secondary batteries

The secondary battery design with insulating sheets and tapes on electrode bodies addresses separator curling issues, ensuring reliable operation by preventing short circuits and material loss during electrolyte injection.

JP7742458B2Active Publication Date: 2025-09-19SANYO ELECTRIC CO LTD
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Patent Information

Application Number
JP2024099820
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-06-20
Publication Date
2025-09-19
Estimated Expiration
2039-02-18

AI Technical Summary

Technical Problem

Secondary batteries face issues with short circuits between positive and negative electrode plates due to the separator curling up during electrolyte injection, which can lead to unintended contact and material loss.

Method used

The secondary battery design includes insulating sheets on the outermost surfaces of electrode bodies, with tapes attached across tab groups facing the electrolyte injection hole, preventing separator curling and ensuring the positive and negative electrode plates remain isolated.

Benefits of technology

This configuration effectively prevents short circuits and material loss by maintaining separator integrity during electrolyte injection, resulting in a highly reliable secondary battery.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a secondary battery with high reliability, in which a short-circuiting between a positive electrode plate and a negative electrode plate is suppressed.SOLUTION: A secondary battery includes a rectangular package 1 including an opening and housing a first electrode body 3a and a second electrode body 3b, a sealing plate 2 for sealing the opening of the rectangular package 1, and a positive electrode current collector. The sealing plate 2 includes an electrolyte solution injection hole 15. The first electrode body 3a includes a first insulating sheet on an outermost surface on the second electrode body 3b side. The second electrode body 3b includes a second insulating sheet on an outermost surface on the first electrode body 3a side. A first tape 80a is pasted across the first insulating sheet and an outermost surface of a first positive electrode tab group 40a. A second tape 80b is pasted across the second insulating sheet and an outermost surface of a second positive electrode tab group 40b. At least one of the first tape 80a and the second tape 80b is disposed at a position facing the electrolyte solution injection hole 15.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present disclosure relates to secondary batteries. [Background technology]

[0002] BACKGROUND ART Secondary batteries such as alkaline secondary batteries and non-aqueous electrolyte secondary batteries are used as driving power sources for electric vehicles (EVs), hybrid electric vehicles (HEVs, PHEVs), and the like.

[0003] In these secondary batteries, a battery case is formed by a cylindrical exterior body with a bottom and an opening, and a sealing plate that seals the opening. An electrode assembly consisting of a positive electrode plate, a negative electrode plate, and a separator is housed inside the battery case, along with an electrolyte. A positive electrode terminal and a negative electrode terminal are attached to the sealing plate. The positive electrode terminal is electrically connected to the positive electrode plate via a positive electrode current collector, and the negative electrode terminal is electrically connected to the negative electrode plate via a negative electrode current collector.

[0004] In such secondary batteries, an electrolyte injection hole is formed in the sealing plate, and electrolyte is injected into the battery case through the electrolyte injection hole, which is then sealed with a sealing member (see Patent Document 1 below). [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Publication No. 2018-29006 Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present disclosure is to provide a highly reliable secondary battery in which short circuits between positive and negative electrode plates are suppressed. [Means for solving the problem]

[0007] A secondary battery according to an embodiment of the present disclosure includes: a first electrode assembly including a positive electrode plate and a negative electrode plate; a second electrode assembly including a positive electrode plate and a negative electrode plate; an exterior body having an opening and accommodating the first electrode body and the second electrode body; a sealing plate that seals the opening; a current collector disposed closer to the sealing plate than the first electrode body and the second electrode body; a terminal electrically connected to the current collector and attached to the sealing plate, the sealing plate has an electrolyte injection hole, the first electrode body has a first insulating sheet on its outermost surface on the second electrode body side; the second electrode body has a second insulating sheet on its outermost surface on the side of the first electrode body, the first electrode body has a first electrode tab group electrically connected to the positive electrode plate or the negative electrode plate at an end on the sealing plate side, the second electrode body has a second electrode tab group electrically connected to the positive electrode plate or the negative electrode plate at an end on the sealing plate side, the first electrode tab group and the second electrode tab group are connected to the current collector; a first tape is attached across the outermost surface of the first tab group and the first insulating sheet; a second tape is attached across the outermost surface of the second tab group and the second insulating sheet; At least one of the first tape and the second tape is disposed at a position facing the electrolyte injection hole, The electrolyte injection hole is sealed with a sealing member.

