Battery
By designing a plane winding battery body with a specific structure in the battery and a folding fixing method, the problem of insufficient battery reliability in the prior art is solved, and higher battery reliability and performance are achieved.
Patent Information
- Application Number
- JP2022169367
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-10-21
- Publication Date
- 2025-05-07
- Estimated Expiration
- 2042-10-21
AI Technical Summary
The prior art is difficult to effectively improve the reliability of the battery while increasing the battery capacity, especially when a plurality of winding battery bodies are loaded into the battery case.
A battery is designed, which includes two plane-winding battery bodies, each with an external surface of curvature and a plane-connected curvature part. The start ends of the positive and negative electrodes have specific areas extending to the flat part, and are fixed by folding back to ensure overlap in the thickness direction, thereby improving the reliability of the battery.
Through this design, when the battery is loaded with multiple winding battery bodies, it can effectively improve the reliability of the battery, reduce the risk of crushing of the separator, improve the input/output characteristics and resistance to lithium deposition.
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Abstract
Description
[Technical field]
[0001] The present disclosure relates to batteries. [Background technology]
[0002] For example, JP 2022-127948 A discloses a secondary battery including a flat wound electrode body in which a positive electrode plate and a negative electrode plate are wound with a separator interposed therebetween, and a battery case that houses the wound electrode body. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2022-127948 A Summary of the Invention [Problem to be solved by the invention]
[0004] In recent years, there has been a trend to accommodate multiple wound electrode bodies in a battery case in order to realize a high capacity battery. According to the study by the present inventor, it has been found that there is still room for improvement in such batteries from the viewpoint of improving the reliability of the battery. [Means for solving the problem]
[0005] The battery disclosed herein is a battery including a first electrode body and a second electrode body that are flat wound electrode bodies in which a positive electrode and a negative electrode are wound with a separator interposed therebetween, and a battery case that houses the first electrode body and the second electrode body, wherein the first electrode body and the second electrode body each have a pair of curved portions whose outer surfaces are curved and a flat portion that connects the pair of curved portions, the positive electrode winding start end has a first region that extends along the flat portions, and the negative electrode winding start end has a second region that extends along the flat portions and a second region that is folded back from the end of the second region. The electrode start end laminated portion of the first electrode body and the electrode start end laminated portion of the second electrode body pass through the winding axis of the first electrode body and the winding axis of the second electrode body, and are disposed on different sides of a plane along the winding axis of the first electrode body and the winding axis of the second electrode body. Details will be described later, but with this configuration, it is possible to suitably improve the reliability of a battery provided with a plurality of wound electrode bodies. [Brief description of the drawings]
[0006] [Figure 1] FIG. 1 is a perspective view showing a battery according to an embodiment of the present invention. [Diagram 2] FIG. 2 is a schematic vertical cross-sectional view taken along line II-II in FIG. [Diagram 3] FIG. 2 is a schematic cross-sectional view taken along line III-III in FIG. [Figure 4] FIG. 4 is a schematic vertical cross-sectional view taken along line IV-IV in FIG. 2. [Diagram 5] FIG. 2 is a schematic diagram showing the configuration of a wound electrode body according to one embodiment. [Figure 6] FIG. 2 is a schematic diagram showing a wound electrode body according to one embodiment. [Figure 7] 4 is a schematic diagram showing the cross-sectional configuration of the wound electrode body of FIG. 3. [Figure 8]8 is an explanatory diagram for explaining an electrode start end laminated portion of the wound electrode body of FIG. 7. FIG. [Figure 9] FIG. 2 is an enlarged view illustrating an interface between a positive electrode, a negative electrode, and a separator according to one embodiment. [Figure 10] 11 is an explanatory diagram for explaining the arrangement position of an electrode start end laminated portion according to one embodiment. FIG. [Figure 11] 13 is an explanatory diagram for explaining an arrangement position of a winding stop tape according to another embodiment. FIG. [Figure 12] 13 is an explanatory diagram for explaining an arrangement position of a winding stop tape according to another embodiment. FIG. [Figure 13] FIG. 10 is a view corresponding to FIG. 10 according to another embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] Hereinafter, some preferred embodiments of the technology disclosed herein will be described with reference to the drawings. It should be noted that matters other than those specifically mentioned in this specification and necessary for carrying out the present disclosure (for example, the general configuration and manufacturing process of a battery that does not characterize the present disclosure) can be understood as design matters of a person skilled in the art based on the conventional technology in the field. The present disclosure can be carried out based on the contents disclosed in this specification and the technical common sense in the field. In addition, the embodiments described here are not intended to limit the present disclosure in particular. In addition, the expression "A to B" indicating a range in this specification includes the meaning of "greater than A" and "smaller than B" as well as the meaning of "A or more and B or less."
[0008] In this specification, the term "battery" refers to a general term for an electricity storage device capable of extracting electric energy, and is a concept that includes primary batteries and secondary batteries. In addition, in this specification, the term "secondary battery" refers to a general electricity storage device that can be repeatedly charged and discharged by the movement of charge carriers between a positive electrode and a negative electrode via an electrolyte. The electrolyte may be any of a liquid electrolyte (electrolytic solution), a gel electrolyte, and a solid electrolyte. Such secondary batteries include so-called storage batteries (chemical batteries) such as lithium ion secondary batteries and nickel metal hydride batteries, as well as capacitors (physical batteries) such as electric double layer capacitors. In the following, an embodiment in which a lithium ion secondary battery is the subject will be described.
[0009] <Battery configuration> FIG. 1 is a perspective view showing a battery 100 according to the present embodiment. The battery 100 is preferably a secondary battery, and more preferably a non-aqueous electrolyte secondary battery such as a lithium ion secondary battery. FIG. 2 is a schematic longitudinal sectional view taken along line II-II in FIG. 1. FIG. 3 is a schematic transverse sectional view taken along line III-III in FIG. 1. FIG. 4 is a schematic longitudinal sectional view taken along line IV-IV in FIG. 2. In the following description, the symbols L, R, F, Rr, U, and D in the drawings represent left, right, front, rear, top, and bottom. In addition, the symbol X in the drawings indicates the short side direction of the battery 100, the symbol Y indicates the long side direction of the battery 100, and the symbol Z indicates the up-down direction of the battery 100. However, these are merely directions for convenience of description, and do not limit the installation form of the battery 100 in any way. In the following description, the first electrode body 20a and the second electrode body 20b may be collectively referred to as the electrode body 20.
[0010] As shown in Figs. 1 to 3, the battery 100 includes a battery case 10 (see Fig. 1), a plurality of electrode bodies 20 (see Figs. 2 and 3), a positive electrode terminal 30 (see Figs. 1 and 2), a negative electrode terminal 40 (see Figs. 1 and 2), a positive electrode current collector 50 (see Fig. 2), and a negative electrode current collector 60 (see Fig. 2). Although not shown, the battery 100 further includes an electrolyte. The battery 100 is a non-aqueous electrolyte secondary battery. The specific configuration of the battery 100 will be described below.
[0011] The battery case 10 is a housing that houses the electrode body 20. As shown in FIG. 1, the battery case 10 has a flat and bottomed rectangular parallelepiped (rectangular) outer shape. However, in other embodiments, the outer shape of the battery case 10 may be other shapes such as a cylindrical shape. A laminated case may also be used as the housing. As shown in FIG. 2, the battery case 10 includes an exterior body 12 having an opening 12h and a sealing plate (lid body) 14 that seals the opening 12h. The material of the battery case 10 (exterior body 12 and sealing plate 14) may be the same as that used conventionally and is not particularly limited. The battery case 10 is preferably made of metal, and more preferably made of, for example, aluminum, aluminum alloy, iron, iron alloy, or the like. The exterior body 12 and sealing plate 14 that constitute the battery case 10 may be made of the same material or different materials. The exterior body 12 and sealing plate 14 have sizes according to the number of electrode bodies 20 to be housed, the size, and the like.
