shown in Figure 4, the negative electrode current collector plate 220 connects the negative electrode 120 and the negative electrode terminal 320. The external shape of the negative electrode current collector plate 220 is symmetrical to the external shape of the positive electrode current collector plate 210 along the longitudinal direction X. As shown in Figure 9, the negative electrode current collector plate 220 includes a base portion 221 and a current collector portion 222. As shown in Figure 3, the base portion 221 is joined to the joint portion 323 of the negative electrode terminal 320. The base portion 221 is joined to the joint portion 323, for example, by crimping the joint portion 323. As shown in Figure 9, the base portion 221 is formed in a plate shape. A circular insertion hole 221a is formed in the base portion 221. As shown in Figure 3, the joint portion 323 of the negative electrode terminal 320 is inserted into the insertion hole 221a of the base portion 221. The current collector 222 is joined to the side portion 121a of the negative electrode 120, for example, by ultrasonic bonding or laser welding. As shown in Figure 9, the current collector 222 is formed by bending downward in the height direction Z from the outer edge of the base portion 221. The current collector 222 extends perpendicular to the base portion 221. The current collector 222 is formed integrally with the base portion 221. The current collector 222 is bent in the short direction Y along the outer shape of the side portion 121a of the negative electrode 120. The negative electrode current collector plate 220 is formed of, for example, copper or a copper alloy.

[0029] The electrode terminal 300 is connected to the current collector 200. The electrode terminal 300 shown in Figures 1 to 4, 7 and 9 includes a positive electrode terminal 310 and a negative electrode terminal 320.

[0030] As shown in Figure 4, the positive terminal 310 is connected to the positive current collector plate 210. As shown in Figures 2 and 7, the positive terminal 310 includes a main body 311, an insertion portion 312, and a connecting portion 313. The main body 311, the insertion portion 312, and the connecting portion 313 are integrally formed.

[0031] As shown in Figure 7, the main body 311 is formed in a rectangular shape. As shown in Figure 2, the main body 311 is provided on the base 611 of the positive electrode gasket 610.

[0032] As shown in Figure 7, the insertion portion 312 is formed in a cylindrical shape. The insertion portion 312 is connected to the main body portion 311. The insertion portion 312 extends downward from the main body portion 311 in Figures 2 and 7. As shown in Figure 2, the insertion portion 312 is inserted into the cylindrical portion 612 of the positive electrode side gasket 610. As shown in Figure 2, the insertion portion 312 faces the base portion 611 and the cylindrical portion 612 of the positive electrode side gasket 610 along the longitudinal direction X and the short direction Y.

[0033] As shown in Figure 2, the joint portion 313 is formed in a cylindrical shape. The joint portion 313 is connected to the insertion portion 312. The joint portion 313 extends downward from the outer circumference of the insertion portion 312 in Figures 2 and 7. As shown in Figure 2, the joint portion 313 is opposed to the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210 along the longitudinal direction X and the transverse direction Y. As shown in Figure 2, the tip of the joint portion 313 protrudes downward from the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210. As shown in Figure 2, the tip of the joint portion 313 is pushed outward in the radial direction and crimped to the bottom surface of the base portion 211. The tip of the joint portion 313 is welded to the base portion 211.

[0034] The boundary between the joint portion 313 and the insertion portion 312 in the height direction Z is not limited to the configuration shown in Figure 2. A portion of the joint portion 313 may be configured to face the cylindrical portion 612 of the positive electrode gasket 610 along the longitudinal direction X and the short direction Y. A portion of the insertion portion 312 may be configured to face the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210 along the longitudinal direction X and the short direction Y.

[0035] The positive terminal 310 is formed of, for example, aluminum or an aluminum alloy.

[0036] (Configuration of negative electrode terminal 320 (electrode terminal)) The negative electrode terminal 320 corresponds to the electrode terminal. As shown in Figure 4, the negative electrode terminal 320 is connected to the negative electrode current collector plate 220. As shown in Figure 3, the negative electrode terminal 320 is provided on the negative electrode side gasket 620. As shown in Figures 3 and 9, the negative electrode terminal 320 includes a main body portion 321, an insertion portion 322, and a joint portion 323.

[0037] In the negative terminal 320, the main body 321 corresponds to the second part 320Q. The insertion part 322 and the connecting part 323 each correspond to the first part 320P. The main body 321 and the insertion part 322 and connecting part 323 are formed separately. The insertion part 322 and connecting part 323 are formed integrally.

[0038] In the negative terminal 320, the first part 320P and the second part 320Q are joined by friction welding. That is, the insertion part 322 and the main body part 321 are joined by friction welding. As shown in Figure 3, due to the friction welding of the insertion part 322 and the main body part 321, a portion of the upper surface 320a and outer peripheral surface 320b of the insertion part 322 is inserted into the lower surface 320c of the main body part 321, forming a recess 320d in the main body part 321. That is, due to the friction welding of the insertion part 322 and the main body part 321, a portion of the insertion part 322 penetrates the main body part 321, forming the recess 320d. As shown in Figure 3, due to the friction welding of the insertion part 322 and the main body part 321, a machined portion 320f (protrusion) is formed on the main body part 321 so as to surround the outer peripheral surface 320b of the insertion part 322 in an annular shape. As will be described later, due to frictional pressure contact between the insertion portion 322 and the main body portion 321, a raised portion 320e that surrounds the outer peripheral surface 320b of the insertion portion 322 in an annular shape is machined off on the main body portion 321, forming a machined portion 320f.

[0039] As shown in Figure 9, the main body portion 321 is formed in a rectangular shape. As shown in Figure 3, the main body portion 321 is provided on the base portion 621 of the negative electrode side gasket 620. As shown in Figure 3, the main body portion 321 is exposed to the outside of the lid 420. The outside of the lid 420 corresponds to the outside of the battery 1. The main body portion 321 is connected to a busbar or electrical equipment. A busbar is a busbar that electrically connects two batteries 1 together. Electrical equipment includes terminals and end busbars that electrically connect the battery 1 to external equipment. External equipment is, for example, equipment installed in an electric vehicle. As shown in Figure 3, the main body portion 321 includes a machined portion 320f that protrudes toward the negative electrode side gasket 620 at the joint portion with the insertion portion 322. The joint portion between the main body portion 321 and the insertion portion 322 is the portion where the recess portion 320d of the main body portion 321 and the upper surface 320a of the insertion portion 322 are in contact. The machined portion 320f surrounds the outer circumferential surface 320b of the insertion portion 322 in an annular shape along the height direction Z. The machined portion 320f is in contact with the negative electrode side gasket 620. The machined portion 320f compresses the cylindrical portion 622 of the negative electrode side gasket 620 downwards in the height direction Z as shown in Figure 3.

[0040] The insertion portion 322 is formed in a cylindrical shape, as shown in Figure 9. The insertion portion 322 is joined to the main body portion 321 by friction welding. The insertion portion 322 extends downward from the main body portion 321 in Figures 3 and 9. The insertion portion 322 is inserted into the negative electrode side insertion hole 420b of the lid 420, as shown in Figure 3. The insertion portion 322 is inserted into the cylindrical portion 622 of the negative electrode side gasket 620. The insertion portion 322 faces the base portion 621 and the cylindrical portion 622 of the negative electrode side gasket 620 along the longitudinal direction X and the short direction Y.

[0041] The joint portion 323 is formed in a cylindrical shape, as shown in Figure 3. The joint portion 323 is connected to the insertion portion 322. The joint portion 323 extends downward from the outer circumference of the insertion portion 322 in Figures 3 and 9. The joint portion 323 is inserted into the negative electrode side insertion hole 420b of the cover 420, as shown in Figure 3. The joint portion 323 is opposed to the insertion hole 221a of the base portion 221 of the negative electrode current collector plate 220 along the longitudinal direction X and the transverse direction Y. The tip of the joint portion 323 protrudes downward from the insertion hole 221a of the base portion 221 of the negative electrode current collector plate 220, as shown in Figure 3. The tip of the joint portion 323 is spread outward in the radial direction, as shown in Figure 3, and crimped to the bottom surface of the base portion 221. The tip of the joint portion 323 is welded to the base portion 221. The joint 323 is indirectly joined to the charge / discharge element 100 via the negative electrode current collector plate 220. The joint 323 may also be directly joined to the charge / discharge element 100 after its shape has been modified.

[0042] The boundary between the joint portion 323 and the insertion portion 322 in the height direction Z is not limited to the configuration shown in Figure 3. A portion of the joint portion 323 may be configured to face the cylindrical portion 622 of the negative electrode gasket 620 along the longitudinal direction X and the short direction Y. A portion of the insertion portion 322 may be configured to face the insertion hole 221a of the base portion 221 of the negative electrode current collector plate 220 along the longitudinal direction X and the short direction Y.

[0043] In the negative terminal 320, the main body 321 has lower rigidity than the insertion portion 322 and the joint portion 323. That is, the main body 321 is made of a different material than the insertion portion 322 and the joint portion 323. The main body 321 is formed of a different material than the insertion portion 322 and the joint portion 323. The insertion portion 322 and the joint portion 323 contain copper or a copper alloy. For the copper alloy, for example, one of the 1000 series, 2000 series, 3000 series, 4000 series, 5000 series, 6000 series, or 7000 series alloys can be used. For the tempering of the copper alloy, for example, a material treated with one of the following treatments may be used: F, O, 1 / 4H, 1 / 2H, 3 / 4H, H, EH, or SH. The main body 321 contains aluminum or an aluminum alloy. Aluminum has lower hardness than copper. For example, aluminum alloys from the 1000, 2000, 3000, 4000, 5000, 6000, 7000, or 8000 series may be used. For the tempering of the aluminum alloy, materials treated with, for example, F, O, H, W, or T may be used.

[0044] The outer casing 400 houses the charge / discharge element 100, etc. The outer casing 400 shown in Figures 1 to 4 and Figures 7 to 10 includes a container 410, a lid 420, a detachable valve 430, and a sealing plug 440.

[0045] The container 410 houses the charge / discharge unit 100, etc. The container 410 is made of a rectangular metal can. The container 410 includes an opening 410a that opens along the longitudinal direction and a housing section 410b that is connected to the opening 410a. The container 410 is made of, for example, aluminum or an aluminum alloy.

[0046] The lid 420 seals the opening 410a of the container 410. The container 410 is formed from a long, plate-shaped metal sheet. As shown in Figure 7, the lid 420 has a positive electrode insertion hole 420a, which is a circular through-hole, at one end in the longitudinal direction X. The insertion portion 312 of the positive electrode terminal 310 and the cylindrical portion 612 of the positive electrode gasket 610 are inserted into the positive electrode insertion hole 420a. As shown in Figure 9, the lid 420 has a negative electrode insertion hole 420b, which is a circular through-hole, at the other end in the longitudinal direction X. The insertion portion 322 of the negative electrode terminal 320 and the cylindrical portion 622 of the negative electrode gasket 620 are inserted into the negative electrode insertion hole 420b. Between the positive electrode insertion hole 420a and the negative electrode insertion hole 420b, the lid 420 has a liquid injection insertion hole 420c, which is a circular through-hole. The cylindrical portion 440b of the sealing plug 440 is inserted into the injection hole 420c for liquid injection. The lid 420 is welded to the container 410. The lid 420 is made of, for example, aluminum or an aluminum alloy.

[0047] The cleavage valve 430 is provided on the lid 420, as shown in Figure 8. When the internal pressure of the battery 1 reaches a predetermined value, the cleavage valve 430 cleaves outward from the battery, reducing the internal pressure of the battery 1 to atmospheric pressure. The cleavage valve 430 is formed, for example, in an elliptical shape. The cleavage valve 430 is formed to be thinner than the lid 420. The cleavage valve 430 has a groove formed therein that serves as a reference for cleavage. The cleavage valve 430 is formed integrally with the lid 420. The cleavage valve 430 may be formed separately from the lid 420 and then welded in an annular manner to a through hole provided in the lid 420.