[0008] In a secondary battery in which an electrode assembly has a stacked end portion where an end portion of a positive electrode plate, an end portion of a separator, and an end portion of a negative electrode plate are arranged, and this stacked end portion is arranged on the sealing plate side, the separator may be rolled up when an electrolyte is injected through an electrolyte injection hole provided in the sealing plate. If the separator is rolled up, the adjacent positive and negative electrode plates may come into contact with each other, resulting in a short circuit. Furthermore, a portion of the positive electrode active material layer or the negative electrode active material layer may fall off, causing a short circuit.

[0009] According to the configuration of the secondary battery according to one embodiment of the present disclosure, when an electrolyte is injected through the electrolyte injection hole provided in the sealing plate, the separator can be effectively prevented from being turned up, thereby more effectively preventing a short circuit between the positive electrode plate and the negative electrode plate. [Effects of the Invention]

[0010] According to the present disclosure, when an electrolyte is injected into a battery case through an electrolyte injection hole provided in the battery case, the separator is prevented from curling up, thereby providing a highly reliable secondary battery in which short circuits between the positive and negative electrode plates are prevented. [Brief explanation of the drawings]

[0011] [Figure 1] 1 is a perspective view of a prismatic secondary battery according to an embodiment. [Figure 2] FIG. 2 is a cross-sectional view of the prismatic secondary battery taken along line II-II in FIG. [Figure 3] 1A is a plan view of a positive electrode plate according to an embodiment, and FIG. 1B is a plan view of a negative electrode plate according to an embodiment. [Figure 4] FIG. 2 is a plan view of an electrode body according to the embodiment. [Figure 5] FIG. 10 is a diagram showing a state in which a positive electrode tab group is connected to a second positive electrode current collector and a negative electrode tab group is connected to a second negative electrode current collector. [Figure 6] 1(a) is an enlarged cross-sectional view of the outermost surface of the first electrode body and the vicinity of the first positive electrode tab group, and FIG. 1(b) is an enlarged cross-sectional view of the outermost surface of the second electrode body and the vicinity of the second positive electrode tab group. [Figure 7] FIG. 10 is a view showing the surface of the sealing plate facing the electrode body after the first positive electrode current collector and the first negative electrode current collector have been attached. [Figure 8] FIG. 10 is a view showing the surface of the sealing plate facing the electrode body after the second positive electrode current collector is attached to the first positive electrode current collector and the second negative electrode current collector is attached to the first negative electrode current collector. [Figure 9] FIG. 2 is a cross-sectional view taken along the short side of the sealing plate 2, showing the vicinity of the electrolyte injection hole. DETAILED DESCRIPTION OF THE INVENTION

[0012] The configuration of a prismatic secondary battery 20 as a secondary battery according to this embodiment will be described below. Note that the present invention is not limited to the following embodiment.

[0013] 1 and 2, a prismatic secondary battery 20 includes a battery case 100 made of a prismatic outer casing 1 in the shape of a bottomed rectangular cylinder having an opening, and a sealing plate 2 that seals the opening of the prismatic outer casing 1. The prismatic outer casing 1 and the sealing plate 2 are preferably made of metal. An electrode assembly 3 including a positive electrode plate and a negative electrode plate is housed within the prismatic outer casing 1 together with an electrolyte.

[0014] A positive electrode tab group 40 consisting of multiple positive electrode tabs 4d and a negative electrode tab group 50 consisting of multiple negative electrode tabs 5c are provided on the end of the electrode assembly 3 facing the sealing plate 2. The positive electrode tab group 40 is electrically connected to the positive electrode terminal 7 via the second positive electrode current collector 6b and the first positive electrode current collector 6a. The negative electrode tab group 50 is electrically connected to the negative electrode terminal 9 via the second negative electrode current collector 8b and the first negative electrode current collector 8a. The first positive electrode current collector 6a and the second positive electrode current collector 6b form the positive electrode current collector 6. The positive electrode current collector 6 may be formed as a single component. The first negative electrode current collector 8a and the second negative electrode current collector 8b form the negative electrode current collector 8. The negative electrode current collector 8 may be formed as a single component.

[0015] The first positive electrode current collector 6a, the second positive electrode current collector 6b, and the positive electrode terminal 7 are preferably made of metal, more preferably aluminum or an aluminum alloy. A resin outer insulating member 10 is disposed between the positive electrode terminal 7 and the sealing plate 2. A resin inner insulating member 11 is disposed between the first positive electrode current collector 6a and the second positive electrode current collector 6b and the sealing plate 2.

