Prismatic lithium-ion secondary battery
A groove in the battery case side wall disperses stress, addressing the issue of weld damage from electrode expansion and contraction, maintaining the battery's structural integrity.
Patent Information
- Application Number
- JP2022198531
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-12-13
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2042-12-13
AI Technical Summary
The expansion and contraction of the electrode assembly in prismatic lithium-ion secondary batteries during charging and discharging cause stress concentration at the weld between the lid and the exterior body, leading to potential damage to the battery case due to repeated cycles.
Incorporating a groove in at least one of the long side walls of the battery case, perpendicular to the lid, to disperse stress and alleviate concentration at the welded portion, thereby preventing damage from repeated expansion and contraction of the electrode body.
The groove effectively disperses stress, preventing damage to the welded portion of the battery case, ensuring the structural integrity of the battery over repeated charge and discharge cycles.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a prismatic lithium ion secondary battery. [Background technology]
[0002] In recent years, there has been a rapid increase in demand for lithium-ion secondary batteries as power sources for driving vehicles such as electric vehicles (BEVs), hybrid electric vehicles (HEVs), and plug-in hybrid electric vehicles (PHEVs).
[0003] Lithium-ion secondary batteries used as vehicle driving power sources, i.e., automotive lithium-ion secondary batteries, are generally used in the form of an assembled battery in which multiple batteries are electrically connected. Automotive lithium-ion secondary batteries are typically prismatic to facilitate the assembly of the assembled battery, and prismatic lithium-ion secondary batteries include an electrode assembly, an electrolyte, and a prismatic battery case that houses these. It is known that in prismatic lithium-ion secondary batteries, the expansion and contraction of the electrode assembly during charging and discharging can cause deformation of the battery case (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-40684 Summary of the Invention [Problem to be solved by the invention]
[0005] Vehicles such as BEVs are expected to have a further improved driving range. One way to meet this demand is to increase the amount of active material in the positive and negative electrodes to increase the capacity of the lithium-ion secondary battery. Meanwhile, the battery case of a typical prismatic lithium-ion secondary battery is sealed by welding the lid and the exterior body together. After extensive research, the inventors discovered that increasing the packing density of the active material in the positive and negative electrodes increases the volume difference between the expansion and contraction of the electrode body during charge and discharge, resulting in stress concentration at the weld between the lid and the exterior body. This can lead to damage to the battery case at the weld when the battery is repeatedly charged and discharged.
[0006] Therefore, an object of the present invention is to provide a prismatic lithium ion secondary battery in which damage to the welded portion of the battery case due to repeated expansion and contraction of the electrode body is suppressed. [Means for solving the problem]
[0007] The prismatic lithium-ion secondary battery disclosed herein includes an electrode assembly, an electrolyte, and a prismatic battery case that houses the electrode assembly and the electrolyte. The battery case includes an exterior body and a lid. The battery case has a welded portion where the exterior body and the lid body are joined by welding. The exterior body has a rectangular bottom wall facing the lid body, a pair of long side walls, and a pair of short side walls. The electrode assembly has a flat portion in which a positive electrode and a negative electrode are stacked. At least one of the pair of long side walls of the exterior body has a groove in a direction perpendicular to the lid body, located between the lid body and the lid-side end of the flat portion of the electrode assembly.