[0048] The sealing plug 440 seals the liquid injection hole 420c of the lid 420 shown in Figure 8. The sealing plug 440 is formed in a cylindrical shape. As shown in Figure 8, the sealing plug 440 includes a head 440a with a relatively large outer diameter and a cylindrical portion 440b that is continuous with the head 440a and has a relatively smaller outer diameter. The head 440a of the sealing plug 440 is welded to the lid 420. The cylindrical portion 440b is inserted into the liquid injection hole 420c. The sealing plug 440 is formed of, for example, aluminum or an aluminum alloy.

[0049] The insulator 500 insulates the components of the battery 1 from the outer casing 400. The insulator 500 shown in Figures 2 to 4, 7 and 9 includes an insulating cover 510, a positive electrode side insulating plate 520, and a negative electrode side insulating plate 530.

[0050] The insulating cover 510 covers the charge / discharge unit 100 shown in Figure 4. The insulating cover 510 exposes the upper portion of the charge / discharge unit 100 shown in Figure 4 to the outside. The insulating cover 510 covers the portion of the charge / discharge unit 100 excluding the upper portion shown in Figure 4. The insulating cover 510 is formed, for example, in a pentahedral shape and is constructed by folding into a box shape. The insulating cover 510 is made of, for example, polypropylene.

[0051] As shown in Figure 2, the positive electrode side insulating plate 520 insulates the positive electrode current collector plate 210 from the cover 420. As shown in Figures 2 and 7, the positive electrode side insulating plate 520 includes a rectangular plate-shaped base portion 521 and an edge portion 522 that surrounds the base portion 521 in an annular shape and protrudes away from the cover 420. The base portion 211 of the positive electrode current collector plate 210 is housed in the space formed by the base portion 521 and the edge portion 522 of the positive electrode side insulating plate 520. A through hole 521a is formed in the base portion 521. The cylindrical portion 612 of the positive electrode side gasket 610 is inserted into the through hole 521a of the base portion 521. The positive electrode side insulating plate 520 is formed of, for example, an insulating resin.

[0052] As shown in Figure 3, the negative electrode side insulating plate 530 insulates the negative electrode current collector plate 220 from the cover 420. As shown in Figures 3 and 9, the negative electrode side insulating plate 530 includes a rectangular plate-shaped base portion 531 and an edge portion 532 that surrounds the base portion 531 in an annular shape and protrudes away from the cover 420. The base portion 221 of the negative electrode current collector plate 220 is housed in the space formed by the base portion 531 and the edge portion 532 of the negative electrode side insulating plate 530. A through hole 531a is formed in the base portion 531. The cylindrical portion 622 of the negative electrode side gasket 620 is inserted into the through hole 531a of the base portion 531. The negative electrode side insulating plate 530 is formed of, for example, an insulating resin.

[0053] The sealing body 600 seals the components of the battery 1 and the outer casing 400. The components of the battery 1 are, for example, the negative electrode terminal 320. The sealing body 600 shown in Figures 1 to 4, 7 and 9 includes a positive electrode side gasket 610 and a negative electrode side gasket 620.

[0054] The positive electrode gasket 610 seals the positive electrode terminal 310 and the lid 420 by being compressed by the positive electrode terminal 310 and the lid 420. As shown in Figure 7, the positive electrode gasket 610 includes a rectangular plate-shaped base portion 611 and a cylindrical tube portion 612 that protrudes inward from the central part of the base portion 611 into the battery 1. The positive electrode gasket 610 also includes an edge portion 613 that surrounds the base portion 611 in an annular shape and protrudes outward from the battery 1. A through hole is formed in the base portion 611. The main body portion 311 of the positive electrode terminal 310 is housed in the space formed by the base portion 611 and the edge portion 613 of the positive electrode gasket 610. As shown in Figure 2, the tube portion 612 is inserted into the positive electrode insertion hole 420a of the lid 420. As shown in Figure 2, the insertion portion 312 for the positive electrode terminal 310 is inserted into the through hole of the base portion 611 and the inner circumferential surface of the cylindrical portion 612. The positive electrode side gasket 610 is formed of, for example, an insulating resin that has insulating and elastic properties.

[0055] (Configuration of the negative electrode gasket 620 (sealing body)) The negative electrode gasket 620 corresponds to a sealant. The negative electrode gasket 620 is provided on the outer casing 400. The negative electrode gasket 620 seals the negative electrode terminal 320 and the cover 420 by being compressed by the negative electrode terminal 320 and the cover 420. The external shape of the negative electrode gasket 620 is the same as that of the positive electrode gasket 610. As shown in Figure 9, the negative electrode gasket 620 includes a rectangular plate-shaped base portion 621 and a cylindrical tube portion 622 that protrudes inward from the central part of the base portion 621 into the battery 1. The negative electrode gasket 620 also includes an annular edge portion 623 that surrounds the base portion 621 and protrudes outward from the battery 1. A through hole is formed in the base portion 621. The main body 321 of the negative electrode terminal 320 is housed in the space formed by the base 621 and edge 623 of the negative electrode side gasket 620. The cylindrical portion 622 is inserted into the negative electrode side insertion hole 420b of the lid 420, as shown in Figure 3. The insertion portion 322 of the negative electrode terminal 320 is inserted into the through hole of the base 621 and the inner circumferential surface of the cylindrical portion 622, as shown in Figure 3. The negative electrode side gasket 620 is formed of, for example, an insulating resin that has insulating and elastic properties.

[0056] (Manufacturing method for negative electrode terminal 320) The manufacturing method for the negative electrode terminal 320 will be explained with reference to Figures 10 to 13.

[0057] Figure 10 is a cross-sectional side view showing the first part 320P and the second part 320Q of the negative electrode terminal 320 of battery 1 in Figure 1, in a state where they are separated, relating to the manufacturing method of the negative electrode terminal 320. Figure 11 is a cross-sectional side view showing the first part 320P and the second part 320Q of the negative electrode terminal 320 in contact, continuing from Figure 10. Figure 12 is a cross-sectional side view showing the state where the first part 320P and the second part 320Q of the negative electrode terminal 320 are friction-pressed together, resulting in the formation of a recess 320d and a raised part 320e, continuing from Figure 11. Figure 13 is a cross-sectional side view showing the state where the raised part 320e of the negative electrode terminal 320 is machined to form a machined molded part 320f, continuing from Figure 12.

[0058] As shown in Figure 10, in the manufacturing method of the negative electrode terminal 320, an insertion portion 322 and a joint portion 323 constituting the negative electrode terminal 320, and a main body portion 321 constituting the negative electrode terminal 320 are prepared. The insertion portion 322 is held by a holding mechanism (not shown) so as to be rotatable about the height direction Z as the central axis, and is also held so as to be movable along the height direction Z. The main body portion 321 is held in a fixed position by a holding mechanism (not shown).

[0059] As shown in Figure 11, in the manufacturing method of the negative electrode terminal 320, continuing from Figure 10, the insertion portion 322 is moved upward in the height direction Z and comes into contact with the main body portion 321. The upper surface 320a of the insertion portion 322 comes into contact with the lower surface 320c of the main body portion 321.

[0060] As shown in Figure 12, in the manufacturing method of the negative electrode terminal 320, following Figure 11, the insertion portion 322 and the main body portion 321 of the negative electrode terminal 320 are frictionally pressed together. The insertion portion 322 is rotated by a rotational force V while being pressed against the main body portion 321 by a pressing force W. The insertion portion 322 is pressed against the main body portion 321 while rotating at a relatively high speed, and the temperature of the joint portion between the insertion portion 322 and the main body portion 321 rises. That is, frictional heat is generated by rubbing the insertion portion 322 and the main body portion 321 together at high speed, softening the insertion portion 322 and the main body portion 321. The main body portion 321 softens more easily than the insertion portion 322. At the same time, the insertion portion 322 is pressed toward the main body portion 321. The main body portion 321 is more easily plastically deformed than the insertion portion 322.

[0061] As shown in Figure 12, a portion of the upper surface 320a and outer peripheral surface 320b of the insertion portion 322 is inserted into the lower surface 320c of the main body portion 321, forming a recess 320d in the main body portion 321. That is, a portion of the insertion portion 322 penetrates the main body portion 321 through frictional pressure contact between the insertion portion 322 and the main body portion 321, forming the recess 320d. A raised portion 320e is formed on the main body portion 321 so as to surround the outer peripheral surface 320b of the insertion portion 322 in an annular shape. Subsequently, the rotation of the insertion portion 322 is stopped relatively quickly. At the same time, the insertion portion 322 is pressed relatively strongly against the main body portion 321. That is, when the rotation of the insertion portion 322 is stopped, it is pressed relatively strongly against the main body portion 321. The temperature of the joint between the insertion portion 322 and the main body portion 321 decreases. As a result, the joint between the insertion portion 322 and the main body portion 321 is fixed. The shape of the raised portion 320e is nonlinear.

[0062] As shown in Figure 13, in the manufacturing method of the negative electrode terminal 320, following Figure 12, the raised portion 320e of the negative electrode terminal 320 is partially machined to form a machined portion 320f. The raised portion 320e is machined, for example, by an end mill to form the machined portion 320f. The outer periphery of the raised portion 320e consists of the lateral portion along the longitudinal direction X and the short direction Y, and the lower portion along the height direction. The shape of the machined portion 320f is, for example, rectangular.

[0063] The manufacturing method for the negative electrode terminal 320 is not limited to a configuration in which the insertion portion 322 is moved to contact the main body portion 321. The main body portion 321 may be moved to contact the insertion portion 322. The manufacturing method for the negative electrode terminal 320 is not limited to a configuration in which the insertion portion 322 is rotated and pressed against the main body portion 321 to friction-press the insertion portion 322 and the joint portion 323. The insertion portion 322 and the joint portion 323 may be friction-pressed by holding the insertion portion 322 and rotating the main body portion 321 while pressing it against the insertion portion 322. The insertion portion 322 and the joint portion 323 may be friction-pressed by rotating the main body portion 321 while rotating the main body portion 321 while pressing the insertion portion 322 against the main body portion 321.

[0064] (Effects of battery 1 and negative terminal 320) The effects of battery 1 and the negative terminal 320 will be explained with reference to Figures 3, 12, and 13.

[0065] (1) The insertion portion 322 (first portion 320P) and the main body portion 321 (second portion 320Q) are joined by friction welding. At the joint portion with the insertion portion 322, the main body portion 321 includes a machined portion 320f (projection) that surrounds the outer peripheral surface 320b of the insertion portion 322 in an annular shape and protrudes toward the negative electrode side gasket 620 (sealant). The machined portion 320f is in contact with the negative electrode side gasket 620. The projection may also be a raised portion 320e.

[0066] With this configuration, the negative electrode gasket 620 can be held in place by the machined portion 320f of the negative electrode terminal 320 formed by friction pressure welding. In other words, the movement of the negative electrode gasket 620 can be suppressed by the machined portion 320f. Therefore, the battery 1 can improve or maintain the sealing performance between the negative electrode terminal 320 and the lid 420. As a result, the battery 1 can use a negative electrode terminal 320 formed by friction pressure welding the insertion portion 322 and the main body portion 321, while improving or maintaining the sealing performance between the lid 420 and the negative electrode terminal 320 by the negative electrode gasket 620.

[0067] (9) In the negative terminal 320, the insertion portion 322 (first portion 320P) contains copper or a copper alloy. The main body portion 321 (second portion 320Q) contains aluminum or an aluminum alloy.

[0068] With a battery 1 configured in this way, the negative terminal 320 can be changed from, for example, copper to aluminum. Therefore, in a battery pack having multiple batteries 1, the negative terminal 320 of one battery 1 and the positive terminal 310 of another battery 1 can be connected by busbars made of aluminum. In this case, the positive terminal 310 is made of aluminum or an aluminum alloy. That is, the negative terminal 320 of one battery 1 and the positive terminal 310 of another battery 1 can be connected by an aluminum busbar.