[0016] The first negative electrode current collector 8a, the second negative electrode current collector 8b, and the negative electrode terminal 9 are preferably made of metal, more preferably copper or a copper alloy. The negative electrode terminal 9 preferably has a portion made of aluminum or an aluminum alloy and a portion made of copper or a copper alloy. In this case, it is preferable that the portion made of copper or a copper alloy is connected to the first negative electrode current collector 8a, and that the portion made of aluminum or an aluminum alloy protrudes outward beyond the sealing plate 2. A resin outer insulating member 12 is disposed between the negative electrode terminal 9 and the sealing plate 2. A resin inner insulating member 13 is disposed between the sealing plate 2 and the first negative electrode current collector 8a and the second negative electrode current collector 8b.

[0017] An electrode assembly holder 14 made of a resin insulating sheet is disposed between the electrode assembly 3 and the rectangular exterior body 1. The electrode assembly holder 14 is preferably formed by folding a resin insulating sheet into a bag or box shape. An electrolyte injection hole 15 is provided in the sealing plate 2, and the electrolyte injection hole 15 is sealed with a sealing member 16. A blind rivet can be used as the sealing member 16. Alternatively, the metal sealing member 16 may be welded to the sealing plate 2. The sealing plate 2 is provided with a gas release valve 17 that breaks when the pressure inside the battery case 100 exceeds a predetermined value to release gas inside the battery case 100 to the outside of the battery case 100.

[0018] Next, a method for manufacturing the prismatic secondary battery 20 and the details of each component will be described.

[0019] [Positive electrode] First, a method for manufacturing the positive electrode plate will be described. [Preparation of positive electrode active material layer slurry] A lithium nickel cobalt manganese composite oxide as a positive electrode active material, polyvinylidene fluoride (PVdF) as a binder, a carbon material as a conductive material, and N-methyl-2-pyrrolidone (NMP) as a dispersion medium are mixed and kneaded so that the mass ratio of lithium nickel cobalt manganese composite oxide:PVdF:carbon material is 97.5:1:1.5 to prepare a positive electrode active material layer slurry.

[0020] [Preparation of positive electrode protective layer slurry] Alumina powder, carbon material as a conductive material, polyvinylidene fluoride (PVdF) as a binder, and N-methyl-2-pyrrolidone (NMP) as a dispersion medium are mixed together so that the mass ratio of alumina powder:carbon material:PVdF is 83:3:14 to prepare a protective layer slurry.

[0021] [Formation of Positive Electrode Active Material Layer and Positive Electrode Protective Layer] The positive electrode active material layer slurry and the positive electrode protective layer slurry prepared by the above-described method are applied to both sides of a 15 μm thick aluminum foil serving as a positive electrode core using a die coater, with the positive electrode protective layer slurry being applied near the edge of the positive electrode core where the positive electrode active material layer slurry is applied.

[0022] The positive electrode substrate coated with the positive electrode active material layer slurry and the positive electrode protective layer slurry is dried to remove the NMP contained in the positive electrode active material layer slurry and the positive electrode protective layer slurry. This results in the formation of a positive electrode active material layer and a protective layer. The positive electrode active material layer is then compressed by passing it through a pair of press rollers to form a positive electrode base plate. The positive electrode base plate is then cut into a predetermined shape to form a positive electrode plate 4.

[0023] 3(a) is a plan view of the positive electrode plate 4. The positive electrode plate 4 has positive electrode active material layers 4b formed on both sides of an aluminum foil serving as a positive electrode core 4a. A positive electrode core exposed portion where the positive electrode active material layers 4b are not formed on both sides of the positive electrode core 4a is provided as a positive electrode tab 4d on one end side of the positive electrode plate 4. In addition, near the end side of the positive electrode plate 4 where the positive electrode tab 4d is provided and near the base of the positive electrode tab 4d, positive electrode protective layers 4c are formed on both sides of the positive electrode core 4a.

[0024] [Negative electrode] Next, a method for manufacturing the negative electrode plate will be described. [Preparation of negative electrode active material layer slurry] Graphite as the negative electrode active material, styrene butadiene rubber (SBR) and carboxymethyl cellulose (CMC) as binders, and water as a dispersion medium are kneaded together so that the mass ratio of graphite:SBR:CMC is 98:1:1 to prepare a negative electrode active material layer slurry.

