Pouch-type secondary battery and battery module
Patent Information
- Application Number
- JP2024130100
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-08
- Filing Date
- 2024-08-06
- Publication Date
- 2025-12-22
- Estimated Expiration
- 2041-08-19
Smart Images

Figure 0007789863000001 
Figure 0007789863000002 
Figure 0007789863000003
Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2020-0104227, filed August 19, 2020, and Korean Patent Application No. 10-2021-0074471, filed June 8, 2021, and all contents disclosed in the documents of said Korean patent applications are incorporated herein by reference.
[0002] The present invention relates to a pouch-type secondary battery and a battery module, and more particularly to a pouch-type secondary battery and a battery module that can increase energy density per volume, have a beautiful appearance, and improve marketability. [Background technology]
[0003] Common types of secondary batteries include nickel-cadmium batteries, nickel-metal hydride batteries, lithium-ion batteries, and lithium-ion polymer batteries. These secondary batteries are used not only in small products such as digital cameras, DVD players, MP3 players, mobile phones, PDAs, portable game devices, power tools, and e-bikes, but also in large products that require high output, such as electric vehicles and hybrid vehicles, as well as in power storage devices that store surplus generated power and renewable energy, and as backup power storage devices.
[0004] To manufacture such a secondary battery, first, an electrode active material slurry is applied to a positive electrode current collector and a negative electrode current collector to form a positive electrode and a negative electrode, which are then stacked on both sides of a separator to form an electrode assembly of a predetermined shape, which is then housed in a battery case, filled with an electrolyte, and sealed.
[0005] Secondary batteries are classified into pouch types and can types depending on the material of the case that houses the electrode assembly. Pouch types house the electrode assembly in a pouch made of a flexible polymer material, while can types house the electrode assembly in a case made of metal or plastic.
[0006] The pouch, which is the case of a pouch-type secondary battery, is manufactured by pressing a flexible pouch film to form a cup portion. Once the cup portion is formed, an electrode assembly is placed in the receiving space of the cup portion and the sides are sealed to manufacture the secondary battery.
[0007] Drawing during press processing involves inserting a pouch film into a forming device, such as a press, and applying pressure to the pouch film with a punch to stretch it. Pouch films are composed of multiple layers, of which the moisture barrier layer located inside is made of metal. However, conventionally, the metal used for this moisture barrier layer is an aluminum alloy with large grain size, resulting in a thin moisture barrier layer, which reduces formability. Therefore, when forming a cup portion in a pouch film, there is a limit to improving the radius of curvature and clearance of the cup edge while increasing the cup depth. Furthermore, the volume ratio of the electrode assembly relative to the cup volume is small, and there is a limit to reducing the size of the bat ears, resulting in a decrease in the volume-specific energy density of the secondary battery. Furthermore, there is a limit to achieving a sharp overall shape, which results in a poor appearance and reduced marketability of the secondary battery. Prior art documents include Japanese Patent Registration No. 6022956. Summary of the Invention [Problem to be solved by the invention]
[0008] An object of the present invention is to provide a pouch-type secondary battery and a battery module that can increase the energy density relative to volume, have a beautiful appearance, and improve marketability.
[0009] The objects of the present invention are not limited to the objects mentioned above, and other objects not mentioned above will be clearly understood by those skilled in the art from the following description. [Means for solving the problem]
[0010] In order to solve the above problems, a pouch-type secondary battery according to an embodiment of the present invention includes an electrode assembly formed by stacking electrodes and separators, and a pouch-type battery case having a cup portion formed therein for accommodating the electrode assembly, wherein the pouch-type battery case includes a first case and a second case having the cup portion formed on at least one of them, a folding portion that integrally connects the first case and the second case, and bat ears formed to protrude outward from portions of both ends of the folding portion, the bat ears having a length of 1.5 mm or less.
[0011] Furthermore, the bat ears may have a length of 1.5 mm or less measured from the outer wall of the cup portion on the folding portion side to the outermost end of the bat ears. Additionally, the angle formed between the folding portion and the inner edge of the bat ear may be greater than 151 degrees. Also, the folding portion may be formed to include a recessed groove on its inner side.
[0012] The pouch-type battery case may also include a pair of protrusions that protrude outward with the groove between them, and the distance between the innermost part of the groove and the outermost part of the protrusions may be 0.8 mm or less.
[0013] The cup portion may include a plurality of punch edges respectively connecting a plurality of outer walls surrounding the periphery and a bottom portion, and at least one of the punch edges may be rounded. The radius of curvature of the punch edge may be 1 / 20 to 1 / 6 of the depth of the cup portion.
[0014] In addition, the cup portion may further include a thickness edge connecting two adjacent outer walls to each other, and the thickness edge may be connected to two adjacent punch edges to form a corner.
[0015] At least one of the corners may be rounded, and the radius of curvature may be equal to or greater than the radius of curvature of at least one of the punch edge and the thickness edge.
[0016] In addition, the first case and the second case may each have a cup portion formed therein, and the pouch-type battery case may include a bridge formed between the two cup portions, and the bridge may be rounded.
[0017] The cup portion may have a depth of 6.5 mm or more. The area of the electrode assembly is 15,000 mm 2 ~100,000mm 2 may be.
[0018] The pouch-type battery case may be manufactured by molding a pouch film, and the pouch film may include a sealant layer made from a first polymer and formed as an innermost layer, a surface protective layer made from a second polymer and formed as an outermost layer, and a moisture barrier layer laminated between the surface protective layer and the sealant layer, wherein the moisture barrier layer is made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a crystal grain size of 10 to 13 μm, and the sealant layer has a thickness of 60 to 100 μm.