[0069] (Negative terminal 330 of modified example 1 of the first embodiment) Modification 1 of the first embodiment corresponds to a specific example of the electrode terminals of the first battery described in the means for solving the problem.

[0070] (Configuration of negative terminal 330) The configuration of the negative terminal 330 will be explained with reference to Figure 14.

[0071] Figure 14 is a cross-sectional side view showing the state in which a triangular cut-formed portion 330f is formed in the negative electrode terminal 330 of the modified example 1 of the first embodiment.

[0072] The machined portion 330f of the main body portion 331 (second portion 330Q) is formed by cutting the raised portion 320e shown in Figure 12 in an inclined shape. The machined portion 330f is formed in a triangular shape as shown in Figure 14. The machined portion 330f is in contact with the outer circumferential surface 320b of the insertion portion 322. The machined portion 330f is inclined with respect to the lower surface 320c of the main body portion 331 and the outer circumferential surface 320b of the insertion portion 322. In the machined portion 330f, the inclination angle with respect to the lower surface 320c of the main body portion 331 is, for example, 45 degrees. In the machined portion 330f, the inclination angle with respect to the lower surface 320c of the main body portion 331 is not limited.

[0073] (Effects of battery 1 and negative terminal 330) The effects of battery 1 and the negative terminal 330 will be explained with reference to Figure 14.

[0074] With this configuration of the battery 1, the machined and molded portion 330f, which is inclined with respect to the main body portion 331 and the insertion portion 322, can hold or press the negative electrode gasket 620 from the side of the main body portion 331 and the insertion portion 322. That is, the machined and molded portion 330f can hold or press the negative electrode gasket 620 from the side of the battery 1 in the height direction Z and longitudinal direction X, and from the side of the battery 1 in the height direction Z and the short direction Y. The longitudinal direction X and the short direction Y correspond to directions that intersect the height direction Z. As a result, the machined and molded portion 330f can suppress the movement of the negative electrode gasket 620 or partially compress and pressurize the negative electrode gasket 620 from the direction of the battery 1 in the height direction Z and the direction intersecting the height direction Z. Therefore, the battery 1 can maintain or improve the sealing performance between the negative electrode terminal 330 and the lid 420.

[0075] (Negative terminal 340 of modified example 2 of the first embodiment) Modification 2 of the first embodiment corresponds to a specific example of the electrode terminals of the first battery described in the means for solving the problem.

[0076] (Configuration of negative terminal 340) The configuration of the negative terminal 340 will be explained with reference to Figure 15.

[0077] Figure 15 is a cross-sectional side view of the negative electrode terminal 340 of the modified example 2 of the first embodiment, showing a state in which a relatively long rectangular cut-formed portion 340f is formed along the longitudinal direction X and the short direction Y.

[0078] The machined portion 340f of the main body portion 341 (second portion 340Q) is formed by cutting the raised portion 320e shown in Figure 12 into a rectangular shape. As shown in Figure 15, the machined portion 340f is formed in a rectangular shape that is relatively longer in the longitudinal direction X and the transverse direction Y compared to the height direction Z. The machined portion 340f is in contact with the outer peripheral surface 320b of the insertion portion 322. The surface area of ​​the machined portion 340f is larger in the portion facing the negative electrode side gasket 620 in the direction intersecting the height direction Z than in the portion facing the negative electrode side gasket 620 in the height direction Z. The direction intersecting the height direction Z corresponds to the longitudinal direction X and the transverse direction Y. The machined portion 340f may also be in a trapezoidal shape inclined with respect to the lower surface 320c of the main body portion 341 or the outer peripheral surface 320b of the insertion portion 322.

[0079] (Effect of battery 1 and negative terminal 340) The effects of battery 1 and the negative terminal 340 will be explained with reference to Figure 15.

[0080] With a battery 1 having this configuration, the machined portion 340f can hold the negative electrode gasket 620 over a relatively wide area, particularly in the portion of the battery 1 facing the height direction Z, i.e., in the portion along the longitudinal direction X and the short direction Y.

[0081] (Negative terminal 350 of modified example 3 of the first embodiment) Modification 3 of the first embodiment corresponds to a specific example of the electrode terminals of the first battery described in the means for solving the problem.

[0082] (Configuration of negative terminal 350) The configuration of the negative terminal 350 will be explained with reference to Figure 16.

[0083] Figure 16 is a cross-sectional side view of the negative electrode terminal 350 of the modified example 3 of the first embodiment, showing a state in which a relatively long rectangular cut-formed portion 350f is formed along the height direction Z.

[0084] The machined portion 350f of the main body portion 351 (second portion 350Q) is formed by cutting the raised portion 320e shown in Figure 12 into a rectangular shape. As shown in Figure 16, the machined portion 350f is formed in a rectangular shape that is relatively long along the height direction Z compared to the longitudinal direction X and the short direction Y. The machined portion 350f is in contact with the outer peripheral surface 320b of the insertion portion 322. The surface area of ​​the machined portion 350f is larger for the portion facing the negative electrode side gasket 620 along the direction intersecting the height direction Z than for the portion facing the negative electrode side gasket 620 along the direction intersecting the height direction Z. The direction intersecting the height direction Z corresponds to the longitudinal direction X and the short direction Y. The machined portion 350f may also be in a trapezoidal shape inclined with respect to the lower surface 320c of the main body portion 351 or the outer peripheral surface 320b of the insertion portion 322.

[0085] (Effect of battery 1 and negative terminal 350) The effects of battery 1 and the negative terminal 350 will be explained with reference to Figure 16.

[0086] With a battery 1 having this configuration, the machined portion 350f can hold the negative electrode gasket 620 over a relatively wide area, particularly in the portion of the battery 1 along the height direction Z.

[0087] (Negative terminal 360 of modified example 4 of the first embodiment) Modification 4 of the first embodiment corresponds to a specific example of the electrode terminals of the second battery described in the means for solving the problem.

[0088] (Configuration of the 360 ​​negative terminals) The configuration of the negative terminal 360 will be explained with reference to Figure 17.

[0089] Figure 17 is a cross-sectional side view of the negative electrode terminal 360 of the modified example 4 of the first embodiment, showing a state in which the raised portion has been removed and no cut-formed portion has been formed, and a flat portion 360r has been formed.

[0090] The main body portion 361 (second portion) includes a machined flat portion 360r in the portion adjacent to the joint with the insertion portion 322 (first portion). The flat portion 360r is formed in the manufacturing method of the negative electrode terminal 320 shown in Figure 13, by removing all of the raised portion 320e of the negative electrode terminal 320 by cutting. The flat portion 360r is continuous with the lower surface 360c of the main body portion 361 along the longitudinal direction X and the short direction Y. The flat portion 360r constitutes a part of the lower surface 360c. Cutting marks made by an end mill or the like are formed on the flat portion 360r. That is, the flat portion 360r is formed by a ring-shaped cutting mark on the lower surface 360c of the main body portion 361 so as to surround the outer peripheral surface 320b of the insertion portion 322.

[0091] (Effect of battery 1 and negative terminal 360) The effects of battery 1 and the negative terminal 360 will be explained with reference to Figure 17.

[0092] (2) The main body portion 361 (second portion) includes a machined flat portion 360r in the portion adjacent to the joint portion with the insertion portion 322 (first portion).

[0093] With this configuration, the negative electrode gasket 620 can be held in place by the flat portion 360r of the negative electrode terminal 360, which is formed by cutting after friction welding. In other words, the movement of the negative electrode gasket 620 can be suppressed by the flat portion 360r. Therefore, the battery 1 can maintain sealing between the negative electrode terminal 360 and the lid 420. As a result, the battery 1 can use a negative electrode terminal 360 formed by friction welding the insertion portion 322 and the main body portion 361, while maintaining sealing between the lid 420 and the negative electrode terminal 360 by the negative electrode gasket 620.

[0094] (Negative terminal 370 of modified example 5 of the first embodiment) Modification 5 of the first embodiment corresponds to a specific example of the electrode terminals of the first battery described in the means for solving the problem.

[0095] (Configuration of negative terminal 370) The configuration of the negative terminal 370 will be explained with reference to Figures 18 and 19.

[0096] Figure 18 is a cross-sectional side view of the negative electrode terminal 370 of Modification 5 of the first embodiment, showing its state before friction welding. Figure 19 is a cross-sectional side view of the negative electrode terminal 370 of Modification 5 of the first embodiment, showing its state after friction welding.

[0097] The negative terminal 370 includes a main body portion 371 (second portion 370Q), an insertion portion 372 (first portion 370P), and a connecting portion 323 (first portion 370P). As shown in Figure 18, the insertion portion 372 includes a bevel 370g at the boundary between the upper surface 370a and the outer peripheral surface 370b. The bevel 370g is inclined with respect to the upper surface 370a and the outer peripheral surface 370b of the insertion portion 372, respectively. The bevel 370g is formed in an annular shape with respect to the insertion portion 372, with the height direction Z as its central axis.

[0098] In the negative terminal 370, the insertion portion 372 and the main body portion 371 are joined by friction welding, as shown in Figure 19. Due to the friction welding of the insertion portion 372 and the main body portion 371, the upper surface 370a and the inclined surface 370g of the insertion portion 372 are inserted into the lower surface 320c of the main body portion 371, forming a recess 370d in the main body portion 371. That is, due to the friction welding of the insertion portion 372 and the main body portion 371, a part of the insertion portion 372 penetrates into the main body portion 371, forming the recess 370d. As shown in Figure 19, due to the friction welding of the insertion portion 372 and the main body portion 371, a raised portion 370e (projection) is formed on the main body portion 371 so as to surround the outer peripheral surface 370b of the insertion portion 372 in an annular manner. The raised portion 370e may be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0099] (Effects of battery 1 and negative terminal 370) The effects of battery 1 and the negative terminal 370 will be explained with reference to Figure 19.

[0100] With a battery 1 having this configuration, the size of the raised portion 370e can be determined by the slope 370g of the insertion portion 372. In other words, the larger the shape of the slope 370g of the insertion portion 372, the smaller the size of the raised portion 370e can be made relatively.

[0101] (Battery 2 of the second embodiment) The battery 2 of the second embodiment corresponds to a specific example of the third battery described in the means for solving the problem. The battery 2 shown in Figure 20 has a negative terminal 380.

[0102] (Configuration of the negative terminal 380) The configuration of the negative terminal 380 will be explained with reference to Figure 20.

[0103] Figure 20 is a cross-sectional side view showing the components around the negative terminal 380 of the battery 2 in the second embodiment.

[0104] The negative terminal 380 includes a first part 380P and a second part 320Q. The first part 380P includes an insertion portion 382 and a joint portion 383. The insertion portion 382 and the joint portion 383 are integrally formed along the height direction Z.

[0105] As shown in Figure 20, the insertion portion 382 includes a first shaft portion 380i and a second shaft portion 380j.