[0025] [Formation of negative electrode active material layer] The negative electrode active material layer slurry prepared by the method described above is applied to both sides of a copper foil having a thickness of 8 μm as a negative electrode substrate using a die coater.

[0026] The negative electrode substrate coated with the negative electrode active material layer slurry is dried to remove water contained in the negative electrode active material layer slurry. This forms a negative electrode active material layer. The negative electrode active material layer is then compressed by passing it between a pair of press rollers to form a negative electrode base plate. The negative electrode base plate is then cut into a predetermined shape to form a negative electrode plate 5.

[0027] 3(b) is a plan view of the negative electrode plate 5. The negative electrode plate 5 has negative electrode active material layers 5b formed on both sides of a copper foil serving as a negative electrode core 5a. An exposed negative electrode core portion where the negative electrode active material layers 5b are not formed on both sides of the negative electrode core 5a is provided on one edge of the negative electrode plate 5 as a negative electrode tab 5c.

[0028] [Preparation of electrode body] The positive electrode plates 4 and negative electrode plates 5 prepared by the above-described method are stacked with a rectangular polyolefin separator 90 interposed therebetween to produce a laminated electrode assembly 3. FIG. 4 is a plan view of the electrode assembly 3. The electrode assembly 3 has a positive electrode tab group 40 at its end, in which the positive electrode tabs 4d provided on each positive electrode plate 4 are stacked. The electrode assembly 3 also has a negative electrode tab group 50 at its end, in which the negative electrode tabs 5c provided on each negative electrode plate 5 are stacked. The electrode assembly 3 has a flat shape. Note that separators 90 are arranged on both outer surfaces of the electrode assembly 3 in the stacking direction of the positive electrode plates 4, separator 90, and negative electrode plates 5.

[0029] The separator included in the electrode assembly 3 may be a plurality of rectangular separators, or a strip-shaped separator folded in a zigzag pattern. A strip-shaped separator may also be wound within the electrode assembly 3. The separator may also have a heat-resistant layer on the surface of a polyolefin substrate. The heat-resistant layer is a layer containing inorganic particles such as ceramic and a binder. An adhesive layer may also be formed on the surface of the separator, and the adhesive layer may bond the separator to at least one of the positive electrode plate 4 and the negative electrode plate 5.

[0030] The number of stacked positive electrode plates in one electrode body 3 is not particularly limited, but is preferably 10 to 100 layers, and more preferably 30 to 80 layers. It is preferable that the number of stacked negative electrode plates in one electrode body 3 be greater than the number of stacked positive electrode plates so that both surfaces of all positive electrode plates face negative electrode plates.

[0031] The electrode assembly 3 may be a flat wound electrode assembly in which a strip-shaped positive electrode plate and a strip-shaped negative electrode plate are wound with a strip-shaped separator interposed therebetween.

[0032] [Connection between current collector and tab] Two electrode assemblies 3 are fabricated using the method described above and designated as a first electrode assembly 3a and a second electrode assembly 3b. The positive electrode tab group 40 and negative electrode tab group 50 of the first electrode assembly 3a are designated as a first positive electrode tab group 40a and a first negative electrode tab group 50a, respectively. The positive electrode tab group 40 and negative electrode tab group 50 of the second electrode assembly 3b are designated as a second positive electrode tab group 40b and a second negative electrode tab group 50b, respectively. The first electrode assembly 3a and the second electrode assembly 3b may have exactly the same configuration, or may have different configurations.

[0033] 5, the first positive electrode tab group 40a of the first electrode body 3a and the second positive electrode tab group 40b of the second electrode body 3b are connected to the second positive electrode current collector 6b to form a joint 60. Furthermore, the first negative electrode tab group 50a of the first electrode body 3a and the second negative electrode tab group 50b of the second electrode body 3b are connected to the second negative electrode current collector 8b to form a joint 61. Examples of the joining method that can be used include ultrasonic welding (ultrasonic bonding), resistance welding, and laser welding.