[0008] With this configuration, it is possible to provide a prismatic lithium ion secondary battery in which damage to the welded portion of the battery case due to repeated expansion and contraction of the electrode body is suppressed. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a perspective view schematically illustrating a prismatic lithium-ion secondary battery according to an embodiment of the present invention. [Figure 2] FIG. 2 is a schematic longitudinal sectional view taken along line II-II in FIG. [Figure 3] FIG. 2 is a schematic exploded view showing the configuration of an electrode body of the prismatic lithium-ion secondary battery according to the present embodiment. [Figure 4] FIG. 2 is a schematic cross-sectional view of the upper part of a prismatic lithium-ion secondary battery according to the present embodiment. [Figure 5] FIG. 10 is a schematic cross-sectional view illustrating the vicinity of a welded portion between a lid body and a long side wall, for explaining a case where there is no groove. [Figure 6] FIG. 10 is a schematic cross-sectional view illustrating the vicinity of a welded portion between a lid body and a long side wall, for explaining the case where a groove is provided. [Figure 7] FIG. 10 is a perspective view of the prismatic lithium-ion secondary battery according to the present embodiment, for illustrating a modified example of the groove. [Figure 8] FIG. 10 is a perspective view of the prismatic lithium-ion secondary battery according to the present embodiment, for illustrating another modified example of the groove. [Figure 9] FIG. 10 is a schematic cross-sectional view of the upper part of the prismatic lithium-ion secondary battery according to the present embodiment, for explaining yet another modified example of the groove. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, embodiments of the present invention will be described with reference to the drawings. Matters not mentioned in this specification but necessary for implementing the present invention can be understood as design matters for a person skilled in the art based on the prior art in the relevant field. The present invention can be implemented based on the contents disclosed in this specification and the technical common sense in the relevant field. Furthermore, in the following drawings, components and parts that perform the same function are denoted by the same reference numerals. Furthermore, the dimensional relationships (length, width, thickness, etc.) in each drawing do not reflect the actual dimensional relationships. In this specification, a numerical range expressed as "A to B" includes A and B.
[0011] In this specification, the term "secondary battery" refers to an electricity storage device that can be repeatedly charged and discharged. In addition, in this specification, the term "lithium ion secondary battery" refers to a secondary battery that uses lithium ions as charge carriers and achieves charging and discharging by the transfer of charge associated with the lithium ions between the positive and negative electrodes.
[0012] As an example of the prismatic lithium-ion secondary battery disclosed herein, a prismatic lithium-ion secondary battery according to this embodiment will be described below with reference to FIGS.
[0013] <Outline of lithium-ion secondary battery configuration> Fig. 1 is a perspective view of a prismatic lithium-ion secondary battery 100. Fig. 2 is a schematic longitudinal cross-sectional view taken along line II-II in Fig. 1. In the following description, the symbols L, R, U, and D in the drawings represent left, right, top, and bottom, and the symbols X, Y, and Z in the drawings represent the long side direction of the prismatic lithium-ion secondary battery 100, the short side direction perpendicular to the long side direction, and the up-down direction, respectively. However, these directions are merely used for the convenience of explanation and do not in any way limit the installation form of the prismatic lithium-ion secondary battery 100.
[0014] As shown in FIG. 2, the prismatic lithium-ion secondary battery 100 is a sealed battery constructed by accommodating a flat electrode assembly 20 and a nonaqueous electrolyte (not shown) inside a battery case 30. The battery case 30 is provided with a positive electrode terminal 42 and a negative electrode terminal 44 for external connection. The battery case 30 is also provided with a thin-walled safety valve 38 that is designed to release internal pressure when the internal pressure of the battery case 30 rises above a predetermined level. The battery case 30 is also provided with an injection port (not shown) for injecting the nonaqueous electrolyte. The positive electrode terminal 42 is electrically connected to a positive electrode current collector plate 42a. The negative electrode terminal 44 is electrically connected to a negative electrode current collector plate 44a.
[0015] As shown in Fig. 1, the battery case 30 is rectangular and is composed of an exterior body 32 that houses the electrode assembly 20, and a lid body 34 that seals the opening of the exterior body 32. The exterior body 32 has a bottom wall, a pair of long side walls 32a that face each other, and a pair of short side walls 32b that face each other. The bottom wall is rectangular and faces the lid body 34. The pair of long side walls 32a and the pair of short side walls 32b each extend from the bottom wall.
[0016] FIG. 4 schematically shows a cross section of the upper part of a prismatic lithium-ion secondary battery 100. FIG. 4 is a cross section perpendicular to direction X. As shown in FIG. 4, the exterior body 32 and the lid body 34 are welded and sealed by laser welding or the like. Therefore, the battery case 30 has a welded portion 36 where the exterior body 32 and the lid body 34 are joined. As shown in FIGS. 1 and 4, a groove 80A is formed in the pair of long side walls 32a. This groove 80A will be described later.
[0017] The material of the battery case 30 is not particularly limited, and may be, for example, a lightweight metal material with good thermal conductivity, such as aluminum.