[0106] The first shaft portion 380i is formed in a cylindrical shape along the height direction Z. The first shaft portion 380i is joined to the main body portion 321 by friction welding. The first shaft portion 380i is the portion where the first outer peripheral surface 380b1 exists. The shape of the first outer peripheral surface 380b1 of the first shaft portion 380i along the longitudinal direction X and the transverse direction Y is larger than the outer peripheral surface 320b of the insertion portion 322 of the negative electrode terminal 320. The positional relationship between the first shaft portion 380i and the main body portion 321 along the longitudinal direction X and the transverse direction Y does not coincide. That is, the central axis S2 of the first shaft portion 380i does not coincide with the central axis S1 of the main body portion 321. The central axis S2 is the center of the plane formed by the longitudinal direction X and the transverse direction Y of the first shaft portion 380i. The central axis S1 is the center of the plane formed by the longitudinal direction X and the transverse direction Y of the main body portion 321. Due to frictional pressure contact between the first shaft portion 380i and the main body portion 321, a raised portion 320e is generated on the main body portion 321, which is raised in an annular manner and surrounds the outer circumferential surface 380b of the first shaft portion 380i. The raised portion 320e may be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0107] As shown in Figure 20, the second shaft portion 380j is connected to the first shaft portion 380i along the height direction Z. The second shaft portion 380j is formed in a cylindrical shape along the height direction Z. The second shaft portion 380j is the portion where the second outer peripheral surface 380b2 exists. The shape of the second shaft portion 380j along the longitudinal direction X and the transverse direction Y is smaller than that of the first shaft portion 380i. The shape of the second outer peripheral surface 380b2 of the second shaft portion 380j of the negative electrode terminal 380 along the longitudinal direction X and the transverse direction Y is the same as that of the outer peripheral surface 320b of the insertion portion 322 of the negative electrode terminal 320. The second shaft portion 380j and the main body portion 321 have the same positional relationship along the longitudinal direction X and the transverse direction Y. That is, the central axis S1 of the second shaft portion 380j coincides with the central axis S1 of the main body portion 321. The central axis S1 is the center of the plane formed by the longitudinal direction X and the transverse direction Y of the second shaft portion 380j, and is also the center of the plane formed by the longitudinal direction X and the transverse direction Y of the main body portion 321. The second outer peripheral surface 380b2 of the insertion portion 382 faces the base portion 621 and the cylindrical portion 622 of the negative electrode side gasket 620 along the longitudinal direction X and the transverse direction Y.

[0108] As shown in Figures 20 and 3, the shape of the second outer surface 380b2 of the joint 383 along the longitudinal direction X and the transverse direction Y is the same as that of the outer surface 320b of the joint 323 of the negative electrode terminal 320. The central axis S2 of the inner surface 380h of the joint 383 along the height direction Z does not coincide with the central axis S2 of the second outer surface 380b2 of the joint 383 along the height direction Z, as shown in Figure 20. Therefore, the shape of the joint 383 differs along the circumferential direction with the height direction Z as the central axis. That is, as shown in Figure 20, the thickness of the inner surface 380h and the second outer surface 380b2 of the joint 383 differs along the circumferential direction. The second outer surface 380b2 of the joint 383 faces the insertion hole 221a of the base 221 of the negative electrode current collector plate 220 along the longitudinal direction X and the transverse direction Y.

[0109] (Manufacturing method for negative electrode terminal 380) The manufacturing method for the negative electrode terminal 380 will be explained with reference to Figures 21 to 26.

[0110] Figure 21 is a cross-sectional side view showing the manufacturing method of the negative electrode terminal 380 of battery 2 in Figure 20, where the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q of the negative electrode terminal 380 are relatively aligned and the first part 380P and the second part 320Q are in contact. Figure 22 is a bottom view of the negative electrode terminal 380 of Figure 21, without the cross-sectional view. Figure 23 is a cross-sectional side view showing the state after the first part 380P and the second part 320Q of the negative electrode terminal 380 have been friction-pressed together, but the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q are no longer relatively aligned. Figure 24 is a bottom view of the negative electrode terminal 380 of Figure 23, without the cross-sectional view. Figure 25 is a cross-sectional side view showing the state in which the outer circumferential surface 380b of the first part 380P of the negative electrode terminal 380 has been machined so that the central axis S2 of the first part 380P and the central axis S1 of the second part 320Q are relatively aligned, following on from Figures 23 and 24. Figure 26 is a bottom view of the negative electrode terminal 380 of Figure 25, without the cross-sectional view.

[0111] As shown in Figures 21 and 22, in the manufacturing method of the negative electrode terminal 380, the insertion portion 382 is moved along the height direction Z and comes into contact with the main body portion 321. The upper surface 380a of the insertion portion 382 comes into contact with the lower surface 320c of the main body portion 321. The central axis S2 of the insertion portion 382 of the negative electrode terminal 380 and the central axis S1 of the main body portion 321 are relatively coincidental, as shown in Figures 21 and 22.

[0112] As shown in Figures 23 and 24, in the manufacturing method of the negative electrode terminal 380, following Figures 21 and 22, the insertion portion 382 and the main body portion 321 of the negative electrode terminal 320 are frictionally pressed together. The insertion portion 382 is rotated by a rotational force V while being pressed against the main body portion 321 by a pressing force W. The upper surface 380a and a portion of the outer peripheral surface 380b of the insertion portion 382 are inserted into the lower surface 320c of the main body portion 321, forming a recess 320d in the main body portion 321. A raised portion 320e is formed on the main body portion 321 so as to surround the outer peripheral surface 380b of the insertion portion 382 in an annular shape. The central axis S2 of the insertion portion 382 and the central axis S1 of the main body portion 321 do not coincide relatively. The reason is that when the insertion portion 382 and the main body portion 321 were frictionally pressed together, the insertion portion 382 shifted relative to the main body portion 321 along the longitudinal direction X and the transverse direction Y.

[0113] As shown in Figures 25 and 26, in the manufacturing method of the negative electrode terminal 380, following Figures 23 and 24, the outer circumferential surface 380b of the insertion portion 382 is cut to form a second outer circumferential surface 380b2. The second outer circumferential surface 380b2 is shaped by cutting the outer circumferential surface 380b, except for the vicinity of the main body portion 321. The second outer circumferential surface 380b2 is shaped by cutting the outer circumferential surface 380b with respect to the central axis S1. In the insertion portion 382, ​​the portion where the second outer circumferential surface 380b2 is formed corresponds to the second shaft portion 380j. In the outer circumferential surface 380b of the insertion portion 382, ​​the portion near the main body portion 321 is referred to as the first outer circumferential surface 380b1. That is, in the outer circumferential surface 380b of the insertion portion 382, ​​the portion where the second outer circumferential surface 380b2 was not formed is referred to as the first outer circumferential surface 380b1. In the insertion portion 382, ​​the portion where the first outer peripheral surface 380b1 is formed corresponds to the first shaft portion 380i.

[0114] (Effects of battery 2 and negative terminal 380) The effects of battery 2 and the negative terminal 380 will be explained with reference to Figures 20, 25, and 26.

[0115] (3) The insertion portion 382 (first portion 380P) includes a first shaft portion 380i joined to the main body portion 321 (second portion 320Q), and a second shaft portion 380j connected to the first shaft portion 380i, the shape of which is smaller than that of the first shaft portion 380i along the direction intersecting the stacking direction with the first shaft portion 380i.

[0116] With a battery 2 having this configuration, the relative misalignment between the insertion portion 382 of the negative electrode terminal 380 and the main body portion 321, which are joined by frictional pressure contact, can be resolved by cutting the outer circumferential surface 380b of the insertion portion 382 to form the second shaft portion 380j.

[0117] (Battery 3 in Modification 1 of the Second Embodiment) The battery 3 in the modified example 1 of the second embodiment corresponds to a specific example of the fourth battery described in the means for solving the problem. The battery 3 shown in Figure 27 has a negative electrode terminal 390 and a negative electrode side gasket 630.

[0118] (Configuration of negative terminal 390) The configuration of the negative terminal 390 will be explained with reference to Figure 27.

[0119] Figure 27 is a cross-sectional side view showing the components around the negative terminal 390 of the battery 3 in the modified example 1 of the second embodiment.

[0120] The negative electrode gasket 630 (sealant) includes a base portion 621 and a cylindrical portion 622, as shown in Figure 27. The negative electrode gasket 630 does not include an edge portion 623. The negative electrode gasket 630 may include an edge portion that surrounds the base portion 621 in an annular shape and protrudes outward from the battery 3. In that case, the edge portion is spaced apart from the main body portion 321 in the longitudinal direction X and the short direction Y.

[0121] As shown in Figure 27, the negative terminal 390 includes an insertion portion 322 (first portion 320P) and a connecting portion 323 (first portion 320P), and a main body portion 321 (second portion 320Q). The central axis S2 of the insertion portion 322 and the central axis S2 of the connecting portion 323 coincide. The central axis S2 of the insertion portion 322 and the central axis S1 of the main body portion 321 do not coincide relatively.

[0122] The main body portion 321, in the portion exposed outside the lid 420, is in contact with the base portion 621 of the negative electrode side gasket 630 along the stacking direction with the insertion portion 322. The stacking direction corresponds to the height direction Z. The main body portion 321, in the portion exposed outside the lid 420, is not in contact with the negative electrode side gasket 630 in the direction intersecting the stacking direction. The directions intersecting the stacking direction correspond to the longitudinal direction X and the transverse direction Y.

[0123] (Manufacturing method for negative electrode terminal 390) The manufacturing method for the negative electrode terminal 390 will be explained with reference to Figures 28 to 31.

[0124] Figure 28 is a cross-sectional side view showing the manufacturing method of the negative electrode terminal 390 of battery 3 in Figure 27, where the central axis S2 of the first part 320P and the central axis S1 of the second part 320Q of the negative electrode terminal 390 are relatively aligned and the first part 320P and the second part 320Q are in contact. Figure 29 is a bottom view of the negative electrode terminal 390 of Figure 28, without the cross-sectional view. Figure 30 is a cross-sectional side view showing the state after the first part 320P and the second part 320Q of the negative electrode terminal 390 have been friction-pressed together, but the central axis S2 of the first part 320P and the central axis S1 of the second part 320Q are not relatively aligned. Figure 31 is a bottom view of the negative electrode terminal 390 of Figure 30, without the cross-sectional view.

[0125] As shown in Figures 28 and 29, in the manufacturing method of the negative electrode terminal 390, the insertion portion 322 is moved along the height direction Z and comes into contact with the main body portion 321. The upper surface 320a of the insertion portion 322 comes into contact with the lower surface 320c of the main body portion 321. The central axis S2 of the insertion portion 322 of the negative electrode terminal 390 and the central axis S1 of the main body portion 321 are relatively coincidental.

[0126] As shown in Figures 30 and 31, in the manufacturing method of the negative electrode terminal 390, following Figures 28 and 29, the insertion portion 322 and the main body portion 321 of the negative electrode terminal 390 are frictionally pressed together. The insertion portion 322 is rotated by a rotational force V while being pressed against the main body portion 321 by a pressing force W. The upper surface 320a and a portion of the outer peripheral surface 320b of the insertion portion 322 are inserted into the lower surface 320c of the main body portion 321, forming a recess 320d in the main body portion 321. A raised portion 320e is formed on the main body portion 321 so as to surround the outer peripheral surface 320b of the insertion portion 322 in an annular shape. The central axis S2 of the insertion portion 322 and the central axis S1 of the main body portion 321 do not coincide relatively. The reason is that when the insertion portion 322 and the main body portion 321 were frictionally pressed together, the insertion portion 322 shifted relative to the main body portion 321 along the longitudinal direction X and the transverse direction Y.

[0127] (Effects of battery 3 and negative terminal 390) The effects of battery 3 and negative terminal 390 will be explained with reference to Figures 27, 30, and 31.

[0128] (4) The main body portion 321 (second portion) of the negative electrode terminal 390 is in contact with the negative electrode side gasket 630 (outer shell) in the portion exposed outside the negative electrode side gasket 630 (outer shell) along the stacking direction with the insertion portion 322, but is not in contact with the negative electrode side gasket 630 in the direction intersecting the stacking direction.

[0129] With this configuration of battery 3, the relative misalignment between the insertion portion 322 of the negative electrode terminal 390 and the main body portion 321, which are joined by frictional pressure welding, can be resolved by ensuring that the main body portion 321 and the negative electrode side gasket 630 do not interfere with each other along the longitudinal direction X and the short direction Y.

[0130] (Battery 4 of the third embodiment) The battery 4 of the third embodiment corresponds to a specific example of the fifth battery described in the means for solving the problem. The battery 4 shown in Figure 32 has a negative terminal 710.

[0131] (Configuration of negative terminal 710) The configuration of the negative terminal 710 will be explained with reference to Figure 32.

[0132] Figure 32 is a cross-sectional side view showing the components around the negative terminal 710 of the battery 4 in the third embodiment.