[0012] As can be seen from Figs. 1 and 2, the exterior body 12 is a bottomed, rectangular container having an opening 12h on the upper surface. As shown in Fig. 1, the exterior body 12 includes a bottom wall 12a, a pair of long side walls 12b that extend upward from the long side of the bottom wall 12a and face each other, and a pair of short side walls 12c that extend upward from the short side of the bottom wall 12a and face each other. The long side walls 12b and the short side walls 12c are examples of the first side walls and the second side walls disclosed herein. The area of the long side walls 12b is larger than the area of the short side walls 12c. The bottom wall 12a is substantially rectangular. The bottom wall 12a faces the opening 12h (see Fig. 2). The long side walls 12b and the short side walls 12c are examples of "side walls". The sealing plate 14 is a planar, substantially rectangular, plate-like member attached to the exterior body 12 so as to close the opening 12h of the exterior body 12. The sealing plate 14 faces the bottom wall 12a of the exterior body 12. The sealing plate 14 has a substantially rectangular shape. The battery case 10 is integrated by joining (e.g., welding) the sealing plate 14 to the periphery of the opening 12h of the exterior body 12. This makes the battery case 10 airtightly sealed (sealed).
[0013] 2, the sealing plate 14 is provided with a liquid injection hole 15, a gas exhaust valve 17, and terminal withdrawal holes 18 and 19. The liquid injection hole 15 is a through hole for injecting an electrolyte into the battery case 10 after the sealing plate 14 is assembled to the exterior body 12. The liquid injection hole 15 is sealed with a sealing member 16 after the electrolyte is injected. The gas exhaust valve 17 is a thin-walled portion configured to break when the pressure inside the battery case 10 reaches or exceeds a predetermined value, thereby discharging gas inside the battery case 10 to the outside.
[0014] The electrolyte may be any electrolyte used in conventional batteries without any particular limitations. An example of the electrolyte is a non-aqueous electrolyte in which a supporting salt is dissolved in a non-aqueous solvent. An example of the non-aqueous solvent is a carbonate-based solvent such as ethylene carbonate, dimethyl carbonate, or ethyl methyl carbonate. An example of the supporting salt is a fluorine-containing lithium salt such as LiPF6. The electrolyte may contain an additive as necessary.
[0015] The positive electrode terminal 30 is attached to one end of the sealing plate 14 in the long side direction Y (the left end in FIG. 1 and FIG. 2). The negative electrode terminal 40 is attached to the other end of the sealing plate 14 in the long side direction Y (the right end in FIG. 1 and FIG. 2). The positive electrode terminal 30 and the negative electrode terminal 40 are inserted through the terminal pull-out holes 18, 19 and exposed on the outer surface of the sealing plate 14. The positive electrode terminal 30 is electrically connected to a plate-shaped positive electrode external conductive member 32 on the outside of the battery case 10. The negative electrode terminal 40 is electrically connected to a plate-shaped negative electrode external conductive member 42 on the outside of the battery case 10. The positive electrode external conductive member 32 and the negative electrode external conductive member 42 are connected to other secondary batteries and external devices via external connection members such as bus bars. The positive electrode external conductive member 32 and the negative electrode external conductive member 42 are preferably made of a metal having excellent electrical conductivity, for example, aluminum, an aluminum alloy, copper, a copper alloy, or the like. However, the positive electrode external conductive member 32 and the negative electrode external conductive member 42 are not essential and may be omitted in other embodiments.
[0016] As shown in Figs. 3 and 4, in the battery 100 of this embodiment, a plurality of (specifically, two) electrode bodies 20 are accommodated in the battery case 10. However, the number of wound electrode bodies arranged inside one exterior body 12 is not particularly limited, and may be three or more (multiple). The detailed structure of the electrode body 20 will be described later, but as shown in Fig. 2, a positive electrode tab group 25 and a negative electrode tab group 27 protrude from the upper part of the electrode body 20. The battery 100 has a so-called upper tab structure in which the positive electrode tab group 25 and the negative electrode tab group 27 are located above the electrode body 20.
[0017] As shown in FIG. 4, the positive electrode tab group 25 is joined to the positive electrode current collector (positive electrode current collector) 50 in a curved state. This configuration is preferable because it can more suitably improve the volumetric energy density of the battery 100. Although not shown in the figures, the negative electrode tab group 27 is similarly joined to the negative electrode current collector (negative electrode current collector) 60 in a curved state. In addition, the positive electrode tab group 25 is preferably joined to a region of the positive electrode current collector 50 that is arranged along the wall of the battery case (preferably, the sealing plate 14). Similarly, the negative electrode tab group 27 is preferably joined to a region of the negative electrode current collector 60 that is arranged along the wall of the battery case (preferably, the sealing plate 14).
[0018] The positive electrode current collecting part 50 electrically connects the positive electrode tab group 25 of the electrode body 20 and the positive electrode terminal 30. As shown in FIG. 2, the positive electrode current collecting part 50 is a plate-shaped conductive member extending in the long side direction Y along the inner side surface of the sealing plate 14. One end (the right side in FIG. 2) of the positive electrode current collecting part 50 is electrically connected to the positive electrode tab group 25. The other end (the left side in FIG. 2) of the positive electrode current collecting part 50 is electrically connected to the lower end part 30c of the positive electrode terminal 30. The positive electrode terminal 30 and the positive electrode current collecting part 50 are preferably made of a metal having excellent conductivity, for example, aluminum or an aluminum alloy.
[0019] The negative electrode current collecting part 60 electrically connects the negative electrode tab group 27 of the electrode body 20 and the negative electrode terminal 40. As shown in FIG. 2, the negative electrode current collecting part 60 is a plate-shaped conductive member extending in the long side direction Y along the inner surface of the sealing plate 14. One end (left side in FIG. 2) of the negative electrode current collecting part 60 is electrically connected to the negative electrode tab group 27. The other end (right side in FIG. 2) of the negative electrode current collecting part 60 is electrically connected to the lower end part 40c of the negative electrode terminal 40. The negative electrode terminal 40 and the negative electrode current collecting part 60 are preferably made of a metal having excellent conductivity, for example, copper or a copper alloy.
[0020] In the battery 100, various insulating members are used to prevent conduction between the electrode body 20 and the battery case 10. For example, as shown in FIG. 1, the positive electrode external conductive member 32 and the negative electrode external conductive member 42 are insulated from the sealing plate 14 by an external insulating member 92. Also, as shown in FIG. 2, gaskets 90 are attached to the terminal pull-out holes 18 and 19 of the sealing plate 14, respectively. This can prevent the positive electrode terminal 30 and the negative electrode terminal 40 inserted into the terminal pull-out holes 18 and 19 from being conducted to the sealing plate 14. Also, an internal insulating member 94 is disposed between the positive electrode current collector 50 and the negative electrode current collector 60 and the inner surface side of the sealing plate 14. This can prevent the positive electrode current collector 50 and the negative electrode current collector 60 from being conducted to the sealing plate 14. The internal insulating member 94 may have a protrusion that protrudes toward the electrode body 20.
[0021] Furthermore, the electrode bodies 20 are arranged inside the exterior body 12 while being covered with an electrode body holder 29 (see FIG. 3) made of an insulating resin sheet. This can prevent the electrode bodies 20 from coming into direct contact with the exterior body 12. The material of each of the insulating members described above is not particularly limited as long as it has a predetermined insulating property. Examples of such materials include synthetic resin materials such as polyolefin resins such as polypropylene (PP) and polyethylene (PE), and fluorine-based resins such as perfluoroalkoxyalkane and polytetrafluoroethylene (PTFE).