[0019] The aluminum alloy thin film may also be alloy number AA8021. The aluminum alloy thin film may contain 1.3 wt % to 1.7 wt % of iron and 0.2 wt % or less of silicon.
[0020] The moisture barrier layer may have a thickness of 55 to 65 μm, and the sealant layer may have a thickness of 75 to 85 μm. The film may further include an orientation-assisting layer made of a third polymer and laminated between the surface protection layer and the moisture barrier layer. The stretching auxiliary layer may have a thickness of 20 to 50 μm.
[0021] In order to solve the above problems, a pouch-type secondary battery according to an embodiment of the present invention includes an electrode assembly formed by stacking electrodes and separators, and a pouch-type battery case having a cup portion formed therein for accommodating the electrode assembly, wherein the pouch-type battery case includes a first case and a second case, at least one of which has the cup portion formed therein, a folding portion that integrally connects the first case and the second case, and bat ears formed to protrude outward from portions of both ends of the folding portion, wherein an angle formed between the folding portion and inner edges of the bat ears may be greater than 151 degrees.
[0022] In order to solve the above problems, a battery module according to an embodiment of the present invention includes a pouch-type secondary battery in which an electrode assembly formed by stacking electrodes and separators is housed inside a cup portion formed in a pouch-type battery case, and a housing in which the pouch-type secondary battery is housed inside, wherein the pouch-type battery case includes a first case and a second case, at least one of which has the cup portion formed therein, a folding portion that connects the first case and the second case together, and bat ears that protrude outward from portions of both ends of the folding portion, and the bat ears are 1.5 mm or less in length.
[0023] Additionally, the angle formed between the folding portion and the inner edge of the bat ear may be greater than 151 degrees. The housing may also include a cooling plate for cooling the pouch-type secondary battery.
[0024] The pouch-type secondary battery may further include a heat transfer material formed between the cooling plate and the folding portion of the pouch-type secondary battery. The heat transfer material may have a thickness of 1 mm or less inside the housing.
[0025] In order to solve the above problems, a battery module according to an embodiment of the present invention includes a pouch-type secondary battery in which an electrode assembly formed by stacking electrodes and separators is housed inside a cup portion formed in a pouch-type battery case, and a housing in which the pouch-type secondary battery is housed inside, wherein the pouch-type battery case includes a first case and a second case, at least one of which has the cup portion formed therein, a folding portion that connects the first case and the second case together, and bat ears that protrude outward from portions of both ends of the folding portion, and an angle formed between the folding portion and inner edges of the bat ears may be greater than 151 degrees. Further details of the invention are included in the detailed description and drawings. [Effects of the Invention]
[0026] The embodiments of the present invention have at least the following advantages. Since the size of the bat ears can be reduced, the energy density relative to the volume of the secondary battery can be increased.
[0027] Furthermore, the space between the outer wall of the cup portion and the electrode assembly is reduced, thereby increasing the energy density relative to the volume of the secondary battery. Furthermore, the distance between the electrode assembly and the thermal grease is reduced, which further increases the cooling efficiency.
[0028] Furthermore, since the pouch-type battery case and pouch-type secondary battery can be manufactured with a sharp overall shape, the appearance of the secondary battery is beautiful and the marketability can be improved.
[0029] The effects of the present invention are not limited to the above-mentioned examples, and various other effects are included within the present specification. [Brief explanation of the drawings]
[0030] [Figure 1] 1 is an assembly diagram of a secondary battery 1 according to one embodiment of the present invention. [Figure 2] FIG. 2 is a cross-sectional view of a pouch film 135 according to one embodiment of the present invention. [Figure 3] 1 is a graph showing the iron and silicon contents of aluminum alloys with alloy number AA8079 and aluminum alloys with alloy number AA8021. [Figure 4] 1 is a graph showing the variation of tensile strength, elongation, and grain size as a function of iron content for aluminum alloys with alloy number AA8079 and aluminum alloy number AA8021. [Figure 5] 1 is an SEM photograph showing enlarged crystal grains of an aluminum alloy having alloy number AA8079 and an aluminum alloy having alloy number AA8021. [Figure 6] 1 is a schematic view of a molding device 2 according to one embodiment of the present invention. [Figure 7] FIG. 10 is an enlarged schematic view of a conventional cup portion 333 and a bridge 336. [Figure 8] FIG. 2 is an enlarged schematic view of a cup portion 133 and a bridge 136 according to an embodiment of the present invention. [Figure 9] FIG. 2 is an enlarged schematic view of a cup portion 133 and a degassing portion 137 according to one embodiment of the present invention. [Figure 10] 1 is a schematic top view showing an electrode assembly 10 housed in a cup portion 133 according to an embodiment of the present invention. [Figure 11] FIG. 1 is a schematic diagram showing a conventional corner 364. [Figure 12] FIG. 1 is a schematic diagram illustrating a corner 164 according to one embodiment of the present invention. [Figure 13] 1 is a schematic diagram showing a state in which a battery case 13 according to an embodiment of the present invention is folded. [Figure 14] FIG. 2 is a schematic diagram showing a state in which a battery case 13 according to one embodiment of the present invention is folded. [Figure 15] FIG. 10 is an enlarged view of a groove 1391 formed in a battery case 13 according to one embodiment of the present invention. [Figure 16] 16 is an enlarged schematic view of a cup portion 133 and a die edge 1621 according to another embodiment of the present invention. FIG. [Figure 17] 10A and 10B are schematic diagrams illustrating a state in which a battery case 13a according to