[0034] 5 and 6(a), a first outermost separator 90a serving as a first insulating sheet is disposed on the outermost surface of the first electrode body 3a, which is the outermost surface that faces the second electrode body 3b when the prismatic secondary battery 20 is formed. A first tape 80a is attached so as to straddle the first outermost separator 90a and the positive electrode tabs 4d that constitute the first positive electrode tab group 40a. The attachment of the first tape 80a may be performed before connecting the first positive electrode tab group 40a and the second positive electrode tab group 40b to the second positive electrode current collector 6b, or may be performed after connecting the first positive electrode tab group 40a and the second positive electrode tab group 40b to the second positive electrode current collector 6b.

[0035] 5 and 6(b), a second outermost separator 90b serving as a second insulating sheet is disposed on the outermost surface of the second electrode body 3b, which is the outermost surface that faces the first electrode body 3a when the battery is formed into a prismatic secondary battery 20. A second tape 80b is attached so as to straddle the second outermost separator 90b and the positive electrode tabs 4d that constitute the second positive electrode tab group 40b. The attachment of the second tape 80b may be performed before connecting the first negative electrode tab group 50a and the second negative electrode tab group 50b to the second negative electrode current collector 8b, or may be performed after connecting the first negative electrode tab group 50a and the second negative electrode tab group 50b to the second negative electrode current collector 8b.

[0036] The second positive electrode current collector 6b has a thin portion 6c formed therein, and a current collector opening 6d formed within the thin portion 6c. The second positive electrode current collector 6b has a current collector through-hole 6e formed therein at a position facing the electrolyte injection hole 15 of the sealing plate 2. The second negative electrode current collector 8b has a thin portion 8c formed therein, and a current collector opening 8d formed within the thin portion 8c.

[0037] [Installing each part on the sealing plate] 7 is a diagram showing the surface of the sealing plate 2 on the inner side of the battery, to which the various components have been attached. The various components are attached to the sealing plate 2 as follows.

[0038] An external insulating member 10 is placed on the outer surface of the battery around the positive terminal insertion hole 2a of the sealing plate 2. An internal insulating member 11 and a first positive current collector 6a are placed on the inner surface of the battery around the positive terminal insertion hole 2a of the sealing plate 2. Then, a positive terminal 7 is inserted from the outside of the battery through the through hole of the external insulating member 10, the positive terminal insertion hole 2a of the sealing plate 2, the through hole of the internal insulating member 11, and the through hole of the first positive current collector 6a, and the tip of the positive terminal 7 is crimped onto the first positive current collector 6a. This fixes the positive terminal 7 and the first positive current collector 6a to the sealing plate 2. Note that it is preferable to weld the crimped portion of the positive terminal 7 to the first positive current collector 6a.

[0039] An external insulating member 12 is placed on the outer surface of the battery around the negative terminal insertion hole 2b of the sealing plate 2. An internal insulating member 13 and a first negative electrode current collector 8a are placed on the inner surface of the battery around the negative terminal insertion hole 2b of the sealing plate 2. Then, a negative electrode terminal 9 is inserted from the outside of the battery through the through hole of the external insulating member 12, the negative electrode terminal insertion hole 2b of the sealing plate 2, the through hole of the internal insulating member 13, and the through hole of the first negative electrode current collector 8a, and the tip of the negative electrode terminal 9 is crimped onto the first negative electrode current collector 8a. This fixes the negative electrode terminal 9 and the first negative electrode current collector 8a to the sealing plate 2. Note that it is preferable to weld the crimped portion of the negative electrode terminal 9 to the first negative electrode current collector 8a.

[0040] The inner insulating member 11 has an insulating member main body 11a that is arranged along the inner surface of the battery, i.e., the sealing plate 2. An insulating member opening 11b is provided in the insulating member main body 11a at a portion that faces the electrolyte injection hole 15 provided in the sealing plate 2. A cylindrical portion 11c is provided around the insulating member opening 11b. The cylindrical portion 11c extends from the insulating member main body 11a toward the first electrode body 3a and the second electrode body 3b.

[0041] [Connection between the first and second current collectors] FIG. 8 is a diagram showing the surface of the sealing plate 2 facing the inside of the battery after the second positive electrode current collector 6b has been attached to the first positive electrode current collector 6a and the second negative electrode current collector 8b has been attached to the first negative electrode current collector 8a. The second positive electrode current collector 6b, to which the first positive electrode tab group 40a and the second positive electrode tab group 40b are connected, is placed on the inner insulating member 11 so that a portion of the second positive electrode current collector 6b overlaps the first positive electrode current collector 6a. The thin-walled portion 6c is then irradiated with a laser to bond the second positive electrode current collector 6b and the first positive electrode current collector 6a. This forms a bonded portion 62. The second negative electrode current collector 8b, to which the first negative electrode tab group 50a and the second negative electrode tab group 50b are connected, is placed on the inner insulating member 13 so that a portion of the second negative electrode current collector 8b overlaps the first negative electrode current collector 8a. The thin-walled portion 8c is then irradiated with a laser to bond the second negative electrode current collector 8b and the first negative electrode current collector 8a. This forms a bonded portion 63.