[0022] FIG. 5 is a schematic diagram showing the configuration of the electrode body 20. As shown in FIG. 5, the electrode body 20 is configured by stacking a strip-shaped positive electrode 22 and a strip-shaped negative electrode 24 in a state of being insulated via two strip-shaped separators 70 (a first separator 70A and a second separator 70B) and winding them in the longitudinal direction around a winding axis WL. The symbol LD in FIG. 5 etc. indicates the longitudinal direction (i.e., the conveying direction) of the electrode body 20 and the separator 70 manufactured in a strip shape. The symbol WD is a direction substantially perpendicular to the longitudinal direction LD and indicates the winding axis direction (also the width direction) of the electrode body 20 and the separator 70. The winding axis direction WD is substantially parallel to the up-down direction Z of the battery 100 described above.
[0023] Here, the electrode body 20 has a flat outer shape. The electrode body 20 is preferably flat. The flat electrode body 20 can be formed, for example, by pressing a cylindrically wound electrode body (cylindrical body) into a flat shape. As shown in FIG. 3, the flat electrode body 20 has a pair of curved portions 20r whose outer surfaces are curved, and a pair of flat portions 20f whose outer surfaces are flat and connect the pair of curved portions 20r. The flat portions 20f do not have to be strictly flat, and may have, for example, slight steps or irregularities.
[0024] FIG. 6 is a schematic diagram showing an electrode body 20 (wound electrode body). P in FIG. 6 indicates the height of the electrode body 20 (in other words, the length in the direction along the winding axis WL of the electrode body 20. It is also referred to as the length in the direction connecting the bottom wall 12a of the exterior body 12 and the sealing plate 14). Q in FIG. 6 indicates the width of the electrode body 20 (in other words, the length in the direction perpendicular to the thickness direction X of the electrode body 20. It is also referred to as the length in the direction connecting the pair of short side walls 12c of the exterior body 12). Here, the ratio (Q / P) of the width Q of the electrode body 20 to the height P of the electrode body 20 is not particularly limited as long as the effects of the technology disclosed herein are exerted, but is, for example, 2 or more, and from the viewpoint of improving the circulation of the electrolyte and more suitably improving the high-rate characteristics and the rapid charging characteristics, is preferably 3 or more, and may be, for example, 4 or more. The upper limit of the ratio (Q / P) is not particularly limited, but may be, for example, 10 or less, 7 or less, or 5 or less. The height P of the electrode body 20 is preferably 5 cm or more, and may be, for example, 10 cm or more. The height P of the electrode body 20 is preferably 20 cm or less, and more preferably 15 cm or less. The width Q of the electrode body 20 is preferably 20 cm or more, and more preferably 30 cm or more. The width Q of the electrode body 20 may be, for example, 60 cm or less, 50 cm or less, or 40 cm or less. However, it is not intended to be limited to these values.
[0025] T in Fig. 6 indicates the thickness of the electrode body 20. The thickness T of the electrode body 20 is not particularly limited as long as the effects of the technology disclosed herein are exhibited, but is, for example, 1 cm or more, and from the viewpoint of more suitably improving the volumetric energy of the battery 100, is preferably 1.5 cm or more, more preferably 2 cm or more, and even more preferably 3 cm or more. The upper limit of the thickness T of the electrode body 20 is not particularly limited, but may be, for example, 30 cm or less, 25 cm or less, or 20 cm or less. However, it is not intended to be limited to these values.
[0026] In the battery 100, the electrode body 20 is accommodated in the battery case 10 so that the winding axis direction WD is approximately aligned with the vertical direction Z. In other words, the battery case 10 has a first surface (here, corresponding to the sealing plate 14) in which the liquid inlet 15 is formed, and the first electrode body 20a and the second electrode body 20b are arranged in the battery case 10 so that the winding axis WL1 of the first electrode body and the winding axis WL2 of the second electrode body are each perpendicular to the sealing plate 14. Alternatively, it can be said that the winding axis WL1 of the first electrode body and the winding axis WL2 of the second electrode body are arranged in the battery case 10 so that they are oriented in the same direction. It can also be said that the flat parts 20f of the first electrode body 20a and the second electrode body 20b are arranged side by side in the thickness direction of the battery 100 (X direction in FIG. 3). In this way, a configuration in which the wound electrode body is open at the top and bottom can suitably shorten the impregnation time of the electrolyte, which is preferable from the viewpoint of battery characteristics. 3, the pair of curved portions 20r face the pair of short side walls 12c of the exterior body 12. The pair of flat portions 20f face the pair of long side walls 12b of the exterior body 12. End faces of the electrode body 20 (i.e., the stacking surfaces where the positive electrode 22 and the negative electrode 24 are stacked, both ends in the winding axis direction WD in FIG. 5) face the bottom wall 12a and the sealing plate 14.
[0027] The positive electrode 22 is a strip-shaped member as shown in Fig. 5. The positive electrode 22 includes a strip-shaped positive electrode current collector 22c, and a positive electrode active material layer 22a and a positive electrode protective layer 22p fixed on at least one surface of the positive electrode current collector 22c. From the viewpoint of battery performance, the positive electrode active material layer 22a is preferably formed on both sides of the positive electrode current collector 22c.
[0028] For each member constituting the positive electrode 22, conventionally known materials that can be used in general batteries (e.g., lithium ion secondary batteries) can be used without particular limitation. For example, the positive electrode current collector 22c is preferably made of a conductive metal such as aluminum, an aluminum alloy, nickel, or stainless steel, and is a metal foil, specifically an aluminum foil, in this case. The thickness of the positive electrode current collector 22c is preferably 5 μm to 30 μm, and more preferably 8 μm to 25 μm.
[0029] As shown in FIG. 5, the positive electrode 22 has a plurality of positive electrode tabs 22t protruding outward (upper side in FIG. 5) from one end side in the winding axis direction WD. The plurality of positive electrode tabs 22t are provided at predetermined intervals (intermittently) along the longitudinal direction LD. The positive electrode tabs 22t are a part of the positive electrode 22 here. The positive electrode tab 22t is a region where the positive electrode active material layer 22a is not formed. A positive electrode protective layer 22p is provided on a part of the positive electrode tab 22t here. However, the positive electrode protective layer 22p may not be provided on the positive electrode tab 22t. The positive electrode current collector 22c is exposed on at least a part of the positive electrode tab 22t. The positive electrode tab 22t may be a member separate from the positive electrode 22.
[0030] Here, each of the positive electrode tabs 22t has a trapezoidal shape. However, the shape of the positive electrode tabs 22t is not limited to this. The size of the positive electrode tabs 22t is also not particularly limited. The shape and size of the positive electrode tabs 22t can be appropriately adjusted depending on the formation position and the like, taking into consideration the state of connection to the positive electrode current collecting part 50, for example. The positive electrode tabs 22t are stacked at one end (the upper end in FIG. 5) of the positive electrode 22 in the winding axis direction WD, and form a positive electrode tab group 25 (see FIG. 2).
[0031] As shown in FIG. 5, the positive electrode active material layer 22a is provided in a strip shape along the longitudinal direction LD of the positive electrode current collector 22c. The width of the positive electrode active material layer 22a (the length in the winding axis direction WD; the same applies below) is smaller than the width of the negative electrode active material layer 24a. The positive electrode active material layer 22a contains a positive electrode active material capable of reversibly absorbing and releasing charge carriers. The positive electrode active material is preferably a lithium transition metal composite oxide, and more preferably contains at least one of Ni (nickel) and Co (cobalt). An example of such a lithium transition metal composite oxide is lithium nickel cobalt manganese composite oxide. When the entire solid content of the positive electrode active material layer 22a is taken as 100 mass%, the positive electrode active material may occupy approximately 80 mass% or more, typically 90 mass% or more, for example 95 mass% or more. The positive electrode active material layer 22a may contain any component other than the positive electrode active material, such as a binder, a conductive material, and various additive components. The positive electrode active material layer 22a preferably contains a binder and a conductive material in addition to the positive electrode active material. The binder is typically made of resin, and among them, a fluorine-based resin such as polyvinylidene fluoride (PVdF) is preferable. The conductive material is preferably a carbon material such as acetylene black (AB). The density of the positive electrode active material layer 22a is 3.0 g / cm 3 More than 3.2 g / cm is preferable. 3 In the case where the density of the positive electrode active material layer 22a is high in this way, the positive electrode current collector 22c is more likely to break, and therefore, this is a suitable subject for applying the effects of the technology disclosed herein.