another embodiment of the present invention is folded. [Figure 18] FIG. 10 is a schematic diagram showing a battery case 13a according to another embodiment of the present invention in a folded state. [Figure 19] 13 is an enlarged view of a groove 1391a formed in a battery case 13 according to another embodiment of the present invention. FIG. [Figure 20] FIG. 10 is a schematic diagram showing the state of a conventional battery case 33 from above before a degassing section 337 is cut off. [Figure 21] 1 is a schematic diagram showing the battery case 13 according to one embodiment of the present invention, viewed from above, before the degassing section 137 is cut off. FIG. [Figure 22] FIG. 1 is a block diagram of an inspection device 4 according to an embodiment of the present invention. [Figure 23] FIG. 10 is a schematic diagram showing a state in which the manufacture of a secondary battery 1 is completed by cutting off a degassing section 137 of a battery case 13 according to one embodiment of the present invention. [Figure 24] FIG. 10 is a schematic side view showing a conventional side 334 folded. [Figure 25] FIG. 10 is a schematic diagram showing a conventional side 334 folded from above. [Figure 26] FIG. 10 is a schematic side view of a folded side 134 according to an embodiment of the present invention. [Figure 27] 1 is a schematic diagram of a battery module 5 according to one embodiment of the present invention. [Figure 28] FIG. 10 is an enlarged front view showing a state in which a conventional secondary battery 3 is housed in a housing 51 of a battery module 5. [Figure 29] 1 is an enlarged side view showing a state in which a conventional secondary battery 3 is housed in a housing 51 of a battery module 5. FIG. [Figure 30] 1 is an enlarged front view showing a secondary battery 1 according to one embodiment of the present invention housed in a housing 51 of a battery module 5. FIG. [Figure 31] 1 is an enlarged side view showing a secondary battery 1 according to one embodiment of the present invention housed in a housing 51 of a battery module 5. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0031] The advantages and features of the present invention, as well as methods for achieving them, will become more apparent from the following detailed description of the embodiments in conjunction with the accompanying drawings. However, the present invention is not limited to the embodiments disclosed below, and can be realized in various different forms. The present embodiments are provided solely to ensure complete disclosure of the present invention and to fully convey the scope of the invention to those skilled in the art to which the present invention pertains. The present invention is defined solely by the scope of the claims. The same reference symbols refer to the same elements throughout the specification.
[0032] Unless otherwise defined, all terms (including technical and scientific terms) used in this specification may be used in a manner commonly understood by a person having ordinary skill in the art to which the present invention belongs. Furthermore, terms defined in commonly used dictionaries are not to be interpreted ideally or excessively unless clearly defined otherwise.
[0033] The terms used in this specification are for the purpose of describing embodiments and are not intended to limit the present invention. In this specification, the singular form includes the plural form unless otherwise specified in the wording. The words "comprises" and / or "comprising" used in this specification do not exclude the presence or addition of one or more other elements in addition to the elements mentioned.
[0034] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings. FIG. 1 is an assembly diagram of a secondary battery 1 according to one embodiment of the present invention.
[0035] According to one embodiment of the present invention, the tensile strength and elongation of the pouch film 135 are improved, thereby increasing toughness and improving formability when molding the pouch film 135 to manufacture a pouch-type battery case 13.
[0036] To this end, pouch film 135 according to one embodiment of the present invention includes sealant layer 1351 (shown in FIG. 2) made of a first polymer and formed as an innermost layer, surface protective layer 1353 (shown in FIG. 2) made of a second polymer and formed as an outermost layer, and moisture (or gas) barrier layer 1352 (shown in FIG. 2) laminated between surface protective layer 1353 and sealant layer 1351. Moisture barrier layer 1352 may be made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a grain size of 10 to 13 μm, and sealant layer 1351 may be 60 to 100 μm thick. In particular, moisture barrier layer 1352 preferably has a thickness of 55 to 65 μm, and sealant layer 1351 preferably has a thickness of 75 to 85 μm.
[0037] The electrode assembly 10 is formed by alternately stacking electrodes 101 (shown in FIG. 8) and separators 102 (shown in FIG. 8). First, a slurry containing an electrode active material, a binder, and a plasticizer is applied to a positive electrode current collector and a negative electrode current collector to produce electrodes 101 such as a positive electrode and a negative electrode. Then, separators 102 are stacked between the electrodes 101 to form the electrode assembly 10. The electrode assembly 10 is inserted into a battery case 13, and the case is sealed after electrolyte is injected.
[0038] The electrode assembly 10 has an area of 15,000 mm 2 ~100,000mm 2In particular, the overall width of the electrode assembly 10 may be 60 mm or more. Furthermore, the electrode assembly 10 may have a thickness of 6 mm to 20 mm in the stacking direction. Therefore, the electrode assembly 10 according to one embodiment of the present invention can provide a larger battery capacity than a typical small battery.
[0039] Specifically, the electrode assembly 10 includes two types of electrodes 101, a positive electrode and a negative electrode, and a separator 102 interposed between the electrodes 101 to insulate the electrodes 101 from each other. Examples of such electrode assemblies 10 include stacked, jelly roll, and stack-and-folded types. The two types of electrodes 101, i.e., the positive electrode and the negative electrode, are each constructed by applying an active material slurry to a metal foil or metal mesh electrode collector containing aluminum and copper. The active material slurry can typically be formed by stirring a granular active material, a conductive material, and the like in a solvent. The solvent is removed in a subsequent process.