[0133] The negative terminal 710 includes a first part 710P and a second part 710Q, as shown in Figure 32.

[0134] Part 1, 710P, includes an insertion portion 712 and a joint portion 323, as shown in Figure 32. The insertion portion 712 has a relatively shorter length along the height direction Z compared to the insertion portion 322 of the negative terminal 320.

[0135] Part 2 710Q includes a main body 711, as shown in Figure 32. The main body 711 includes a protrusion 710k that partially projects toward Part 1 710P. The protrusion 710k projects downward in the height direction Z from the main body 711, as shown in Figure 32.

[0136] The protrusion 710k is joined to the insertion portion 712 by friction welding. The bottom surface 710m of the protrusion 710k and the top surface 710a of the insertion portion 712 are joined. The protrusion 710k includes a raised portion 710e (projection). The raised portion 710e is raised in an annular manner, surrounding the outer circumferential surface 710n of the protrusion 710k, due to the friction welding between the insertion portion 712 and the protrusion 710k. The raised portion 710e protrudes from the outer circumferential surface 710n of the protrusion 710k. The raised portion 710e protrudes toward the negative electrode gasket 620 in a direction intersecting the stacking direction of the first portion 710P and the second portion 710Q. The direction intersecting the stacking direction corresponds to the longitudinal direction X and the short direction Y intersecting the height direction Z. The raised portion 710e is in contact with the upper surface 710a of the insertion portion 712.

[0137] The raised portion 710e overlaps with the insertion portion 712 along the height direction Z. The raised portion 710e does not protrude from the insertion portion 712 along the longitudinal direction X and the transverse direction Y. That is, the raised portion 710e does not protrude radially outward from the outer peripheral surface 710b of the insertion portion 712 along the longitudinal direction X and the transverse direction Y. The raised portion 710e may be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0138] At the joint between the upper surface 710a of the insertion portion 712 and the bottom surface 710m of the protrusion 710k, the surface area of ​​the upper surface 710a is larger than the surface area of ​​the bottom surface 710m excluding the raised portion 710e. Furthermore, the surface area of ​​the upper surface 710a is larger than the surface area of ​​the bottom surface 710m including the raised portion 710e.

[0139] (Manufacturing method for negative electrode terminal 710) The manufacturing method for the negative electrode terminal 710 will be explained with reference to Figures 33 and 34.

[0140] Figure 33 is a cross-sectional side view showing the state in which the first part 710P and the second part 710Q of the negative electrode terminal 710 are in contact with each other, in relation to the manufacturing method of the negative electrode terminal 710 shown in Figure 32. Figure 34 is a cross-sectional side view showing the state in which the first part 710P and the second part 710Q of the negative electrode terminal 710 are friction-pressed together, resulting in the formation of a raised portion 710e, as shown in Figure 33.

[0141] As shown in Figure 33, in the manufacturing method of the negative electrode terminal 710, the insertion portion 712 is moved along the height direction Z and comes into contact with the protrusion 710k of the main body portion 711. The upper surface 710a of the insertion portion 712 comes into contact with the bottom surface 710m of the protrusion 710k.

[0142] As shown in Figure 34, in the manufacturing method of the negative electrode terminal 710, continuing from Figure 33, the insertion portion 712 of the negative electrode terminal 710 and the protrusion 710k of the main body portion 711 are frictionally pressed together. The insertion portion 712 is rotated by a rotational force V while being pressed against the main body portion 711 by a pressing force W. Due to the frictional pressure contact between the insertion portion 712 and the main body portion 711, the bottom surface 710m of the protrusion 710k moves toward the main body portion 711. A raised portion 710e is formed on the protrusion 710k so as to surround the outer peripheral surface 710n of the protrusion 710k in an annular shape. The raised portion 710e protrudes toward the negative electrode side gasket 620 in the longitudinal direction X and the short direction Y which intersect with the height direction Z. The raised portion 710e is in contact with the upper surface 710a of the insertion portion 712.

[0143] (Effects of battery 4 and negative terminal 710) The effects of battery 4 and the negative terminal 710 will be explained with reference to Figures 32 and 34.

[0144] (5) The main body portion 711 (second portion 710Q) includes a protrusion 710k that partially protrudes toward the insertion portion 712 (first portion 710P). The insertion portion 712 and the protrusion 710k are joined by friction welding. The protrusion 710k includes a raised portion 710e (projection) that protrudes toward the negative electrode side gasket 620 (sealant) in a direction intersecting the stacking direction of the insertion portion 712 and the main body portion 711. At the joint portion between the insertion portion 712 and the protrusion 710k, the surface area of ​​the upper surface 710a of the insertion portion 712 is larger than the surface area of ​​the bottom surface 710m of the protrusion 710k excluding the raised portion 710e. In particular, in the embodiment, the surface area of ​​the upper surface 710a of the insertion portion 712 is larger than the surface area of ​​the bottom surface 710m of the protrusion 710k including the raised portion 710e.

[0145] With this configuration, the battery 4 can prevent interference between the raised portion 710e of the negative electrode terminal 710, which is formed by friction pressure welding, and the negative electrode side gasket 620. Therefore, the battery 4 can maintain sealing between the negative electrode terminal 710 and the lid 420. As a result, the battery 4 can use a negative electrode terminal 710 formed by friction pressure welding the insertion portion 712 and the main body portion 711, while maintaining sealing between the lid 420 and the negative electrode terminal 710 by the negative electrode side gasket 620.

[0146] (Battery 5 in Modification 1 of the Third Embodiment) The battery 5 in the third embodiment modification 1 corresponds to the seventh specific example of the battery described in the means for solving the problem. The battery 5 shown in Figure 35 has a negative terminal 720.

[0147] (Configuration of negative terminal 720) The configuration of the negative terminal 720 will be explained with reference to Figure 35.

[0148] Figure 35 is a cross-sectional side view showing the components around the negative terminal 720 of the battery 5 in the modified example 1 of the third embodiment.

[0149] The negative terminal 720 includes a first part 710P and a second part 720Q, as shown in Figure 35.

[0150] Part 2 720Q includes a main body 721, as shown in Figure 35. The main body 721 has the same configuration as the main body 711 shown in Figure 32, except for the size of the raised portion 720e. The raised portion 720e is larger than the raised portion 710e shown in Figure 32. The raised portion 720e protrudes beyond the outer peripheral surface 710b of the insertion portion 712 in the longitudinal direction X and the transverse direction Y. That is, at the joint between the upper surface 710a of the insertion portion 712 and the bottom surface 710m of the protrusion 710k, the surface area of ​​the upper surface 710a is larger than the surface area of ​​the bottom surface 710m excluding the raised portion 720e. On the other hand, the surface area of ​​the upper surface 710a is smaller than the surface area of ​​the bottom surface 710m including the raised portion 720e. The raised portion 720e may be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0151] The negative electrode gasket 640 (sealant), as shown in Figure 35, includes a base portion 621, a cylindrical portion 642, and an edge portion 623. The cylindrical portion 642 includes a concave recess 642a. The recess 642a is formed concavely downward in the height direction Z from the portion adjacent to the base portion 621. The recess 642a faces the convex portion 710k along the longitudinal direction X and the short direction Y. The recess 642a faces the raised portion 720e along the longitudinal direction X and the short direction Y. The raised portion 720e is inserted into the recess 642a. The tip of the raised portion 720e is in contact with the bottom surface of the recess 642a. The tip of the raised portion 720e presses against and deforms the bottom surface of the recess 642a.

[0152] (Effects of battery 5 and negative terminal 720) The effects of battery 5 and negative terminal 720 will be explained with reference to Figure 35.

[0153] (7) The main body portion 721 (second portion 720Q) includes a protrusion 710k that partially protrudes toward the insertion portion 712 (first portion 710P). The insertion portion 712 and the protrusion 710k are joined by friction welding. The protrusion 710k includes a raised portion 720e (projection) that protrudes toward the negative electrode side gasket 640 (sealant) in a direction intersecting the stacking direction of the insertion portion 712 and the main body portion 721. The negative electrode side gasket 640 includes a concave recess 642a in the portion opposite to the raised portion 720e. The raised portion 720e is inserted into the recess 642a.

[0154] With this configuration, the battery 5 can hold or press the negative electrode gasket 640 with the raised portion 720e of the negative electrode terminal 720, which is formed by friction pressure welding, while the recess 642a of the negative electrode gasket 640 prevents excessive interference between the negative electrode gasket 640 and the raised portion 720e. Therefore, the battery 5 can maintain sealing between the negative electrode terminal 720 and the lid 420. As a result, the battery 5 can use a negative electrode terminal 720 formed by friction pressure welding the insertion portion 712 and the main body portion 721, while maintaining sealing between the lid 420 and the negative electrode terminal 720 by the negative electrode gasket 640.

[0155] (Battery 6 in Modification 2 of the Third Embodiment) The battery 6 in the modified example 2 of the third embodiment corresponds to a specific example of the seventh battery described in the means for solving the problem. The battery 6 shown in Figure 36 has a negative electrode terminal 720 and a negative electrode side gasket 650.

[0156] (Configuration of negative terminal 720) The configuration of the negative terminal 720 will be explained with reference to Figure 36.

[0157] Figure 36 is a cross-sectional side view showing the components around the negative terminal 720 of the battery 6 in a modified example 2 of the third embodiment.

[0158] The negative electrode gasket 650 (sealant), as shown in Figure 36, includes a base 621, a cylindrical portion 652, and an edge portion 623. The cylindrical portion 652 includes a concave recess 652a. The recess 652a is formed concavely downward in the height direction Z from the portion adjacent to the base 621. The recess 652a of the cylindrical portion 652 is longer in the height direction Z than the recess 642a of the cylindrical portion 642. The recess 652a faces the convex portion 710k along the longitudinal direction X and the transverse direction Y. The recess 652a faces the raised portion 720e along the longitudinal direction X and the transverse direction Y. The raised portion 720e is inserted into the recess 652a. The raised portion 720e is separated from the recess 652a. The tip of the raised portion 720e is not in contact with the side or bottom surface of the recessed portion 652a.

[0159] (Effects of battery 6 and negative terminal 720) The effects of the battery 6 and the negative terminal 720 will be explained with reference to Figure 36.

[0160] (7) The main body portion 711 (second portion 720Q) includes a protrusion 710k that partially protrudes toward the insertion portion 712 (first portion 710P). The insertion portion 712 and the protrusion 710k are joined by friction welding. The protrusion 710k includes a raised portion 720e (projection) that protrudes toward the negative electrode side gasket 650 (sealant) in a direction intersecting the joining direction between the insertion portion 712 and the main body portion 711. The raised portion 720e is in contact with the negative electrode side gasket 650 (sealant). The negative electrode side gasket 650 includes a concave recess 652a in the portion opposite to the raised portion 720e. The raised portion 720e is inserted into the recess 652a. In this embodiment, the raised portion 720e is not in contact with the recess 652a.

[0161] With this configuration, the battery 6 can prevent interference between the raised portion 720e of the negative electrode terminal 720, which is formed by friction pressure welding, and the negative electrode side gasket 650. Therefore, the battery 6 can maintain sealing between the negative electrode terminal 720 and the cover 420. As a result, the battery 6 can use a negative electrode terminal 720 formed by friction pressure welding the insertion portion 712 and the main body portion 711, while maintaining sealing between the cover 420 and the negative electrode terminal 720 due to the negative electrode side gasket 650.

[0162] (Battery 7 in Modification 3 of the Third Embodiment) The battery 7 in the third embodiment modification 3 corresponds to a specific example of the sixth battery described in the means for solving the problem. The battery 7 shown in Figure 37 has a negative terminal 730.

[0163] (Configuration of negative terminal 730) The configuration of the negative terminal 730 will be explained with reference to Figure 37.

[0164] Figure 37 is a cross-sectional side view showing the components around the negative terminal 730 of the battery 7 in the third embodiment modification 3.