[0032] The positive electrode protective layer 22p is a layer configured to have lower electrical conductivity than the positive electrode active material layer 22a. As shown in FIG. 5, the positive electrode protective layer 22p is provided in a strip shape along the longitudinal direction LD of the positive electrode collector 22c. The positive electrode protective layer 22p is provided at the boundary between the positive electrode collector 22c and the positive electrode active material layer 22a in the winding axis direction WD. Here, the positive electrode protective layer 22p is provided at one end of the positive electrode collector 22c in the winding axis direction WD, specifically, at the end on the side where the positive electrode tab 22t is located (the upper end in FIG. 5). By providing the positive electrode protective layer 22p, it is possible to prevent the positive electrode 22 from directly contacting the negative electrode active material layer 24a when the separator 70 is damaged, and thus prevent the battery 100 from being internally short-circuited.
[0033] The positive electrode protective layer 22p contains an insulating inorganic filler. An example of the inorganic filler is ceramic particles such as alumina. The positive electrode protective layer 22p may contain any component other than the inorganic filler, such as a binder, a conductive material, and various additive components. The binder and the conductive material may be the same as those exemplified as those that may be contained in the positive electrode active material layer 22a. However, the positive electrode protective layer 22p is not essential and may be omitted in other embodiments.
[0034] The negative electrode 24 is a strip-shaped member as shown in Fig. 5. The negative electrode 24 includes a strip-shaped negative electrode current collector 24c and a negative electrode active material layer 24a fixed onto at least one surface of the negative electrode current collector 24c. From the viewpoint of battery performance, the negative electrode active material layer 24a is preferably formed on both sides of the negative electrode current collector 24c.
[0035] For each member constituting the negative electrode 24, conventionally known materials that can be used in general batteries (e.g., lithium ion secondary batteries) can be used without particular limitation. For example, the negative electrode current collector 24c is preferably made of a conductive metal such as copper, a copper alloy, nickel, or stainless steel, and is a metal foil, specifically a copper foil, in this case. The thickness of the negative electrode current collector 24c is preferably 5 μm to 30 μm, and more preferably 8 μm to 25 μm.
[0036] As shown in FIG. 5, in the negative electrode 24, a negative electrode tab 24t protrudes from one end side in the winding axis direction WD toward the outside (upper side in FIG. 5). The negative electrode tabs 24t are provided at a predetermined interval (intermittently) along the longitudinal direction LD. In the winding axis direction WD, the negative electrode tab 24t is provided at the end on the same side as the positive electrode tab 22t. Here, the negative electrode tab 24t is a part of the negative electrode 24. Here, the negative electrode tab 24t is a region where the negative electrode active material layer 24a is not formed and the negative electrode current collector 24c is exposed. However, a part of the negative electrode active material layer 24a may protrude and be attached to the negative electrode tab 24t. In addition, the negative electrode tab 24t may be a member separate from the negative electrode 24.
[0037] Here, each of the negative electrode tabs 24t has a trapezoidal shape. However, the shape and size of the negative electrode tabs 24t can be appropriately adjusted, similar to the positive electrode tabs 22t. The negative electrode tabs 24t are stacked at one end of the negative electrode 24 in the winding axis direction WD (the upper end in FIG. 5) to form a negative electrode tab group 27 (see FIG. 2).
[0038] As shown in FIG. 5, the negative electrode active material layer 24a is provided in a strip shape along the longitudinal direction LD of the negative electrode current collector 24c. The width of the negative electrode active material layer 24a is larger than the width of the positive electrode active material layer 22a. The width of the negative electrode active material layer 24a refers to the length of the portion having a substantially constant thickness in the winding axis direction WD, and does not include the portion of the negative electrode tab 24t even if a part of the negative electrode active material layer 24a protrudes and adheres to the negative electrode tab 24t. The negative electrode active material layer 24a contains a negative electrode active material capable of reversibly absorbing and releasing charge carriers. The negative electrode active material is preferably, for example, a carbon material such as graphite or a silicon material. When the entire solid content of the negative electrode active material layer 24a is taken as 100% by mass, the negative electrode active material may occupy approximately 80% by mass or more, typically 90% by mass or more, for example 95% by mass or more. The negative electrode active material layer 24a may contain any component other than the negative electrode active material, such as a binder, a conductive material, various additive components, etc. The negative electrode active material layer 24a preferably contains a binder in addition to the negative electrode active material. The binder preferably contains a rubber such as styrene butadiene rubber (SBR) or a cellulose such as carboxymethyl cellulose (CMC). The negative electrode active material layer 24a may contain a carbon material as a conductive material as necessary.
[0039] As shown in FIG. 5, the separator 70 is a strip-shaped member. The separator 70 is an insulating sheet having a plurality of fine through-holes through which charge carriers can pass. The width of the separator 70 is greater than the width of the negative electrode active material layer 24a. By interposing the separator 70 between the positive electrode 22 and the negative electrode 24, contact between the positive electrode 22 and the negative electrode 24 can be prevented, and charge carriers (e.g., lithium ions) can be moved between the positive electrode 22 and the negative electrode 24. Although not particularly limited, the thickness of the separator 70 (length in the stacking direction MD; the same applies below) is preferably 8 μm or more, more preferably 10 μm or more. The thickness of the separator 70 is preferably 25 μm or less, more preferably 22 μm or less, and even more preferably 20 μm or less.
[0040] Here, two separators 70 are used for one electrode assembly 20. As in this embodiment, it is preferable that two separators 70, i.e., a first separator 70A and a second separator 70B, are used for one electrode assembly 20. The two separators may have different configurations or may have the same configuration.
[0041] The separator 70 is a member that insulates the positive electrode active material layer 22a of the positive electrode 22 from the negative electrode active material layer 24a of the negative electrode 24. The separator 70 is preferably a porous resin sheet made of a polyolefin resin such as polyethylene (PE) or polypropylene (PP). A heat resistance layer (HRL) containing an inorganic filler may be provided on the surface of the separator 70. Examples of the inorganic filler that can be used include alumina, boehmite, aluminum hydroxide, and titania.
[0042] FIG. 9 is an enlarged view showing a schematic diagram of an interface between the positive electrode 22, the negative electrode 24, and the separator 70. As shown in FIG. 9, the separator 70 includes a substrate layer 72. As the substrate layer 72, a microporous membrane used in a separator of a conventionally known battery can be used without any particular limitation. The substrate layer 72 is preferably a porous sheet-like member. The substrate layer 72 may have a single-layer structure or a structure of two or more layers, for example, a three-layer structure. At least the surface of the substrate layer 72 facing the negative electrode 24 is preferably made of a polyolefin resin. It is more preferable that the substrate layer 72 is made of a polyolefin resin as a whole. This ensures sufficient flexibility of the separator 70, and makes it easy to manufacture the electrode body 20 (winding and press molding). As the polyolefin resin, polyethylene (PE), polypropylene (PP), or a mixture thereof is preferable, and PE is more preferable.
[0043] Although not particularly limited, the thickness of the base layer 72 (length in the stacking direction MD; the same applies below) is preferably 3 μm or more, and more preferably 5 μm or more. The thickness of the base layer 72 is preferably 25 μm or less, more preferably 18 μm or less, and even more preferably 14 μm or less. The air permeability of the base layer 72 is preferably 30 sec / 100 cc to 500 sec / 100 cc, more preferably 30 sec / 100 cc to 300 sec / 100 cc, and even more preferably 50 sec / 100 cc to 200 sec / 100 cc. The base layer 72 may have an adhesiveness to such an extent that it can be bonded to the negative electrode active material layer 24a by, for example, heating or press molding.