[0040] As shown in FIG. 1, the electrode assembly 10 includes electrode tabs 11. The electrode tabs 11 are connected to the positive and negative electrodes of the electrode assembly 10, respectively, and protrude from the electrode assembly 10 to provide a path for electrons to move between the inside and outside of the electrode assembly 10. The electrode current collector of the electrode assembly 10 includes a portion coated with an electrode active material and an end portion, i.e., a plain portion, where the electrode active material is not coated. The electrode tabs 11 may be formed by cutting the plain portion or by connecting a separate conductive member to the plain portion by ultrasonic welding or the like. The electrode tabs 11 may protrude in different directions from the electrode assembly 10 as shown in FIG. 1, but are not limited thereto and may protrude in various directions, such as protruding side by side in the same direction from one side.
[0041] An electrode lead 12 that supplies electricity to the outside of the secondary battery 1 is connected to the electrode tab 11 of the electrode assembly 10 by spot welding or the like. A portion of the electrode lead 12 is surrounded by an insulating portion 14. The insulating portion 14 is located only on a side 134 of the battery case 13 where the first case 131 and the second case 132 are heat-sealed, and adheres the electrode lead 12 to the battery case 13. The insulating portion 14 prevents electricity generated from the electrode assembly 10 from flowing to the battery case 13 through the electrode lead 12, thereby maintaining the seal of the battery case 13. Therefore, the insulating portion 14 is made of a non-conductive material that does not conduct electricity well. Typically, the insulating portion 14 is made of insulating tape, which is easy to adhere to the electrode lead 12 and is relatively thin, but is not limited thereto and various materials may be used as long as they can insulate the electrode lead 12.
[0042] The electrode lead 12 has one end connected to the electrode tab 11 and the other end protruding out of the battery case 13. That is, the electrode lead 12 includes a positive electrode lead 121 having one end connected to the positive electrode tab 111 and extending in the direction in which the positive electrode tab 111 protrudes, and a negative electrode lead 122 having one end connected to the negative electrode tab 112 and extending in the direction in which the negative electrode tab 112 protrudes. Meanwhile, as shown in FIG. 1 , the other ends of both the positive electrode lead 121 and the negative electrode lead 122 protrude out of the battery case 13. This allows electricity generated inside the electrode assembly 10 to be supplied to the outside. In addition, because the positive electrode tab 111 and the negative electrode tab 112 protrude in various directions, the positive electrode lead 121 and the negative electrode lead 122 can also extend in various directions.
[0043] The positive electrode lead 121 and the negative electrode lead 122 may be made of different materials. That is, the positive electrode lead 121 may be made of the same aluminum (Al) material as the positive electrode current collector, and the negative electrode lead 122 may be made of the same copper (Cu) material as the negative electrode current collector, or a copper material coated with nickel (Ni). A portion of the electrode lead 12 protruding outside the battery case 13 serves as a terminal portion and is electrically connected to an external terminal.
[0044] The battery case 13 is a pouch manufactured by molding a pouch film 135 made of a flexible material, which houses the electrode assembly 10 therein. Hereinafter, the battery case 13 will be described as a pouch. When the flexible pouch film 135 is drawn using a punch 22 (shown in FIG. 6 ) or the like, a portion of the flexible pouch film 135 is stretched to form a cup portion 133 including a bag-shaped storage space 1331, thereby manufacturing the battery case 13.
[0045] The battery case 13 accommodates and seals the electrode assembly 10 such that a portion of the electrode lead 12 is exposed. As shown in FIG. 1, the battery case 13 includes a first case 131 and a second case 132. The first case 131 is formed with a cup portion 133 and is provided with an accommodation space 1331 that can accommodate the electrode assembly 10, and the second case 132 covers the accommodation space 1331 from above to prevent the electrode assembly 10 from falling out of the battery case 13. The first case 131 and the second case 132 may be manufactured with one side connected to each other as shown in FIG. 1, but are not limited thereto and may be manufactured in various ways, such as being separated from each other and separately manufactured.
[0046] When forming the cup portions 133 in the pouch film 135, only one cup portion 133 may be formed in one pouch film 135, but is not limited thereto, and two cup portions 133 may be formed adjacent to each other by draw molding in one pouch film 135. Then, as shown in Fig. 1, the cup portions 133 are formed in the first case 131 and the second case 132, respectively. In this case, the cup portions 133 formed in the first case 131 and the second case 132 may have the same depth D, but is not limited thereto, and the depths D may be different from each other.
[0047] In one embodiment of the present invention, the depth D of the cup portion 133 may be 3 mm or more, particularly 6.5 mm or more. Therefore, the cup portion 133 according to one embodiment of the present invention can accommodate an electrode assembly 10 having a larger electrode capacity than a general small battery.
[0048] After the electrode assembly 10 is accommodated in the accommodation space 1331 defined in the cup portion 133 of the first case 131, the battery case 13 can be folded around the bridge 136 formed between the two cup portions 133 of the battery case 13 so that the two cup portions 133 face each other. The cup portion 133 of the second case 132 then accommodates the electrode assembly 10 from above. Therefore, because two cup portions 133 accommodate one electrode assembly 10, it is possible to accommodate an electrode assembly 10 that is thicker than when there is only one cup portion 133. Furthermore, because the first case 131 and the second case 132 are integrally connected by folding the battery case 13, the number of sides 134 to be sealed during a subsequent sealing process can be reduced. This can improve the process speed and reduce the number of sealing processes.