[0042] [Assembly of prismatic secondary batteries] The first electrode body 3a and the second electrode body 3b are gathered together so that the first positive electrode tab group 40a and the second positive electrode tab group 40b are curved in different directions, and the first negative electrode tab group 50a and the second negative electrode tab group 50b are curved in different directions. The gathered first electrode body 3a and second electrode body 3b are then placed in an electrode body holder 14 made of an insulating sheet formed into a box or bag shape.

[0043] The first electrode body 3a and the second electrode body 3b wrapped in the electrode body holder 14 are inserted into the rectangular outer casing 1. Then, the sealing plate 2 and the rectangular outer casing 1 are welded together, and the opening of the rectangular outer casing 1 is sealed with the sealing plate 2.

[0044] FIG. 9 is a cross-sectional view of the vicinity of electrolyte injection hole 15 along the short direction of sealing plate 2 after the opening of rectangular exterior body 1 has been sealed with sealing plate 2. As shown in FIG. 9, the electrolyte injection hole 15 is disposed between the first positive electrode tab group 40a and the second positive electrode tab group 40b in the short-side direction of the sealing plate 2. Furthermore, the first tape 80a and the second tape 80b are disposed at positions facing the electrolyte injection hole 15. As described above, the first positive electrode tab group 40a and the second positive electrode tab group 40b are curved in different directions.

[0045] An electrolyte is injected into the battery case 100 through an electrolyte injection hole 15 provided in the sealing plate 2. For example, a nonaqueous electrolyte obtained by dissolving an electrolyte salt in an organic solvent can be used as the electrolyte. The electrolyte injected into the battery case 100 through the electrolyte injection hole 15 provided in the sealing plate 2 passes through the insulating member opening 11b, the cylindrical portion 11c, and the current collector through-hole 6e, and moves toward the first electrode body 3a and the second electrode body 3b. Here, the first tape 80a is attached across the first outermost separator 90a located on the outermost surface of the first electrode body 3a facing the second electrode body 3b and the first positive electrode tab group 40a. In addition, the second tape 80b is attached across the second outermost separator 90b located on the outermost surface of the second electrode body 3b facing the first electrode body 3a and the second positive electrode tab group 40b. This prevents the first outermost separator 90a, the second outermost separator 90b, or other separators 90 from being turned up by the injected electrolyte. This prevents the positive electrode plate 4 and the negative electrode plate 5 from being short-circuited in an unintended location due to the first outermost separator 90a, the second outermost separator 90b, or another separator 90 being turned up. This also reliably prevents the positive electrode active material layer 4b or the negative electrode active material layer 5b from falling off due to the electrolyte being injected too quickly. This prevents a short circuit caused by the fallen positive electrode active material layer 4b or the negative electrode active material layer 5b.

[0046] 5 and 8, the width of the first tape 80a and the second tape 80b is preferably greater than the width of the first positive electrode tab group 40a and the second positive electrode tab group 40b, which more effectively prevents the first outermost separator 90a, the second outermost separator 90b, or other separators 90 from rolling up. The widths of the first tape 80a and the second tape 80b can also be made smaller than the widths of the first positive electrode tab group 40a and the second positive electrode tab group 40b. When a current interruption mechanism is provided in the conductive path between the first positive electrode tab group 40a and the second positive electrode tab group 40b and the positive electrode terminal 7, making the widths of the first tape 80a and the second tape 80b smaller than the widths of the first positive electrode tab group 40a and the second positive electrode tab group 40b reliably prevents the first tape 80a and the second tape 80b from coming into contact with the current interruption mechanism. Alternatively, making the widths of the first tape 80a and the second tape 80b smaller than the widths of the first positive electrode tab group 40a and the second positive electrode tab group 40b prevents the first tape 80a and the second tape 80b from coming into contact with the current interruption mechanism when attaching the first tape 80a and the second tape 80b, allowing the first tape 80a and the second tape 80b to be attached in a preferable state.