[0044] As shown in FIG. 9, the heat-resistant layer 73 is provided on the substrate layer 72. The heat-resistant layer 73 is preferably formed on the substrate layer 72. The heat-resistant layer 73 may be provided directly on the surface of the substrate layer 72, or may be provided on the substrate layer 72 via another layer. However, the heat-resistant layer 73 is not essential and may be omitted in other embodiments. The heat-resistant layer 73 is provided on the entire surface of the substrate layer 72 facing the positive electrode 22. This can more accurately suppress the thermal contraction of the separator 70 and contribute to improving the safety of the battery 100. The heat-resistant layer 73 does not have enough adhesiveness to be bonded to the positive electrode active material layer 22a by, for example, heating or press molding. The basis weight of the heat-resistant layer 73 is uniform in the longitudinal direction LD and the winding axis direction WD of the separator 70. Although not particularly limited, the thickness of the heat-resistant layer 73 (length in the stacking direction MD; the same applies below) is preferably 0.5 μm or more, more preferably 1 μm or more, and even more preferably 2 μm or more. The thickness of the heat-resistant layer 73 is preferably equal to or less than 8 μm, and more preferably equal to or less than 6 μm. The heat-resistant layer 73 preferably contains an inorganic filler and a heat-resistant layer binder.
[0045] As the inorganic filler, any inorganic filler that has been publicly known and used for this type of application can be used without any particular limitation. The inorganic filler preferably contains insulating ceramic particles. Among them, in consideration of heat resistance, availability, and the like, inorganic oxides such as alumina, zirconia, silica, titania, metal hydroxides such as aluminum hydroxide, and clay minerals such as boehmite are preferred, and alumina and boehmite are more preferred. In addition, from the viewpoint of suppressing thermal contraction of the separator 70, compounds containing aluminum are particularly preferred. The ratio of the inorganic filler to the total mass of the heat-resistant layer 73 is preferably 85 mass% or more, more preferably 90 mass% or more, and even more preferably 95 mass% or more.
[0046] The heat-resistant layer binder may be any binder that has been conventionally used for this type of application without any particular limitation. Specific examples include acrylic resins, fluorine-based resins, epoxy resins, urethane resins, and ethylene vinyl acetate resins. Among these, acrylic resins are preferred.
[0047] In a preferred embodiment, an adhesive layer 74 is formed between the separator 70 and at least one of the positive electrode 22 and the negative electrode 24. In each of the first electrode body 20a and the second electrode body 20b, the number of stacked layers of the separator 70 in the thickness direction X (in other words, the total number of stacked layers of the first separator 70A and the second separator 70B) is 20 or more. With this configuration, the adhesive layer 74 and the separator 70 can suitably absorb the load increase that may occur when the electrode body 20 expands. This can suitably realize the deterioration of input / output characteristics and the improvement of Li precipitation resistance.
[0048] 9, in this embodiment, the separator 70 (first separator 70A, second separator 70B) and the positive electrode 22 are bonded together by an adhesive layer 74. Here, the adhesive layer 74 is formed on the surface of the separator 70. In other embodiments, the separator 70 and the negative electrode 24 may be bonded together by the adhesive layer 74. Alternatively, the separator 70 and the positive electrode 22 may be bonded together by the adhesive layer 74, and the separator 70 and the negative electrode 24 may be bonded together by the adhesive layer 74.
[0049] 9, in this embodiment, the number of stacked layers of the separators 70 in the first electrode body 20a is 24, and the number of stacked layers of the separators 70 in the second electrode body 20b is 26. Here, from the viewpoint of making it easier to obtain the above-mentioned effects, the number of stacked layers of the separators 70 in the electrode body 20 is preferably 30 or more, more preferably 40 or more. Furthermore, the upper limit of the number of stacked layers of the separators 70 in the electrode body 20 is, for example, 60 or less, and may be 50 or less. However, it is not limited to these.
[0050] The adhesive layer 74 is provided on a surface facing the positive electrode 22 and abuts against the positive electrode 22. As shown in FIG. 9, the adhesive layer 74 is preferably formed at least on the surface of the separator 70 on the positive electrode 22 side. This allows the above-mentioned effects to be more effectively exhibited. The adhesive layer 74 is bonded to the positive electrode 22 by, for example, heating or pressing (typically, press molding). Although not particularly limited, the thickness of the adhesive layer 74 (length in the stacking direction MD; the same applies below) is preferably 0.1 μm or more, more preferably 0.3 μm or more, and even more preferably 0.5 μm or more. The thickness of the adhesive layer 74 is preferably 8 μm or less, and more preferably 5 μm or less.
[0051] The adhesive layer 74 is provided on the heat-resistant layer 73 here. The adhesive layer 74 is preferably formed on the heat-resistant layer 73. The adhesive layer 74 may be provided directly on the surface of the heat-resistant layer 73, or may be provided on the heat-resistant layer 73 via another layer. The adhesive layer 74 may be provided directly on the surface of the base layer 72, or may be provided on the base layer 72 via a layer other than the heat-resistant layer 73. The configuration of the adhesive layer 74 is not particularly limited and may be the same as that of a conventionally known layer. The adhesive layer 74 may be a layer that has a relatively high affinity with the electrolyte compared to, for example, the heat-resistant layer 73, and swells by absorbing the electrolyte. The adhesive layer 74 contains an adhesive layer binder.
[0052] As the adhesive layer binder, a conventionally known resin material having a certain viscosity with respect to the positive electrode 22 can be used without any particular limitation. Specific examples include acrylic resins, fluorine resins, epoxy resins, urethane resins, ethylene vinyl acetate resins, polyallylamine (PAA) resins, cellulose resins such as carboxymethyl cellulose (CMC), and the like. Among them, fluorine resins and acrylic resins are preferred because they have high flexibility and can more suitably exhibit adhesiveness to the positive electrode 22. Examples of fluorine resins include polyvinylidene fluoride (PVdF) and polytetrafluoroethylene (PTFE). The type of the adhesive layer binder may be the same as or different from the heat-resistant layer binder. The ratio of the heat-resistant layer binder to the total mass of the adhesive layer 74 is preferably 20% by mass or more, more preferably 50% by mass or more, and even more preferably 70% by mass or more. This allows the separator 70 to accurately exhibit a predetermined adhesiveness to the positive electrode 22 and to be easily deformed during press molding.
[0053] The adhesive layer 74 may contain other materials (such as the inorganic filler listed as a component of the heat-resistant layer 73) in addition to the adhesive layer binder. When the adhesive layer 74 contains an inorganic filler, the proportion of the inorganic filler to the total mass of the adhesive layer 74 is preferably 80 mass % or less, more preferably 50 mass % or less, and even more preferably 30 mass % or less.
[0054] Although not particularly limited, the basis weight of the adhesive layer 74 is 0.005 g / m 2 ~1.0g / m 2 is preferred, and 0.02 g / m 2 ~0.06g / m 2 Here, the basis weight (weight per unit area) of the adhesive layer 74 refers to the value obtained by dividing the mass of the adhesive layer by the area of the region in which it is formed (mass of the adhesive layer / area of the region in which it is formed).
[0055] The adhesive layer 74 may be formed over the entire surface, or may have a predetermined pattern. For example, the adhesive layer may have a dotted, striped, wavy, banded (striped), dashed, meshed, or a combination of these patterns in a plan view. In particular, it is preferable that the adhesive layer 74 has an adhesive binder of PVdF and a meshed pattern.