[0049] Meanwhile, the battery case 13 may include a cup portion 133 having an accommodation space 1331 for accommodating the electrode assembly 10, and a degassing portion 137 formed on a side of the cup portion 133 and discharging gas generated within the cup portion 133 through a vent hole H. When the electrode assembly 10 is accommodated in the cup portion 133 of the battery case 13 and an electrolyte is injected thereinto, an activation process is performed, generating gas within the battery case 13, and a degassing process is performed to discharge the gas to the outside. The degassing portion 137 will be described in detail later.
[0050] After the electrode lead 12 is connected to the electrode tab 11 of the electrode assembly 10 and an insulating portion 14 is formed on a portion of the electrode lead 12, the electrode assembly 10 is accommodated in the accommodation space 1331 defined in the cup portion 133 of the first case 131, and the second case 132 covers the space from above. An electrolyte is then injected into the accommodation space, and the sides 134 extending outward from the cup portions 133 of the first case 131 and the second case 132 are sealed. The electrolyte transports lithium ions generated by an electrochemical reaction in the electrode 101 during charging and discharging of the secondary battery 1. The electrolyte may include a non-aqueous organic electrolyte solution, which is a mixture of lithium salt and high-purity organic solvents, or a polymer using a polymer electrolyte. The electrolyte may also include a sulfide-based, oxide-based, or polymer-based solid electrolyte, which may be flexible enough to be easily deformed by external force. This method allows the pouch-type secondary battery 1 to be manufactured.
[0051] FIG. 2 is a cross-sectional view of a pouch film 135 according to one embodiment of the present invention. The pouch, which is the battery case 13 of the pouch-type secondary battery 1 according to one embodiment of the present invention, is manufactured by drawing a pouch film 135. That is, the pouch film 135 is stretched using a punch 22 or the like to form a cup portion 133. According to one embodiment of the present invention, the pouch film 135 includes a sealant layer 1351, a moisture barrier layer 1352, and a surface protection layer 1353, as shown in FIG. 2, and may further include a drawing assistance layer 1354, if necessary.
[0052] The sealant layer 1351 is made of a first polymer and is formed as the innermost layer, allowing direct contact with the electrode assembly 10. Here, the innermost layer refers to the layer located most closely to the moisture barrier layer 1352 when facing the electrode assembly 10. The battery case 13 is manufactured by drawing the laminated pouch film 135 using a punch 22 or the like, stretching a portion of the film to form a cup portion 133 including a bag-shaped receiving space 1331. The electrode assembly 10 is then placed in the receiving space 1331, and an electrolyte is then injected. The first case 131 and the second case 132 are then brought into contact with each other and thermocompressed to the sides 134, thereby adhering the sealant layers 1351 to each other and sealing the pouch. In this case, the sealant layer 1351 must be insulating because it comes into direct contact with the electrode assembly 10, and corrosion-resistant because it also comes into contact with the electrolyte. Furthermore, it must have high sealing properties because it must completely seal the interior and prevent material transfer between the interior and exterior. That is, the sides 134 where the sealant layers 1351 are bonded together must have excellent thermal adhesive strength. Generally, the first polymer used to form the sealant layer 1351 may be one or more materials selected from the group consisting of polyethylene, polypropylene, polycarbonate, polyethylene terephthalate, polyvinyl chloride, acrylic polymers, polyacrylonitrile, polyimide, polyamide, cellulose, aramid, nylon, polyester, polyparaphenylene benzobisoxazole, polyarylate, Teflon, and glass fiber. In particular, polyolefin resins such as polypropylene (PP) or polyethylene (PE) are commonly used. Polypropylene (PP) has excellent mechanical properties such as tensile strength, rigidity, surface hardness, abrasion resistance, and heat resistance, and excellent chemical properties such as corrosion resistance, and is therefore mainly used to manufacture the sealant layer 1351. Furthermore, it may be made of unstretched polypropylene (Cated Polypropylene), acid-modified polypropylene, or polypropylene-butylene-ethylene terpolymer.Here, the acid-modified polypropylene may be MAH PP (Maleic Anhydride Polypropylene). Also, the sealant layer 1351 may have a single film structure made of any one material, or a composite film structure formed by layers of two or more materials.
[0053] According to one embodiment of the present invention, the thickness of the sealant layer 1351 may be 60 to 100 μm, and particularly 75 to 85 μm. If the thickness of the sealant layer 1351 is thinner than 60 μm, problems may occur, such as internal damage during sealing, resulting in reduced seal durability. If the thickness of the sealant layer 1351 is thicker than 100 μm, the overall thickness of the pouch becomes excessively thick, which may result in reduced formability or a reduced energy density per volume of the secondary battery 1. If the thickness of the sealant layer 1351 is small, the dielectric breakdown voltage of the pouch film 135 may be reduced, resulting in reduced insulation, and the defective rate may be high when batteries are manufactured using a pouch film 135 with poor insulation.
[0054] The moisture barrier layer 1352 is laminated between the surface protective layer 1353 and the sealant layer 1351 to ensure the mechanical strength of the pouch, block the ingress and egress of gas or moisture outside the secondary battery 1, and prevent electrolyte leakage. The moisture barrier layer 1352 may be made of an aluminum alloy thin film. The aluminum alloy thin film can ensure a certain level of mechanical strength while being lightweight, and can ensure the electrochemical properties of the electrode assembly 10 and the electrolyte, as well as heat dissipation.