[0047] The length of at least one of the first tape 80a and the second tape 80b can be increased so that at least one of the first tape 80a and the second tape 80b covers at least one of the joints 60. When the joint 60 is covered by at least one of the first tape 80a and the second tape 80b, even if foreign matter such as metal powder adheres to the joint 60, the metal powder etc. can be prevented from entering the electrode body 3.

[0048] It is preferable that the cylindrical portion 11c penetrates the current collector through-hole 6e. The end portion of the cylindrical portion 11c facing the first electrode body 3a and the second electrode body 3b (the lower end portion in FIG. 9) is preferably located closer to the first electrode body 3a and the second electrode body 3b (lower in FIG. 9) than the surface of the first positive electrode tab group 40a stacked on the second positive electrode current collector 6b facing the first electrode body 3a and the second electrode body 3b. The end portion of the cylindrical portion 11c facing the first electrode body 3a and the second electrode body 3b (the lower end portion in FIG. 9) is preferably located closer to the first electrode body 3a and the second electrode body 3b (lower in FIG. 9) than the surface of the second positive electrode tab group 40b stacked on the second positive electrode current collector 6b facing the first electrode body 3a and the second electrode body 3b.

[0049] After the electrolyte is poured into the battery case 100 through an electrolyte pouring hole 15 provided in the sealing plate 2, the electrolyte pouring hole 15 is sealed with a sealing member 16 such as a blind rivet.

[0050] [tape] The tapes such as the first tape 80a and the second tape 80b preferably comprise a base layer and an adhesive layer formed on the base layer. The base layer is preferably made of resin. The base layer is preferably a material selected from polypropylene, polyimide, polyphenylene sulfide, polyethylene, polyester, polyethylene naphthalate, etc., or a mixture thereof. In particular, the base layer is preferably made of polypropylene. The adhesive layer preferably has adhesiveness at room temperature (25°C). It may also be heat-sealable. The adhesive layer is preferably a material selected from rubber-based adhesives, acrylic-based adhesives, polyethylene-based adhesives, etc., or a mixture thereof. In particular, the adhesive layer is preferably a rubber-based adhesive. The tape may be a heat-sealable sheet. In this case, the tape is adhered by heat welding. The tape may also be a glass cloth tape.

[0051] The thickness of the tape is not particularly limited, but can be, for example, 10 μm to 500 μm.

[0052] The timing at which the tape is attached across the tab group and the insulating sheet is not particularly limited as long as it is before the electrolyte is injected into the battery case through the electrolyte injection hole, and may be before or after the tab group is connected to the current collector.

[0053] [Insulation sheet] The insulating sheet disposed on the outermost surface of the electrode assembly can be made of the same material as the separator disposed between the positive and negative electrode plates. Alternatively, an insulating sheet different from the separator may be disposed on the outermost surface of the electrode assembly. The insulating sheet may be non-porous, but is preferably porous so that the electrolyte can easily penetrate into the electrode assembly. When the separator is zigzag folded, one end of the separator can be wound around the outermost periphery of the electrode assembly. The separator located at the outermost periphery of the electrode assembly can be an insulating sheet. Note that an insulating sheet that is a separate member from the zigzag folded separator may be wound around the outermost periphery of the electrode assembly. In the case of a wound electrode assembly, a strip-shaped separator disposed between the positive and negative electrode plates can be wound around the outermost periphery of the electrode assembly. The outermost separator can be an insulating sheet. Note that an insulating sheet separate from the strip-shaped separator may also be wound around the outermost periphery of the electrode assembly.

[0054] In the above-described embodiment, an example has been shown in which the positive electrode tab group is arranged in a position facing the electrolyte injection hole provided in the sealing plate, but the negative electrode tab group may also be arranged in a position facing the electrolyte injection hole.

[0055] In the above-described embodiment, an example has been shown in which the first electrode body 3a and the second electrode body 3b are laminated electrode bodies, but the first electrode body 3a and the second electrode body 3b may each be a wound electrode body. When the first electrode body 3a and the second electrode body 3b are each a wound electrode body, a positive electrode tab group and a negative electrode tab group are formed on the end of each of the first electrode body 3a and the second electrode body 3b on the sealing plate 2 side.