[0165] The negative terminal 730 includes a first part 710P and a second part 730Q, as shown in Figure 37.

[0166] Part 2 730Q includes a machined portion 730f. The machined portion 730f is formed by partially machining the raised portion 720e of Part 2 720Q. The machined portion 730f is formed by partially machining the raised portion 720e so as to be continuous with the outer circumferential surface 710b of the insertion portion 712 along the height direction Z. The machined portion 730f overlaps with the insertion portion 712 along the height direction Z. The machined portion 730f is continuous with the insertion portion 712 along the height direction Z. The machined portion 730f does not protrude radially outward from the outer circumferential surface 710b of the insertion portion 712 along the longitudinal direction X and the transverse direction Y.

[0167] (Effects of battery 7 and negative terminal 730) The effects of the battery 7 and the negative terminal 730 will be explained with reference to Figure 37.

[0168] (6) The main body portion 731 (second portion 730Q) includes a protrusion 710k that partially protrudes toward the insertion portion 712 (first portion 710P). The insertion portion 712 and the protrusion 710k are joined by friction welding. The protrusion 710k includes a machined portion 730f (protrusion) that protrudes toward the negative electrode side gasket 620 (sealant) in a direction intersecting the lamination direction of the insertion portion 712 and the main body portion 731. The machined portion 730f (protrusion) is in contact with the negative electrode side gasket 620.

[0169] With a battery 7 having this configuration, the negative electrode gasket 620 can be held in place by the machined portion 730f of the negative electrode terminal 730, which is formed by cutting after friction welding. In other words, the movement of the negative electrode gasket 620 can be suppressed by the machined portion 730f. Therefore, the battery 7 can maintain sealing between the negative electrode terminal 730 and the lid 420. As a result, the battery 7 can use a negative electrode terminal 730 formed by friction welding the insertion portion 712 and the main body portion 731, while maintaining sealing between the lid 420 and the negative electrode terminal 730 by the negative electrode gasket 620.

[0170] (Battery 8 of the fourth embodiment) The fourth embodiment corresponds to a specific example of the seventh battery described in the means for solving the problem. The battery 8 shown in Figure 38 has a negative terminal 810.

[0171] (Configuration of negative electrode terminal 810 (electrode terminal)) The configuration of the negative terminal 810 will be explained with reference to Figure 38.

[0172] Figure 38 is a cross-sectional side view showing the components around the negative terminal 810 of the battery 8 in the fourth embodiment.

[0173] In the negative terminal 810, the insertion portion 712 (first portion 710P) and the protrusion 810k of the main body portion 811 (second portion 810Q) are joined by friction welding. As shown in Figure 38, the protrusion 810k partially protrudes from the lower surface 810c of the main body portion 811 toward the insertion portion 712. As shown in Figure 3, the protrusion 810k protrudes downward in the height direction Z from the main body portion 811. The surface area of ​​the upper surface 710a of the insertion portion 712 is equal to the surface area of ​​the bottom surface 810m of the protrusion 810k. The upper surface 710a of the insertion portion 712 overlaps with the bottom surface 810m of the protrusion 810k along the height direction Z. That is, the insertion portion 712, together with the protrusion 810k, is formed in a cylindrical shape.

[0174] As shown in Figure 38, a raised portion 810e (projection) is formed on the main body portion 811 by frictional pressure welding of the insertion portion 712 and the protrusion portion 810k, so as to surround the outer peripheral surface 710b of the insertion portion 712 in an annular shape. The raised portion 810e protrudes downward in the height direction Z from the outer peripheral surface 710n of the protrusion portion 810k. The raised portion 810e may also be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0175] The negative electrode gasket 660 (sealant), as shown in Figure 38, includes a base portion 621, a cylindrical portion 662, and an edge portion 623. The cylindrical portion 662 includes a concave recess 662a. The recess 662a is formed concavely downward in the height direction Z from the portion adjacent to the base portion 621. The recess 662a faces the convex portion 810k along the longitudinal direction X and the short direction Y. The recess 662a faces the raised portion 810e along the longitudinal direction X and the short direction Y. The raised portion 810e is inserted into the recess 662a. The tip of the raised portion 810e is in contact with the bottom surface of the recess 662a. The tip of the raised portion 810e presses against and deforms the bottom surface of the recess 662a.

[0176] (Manufacturing method for negative electrode terminal 810) The manufacturing method for the negative electrode terminal 810 will be explained with reference to Figures 39 and 40.

[0177] Figure 39 is a cross-sectional side view showing the state in which the first part 710P and the second part 810Q of the negative electrode terminal 810 are in contact, in relation to the manufacturing method of the negative electrode terminal 810 shown in Figure 38. Figure 40 is a cross-sectional side view continuing from Figure 39, showing the state in which the first part 710P and the second part 810Q of the negative electrode terminal 810 are friction-pressed together to create a raised portion 810e.

[0178] As shown in Figure 39, in the manufacturing method of the negative electrode terminal 810, the insertion portion 712 is moved along the height direction Z and comes into contact with the protrusion 810k of the main body portion 811. The upper surface 710a of the insertion portion 712 comes into contact with the bottom surface 810m of the protrusion 810k.

[0179] As shown in Figure 40, in the manufacturing method of the negative electrode terminal 810, continuing from Figure 39, the insertion portion 712 of the negative electrode terminal 810 and the protrusion 810k of the main body portion 811 are friction-pressed together. The insertion portion 712 is rotated by a rotational force V while being pressed against the main body portion 811 by a pressing force W. Due to the melting that accompanies the friction-pressure welding of the insertion portion 712 and the main body portion 811, the bottom surface 810m of the protrusion 810k moves toward the main body portion 811. A raised portion 810e is formed on the protrusion 810k so as to surround the outer peripheral surface 710b of the insertion portion 712 in an annular shape. The raised portion 810e protrudes toward the negative electrode side gasket 660 in the longitudinal direction X and the short direction Y which intersect with the height direction Z. The raised portion 810e protrudes downward in the height direction Z along the outer peripheral surface 710b of the insertion portion 712.

[0180] (Effects of battery 8 and negative terminal 810) The effects of the battery 8 and the negative terminal 810 will be explained with reference to Figures 38 and 40.

[0181] (7) The insertion portion 712 (first portion 710P) and the protrusion 810k are joined by friction welding. The protrusion 810k includes a raised portion 810e (projection) that protrudes toward the negative electrode side gasket 660 (sealant) in a direction intersecting the stacking direction of the insertion portion 712 and the main body portion 811 (second portion 810Q). The direction intersecting the stacking direction corresponds to the longitudinal direction X and the transverse direction Y. The negative electrode side gasket 660 includes a concave recess 662a in the portion facing the raised portion 810e. The raised portion 810e is inserted into the recess 662a.

[0182] With this configuration, the negative electrode gasket 8 can be held or pressed by the negative electrode gasket 660 while preventing excessive interference between the negative electrode terminal 810e, which is formed by friction pressure welding, and the recess 662a of the negative electrode gasket 660. Therefore, the battery 8 can maintain sealing between the negative electrode terminal 810 and the lid 420. As a result, the battery 8 can use a negative electrode terminal 810 formed by friction pressure welding the insertion portion 712 and the main body portion 811, while maintaining sealing between the lid 420 and the negative electrode terminal 810 by the negative electrode gasket 660.

[0183] (Battery 9 in Modification 1 of the 4th Embodiment) The battery 9 in the modified example 1 of the fourth embodiment corresponds to a specific example of the seventh battery described in the means for solving the problem. The battery 9 shown in Figure 41 has a negative electrode terminal 810 and a negative electrode side gasket 670.

[0184] (Configuration of negative terminal 810) The configuration of the negative terminal 810 will be explained with reference to Figure 41.

[0185] Figure 41 is a cross-sectional side view showing the components around the negative terminal 810 of the battery 9 in Modification 1 of the fourth embodiment.

[0186] The negative electrode gasket 670 (sealant), as shown in Figure 41, includes a base 621, a cylindrical portion 672, and an edge portion 623. The cylindrical portion 672 includes a concave recess 672a. The recess 672a is formed concavely downward in the height direction Z from the portion adjacent to the base 621. The recess 672a of the cylindrical portion 672 is longer in the height direction Z than the recess 662a of the cylindrical portion 662. The recess 672a faces the convex portion 810k along the longitudinal direction X and the transverse direction Y. The recess 672a faces the raised portion 810e along the longitudinal direction X and the transverse direction Y. The raised portion 810e is inserted into the recess 672a. The raised portion 810e is separated from the recess 672a. The tip of the raised portion 810e does not come into contact with the side or bottom surface of the recessed portion 672a.

[0187] (Effects of battery 9 and negative terminal 810) The effects of the battery 9 and the negative terminal 810 will be explained with reference to Figure 41.

[0188] (7) The main body portion 721 (second portion 720Q) includes a protrusion 810k that partially protrudes toward the insertion portion 712 (first portion 710P). The insertion portion 712 and the protrusion 810k are joined by friction welding. The protrusion 810k includes a raised portion 810e (projection) that protrudes toward the negative electrode side gasket 670 (sealant) in a direction intersecting the joining direction between the insertion portion 712 and the main body portion 721. The raised portion 810e is in contact with the negative electrode side gasket 670 (sealant). The negative electrode side gasket 670 includes a concave recess 672a in the portion opposite to the raised portion 810e. The raised portion 810e is inserted into the recess 672a.

[0189] With this configuration, the battery 9 can prevent interference between the raised portion 810e of the negative electrode terminal 810, which is formed by friction pressure welding, and the negative electrode side gasket 670. Therefore, the battery 9 can maintain sealing between the negative electrode terminal 810 and the cover 420. As a result, the battery 9 can use a negative electrode terminal 810 formed by friction pressure welding the insertion portion 712 and the main body portion 721, while maintaining sealing between the cover 420 and the negative electrode terminal 810 due to the negative electrode side gasket 670.

[0190] (Battery 10 of Modification 2 of the 4th Embodiment) The battery 10 in the second modified example of the fourth embodiment corresponds to the eighth specific example of the battery described in the means for solving the problem. The battery 10 shown in Figure 42 has a negative terminal 820.

[0191] (Configuration of negative terminal 820) The configuration of the negative terminal 820 will be explained with reference to Figure 42.

[0192] Figure 42 is a cross-sectional side view showing the components around the negative terminal 820 of the battery 10 in a modified example 2 of the fourth embodiment.

[0193] The main body portion 821 (second portion) includes a machined flat portion 810r in the portion adjacent to the joint with the insertion portion 712 (first portion). The protrusion 810k includes a flat portion 810r machined along the stacking direction of the protrusion 810k and the insertion portion 712 in the portion adjacent to the joint with the insertion portion 712. The flat portion 810r is formed in the manufacturing method of the negative electrode terminal 320 shown in Figure 13, by removing all of the raised portion 320e of the negative electrode terminal 320 by cutting. The flat portion 810r is continuous with the lower surface 360c of the main body portion 821 along the longitudinal direction X and the short direction Y. Cutting marks made by an end mill or the like are formed on the flat portion 810r. That is, the flat portion 810r is composed of ring-shaped cutting marks surrounding the outer peripheral surface 810n of the protrusion 810k. The flat portion 810r faces the negative electrode gasket 620 (sealant) along the longitudinal direction X and the transverse direction Y. The flat portion 810r is in contact with the cylindrical portion 622.

[0194] (Effects of battery 10 and negative terminal 820) The effects of the battery 10 and the negative terminal 820 will be explained with reference to Figure 42.

[0195] (8) The insertion portion 712 (first portion) and the protrusion 810k of the main body portion 821 (second portion) are joined by friction welding. The protrusion 810k includes a flat portion 810r that is machined along the stacking direction of the protrusion 810k and the insertion portion 712 in the portion adjacent to the joint with the insertion portion 712. The joint corresponds to the portion where the bottom surface 810m of the protrusion 810k and the top surface 710a of the insertion portion 712 are in contact. The stacking direction corresponds to the height direction Z. The flat portion 810r faces the negative electrode side gasket 620 (sealant) in a direction intersecting the stacking direction. The direction intersecting the stacking direction corresponds to the direction along the longitudinal direction X and the short direction Y.