[0055] More specifically, the aluminum alloy thin film according to one embodiment of the present invention may have a grain size of 10 to 13 μm, preferably 10.5 to 12.5 μm, and more preferably 11 to 12 μm. When the grain size of the aluminum alloy thin film satisfies this range, the forming depth can be increased without generating pinholes or cracks during cup forming.
[0056] Such an aluminum alloy thin film may contain one or more metal elements other than aluminum, such as iron (Fe), copper (Cu), chromium (Cr), manganese (Mn), nickel (Ni), magnesium (Mg), and zinc (Zn).
[0057] Conventionally, moisture barrier layers have a thickness of approximately 30 to 50 μm, particularly 40 μm, which reduces formability. Therefore, even when a pouch film is draw-formed, as the depth D' of the cup portion 333 (shown in FIG. 7) increases, there is a limit to how close the outer wall 338 (shown in FIG. 7) of the cup portion 333 can be formed to a nearly vertical shape, and there is also a limit to how much the curvature radius of the edge 36 (shown in FIG. 7) of the cup portion 333 can be reduced. In addition, there is a problem in that the internal electrode assembly is easily damaged when the battery case receives an external impact due to its low puncture strength.
[0058] If the thickness of the moisture barrier layer 1352 is increased beyond about 80 μm to solve this problem, not only will the manufacturing cost increase, but the overall thickness of the pouch will become too thick, resulting in a decrease in the energy density per volume of the secondary battery 1. If the thickness of the sealant layer 1351 is reduced below 60 μm in order to reduce the overall thickness of the pouch, the seal durability will decrease as described above.
[0059] According to one embodiment of the present invention, this problem is improved, and the moisture barrier layer 1352 may have a thickness of 50 μm to 80 μm, and particularly 55 μm to 65 μm. Therefore, the improved formability of the moisture barrier layer 1352 allows the depth D of the cup portion 133 to be deeper when the pouch film 135 is draw-formed, making the outer wall 138 of the cup portion 133 nearly vertical, and reducing the radius of curvature R2 of the edge 16 (shown in FIG. 8 ) of the cup portion 133. This increases the volume of the receiving space 1331, thereby increasing the volume of the electrode assembly 10 contained therein and improving the energy efficiency relative to volume of the secondary battery 1. Furthermore, the manufacturing cost does not increase significantly, and even if the thickness of the sealant layer 1351 is not reduced, the overall thickness of the pouch does not increase significantly, and seal durability does not decrease.
[0060] In addition, since the pouch film 135 has improved puncture strength, the internal electrode assembly 10 can be more effectively protected even if it is subjected to a large external pressure or is punctured by a sharp object. Here, excellent puncture strength means that the pouch film 135 has high strength when a hole is punctured.
[0061] However, if the thickness of the aluminum alloy thin film is simply increased, the forming depth can be increased, but pinholes and cracks may occur in the aluminum alloy thin film after forming, resulting in problems with sealing durability.
[0062] Therefore, after extensive research, the inventors discovered that by using an aluminum alloy thin film having a specific crystal grain size as the material for the gas barrier layer and controlling the thickness of the gas barrier layer and the silane layer within a specific range, it is possible to form a deep cup portion while maintaining excellent sealing durability, and thus completed the present invention.
[0063] Specifically, the gas barrier layer 1352 according to the present invention includes an aluminum alloy thin film having a crystal grain size of 10 μm to 13 μm, preferably 10.5 to 12.5 μm, and more preferably 11 to 12 μm. When the crystal grain size of the aluminum alloy thin film satisfies this range, the forming depth can be increased without the occurrence of pinholes or cracks during cup forming. If the crystal grain size of the aluminum alloy thin film exceeds 13 μm, the strength of the aluminum alloy thin film decreases and it becomes difficult to disperse internal stress during stretching, increasing the occurrence of cracks and pinholes. If the crystal grain size is less than 10 μm, the flexibility of the aluminum alloy thin film decreases, limiting the improvement of formability.
[0064] Meanwhile, the grain size varies depending on the composition of the aluminum alloy thin film and the processing method of the aluminum alloy thin film, and can be measured by observing a cross section of the aluminum alloy thin film in the thickness direction using a scanning electron microscope (SEM). Specifically, in the present invention, an SEM image of the cross section of the aluminum alloy thin film in the thickness direction was obtained using a scanning electron microscope, and the maximum diameters of a predetermined number of grains among the grains observed in the SEM image were measured, and the average value of these was evaluated as the grain size.
[0065] The surface protective layer 1353 is made of a second polymer and is formed as the outermost layer. It protects the secondary battery 1 from external friction and impact while electrically insulating the electrode assembly 10 from the outside. Here, the outermost layer refers to the layer located most recently in the opposite direction from the moisture barrier layer 1352 toward the electrode assembly 10. The second polymer used to form the surface protective layer 1353 may be one or more materials selected from the group consisting of polyethylene, polypropylene, polycarbonate, polyethylene terephthalate, polyvinyl chloride, acrylic polymers, polyacrylonitrile, polyimide, polyamide, cellulose, aramid, nylon, polyester, polyparaphenylene benzobisoxazole, polyarylate, Teflon, and glass fiber. In particular, it is preferable to use a polymer such as polyethylene terephthalate (PET), which is primarily abrasion-resistant and heat-resistant. The surface protective layer 1353 may have a single film structure made of any one material or a composite film structure formed by layers of two or more materials.