[0056] In the above-described embodiment, an example has been shown in which the positive electrode current collector and the negative electrode current collector each consist of two components, but the positive electrode current collector and the negative electrode current collector each may consist of a single component. When the positive electrode current collector and the negative electrode current collector each consist of a single component, it is preferable to connect a positive electrode tab group and a negative electrode tab group to the positive electrode current collector and the negative electrode current collector, respectively, and then connect the positive electrode current collector and the negative electrode current collector to a positive electrode terminal and a negative electrode terminal attached to a sealing plate, respectively.

[0057] When the flat electrode body is viewed from above, the tape can be attached to the insulating sheet located on the outermost surface of the electrode body so that the tape does not overlap with the positive electrode active material layer, which can prevent large local pressure from being applied to the electrode body.

[0058] Known materials can be used for the positive electrode plate, negative electrode plate, separator, electrolyte, and the like. [Explanation of symbols]

[0059] 20 Prismatic secondary battery 100···Battery case 1. Rectangular exterior body 2...Sealing plate 2a Positive terminal insertion hole 2b Negative terminal insertion hole 3...Electrode body 3a...First electrode body 3b...Second electrode body 4. Positive electrode plate 4a...Positive electrode core 4b...Positive electrode active material layer 4c...Positive electrode protective layer 4d Positive electrode tab 40 Positive electrode tab group 40a···First positive electrode tab group 40b Second positive electrode tab group 5. Negative electrode plate 5a...Negative electrode core 5b...Negative electrode active material layer 5c Negative electrode tab 50 Negative electrode tab group 50a···First negative electrode tab group 50b Second negative electrode tab group 6...Positive electrode current collector 6a...First positive electrode current collector 6b...Second positive electrode current collector 6c...Thin wall part 6d...Collector opening 6e Current collector through hole 7 Positive terminal 8...Negative electrode current collector 8a...First negative electrode current collector 8b...Second negative electrode current collector 8c...Thin wall part 8d...Current collector opening 9...Negative terminal 10. External insulating member 11...Inner insulating member 11a... Insulating member main body 11b Insulating member opening 11c Cylindrical part 12. External insulating member 13 Internal insulating member 14. Electrode holder 15...Electrolyte injection hole 16...Sealing member 17 Gas exhaust valve 60, 61, 62, 63...junction 90...Separator 90a···First outermost separator 90b Second outermost separator 80a···1st tape 80b...2nd tape

Claims

1. a first electrode assembly including a positive electrode plate and a negative electrode plate; a second electrode assembly including a positive electrode plate and a negative electrode plate; an exterior body having an opening and accommodating the first electrode body and the second electrode body; a sealing plate that seals the opening and has a longitudinal direction and a lateral direction perpendicular to the longitudinal direction; a current collector disposed closer to the sealing plate than the first electrode body and the second electrode body; a terminal electrically connected to the current collector and attached to the sealing plate, the sealing plate has an electrolyte injection hole, The first electrode body and the second electrode body are aligned in the short-side direction, the first electrode body has an insulating sheet on its outermost surface on the side of the second electrode body, the first electrode body has a first electrode tab group electrically connected to the positive electrode plate or the negative electrode plate at an end on the sealing plate side, the second electrode body has a second electrode tab group electrically connected to the positive electrode plate or the negative electrode plate at an end on the sealing plate side, the first electrode tab group and the second electrode tab group are connected to the current collector; Tape is attached to the insulating sheet, the tape includes a first portion attached to the insulating sheet, and a second portion connected to the first portion, extending in the short-side direction in a direction away from the second electrode body, and attached to the first electrode tab group; the width of the tape is greater than the width of the first electrode tab group in the longitudinal direction; The electrolyte injection hole is sealed with a sealing member. Secondary battery.

2. 2. The secondary battery according to claim 1, wherein the insulating sheet is a porous sheet.

3. the first electrode body is a laminated electrode body including a plurality of the positive electrode plates and a plurality of the negative electrode plates, 3. The secondary battery according to claim 1, wherein the second electrode body is a laminated electrode body including a plurality of the positive electrode plates and a plurality of the negative electrode plates.

4. an insulating member is disposed on the battery interior side of the sealing plate, the insulating member has an insulating member opening at a position facing the electrolyte injection hole, 4. The secondary battery according to claim 1, wherein a cylindrical portion is formed around the opening of the insulating member.

5. 5. The secondary battery according to claim 1, wherein the current collector has a current collector through-hole at a position opposite the electrolyte injection hole.

Citation Information

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