[0196] With this configuration, the negative electrode gasket 620 can be held in place by the flat portion 810r of the negative electrode terminal 820, which is formed by cutting after friction welding. In other words, the movement of the negative electrode gasket 620 can be suppressed by the flat portion 810r. Therefore, the battery 10 can maintain sealing between the negative electrode terminal 820 and the lid 420. As a result, the battery 10 can use a negative electrode terminal 820 formed by friction welding the insertion portion 712 and the main body portion 821, while maintaining sealing between the lid 420 and the negative electrode terminal 820 by the negative electrode gasket 620.

[0197] (Battery 11 of the fifth embodiment) The fifth embodiment corresponds to a specific example of the first battery described in the means for solving the problem. The battery 11 shown in Figure 43 has a negative terminal 910.

[0198] (Configuration of negative electrode terminal 910 (electrode terminal)) The configuration of the negative terminal 910 will be explained with reference to Figure 43.

[0199] Figure 43 is a cross-sectional side view showing the components around the negative terminal 910 of the battery 11 in the fifth embodiment.

[0200] In the negative terminal 910, the insertion portion 912 (first portion 910P) and the protrusion 910k of the main body portion 911 (second portion 910Q) are joined by friction welding. As shown in Figure 43, the protrusion 910k partially protrudes from the lower surface 910c of the main body portion 911 toward the insertion portion 912. As shown in Figure 43, the protrusion 910k protrudes downward in the height direction Z from the main body portion 911. The surface area of ​​the upper surface 910a of the insertion portion 912 is smaller than the surface area of ​​the lower surface 910m of the protrusion 910k.

[0201] As shown in Figure 43, due to frictional pressure welding between the insertion portion 912 and the protrusion 910k, a portion of the upper surface 910a and outer peripheral surface 910b of the insertion portion 912 is inserted into the lower surface 910m of the protrusion 910k, forming a recess 910d in the protrusion 910k. That is, due to frictional pressure welding between the insertion portion 912 and the protrusion 910k, a portion of the insertion portion 912 penetrates the protrusion 910k, forming the recess 910d. As shown in Figure 43, due to frictional pressure welding between the insertion portion 912 and the main body portion 911, a raised portion 910e (projection) is formed on the main body portion 911 so as to surround the outer peripheral surface 910b of the insertion portion 912 in an annular shape. The raised portion 910e protrudes downward in the height direction Z. The raised portion 910e may be formed by cutting, similar to the cut-formed portion 320f of the negative electrode terminal 320.

[0202] (Effects of battery 11 and negative terminal 910) The effects of the battery 11 and the negative terminal 910 will be explained with reference to Figure 43.

[0203] (1) The insertion portion 912 (first portion 910P) and the protrusion 910k of the main body portion 911 (second portion 910Q) are joined by friction welding. The surface area of ​​the upper surface 910a of the insertion portion 912 is smaller than the surface area of ​​the lower surface 910m of the protrusion 910k. At the joint with the insertion portion 912, the main body portion 911 includes a raised portion 910e (projection) that surrounds the outer peripheral surface 910b of the insertion portion 912 in an annular shape and protrudes toward the negative electrode side gasket 620 (sealant). The raised portion 910e is in contact with the negative electrode side gasket 620.

[0204] With a battery 11 of this configuration, the negative electrode gasket 620 can be held in place by the machined portion 910f of the negative electrode terminal 910 formed by friction pressure welding. In other words, the movement of the negative electrode gasket 620 can be suppressed by the machined portion 910f. Therefore, the battery 11 can improve or maintain the sealing performance between the negative electrode terminal 910 and the lid 420. As a result, the battery 11 can use a negative electrode terminal 910 formed by friction pressure welding the insertion portion 912 and the main body portion 911, while improving or maintaining the sealing performance between the lid 420 and the negative electrode terminal 910 by the negative electrode gasket 620.

[0205] (Battery 12 of the sixth embodiment) The sixth embodiment corresponds to the ninth specific example of the battery described in the means for solving the problem. The battery 12 shown in Figure 44 has a positive terminal 1010.

[0206] (Configuration of positive terminal 1010 (electrode terminal)) The configuration of the positive terminal 1010 will be explained with reference to Figure 44.

[0207] Figure 44 is a cross-sectional side view showing the components around the positive terminal 1010 of the battery 12 in the sixth embodiment.

[0208] The positive terminal 1010 corresponds to the electrode terminal. As shown in Figure 44, the positive terminal 1010 is connected to the positive current collector plate 210. As shown in Figure 44, the positive terminal 1010 is provided on the positive side gasket 610. As shown in Figure 44, the positive terminal 1010 includes a main body portion 1011, an insertion portion 1012, and a connecting portion 1013.

[0209] In the positive terminal 1010, the main body 1011 corresponds to the second part 1010Q. The insertion part 1012 and the connecting part 1013 correspond to the first part 1010P. The main body 1011 and the insertion part 1012 and connecting part 1013 are formed separately. The insertion part 1012 and the connecting part 1013 are formed integrally.

[0210] In the positive terminal 1010, the first part 1010P and the second part 1010Q are joined by friction welding. That is, the insertion part 1012 and the main body part 1011 are joined by friction welding. At the joint between the insertion part 1012 and the main body part 1011, the surface area of ​​the upper surface 1010a of the insertion part 1012 is smaller than the surface area of ​​the lower surface 1010c of the main body part 1011. As shown in Figure 44, due to the friction welding of the insertion part 1012 and the main body part 1011, a machined and formed part 1010f (protrusion) is formed on the insertion part 1012 so as to surround the outer peripheral surface 1010b of the insertion part 1012 in an annular shape. Due to frictional pressure contact between the insertion portion 1012 and the main body portion 1011, a raised portion is machined away from the insertion portion 1012, enclosing the outer circumferential surface 1010b of the insertion portion 1012 in an annular shape, thereby forming a machined portion 1010f. The positive electrode terminal 1010 is not limited to having the raised portion machined away.

[0211] The main body portion 1011 is formed in a rectangular shape, as shown in Figure 44. The main body portion 1011 is provided on the base portion 611 of the positive electrode side gasket 610, as shown in Figure 44. The main body portion 1011 is exposed to the outside of the lid 420, as shown in Figure 44. The outside of the lid 420 corresponds to the outside of the battery 12. The main body portion 1011 is joined to a busbar or electrical equipment. A busbar is a busbar that electrically connects two batteries 12 together. Electrical equipment includes terminals and end busbars that electrically connect the battery 12 to external equipment. External equipment is, for example, equipment installed in an electric vehicle. The insertion portion 1012, as shown in Figure 44, includes a machined portion 1010f that protrudes toward the positive electrode side gasket 610 in a direction intersecting the stacking direction of the insertion portion 1012 and the main body portion 1011 at the joint portion with the main body portion 1011. The directions intersecting the stacking direction correspond to the longitudinal direction X and the transverse direction Y. The joint between the main body portion 1011 and the insertion portion 1012 is the portion where the lower surface 1010c of the main body portion 1011 and the upper surface 1010a of the insertion portion 1012 are in contact. The machined and molded portion 1010f surrounds the outer peripheral surface 1010b of the insertion portion 1012 in an annular shape along the height direction Z. The machined and molded portion 1010f is in contact with the positive electrode side gasket 610. The machined and molded portion 1010f compresses the cylindrical portion 612 of the positive electrode side gasket 610 downwards in the height direction Z as shown in Figure 44.

[0212] The insertion portion 1012 is formed in a cylindrical shape, as shown in Figure 44. The insertion portion 1012 is joined to the main body portion 1011 by friction welding. The insertion portion 1012 extends downward from the main body portion 1011 in Figure 44. The insertion portion 1012 is inserted into the positive electrode side insertion hole 420a of the lid 420, as shown in Figure 44. The insertion portion 1012 is inserted into the cylindrical portion 612 of the positive electrode side gasket 610. The insertion portion 1012 faces the base portion 611 and the cylindrical portion 612 of the positive electrode side gasket 610 along the longitudinal direction X and the short direction Y.

[0213] The joint portion 1013 is formed in a cylindrical shape, as shown in Figure 44. The joint portion 1013 is connected to the insertion portion 1012. The joint portion 1013 extends downward from the outer circumference of the insertion portion 1012 in Figure 44. The joint portion 1013 is inserted into the positive electrode side insertion hole 420a of the cover 420, as shown in Figure 44. The joint portion 1013 is opposed to the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210 along the longitudinal direction X and the short direction Y. The tip of the joint portion 1013 protrudes downward from the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210, as shown in Figure 44. The tip of the joint portion 1013 is spread outward in the radial direction and crimped to the bottom surface of the base portion 211, as shown in Figure 44. The tip of the joint portion 1013 is welded to the base portion 211. The joint 1013 is indirectly joined to the charge / discharge element 100 via the positive electrode current collector plate 210. The joint 1013 may also be directly joined to the charge / discharge element 100.

[0214] The boundary between the joint portion 1013 and the insertion portion 1012 in the height direction Z is not limited to the configuration shown in Figure 44. A portion of the joint portion 1013 may be configured to face the cylindrical portion 612 of the positive electrode gasket 610 along the longitudinal direction X and the short direction Y. A portion of the insertion portion 1012 may be configured to face the insertion hole 211a of the base portion 211 of the positive electrode current collector plate 210 along the longitudinal direction X and the short direction Y.

[0215] In the positive terminal 1010, the main body portion 1011 has higher rigidity than the insertion portion 1012 and the joint portion 1013. The main body portion 1011 is formed of a different material from the insertion portion 1012 and the joint portion 1013. The insertion portion 1012 and the joint portion 1013 contain aluminum or an aluminum alloy. The main body portion 1011 contains copper or a copper alloy.

[0216] (Effect of battery 12 and positive terminal 1010) The effects of the battery 12 and the positive terminal 1010 will be explained with reference to Figure 44.

[0217] (10) The insertion portion 1012 (first portion 1010P) and the main body portion 1011 (second portion 1010Q) are joined by friction welding. The main body portion 1011 of the positive terminal 1010 has higher rigidity than the insertion portion 1012. At the joint portion with the main body portion 1011, the insertion portion 1012 of the positive terminal 1010 includes a machined and molded portion 1010f (projection) that protrudes toward the positive side gasket 610 (sealant) in a direction intersecting the stacking direction of the insertion portion 1012 and the main body portion 1011.

[0218] With a battery 12 of this configuration, the positive electrode gasket 610 can be held in place by the machined portion 1010f of the positive electrode terminal 1010 formed by friction pressure welding. In other words, the machined portion 1010f can suppress the movement of the positive electrode gasket 610. Therefore, the battery 12 can maintain sealing between the positive electrode terminal 1010 and the lid 420. As a result, the battery 12 can use a positive electrode terminal 1010 formed by friction pressure welding the insertion portion 1012 and the main body portion 1011, while maintaining sealing between the lid 420 and the positive electrode terminal 1010 by the positive electrode gasket 610.

[0219] (11) In the positive terminal 1010, the insertion portion 1012 (first portion 1010P) contains aluminum or an aluminum alloy. The main body portion 1011 (second portion 1010Q) contains copper or a copper alloy.

[0220] With a battery 12 of this configuration, the positive terminal 1010 can be changed from, for example, aluminum to copper. Therefore, in a battery pack having multiple batteries 12, the positive terminal 1010 of one battery 12 and the negative terminal of another battery 12 can be connected by a busbar made of, for example, copper. In this case, the negative terminal is made of copper or a copper alloy. That is, the positive terminal 1010 of one battery 12 and the negative terminal of another battery 12 can be connected by a copper busbar. In this case, the negative terminal of the other battery 12 is not made of copper converted to aluminum, but is made of copper or a copper alloy.