[0018] 3 is an exploded view schematically showing the configuration of the electrode assembly 20 of the prismatic lithium-ion secondary battery 100. In this embodiment, the electrode assembly 20 is a wound electrode assembly. However, the electrode assembly 20 is not limited to this, and may be a stacked electrode assembly in which multiple positive electrodes and multiple negative electrodes are alternately stacked with separators interposed therebetween.
[0019] As shown in Figures 2 and 3, the wound electrode body 20 has a configuration in which a long positive electrode sheet 50 and a long negative electrode sheet 60 are overlapped with two long separator sheets 70 interposed between them and wound in the longitudinal direction. The positive electrode sheet 50 has a configuration in which a positive electrode active material layer 54 is formed along the longitudinal direction on one or both sides (both sides in this case) of a long positive electrode current collector 52. The negative electrode sheet 60 has a configuration in which a negative electrode active material layer 64 is formed along the longitudinal direction on one or both sides (both sides in this case) of a long negative electrode current collector 62. The positive electrode active material layer-free portion 52a (i.e., a portion where the positive electrode active material layer 54 is not formed and the positive electrode current collector 52 is exposed) and the negative electrode active material layer-free portion 62a (i.e., a portion where the negative electrode active material layer 64 is not formed and the negative electrode current collector 62 is exposed) are formed so as to protrude outward from both ends in the winding axis direction (i.e., the sheet width direction perpendicular to the longitudinal direction) of the wound electrode body 20. The positive electrode active material layer-free portion 52a and the negative electrode active material layer-free portion 62a are joined to the positive electrode current collector 42a and the negative electrode current collector 44a, respectively.
[0020] As shown in FIGS. 3 and 4 , the wound electrode body 20 has a flat portion 22 and a pair of rounded portions 24 at both ends of the flat portion 22. Typically, the flat portion 22 of the wound electrode body 20 contacts the inner surface of the long side wall 32a of the battery case 30. From the viewpoint of suppressing metallic lithium deposition, in the wound electrode body 20, the dimension of the negative electrode active material layer 64 in the X direction is typically larger than the dimension of the positive electrode active material layer 54. Therefore, the dimension of the contact portion between the wound electrode body 20 and the long side wall 32a in the X direction is typically the same as the dimension of the negative electrode active material layer 64 in the X direction.
[0021] The number of layers in the wound electrode body 20 (in other words, the number of layers of the positive electrode layers or negative electrode layers in the wound electrode body) is not particularly limited. The number of layers in the wound electrode body 20 may be, for example, 40 or more or 60 or more. A larger number of layers in the wound electrode body 20 allows the battery to have a higher capacity, which is suitable for the recent requirements for in-vehicle lithium-ion secondary batteries. On the other hand, a larger number of layers in the wound electrode body 20 increases the volume change of the wound electrode body 20 during charge and discharge. Therefore, the larger the number of layers in the wound electrode body 20, the greater the battery capacity and the greater the effects of the present invention. Therefore, the number of layers in the wound electrode body 20 is preferably 90 or more.
[0022] The positive electrode current collector 52 constituting the positive electrode sheet 50 may be a known positive electrode current collector used in lithium ion secondary batteries, and examples thereof include aluminum foil.
[0023] The positive electrode active material layer 54 contains a positive electrode active material. Examples of the positive electrode active material include lithium composite metal oxides (e.g., lithium manganese composite oxides, lithium nickel manganese composite oxides, lithium nickel cobalt manganese composite oxides, lithium nickel cobalt aluminum composite oxides, etc.) and lithium transition metal phosphate compounds (e.g., lithium iron phosphate, etc.). The positive electrode active material layer 54 may also contain a conductive material, a binder, etc. Suitable conductive materials include carbon black such as acetylene black (AB) and carbon nanotubes. Suitable binders include polyvinylidene fluoride (PVDF), etc. The content of the positive electrode active material in the positive electrode active material layer 54 is, for example, 80% by mass or more, and preferably 90% by mass or more.