[0056] Next, the arrangement of the first electrode body 20a and the second electrode body 20b according to this embodiment will be described. Here, FIG. 7 is a schematic diagram showing the cross-sectional configuration of the electrode body 20 (wound electrode body) in FIG. 3. FIG. 8 is an explanatory diagram for explaining the electrode start end laminated portion 28 of the electrode body 20 (wound electrode body) in FIG. 7. As described above, the battery 100 is a battery including the first electrode body 20a and the second electrode body 20b, which are flat-shaped wound electrode bodies in which the positive electrode 22 and the negative electrode 24 are wound via a separator 70, and a battery case 10 that accommodates the first electrode body 20a and the second electrode body 20b. In addition, as shown in FIG. 8, the first electrode body 20a and the second electrode body 20b each have a pair of curved portions 20r whose outer surfaces are curved, and a flat portion 20f that connects the pair of curved portions 20r. 8, the positive electrode winding start end 22s has a first region A1 extending along the flat portion 20f, and the negative electrode winding start end 24s has a second region A2 extending along the flat portion 20f, a folded portion 24m folded back from the end of the second region A2, and a third region A3 extending from the end of the folded portion 24m along the flat portion 20f. The electrode body 20 has an electrode start end laminated portion 28 in which the first region A1, the second region A2, and the third region A3 overlap in the thickness direction X from one flat surface 20f1 to the other flat surface 20f2. The electrode starting laminated portion 28a1 of the first electrode body and the electrode starting laminated portion 28a2 of the second electrode body pass through the winding axis WL1 of the first electrode body and the winding axis WL2 of the second electrode body, and are disposed on different sides of a plane S along the winding axis WL1 of the first electrode body and the winding axis WL2 of the second electrode body. The length of the electrode starting laminated portion 28 in a direction perpendicular to the thickness direction X (Y direction in FIG. 7) may be 0.5 mm to 10 mm (for example, 1 mm to 5 mm). In addition, it is preferable that the folded-back portion 24m is folded back from the end of the second region A2 so as to follow the curved portion 20r.
[0057] For example, in a battery having a plurality of wound electrode bodies, the cell repulsion may become large partially due to the expansion caused by charging and discharging. As a result, the separator at the flat portion corresponding to the winding start position is easily crushed. In particular, when the winding start positions of the electrode bodies overlap in the expansion direction of the battery, the load applied to the separator located at the winding start position tends to increase. This is not preferable because it may cause a deterioration in the input / output characteristics of the battery and a deterioration in Li precipitation resistance. In contrast, for example, in the battery 100 disclosed herein, the electrode start end laminated portion 28a1 of the first electrode body and the electrode start end laminated portion 28a2 of the second electrode body are arranged on different sides of the surface S. That is, when the first electrode body 20a and the second electrode body 20b are arranged in the battery case 10, the electrode start end laminated portion 28a1 and the electrode start end laminated portion 28a2 are not overlapped in the expansion direction of the first electrode body 20a and the second electrode body 20b (here, the thickness direction X in FIG. 8). This configuration can suitably prevent the separator 70 (first separator 70A, second separator 70B) corresponding to the winding start position from being crushed (in other words, it can prevent the first electrode body 20a and the second electrode body 20b from having an unbalanced area where the pressing force is locally increased), thereby solving the above-mentioned problems. That is, the technology disclosed herein can provide a battery 100 that includes a plurality of electrode bodies 20 (wound electrode bodies) and has suitably improved reliability.
[0058] As shown in Fig. 7, in this embodiment, the winding start end 22s of the positive electrode is disposed inside the electrode body 20, and the winding end end 22e of the positive electrode is disposed outside the electrode body 20. The winding start end 24s of the negative electrode is disposed inside the electrode body 20, and the winding end end 24e of the negative electrode is disposed outside the electrode body 20. In Fig. 7, 70As indicates the winding start end of the first separator, 70Bs indicates the winding start end of the second separator, and 70Be indicates the winding end of the second separator.
[0059] In one embodiment, the stop tape 200 that stops the winding end of the separator 70 present on the outer peripheral surface of the first electrode body 20a and the second electrode body 20b is arranged on the curved portion 20r. With this configuration, even if the electrode body 20 expands, local load at the position of the stop tape 200 can be suitably prevented, and Li deposition can be suitably suppressed. In particular, when the stop tape 200 present on the first electrode body 20a and the stop tape 200 present on the second electrode body 20b are arranged on the curved portion 20r on the same side, in addition to the above-mentioned effects, the size of the electrode body 20 in the width direction (direction Y in FIG. 2) can be reduced, which is more preferable from the viewpoint of ease of insertion of the electrode body 20 into the battery case 10. Note that, as shown in FIG. 7, in this embodiment, the stop tape 200 present on the first electrode body 20a and the stop tape 200 present on the second electrode body 20b are arranged on the curved portion 20r on the same side.
[0060] The winding stop tape 200 may be any known tape (e.g., made of resin) that can be used for this type of battery, without any particular limitation. As an example of the winding stop tape 200, for example, one having a base material and an adhesive layer formed on the base material can be preferably used. Examples of the base material include polyethylene (PE), polypropylene (PP), polyester, nylon, vinyl chloride, Teflon (registered trademark), polyimide, Kapton (registered trademark), polyphenylene sulfide, polyethylene naphthalate, etc. The thickness of the base material is not particularly limited as long as the effect of the technology disclosed herein is exhibited, but may be approximately 5 μm to 100 μm (e.g., 10 μm to 50 μm). Examples of materials constituting the adhesive layer include acrylic adhesives, silicon adhesives, rubber adhesives, etc. It is preferable that the adhesive layer has adhesiveness at room temperature (typically, about 20° C.). The thickness of the adhesive layer is not particularly limited as long as the effects of the technology disclosed herein are exhibited, but can be approximately 5 μm to 100 μm (for example, 5 μm to 20 μm).
[0061] In one embodiment, the electrode start lamination portion 28 is made to overlap with the tab position of either the positive electrode tab 22t or the negative electrode tab 24t. Since the electrode tabs are gathered in a bundle and welded to the electrode current collector, the electrode is likely to bend under the electrode tab, and the inter-electrode distance may become large. On the other hand, by disposing the electrode start lamination portion 28 under the electrode tab, the inter-electrode distance can be appropriately maintained by applying pressure, which is preferable from the viewpoint of improving Li precipitation resistance. As shown in FIG. 10, in this embodiment, the electrode start lamination portion (i.e., the electrode start lamination portion 28a1 of the first electrode body and the electrode start lamination portion 28a2 of the first electrode body) of the electrode body 20 (i.e., the first electrode body 20a and the second electrode body 20b) is made to overlap with the tab position of the positive electrode tab 22t (corresponding to the shaded area H in FIG. 10).
[0062] <Battery manufacturing method> Next, an example of a method for manufacturing the battery 100 will be described. In manufacturing the electrode body 20, first, the first separator 70A, the positive electrode 22, the second separator 70B, and the negative electrode 24 are prepared. Next, each member is wound by a winding roller. After that, the wound body is pressed with a predetermined pressure, and the winding stop tape 200 is applied to the winding end 70Ae of the first separator, thereby obtaining the electrode body 20. Here, in this embodiment, in order to arrange the winding stop tape 200 present on the first electrode body 20a and the winding stop tape 200 present on the second electrode body 20b on the same side of the curved portion 20r, the outermost periphery of the second electrode body 20b is wound one turn more than the first electrode body 20a. The two electrode bodies manufactured as described above are inserted into the exterior body 12 with the electrode tab group joined to the electrode current collector attached to the sealing plate 14, and the exterior body 12 and the sealing plate 14 are joined (welded) to construct the battery case 10. Then, an electrolyte is injected into the battery case 10 through the liquid injection hole 15 of the sealing plate 14, and the liquid injection hole 15 is closed with a sealing member 16. In this manner, the battery 100 can be manufactured.
[0063] Battery 100 can be used for various purposes, but can be suitably used, for example, as a power source (driving power source) for a motor mounted on a vehicle such as a passenger car, truck, etc. The type of vehicle is not particularly limited, but examples include a plug-in hybrid electric vehicle (PHEV), a hybrid electric vehicle (HEV), a battery electric vehicle (BEV), etc.