[0066] According to one embodiment of the present invention, the thickness of the surface protective layer 1353 may be 5 μm to 25 μm, and particularly 7 μm to 12 μm. If the thickness of the surface protective layer 1353 is thinner than 5 μm, there may be a problem of reduced external insulation. Conversely, if the thickness of the surface protective layer 1353 is thicker than 25 μm, the overall thickness of the pouch becomes thick, which may actually reduce the energy density per volume of the secondary battery 1.
[0067] On the other hand, PET is inexpensive, durable, and has excellent electrical insulation properties, but it also has poor adhesion to aluminum, which is often used for the moisture barrier layer 1352, and their behavior when stretched by applying stress may differ. Therefore, if the surface protective layer 1353 and the moisture barrier layer 1352 are directly bonded, the surface protective layer 1353 and the moisture barrier layer 1352 may peel off during draw forming. This can cause the moisture barrier layer 1352 to be stretched unevenly, resulting in a problem of reduced formability.
[0068] According to one embodiment of the present invention, the battery case 13 may further include a stretching assist layer 1354 made of a third polymer and laminated between the surface protective layer 1353 and the moisture barrier layer 1352. The stretching assist layer 1354 is laminated between the surface protective layer 1353 and the moisture barrier layer 1352 and can prevent peeling between the surface protective layer 1353 and the moisture barrier layer 1352 when they are stretched. The third polymer from which the stretching assist layer 1354 is made may be one or more materials selected from the group consisting of polyethylene, polypropylene, polycarbonate, polyethylene terephthalate, polyvinyl chloride, acrylic polymers, polyacrylonitrile, polyimide, polyamide, cellulose, aramid, nylon, polyester, polyparaphenylene benzobisoxazole, polyarylate, Teflon (registered trademark), and glass fiber. In particular, nylon resin can be mainly used as the third polymer because nylon resin easily adheres to polyethylene terephthalate (PET) of the surface protective layer 1353 and behaves similarly when stretched to the aluminum alloy of the moisture barrier layer 1352. The stretching assist layer 1354 may have a single film structure made of any one material, or a composite film structure formed by layers of two or more materials.
[0069] Conventionally, the moisture barrier layer has a thickness of approximately 40 μm, and the stretching auxiliary layer has a relatively thin thickness of approximately 15 μm. That is, the thickness ratio of the stretching auxiliary layer to the moisture barrier layer is 1:2.67, which means that the thickness ratio of the moisture barrier layer is relatively high. As described above, according to one embodiment of the present invention, the moisture barrier layer 1352 has a thickness of approximately 50 to 80 μm, particularly 55 to 65 μm, thereby improving the formability of the moisture barrier layer 1352. To improve the formability of the stretching auxiliary layer 1354, the stretching auxiliary layer 1354 may have a thickness of 20 to 50 μm, preferably 25 to 38 μm. If the stretching auxiliary layer 1354 were thinner than 20 μm, it would not be able to keep up with the improved formability of the moisture barrier layer 1352 and may be damaged during stretching. Conversely, if the thickness is greater than 50 μm, the overall thickness of the pouch will be too thick, which may increase the volume of the secondary battery 1 and reduce the energy density. In particular, according to one embodiment of the present invention, the thickness ratio of the stretching assist layer 1354 to the moisture barrier layer 1352 may be less than 1:2.5. That is, the thickness ratio of the stretching assist layer 1354 may be greater than conventional thicknesses. However, if the thickness of the stretching assist layer 1354 is too thick, the overall thickness of the pouch will be too thick. Therefore, to avoid this excessive thickness, the thickness ratio may be greater than 1:1.5. That is, the thickness ratio may be 1:1.5 to 1:2.5.
[0070] FIG. 3 is a graph showing the iron and silicon contents of aluminum alloys with alloy number AA8079 and aluminum alloys with alloy number AA8021. As described above, the aluminum alloy thin film that forms the moisture barrier layer 1352 may have a grain size of 10 to 13 μm, preferably 10.5 to 12.5 μm, and more preferably 11 to 12 μm.
[0071] The iron (Fe) content of the aluminum alloy thin film may be 1.2 wt% to 1.7 wt%, preferably 1.3 wt% to 1.7 wt%, and more preferably 1.3 wt% to 1.45 wt%. If the iron (Fe) content in the aluminum alloy thin film is less than 1.2 wt%, the strength of the aluminum alloy thin film will decrease, and cracks and pinholes may occur during forming. If the iron (Fe) content exceeds 1.7 wt%, the flexibility of the aluminum alloy thin film will decrease, and there will be a limit to the improvement of formability.
[0072] The aluminum alloy thin film may have a silicon (Si) content of 0.2 wt% or less, preferably 0.05 to 0.2 wt%, and more preferably 0.1 to 0.2 wt%. If the silicon content exceeds 0.2 wt%, formability may be reduced.
[0073] Specifically, the aluminum alloy thin film according to the present invention may be an aluminum alloy with alloy number AA8021. In contrast, conventional battery pouches are made of thin aluminum alloys, primarily alloy number AA8079. Aluminum alloys with a high iron content have better mechanical strength, while those with a low iron content have better flexibility.
[0074] As shown in Figure 3, alloy number AA8079 contains 0.6 wt% to 1.2 wt% iron and 0.3 wt% or less silicon. The aluminum alloy with alloy number AA8079 contains a relatively small amount of iron, and when used to manufacture moisture barrier layer 1352, flexibility can be improved, but strength can be reduced, limiting formability.