[0024] The packing density of the positive electrode active material layer 54 is not particularly limited. If the packing density of the positive electrode active material layer 54 is increased, the capacity of the battery can be increased, but the volume change of the wound electrode body 20 during charge and discharge increases. Therefore, the effect of the present invention becomes greater as the packing density of the positive electrode active material layer 54 is increased. For this reason, the packing density of the positive electrode active material layer 54 is set to 2.4 g / cm. 3 More than 2.6g / cm is preferable.3 More preferably, 3.5 g / cm 3 The upper limit of the packing density of the positive electrode active material layer 54 is not particularly limited, but is preferably 4.3 g / cm. 3 or less, or 4.1 g / cm 3 It can be the following:
[0025] The negative electrode current collector 62 constituting the negative electrode sheet 60 may be a known negative electrode current collector used in lithium ion secondary batteries, and examples thereof include copper foil.
[0026] The negative electrode active material layer 64 contains a negative electrode active material. For example, graphite or the like can be used as the negative electrode active material. The negative electrode active material layer 64 may also contain a binder, a thickener, or the like. For example, styrene butadiene rubber (SBR) or the like can be used as the binder. For example, carboxymethyl cellulose (CMC) or the like can be used as the thickener. The content of the negative electrode active material in the negative electrode active material layer 64 is, for example, 85% by mass or more, and preferably 95% by mass or more.
[0027] The packing density of the negative electrode active material layer 64 is not particularly limited. When the packing density of the negative electrode active material layer 64 is increased, the capacity of the battery can be increased, but the volume change of the wound electrode body 20 during charge and discharge increases. Therefore, the greater the packing density of the negative electrode active material layer 64, the greater the effect of the present invention. For this reason, the packing density of the negative electrode active material layer 64 is set to 1.1 g / cm. 3 More than 1.3 g / cm is preferable. 3 More preferably, 1.5 g / cm 3 The upper limit of the packing density of the negative electrode active material layer 64 is not particularly limited, but is preferably 2.2 g / cm. 3 or less, or 2.0 g / cm 3 It can be the following:
[0028] The separator 70 may be a known separator used in lithium ion secondary batteries, and examples thereof include a porous sheet made of a resin such as polyethylene (PE) or polypropylene (PP). The porous sheet may have a single-layer structure or a multi-layer structure. A heat-resistant layer (HRL) may be provided on the surface of the separator 70.
[0029] The nonaqueous electrolyte may be a known nonaqueous electrolyte used in lithium ion secondary batteries. Typically, the nonaqueous electrolyte contains a nonaqueous solvent and a supporting salt (in other words, an electrolyte salt). Examples of the nonaqueous solvent include carbonates, esters, and ethers. Examples of the supporting salt include lithium salts such as LiPF6. The nonaqueous electrolyte may contain various additives such as a gas generating agent, a film-forming agent, a dispersant, and a thickener. Although a nonaqueous electrolyte is used as the electrolyte in this embodiment, the electrolyte may be a solid electrolyte.
[0030] <groove> 1 and 4, the pair of long side walls 32a have a groove 80A. As shown in Fig. 4, the groove 80A is located between the lid body 34 and the end 22a of the flat portion 22 of the wound electrode body 20 in a direction perpendicular to the lid body 34 (i.e., the Z direction in the drawing). The end 22a is the end of the flat portion of the wound electrode body 20 on the lid body 34 side.
[0031] 5 is a schematic cross-sectional view showing an example in which no groove is formed in the long side wall, and showing the vicinity of welded portion 536 between lid body 534 and long side wall 532a. When the wound electrode body (not shown) expands, the exterior body of the battery case bulges outward. Therefore, as shown by the arrow in the figure, stress acts in a direction that moves long side wall 532a of the exterior body away from lid body 534, and this stress is concentrated at welded portion 536. When a lithium-ion secondary battery is repeatedly charged and discharged, the wound electrode body repeatedly expands and contracts, and repeated loads are applied to welded portion 536, which may cause damage to welded portion 536.
[0032] 6 is a schematic cross-sectional view showing the vicinity of the welded portion 36 between the lid 34 and the long side wall 32a, as an example of this embodiment. In this embodiment, a groove 80A is formed in the long side wall 32a of the exterior body 32 of the battery case 30. When the wound electrode body 20 expands, stress acts in a direction that moves the long side wall 32a of the exterior body away from the lid 34, but the stress can be dispersed by the long side wall 32a deforming from the groove 80A. This can alleviate the concentration of stress at the welded portion 36, and prevent damage to the welded portion 36 due to repeated expansion and contraction of the wound electrode body.