[0221] With a battery 12 of this configuration, the high-voltage end busbar of the battery pack can be made of copper. That is, both the low-voltage and high-voltage end busbars of the battery pack can be made of copper. Therefore, in electric vehicles and hybrid vehicles equipped with the battery pack, the high-voltage and low-voltage end busbars can be made of copper.

[0222] (Batteries in other embodiments) The battery of the present invention is not limited to the configuration of the battery described in the embodiments, but can be configured as appropriate based on the content described in the claims.

[0223] The embodiments are described in detail or in a simplified manner to clearly illustrate the present invention, and it is not necessary to have all the configurations described, or to have configurations that are not shown. Furthermore, some of the configurations of the embodiments may be deleted, replaced with configurations from other embodiments, or combined with configurations from other embodiments.

[0224] The negative terminal may be configured by arbitrarily combining each embodiment. For example, the negative terminal may be configured by combining the negative terminal 710 of the third embodiment and the negative terminal 380 of the second embodiment.

[0225] The configurations of each embodiment and modified example, excluding the first embodiment of the negative terminal, may also be applied to the configuration of the positive terminal.

[0226] Battery 1 is not limited to, for example, a power source for a hybrid electric vehicle (HEV). Battery 1 may be configured as a power source for a battery electric vehicle (BEV). Battery 1 may be configured as an on-board power source.

[0227] The battery of the present invention is not limited to lithium-ion batteries. The battery of the present invention can be applied to, for example, nickel-metal hydride batteries and lead-acid batteries. The battery of the present invention is not limited to secondary batteries. The battery of the present invention can be applied to primary batteries. The charge / discharge element of the battery of the present invention is not limited to a wound type charge / discharge element in which a positive electrode, separator, and negative electrode, each formed in a long shape, are bundled and wound together. A laminated type can be applied to the charge / discharge element of the battery of the present invention in which a plurality of rectangular positive electrodes, separators, and negative electrodes are alternately stacked. A laminated type can be applied to the charge / discharge element of the battery of the present invention in which a plurality of relatively short positive electrodes and a plurality of negative electrodes are alternately arranged facing each other via a separator to a single long separator. In a charge / discharge element with such a configuration, the positive electrode and negative electrode face each other via a separator by folding and stacking the separator. The battery of the present invention is not limited to a configuration with one charge / discharge element. The battery of the present invention can be applied to a configuration with two or more charge / discharge elements. The battery of the present invention is not limited to a configuration in which the charge / discharge element is sealed by a container and a lid. The battery of the present invention can be applied to a configuration in which the charge / discharge elements are sealed with a laminate film. [Explanation of Symbols]

[0228] 1,2,3,4,5,6,7,8,9,10,11,12 Battery, 100 Charge / Discharge element, 110 Positive electrode, 120 Negative electrode, 130 Separator, 140 Electrolyte, 200 Current collector, 210 Positive electrode current collector plate, 211 Base, 211a Insertion hole, 212 Current collector section, 220 Negative electrode current collector plate, 221 Base, 221a Insertion hole, 222 Current collector section, 300 Electrode terminal, 310 Positive electrode terminal (electrode terminal), 311 Main body (second part), 312 Insertion part (first part), 313 Joint part (first part), 320 Negative electrode terminal (electrode terminal), 320P First part, 320Q Second part, 320a Top surface, 320b Outer surface, 320c Lower surface, 320d recessed part, 320e raised part (protruding part), 320f cutting part (protruding part), 321 main body part (second part), 322 insertion part (first part), 323 joint part (first part), 330 negative electrode terminal (electrode terminal), 330Q second part, 330f cutting part (protruding part), 331 Main body part (second part), 340 negative electrode terminal (electrode terminal), 340Q second part, 340f cutting molding part (protruding part), 341 main body part (second part), 350 negative electrode terminal (electrode terminal), 350Q second part, 350f cutting molding part (protruding part), 351 main body part (second part), 360 Negative terminal (electrode terminal), 360c bottom surface, 360r flat surface, 361 Main body (second part), 370 Negative electrode terminal (electrode terminal), 370P First part, 370Q Second part, 370a Top surface, 370b Outer surface, 370d Recess, 370e Raised part (protruding part), 370g Sloping surface, 371 Main body (second part), 372 Insertion part (first part), 380 Negative electrode terminal (electrode terminal), 380P First part, 380a Top surface, 380b Outer surface, 380b1 First outer surface, 380b2 Second outer surface, 380h Inner surface, 380i First shaft part, 380j Second shaft part, 382 Insertion part (first part), 383 Joint part (first part), 390 Negative electrode terminal (electrode terminal), 400 Outer casing, 410 Container, 420 Cover, 420a Positive side insertion hole (through hole), 420b Negative side insertion hole (through hole), 420c Injection hole, 430 Opening valve, 440 Sealing plug, 500 Insulator, 510 Insulating cover, 520 Positive side insulating plate, 521 Base, 521a Through hole, 522 Edge, 530 Negative side insulating plate, 531 Base, 531a Through hole, 532 Edge, 600 Sealing body, 610 Positive side gasket (sealing body), 611 Base, 612613 Cylinder section, 613 Edge section, 620 Negative electrode side gasket (sealant), 621 Base section, 622 Cylinder section, 623 Edge section, 630 Negative electrode side gasket (sealant), 640 Negative electrode side gasket (sealant), 642 Cylinder section, 642a Recessed section, 650 Negative electrode side gasket (sealant), 652 Cylinder section, 652a Recessed section, 660 Negative electrode side gasket (sealant), 662 Cylinder section, 662a Recessed section, 670 Negative electrode side gasket (sealant), 672 Cylinder section, 672a Recessed section, 710 Negative electrode terminal (electrode terminal), 710P First section, 710Q Second section, 710a Top surface, 710b Outer circumference, 710e Raised section (protruding section), 710k Convex section, 710m Bottom surface, 710n Outer surface, 711 Main body (second part), 712 Insertion part (first part), 720 Negative electrode terminal (electrode terminal), 720Q Second part, 720b Outer surface, 720e Raised part (protruding part), 721 Main body (second part), 730 Negative electrode terminal (electrode terminal), 730Q Second part, 730f Machined part (protruding part), 810 Negative electrode terminal (electrode terminal), 810Q Second part, 810a Top surface, 810b Outer surface, 810c Bottom surface, 810e Raised part (protruding part), 810k Convex part, 810m Bottom surface, 810n Outer surface, 810r Flat part, 811 Main body (second part), 812 Insertion part (first part), 820 Negative electrode terminal (electrode terminal), 821 Main body part (second part), 910 Negative electrode terminal (electrode terminal), 910P part 1, 910Q part 2, 910a top surface, 910b outer peripheral surface, 910c bottom surface, 910d recessed part, 910e raised part (protruding part), 910f cutting molded part (protruding part), 910k Convex part, 910m Bottom surface, 911 Main body part (Part 2), 912 Insertion part (Part 1), 1010 Positive terminal (electrode terminal), 1010P Part 1, 1010Q Part 2, 1010a Top surface, 1010b Outer surface, 1010c Bottom surface, 1010f Cutting part (protruding part), 1011 Main body (part 2), 1012 Insertion part (Part 1), 1013 Joint part (Part 1), S1 Central axis, S2 Central axis, V Rotational force, W Pressing force, X Longitudinal direction (of Battery 1), Y Shortitudinal direction (of Battery 1), Z Height direction (of Battery 1).

Claims

1. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part is exposed to the outside of the exterior body, has lower rigidity than the first part, is joined to a busbar or electrical equipment, and is joined to the first part by friction welding, Includes, The second part includes a projection that protrudes toward the sealing body along the outer circumferential surface of the first part at the joint with the first part, The aforementioned protrusion is in contact with the sealing body. battery.

2. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part is exposed to the outside of the exterior body, has lower rigidity than the first part, is joined to a busbar or electrical equipment, and is joined to the first part by friction welding, Includes, The second part includes a machined flat portion in the portion adjacent to the joint with the first part. battery.

3. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part is exposed to the outside of the exterior body, has lower rigidity than the first part, is joined to a busbar or electrical equipment, and is joined to the first part by friction welding, Includes, The aforementioned Part 1 is, The first shaft portion is joined to the second portion, A second shaft portion is connected to the first shaft portion and has a shape smaller than that of the first shaft portion along a direction intersecting the stacking direction with the first shaft portion, Includes, battery.

4. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part is exposed to the outside of the exterior body, has lower rigidity than the first part, is joined to a busbar or electrical equipment, and is joined to the first part by friction welding, Includes, The second part, in the portion exposed on the outside of the outer casing, is in contact with the sealing body along the stacking direction with the first part, and is not in contact with the sealing body in a direction intersecting the stacking direction. battery.

5. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part includes a protrusion that partially projects toward the first part and is joined to the first part by friction welding, is exposed to the outside of the exterior body, has lower rigidity than the first part, and is joined to a busbar or electrical equipment, Includes, The aforementioned protrusion includes a projection that extends toward the sealing body in a direction intersecting the stacking direction of the first and second parts, At the joint between the first part and the protrusion, the surface area of ​​the first part is larger than the surface area of ​​the protrusion excluding the projection. battery.

6. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part includes a protrusion that partially projects toward the first part and is joined to the first part by friction welding, is exposed to the outside of the exterior body, has lower rigidity than the first part, and is joined to a busbar or electrical equipment, Includes, The aforementioned protrusion includes a projection that extends toward the sealing body in a direction intersecting the stacking direction of the first and second parts, The aforementioned protrusion is in contact with the sealing body. battery.

7. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part includes a protrusion that partially projects toward the first part and is joined to the first part by friction welding, is exposed to the outside of the exterior body, has lower rigidity than the first part, and is joined to a busbar or electrical equipment, Includes, The aforementioned protrusion includes a projection that extends toward the sealing body in a direction intersecting the stacking direction of the first and second parts, The sealing body includes a concave recess in the portion facing the protruding portion, The aforementioned protrusion is inserted into the aforementioned recess. battery.

8. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part includes a protrusion that partially projects toward the first part and is joined to the first part by friction welding, is exposed to the outside of the exterior body, has lower rigidity than the first part, and is joined to a busbar or electrical equipment, Includes, The aforementioned protrusion includes a flat portion that is machined along the stacking direction between the protrusion and the first portion, in the portion adjacent to the joint with the first portion. The planar portion is opposite the sealing body in a direction intersecting the stacking direction. battery.

9. The aforementioned Part 1 includes copper or a copper alloy, The aforementioned Part 2 includes aluminum or an aluminum alloy. The aforementioned electrode terminal is the negative electrode terminal. The battery according to any one of claims 1 to 8.

10. Charger and discharger, An outer casing housing the charge / discharge element and having through holes formed therein, The sealing body provided on the exterior body, The electrode terminals provided on the sealing body, It has, The electrode terminals are, A first part is inserted into the through hole of the outer casing and is indirectly or directly joined to the charge / discharge body, A second part is exposed on the outside of the exterior body, has higher rigidity than the first part, is joined to a busbar or electrical equipment, and is joined to the first part by friction welding, Includes, The second part includes a projection that protrudes toward the sealing body along the outer circumferential surface of the first part at the joint with the first part, The aforementioned protrusion is in contact with the sealing body. battery.

11. The aforementioned Part 1 includes aluminum or an aluminum alloy. The aforementioned Part 2 includes copper or a copper alloy, The aforementioned electrode terminal is the positive terminal. The battery according to claim 10.

Citation Information

Patent Citations

  • Electrode terminal, battery cover plate assembly with same, battery and battery pack

    CN104752675A

  • Copper aluminum composite polar column and processing technology therefor

    CN107369806A

  • Heat dissipating film improved in heat conductivity and service life

    JP1991295260A

  • Hot press welding method of aluminum material and copper material

    JP1992143085A

  • Friction welding method for different material

    JP1994047570A