[0064] Although several embodiments of the present disclosure have been described above, the above embodiments are merely examples. The present disclosure can be implemented in various other forms. The present disclosure can be implemented based on the contents disclosed in this specification and the technical common sense in the field. The technology described in the claims includes various modifications and changes to the above-exemplified embodiments. For example, it is possible to replace a part of the above-mentioned embodiment with another modified form, and it is also possible to add another modified form to the above-mentioned embodiment. In addition, if the technical feature is not described as essential, it is also possible to delete it as appropriate.
[0065] For example, in the above embodiment, the stop tape 200 present on the first electrode body 20a and the stop tape 200 present on the second electrode body 20b are arranged on the curved portion 20r on the same side, but this is not limited thereto. For example, FIG. 11 is an explanatory diagram for explaining the arrangement position of the stop tape according to another embodiment. As shown in FIG. 11, in another embodiment, the stop tape 200A present on the first electrode body 120a and the stop tape 200A present on the second electrode body 120b may be present on curved portions on different sides. With this configuration, for example, when the battery vibrates in the width direction (direction Y in FIG. 11), the stop tape 200A serves as a buffer material, and damage to the electrode body 120 can be suitably prevented. In addition, the first electrode body 120a and the second electrode body 120b have the same number of turns, so that the battery capacity can be the same.
[0066] For example, in the above embodiment, the stop tape 200 present on the first electrode body 20a and the stop tape 200 present on the second electrode body 20b are arranged on the curved portion 20r on the same side, but this is not limited thereto. For example, FIG. 12 is an explanatory diagram for explaining the arrangement position of the stop tape according to another embodiment. As shown in FIG. 12, in another embodiment, the stop tape 200B present on the first electrode body 220a and the stop tape 200B present on the second electrode body 220b may be present on flat portions on different sides. According to this configuration, the center part of the electrode body 220 is pressurized, so that the unevenness of the interelectrode distance in the width direction (direction Y in FIG. 12) is reduced, and the input / output characteristics of the electrode body 220 can be improved and the Li precipitation resistance can be improved, which is preferable. In addition, the position of the electrode body 220 can be fixed by strongly pressing the electrode body 220 into the battery case in the thickness direction X, so that the electrode tab breakage and the electrode body 220 damage can be suitably prevented even when the battery case vibrates. Furthermore, since the winding stop tape 200B is present on the outside of the electrode body 220, the insulating sheet can creep and reduce bending.
[0067] For example, in the above embodiment, the electrode start end laminated portion 28 of the electrode body 20 is made to overlap with the tab position of the positive electrode tab 22t, but is not limited thereto. For example, FIG. 13 is a view corresponding to FIG. 10 according to another embodiment. As shown in FIG. 13, in another embodiment, the electrode start end laminated portion of the electrode body 320 may be disposed outside the tab position of either one of the positive electrode tab 322t and the negative electrode tab 324t (here, the positive electrode tab 322t) in a direction perpendicular to the thickness direction X (direction Y in FIG. 13) (corresponding to the shaded area H' in FIG. 13). According to such a configuration, it is preferable because it is possible to reduce the negative electrode area that is less involved in charging and discharging and to suitably increase the battery capacity. In addition, the closer the electrode tab is to the center in the winding structure, the more the current density can be suitably distributed and Li deposition can be suitably suppressed.
[0068] For example, in the above embodiment, the configurations of the first electrode body 20a and the second electrode body 20b are different in terms of the number of turns, but in other embodiments, the configurations of the first electrode body 20a and the second electrode body 20b may be the same.
[0069] For example, in the above embodiment, the positive electrode tab 22t and the negative electrode tab 24t are provided at the end on the same side in the winding axis direction WD, but this is not limited thereto. The technology disclosed herein can also be applied to a battery including a wound electrode body in which the positive electrode tab and the negative electrode tab are provided at the end on different sides in the winding axis direction WD. Alternatively, the technology can also be applied to a battery including a wound electrode body in which the positive electrode tab 22t and the negative electrode tab 24t are not provided.
[0070] For example, in the above embodiment, the adhesive layer 74 is formed on the surface of the first separator 70A and the second separator 70B, but the present invention is not limited thereto. For example, the adhesive layer 74 may be formed on the surface of the positive electrode 22 or the surface of the negative electrode 24. Here, the "surface of the positive electrode (negative electrode)" may be the surface of the positive electrode active material layer 22a (negative electrode active material layer 24a) or the surface of the positive electrode current collector 22c (negative electrode current collector 24c). When the adhesive layer 74 is provided on the surface (negative electrode 24) of the positive electrode 22, preferably, the positive electrode 22 (negative electrode 24) has the positive electrode active material layer 22a (negative electrode active material layer 24a) on both surfaces of the positive electrode current collector 22c (negative electrode current collector 24c), and the adhesive layer 74 is provided on the surface of the positive electrode active material layer 22a (negative electrode active material layer 24a).
[0071] For example, in the above embodiment, two electrode bodies 20 are arranged in the battery case 10, but this is not limited thereto. In other embodiments, more than two electrode bodies 20 may be arranged in the battery case 10. In such a case, the technology disclosed herein may be applied to at least two of the multiple electrode bodies 20 arranged in the battery case 10. For example, when three electrode bodies 20 are arranged in the battery case 10, the positions of the electrode start end laminated parts 28 of the three electrode bodies 20 may be made alternately different with respect to the surface S. Alternatively, when the three electrode bodies 20 are arranged in the order of a first electrode body, a second electrode body, and a third electrode body in the thickness direction X, the positions of the electrode start end laminated parts 28 of the first electrode body and the third electrode body may be made different with respect to the surface S, and the positions of the electrode start end laminated parts 28 of the first electrode body and the second electrode body may be made the same with respect to the surface S. For example, when four electrode bodies 20 are arranged in the battery case 10, the positions of the electrode start end laminated parts 28 of the four electrode bodies 20 may be alternately different with respect to the surface S. Also, when the four electrode bodies 20 are arranged in the order of the first electrode body, the second electrode body, the third electrode body, and the fourth electrode body in the thickness direction X, the positions of the electrode start end laminated parts 28 of the first electrode body and the fourth electrode body may be different with respect to the surface S, and the positions of the electrode start end laminated parts 28 of the second electrode body and the third electrode body may be the same with respect to the surface S. Alternatively, the positions of the electrode start end laminated parts 28 of the second electrode body and the third electrode body may be different with respect to the surface S, and the positions of the electrode start end laminated parts 28 of the first electrode body and the fourth electrode body may be the same with respect to the surface S. However, it is not intended that the positions of the electrode start end laminated parts 28 of the multiple electrode bodies 20 are limited to these.
[0072] For example, in the above embodiment, the first electrode body 20a and the second electrode body 20b are wound in the same direction, but this is not limited to this. In other embodiments, the first electrode body 20a and the second electrode body 20b may be wound in different directions.
[0073] For example, in the above embodiment, the positive electrode tab 22t and the negative electrode tab 24t are provided at the end on the same side in the winding axis direction WD, but this is not limited thereto. The technology disclosed herein can also be applied to a battery including a wound electrode body in which the positive electrode tab and the negative electrode tab are provided at the end on different sides in the winding axis direction WD. Alternatively, the technology can also be applied to a battery including a wound electrode body in which the positive electrode tab 22t and the negative electrode tab 24t are not formed.
[0074] For example, in the above embodiment, a stop tape is applied to the end of the separator located on the outermost surface of the wound electrode body, but this is not limited thereto. The technology disclosed herein can also be applied to a battery that does not have a stop tape. In such a case, it is preferable that an adhesive layer is formed on the inner surface near the end of the separator located on the outermost surface of the wound electrode body. This allows the end of the separator to be suitably fixed to the wound electrode body.