[0033] The cross-sectional shape of the groove 80A is V-shaped in the illustrated example, but is not limited to this, and may be rectangular, U-shaped, inverted trapezoidal, or the like.
[0034] The depth of the groove 80A (i.e., the dimension of the groove 80A in the thickness direction (Y direction) of the long side wall 32a) is not particularly limited, but from the viewpoint of dispersing stress and ensuring the strength of the battery case 30, it is preferably more than 0% and not more than 50% of the thickness of the long side wall 32a of the exterior body 32 (i.e., the average thickness of the portion of the long side wall 32a where there are no grooves), more preferably 5% to 30%, and even more preferably 10% to 20%.
[0035] The width of the groove 80A (that is, the dimension of the groove 80A in the direction perpendicular to the lid 34 (Z direction)) is not particularly limited and may be, for example, 0.1 mm to 3.0 mm, or 0.5 mm to 2.0 mm.
[0036] The position of the groove 80A in the Z direction is not particularly limited as long as it is between the welded portion 36 and the end 22a of the flat portion 22 of the wound electrode assembly 20. As shown in FIG. 4 , the position of the deepest part of the welded portion 36 in the Z direction (the lowest point of the welded portion 36 in the Z direction) is designated as B, and the position of the end 22a of the flat portion 22 of the wound electrode assembly 20 is designated as T. The distance between position B and position T in the Z direction is designated as H. The position of the groove 80A is preferably midway between position B and position T or in the vicinity thereof. Specifically, the position of the groove 80A is preferably 40% to 60% of H away from position B, and more preferably 45% to 55% of H away.
[0037] In the illustrated example, the grooves 80A are formed only in the pair of long side walls 32a. However, only one of the pair of long side walls 32a may have the groove 80A. Even in this case, the effect of suppressing damage to the welded portion 36 of the battery case 30 can be obtained. Forming the grooves 80A in both of the pair of long side walls 32a is more effective in suppressing damage to the welded portion 36 of the battery case 30. Furthermore, the grooves 80A may be formed not only in the pair of long side walls 32a but also in the pair of short side walls 32b.
[0038] In the illustrated example, the grooves 80A are formed on the outer surfaces (i.e., exposed surfaces) of the pair of long side walls 32a. However, the grooves 80A may also be formed on the inner surfaces of the pair of long side walls 32a, or the grooves 80A may also be formed on both the outer and inner surfaces of the pair of long side walls 32a. It is advantageous to have the grooves 80A only on the outer surfaces of the pair of long side walls 32a because it is easier to form the grooves 80A.
[0039] In the example shown in FIG. 1, the groove 80A is continuously formed from one end of the long side wall 32a to the other end. Therefore, the length of the groove 80A (i.e., the dimension of the groove 80A in the X direction) is 100% of the dimension of the long side wall 32a in the X direction. However, this is not limited as long as the effects of the present invention are obtained. The length of the groove 80A may be 50% or more or 80% or more of the dimension of the long side wall 32a in the X direction. Preferably, the length of the groove 80A in the X direction is equal to or greater than the dimension of the contact portion between the wound electrode assembly 20 and the long side wall 32a. In this case, it is preferable that both ends of the groove 80A in the X direction are located at the same positions as or outside both ends of the contact portion between the wound electrode assembly 20 and the long side wall 32a. The X direction is perpendicular to the short side wall 32b.
[0040] 7, the groove 80B is not formed at both ends of the long side wall 32a, but extends through the center of the long side wall 32a. The length of the groove 80B (the dimension of the groove 80B in the X direction) is preferably set to 100% or more of the dimension of the contact portion between the wound electrode body 20 and the long side wall 32a. However, the length of the groove 80B may be shorter as long as the effects of the present invention are obtained.
[0041] In another variation of the groove shown in Figure 8, the groove 80C is discontinuous. As such, the groove does not have to be continuous as long as the effects of the present invention can be obtained.
[0042] In the illustrated example, groove 80A is formed as a recessed groove in which the thickness of long side wall 32a of exterior body 32 is reduced. However, as in yet another modified example of a groove shown in Figure 9, groove 80D may be formed by bending long side wall 32a of exterior body 32. In this case, the thickness of exterior body 232 can be kept constant.