[0075] As described above, specific aspects of the technology disclosed herein include those described in the following items. Item 1: A battery including a first electrode body and a second electrode body that are flat wound electrode bodies in which a positive electrode and a negative electrode are wound with a separator interposed therebetween, and a battery case that houses the first electrode body and the second electrode body, wherein the first electrode body and the second electrode body each have a pair of curved portions whose outer surfaces are curved and a flat portion that connects the pair of curved portions, and the positive electrode winding start end has a first region that extends along the flat portions, and the negative electrode winding start end has a second region that extends along the flat portions and a folded back portion that is folded back from an end of the second region. a folded-back portion and a third region extending along the flat portion from an end of the folded-back portion, and an electrode starting end stacking portion in which the first region, the second region and the third region overlap in a thickness direction from one flat surface of the wound electrode body to the other flat surface, wherein the electrode starting end stacking portion of the first electrode body and the electrode starting end stacking portion of the second electrode body pass through the winding axis of the first electrode body and the winding axis of the second electrode body, and are arranged on different sides of a plane along the winding axis of the first electrode body and the winding axis of the second electrode body. Item 2: The battery described in item 1, wherein the winding stop tapes that secure the winding end ends of the separator present on the outer peripheral surfaces of the first electrode body and the second electrode body are both positioned in the curved portion. Item 3: The battery described in item 2, wherein the winding stop tape present on the first electrode body and the winding stop tape present on the second electrode body are arranged on the curved portion on the same side. Item 4: The battery according to any one of items 1 to 3, wherein the battery case has a first surface on which an inlet is formed, and the first electrode body and the second electrode body are disposed in the battery case such that the winding axis of the first electrode body and the winding axis of the second electrode body are each oriented perpendicular to the first surface. Item 5: The battery according to any one of items 1 to 4, wherein an adhesive layer is formed between the separator and at least one of the positive electrode and the negative electrode, and the number of stacked layers of the separator in the thickness direction in each of the first electrode body and the second electrode body is 30 or more. Item 6: The battery according to any one of items 1 to 5, wherein the electrode starting end laminated portion overlaps with a tab position of either a positive electrode tab or a negative electrode tab. Item 7: The battery according to any one of items 1 to 6, wherein the electrode starting end laminated portion is disposed outside a tab position of either one of a positive electrode tab and a negative electrode tab in a direction perpendicular to the thickness direction. [Explanation of symbols]
[0076] 10 Battery case 12 Exterior body 12a Bottom wall 12b Long side wall 12c short side wall 12h opening 14 Sealing plate 15 Liquid injection hole 16 Sealing member 17 Gas exhaust valve 18 Terminal extraction hole 20 Wound electrode body 20f flat area 20r curved section 22 Positive electrode 22a Cathode active material layer 22c Positive electrode current collector 22p positive electrode protective layer 22t Positive electrode tab 24 Negative electrode 24a Negative electrode active material layer 24c Negative electrode current collector 24t negative electrode tab 25 Positive electrode tab group 27 Negative electrode tab group 29 Electrode holder 30 Positive terminal 30c bottom end 32 Positive electrode external conductive member 34 Heat-resistant layer 40 Negative terminal 40c bottom end 42 Negative electrode external conductive member 50 Positive electrode current collector 60 Negative electrode current collector 70 Separator 70A First Separator 70B Second separator 90 Gasket 92 External insulating material 94 Internal insulation material 100 batteries 200 Winding tape LD Longitudinal U upward WL Winding shaft Y Longitudinal direction Z vertical direction
Claims
1. a first electrode body and a second electrode body which are flat wound electrode bodies in which a positive electrode and a negative electrode are wound with a separator interposed therebetween; a battery case that accommodates the first electrode body and the second electrode body; A battery comprising: The first electrode body and the second electrode body are each The outer surface of the plate has a pair of curved portions and a flat portion connecting the pair of curved portions. the positive electrode winding start end portion has a first region extending along the flat portion, the negative electrode winding start end portion has a second region extending along the flat portion, a folded-back portion folded back from an end portion of the second region, and a third region extending along the flat portion from an end portion of the folded-back portion, an electrode start end laminated portion in which the first region, the second region, and the third region overlap in a thickness direction from one flat surface of the wound electrode body to the other flat surface, The electrode start end laminated portion of the first electrode body; The electrode start end laminated portion of the second electrode body, the first electrode body and the second electrode body pass through each other, and the second electrode body and the first electrode body are disposed on different sides of a plane along the winding axis of the first electrode body and the winding axis of the second electrode body; the electrode starting end laminated portion is disposed outboard of a tab position of either a positive electrode tab or a negative electrode tab in a direction perpendicular to the thickness direction.
2. A first electrode body and a second electrode body which are flat wound electrode bodies in which a positive electrode and a negative electrode are wound with a separator interposed therebetween; a battery case that accommodates the first electrode body and the second electrode body; A battery comprising: The first electrode body and the second electrode body are each The outer surface of the plate has a pair of curved portions and a flat portion connecting the pair of curved portions. the positive electrode winding start end portion has a first region extending along the flat portion, the negative electrode winding start end portion has a second region extending along the flat portion, a folded-back portion folded back from an end portion of the second region, and a third region extending along the flat portion from an end portion of the folded-back portion, an electrode start end laminated portion in which the first region, the second region, and the third region overlap in a thickness direction from one flat surface of the wound electrode body to the other flat surface, The electrode start end laminated portion of the first electrode body; The electrode start end laminated portion of the second electrode body, the first electrode body and the second electrode body pass through each other, and the second electrode body and the first electrode body are disposed on different sides of a plane along the winding axis of the first electrode body and the winding axis of the second electrode body; the electrode starting end laminated portion overlaps with a tab position of either a positive electrode tab or a negative electrode tab.
3. A first electrode body and a second electrode body which are flat wound electrode bodies in which a positive electrode and a negative electrode are wound with a separator interposed therebetween; a battery case that accommodates the first electrode body and the second electrode body; A battery comprising: The first electrode body and the second electrode body are each The outer surface of the plate has a pair of curved portions and a flat portion connecting the pair of curved portions. the positive electrode winding start end portion has a first region extending along the flat portion, the negative electrode winding start end portion has a second region extending along the flat portion, a folded-back portion folded back from an end portion of the second region, and a third region extending along the flat portion from an end portion of the folded-back portion, an electrode start end laminated portion in which the first region, the second region, and the third region overlap in a thickness direction from one flat surface of the wound electrode body to the other flat surface, The electrode start end laminated portion of the first electrode body; The electrode start end laminated portion of the second electrode body, the first electrode body and the second electrode body pass through each other, and the second electrode body and the first electrode body are disposed on different sides of a plane along the winding axis of the first electrode body and the winding axis of the second electrode body; a stop tape for stopping the winding end of the separator present on the outer peripheral surface of the first electrode body and the second electrode body is disposed on the curved portion, A battery, wherein the winding stop tape present on the first electrode body and the winding stop tape present on the second electrode body are arranged on the curved portion on the same side.
4. 3. The battery according to claim 1, wherein a winding stop tape that stops the winding end of the separator present on the outer peripheral surface of the first electrode body and the second electrode body is both disposed on the curved portion.
5. The battery according to claim 4 , wherein the winding stop tape present on the first electrode body and the winding stop tape present on the second electrode body are arranged on the curved portion on the same side.
6. the battery case has a first surface having a liquid injection hole formed therein; The battery according to any one of claims 1 to 3, wherein the first electrode body and the second electrode body are arranged in the battery case such that a winding axis of the first electrode body and a winding axis of the second electrode body are each oriented perpendicular to the first surface.
7. an adhesive layer is formed between the separator and at least one of the positive electrode and the negative electrode, The battery according to any one of claims 1 to 3, wherein the number of stacked separator layers in the thickness direction in each of the first electrode body and the second electrode body is 20 or more.
8. The battery according to claim 3 , wherein the electrode starting end laminated portion overlaps with a tab position of either a positive electrode tab or a negative electrode tab.
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