[0043] The preferred application of the prismatic lithium-ion secondary battery 100 is for vehicle use, specifically as a power source for driving vehicles such as electric vehicles (BEVs), hybrid electric vehicles (HEVs), plug-in hybrid electric vehicles (PHEVs), etc. However, it can also be used for other applications (e.g., as a power source for portable devices, etc.).
[0044] Although specific examples of the present invention have been described above in detail, these are merely examples and do not limit the scope of the claims. The technology described in the claims includes various modifications and alterations of the specific examples exemplified above.
[0045] That is, the prismatic lithium ion secondary battery disclosed herein has the following features [1] to [5]. [1] A prismatic lithium-ion secondary battery comprising an electrode assembly, an electrolyte, and a prismatic battery case that accommodates the electrode assembly and the electrolyte, the battery case includes an exterior body and a lid body, the battery case has a welded portion where the exterior body and the lid body are joined by welding, the exterior body has a rectangular bottom wall facing the lid body, a pair of long side walls, and a pair of short side walls, the electrode body has a flat portion in which a positive electrode and a negative electrode are stacked, At least one of the pair of long side walls of the exterior body has a groove at a position between the lid body and an end of the flat portion of the electrode body on the lid body side in a direction perpendicular to the lid body. Prismatic lithium-ion secondary battery. [2] The prismatic lithium ion secondary battery according to item [1], wherein the depth of the groove is more than 0% and not more than 50% of the thickness of the long side wall. [3] In a direction perpendicular to the short side wall, the length of the groove is longer than the dimension of the contact portion between the electrode body and the long side wall. The prismatic lithium ion secondary battery according to item [1] or [2]. [4] The prismatic lithium-ion secondary battery according to any one of items [1] to [3], wherein, when the distance between the deepest part of the weld and the end of the flat part of the wound electrode body in a direction perpendicular to the lid is H, the position of the groove is at a position that is 40% to 60% of H from the deepest part of the weld. [5] The prismatic lithium ion secondary battery according to any one of items [1] to [4], which is for use in a vehicle. [Explanation of symbols]
[0046] 20 Electrode body 30 Battery case 32 Exterior body 34 Lid 36 Welded section 38 Safety valve 42 Positive terminal 42a Positive current collector plate 44 Negative terminal 44a Negative current collector plate 50 positive electrode 52 Positive electrode current collector 52a Portion where positive electrode active material layer is not formed 54 Cathode active material layer 60 negative electrode 62 Negative electrode current collector 62a Part where negative electrode active material layer is not formed 64 Negative electrode active material layer 70 Separator 80A,80B,80C,80D Groove 100 Prismatic lithium-ion secondary battery
Claims
1. A prismatic lithium-ion secondary battery comprising an electrode assembly, an electrolyte, and a prismatic battery case that accommodates the electrode assembly and the electrolyte, the battery case includes an exterior body and a lid body, the battery case has a welded portion where the exterior body and the lid body are joined by welding, the exterior body has a rectangular bottom wall facing the lid body, a pair of long side walls, and a pair of short side walls, the electrode body has a flat portion in which a positive electrode and a negative electrode are stacked, At least one of the pair of long side walls of the exterior body has a groove at a position between the lid body and an end of the flat portion of the electrode body on the lid body side in a direction perpendicular to the lid body, a length of the groove in a direction perpendicular to the short side wall is longer than a dimension of a contact portion between the electrode body and the long side wall; When the distance between the deepest part of the weld and the end of the flat part of the electrode body in a direction perpendicular to the lid is H, the entire groove is located within a range between a position that is 40% of H away from the deepest part of the weld and a position that is 60% of H away from the deepest part of the weld. Prismatic lithium-ion secondary battery.
2. 2. The prismatic lithium ion secondary battery according to claim 1, wherein the depth of the groove is 5% to 30% of the thickness of the long side wall.
3. 2. The prismatic lithium ion secondary battery according to claim 1, wherein the depth of the groove is 10% to 20% of the thickness of the long side wall.
4. A prismatic lithium-ion secondary battery as described in claim 1, wherein the entire groove is within a range between a position that is 45% of H away from the deepest part of the weld and a position that is 55% of H away from the deepest part of the weld.
5. The prismatic lithium ion secondary battery according to claim 1 , which is for vehicle use.
Citation Information
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