[0075] In contrast, alloy number AA8021 may contain 1.2 wt% to 1.7 wt%, particularly 1.3 wt% to 1.7 wt%, of iron, and 0.2 wt% or less of silicon, as shown in Figure 3. When the moisture barrier layer 1352 is manufactured using such an aluminum alloy with alloy number AA8021, the tensile strength, elongation rate, and puncture strength can be improved due to the relatively high iron content.
[0076] Meanwhile, the relationship between tensile strength and elongation when a tensile force is applied to a material can be graphed. In this graph, the vertical axis represents tensile strength and the horizontal axis represents elongation. The area under the graph represents the toughness of the material. Toughness refers to the degree to which a material is resistant to fracture, and the higher the toughness, the more the material can be stretched before breaking.
[0077] Therefore, when the moisture barrier layer 1352 is manufactured using the aluminum alloy of alloy number AA8021, the tensile strength and elongation are improved, which increases toughness and improves formability.
[0078] FIG. 4 is a graph showing the changes in tensile strength (Rm), elongation, and grain size depending on the iron content of aluminum alloys with alloy numbers AA8079 and AA8021, and FIG. 5 is a SEM photograph showing enlarged grains of aluminum alloys with alloy numbers AA8079 and AA8021.
[0079] As shown in Figure 4, the tensile strength, elongation, and grain size of aluminum alloys change depending on the iron content. Specifically, since the tensile strength and elongation are proportional to the iron content, the tensile strength and elongation increase as the iron content increases. On the other hand, since the grain size is inversely proportional to the iron content, the grain size decreases as the iron content increases.
[0080] Alloy No. AA8079 has a relatively large crystal grain size of 13 μm to 21 μm, which results in less internal stress being dispersed during stretching and more pinholes, resulting in a problem of reduced formability of the battery case 13.
[0081] Alloy No. AA8021 has a relatively small crystal grain size of 10 μm to 13 μm, which allows for more dispersion of internal stress during stretching, reducing pinholes and improving the formability of the battery case 13.
[0082] The pouch-type battery case 13 manufactured by molding the pouch film 135 having such a moisture barrier layer 1352 has improved moldability, allowing the depth D of the cup portion 133 to be formed deeper, the outer wall 138 of the cup portion 133 to be nearly vertical, and the radius of curvature of the edge 16 of the cup portion 133 to be reduced, making it possible to accommodate a larger and thicker electrode assembly 10. Therefore, the secondary battery 1 manufactured using such a battery case 13 can have improved energy efficiency per volume.
[0083] Meanwhile, the pouch film 135 according to the present invention may have a total thickness of 160 μm to 200 μm, preferably 180 μm to 200 μm. When the thickness of the pouch film 135 satisfies this range, it is possible to increase the molding depth while minimizing the reduction in the battery accommodating space and the deterioration in sealing durability due to an increase in the pouch thickness.
[0084] The pouch film 135 according to the present invention includes an aluminum alloy thin film having a specific thickness and crystal grain size, and thus has excellent tensile strength and elongation. Specifically, the pouch film 135 according to the present invention, when cut into a size of 15 mm x 80 mm and pulled at a pulling rate of 50 mm / min, has a tensile strength of 200 N / 15 mm to 300 N / 15 mm, preferably 210 N / 15 mm to 270 N / 15 mm, and more preferably 220 N / 15 mm to 250 N / 15 mm, and an elongation of 120% to 150%, preferably 120% to 140%, and more preferably 120% to 130%. Thus, the pouch film laminate according to the present invention has high tensile strength and elongation, which increases toughness and reduces the occurrence of cracks even when the molding depth is large during cup molding.
[0085] Furthermore, the pouch film laminate according to the present invention contains an aluminum alloy thin film having a specific thickness and crystal grain size, and has excellent puncture strength. Specifically, the pouch film laminate according to the present invention may have a puncture strength of 30 N or more.
[0086] FIG. 6 is a schematic diagram of a molding apparatus 2 according to one embodiment of the present invention. A forming device 2 for forming a pouch film 135 according to one embodiment of the present invention includes a die 21 on whose upper surface the pouch film 135 is placed, and a punch 22 that is disposed above the die 21 and descends to form the pouch film 135. The die 21 includes a forming portion 211 recessed inward from its upper surface, and the punch 22 inserts the pouch film 135 into the forming portion 211 and draws and forms a cup portion 133.
[0087] According to one embodiment of the present invention, when forming a pouch film 135 using the forming apparatus 2, as shown in Fig. 6, two forming portions 211 are formed adjacent to each other in the die 21, and a partition wall 212 may be formed between the two forming portions 211. When the punch 22 is inserted into both forming portions 211 to draw-form the pouch film 135, a total of two cup portions 133 are formed in the first case 131 and the second case 132, one in each case, corresponding to the two forming portions 211, and a bridge 136 may also be formed between the two cup portions 133, corresponding to the partition wall 212.
[0088] The bridge 136 may serve as a reference when folding the battery case 13 later. After the secondary battery 1 is manufactured, the bridge 136 may form a folding portion 139 (shown in FIG. 14) on one side of the secondary battery 1. The folding portion 139 integrally connects the first case 131 and the second case 132 to each other, thereby reducing the number of sides 134 to be sealed during a subsequent sealing process. This improves the process speed and reduces the number of sealing processes. In this regard, as the width of the folding portion 139 is smaller, the space 17 (shown in FIG. 8) between the outer wall 138 of the cup portion 133 (shown in FIG. 8) and the electrode assembly 10 also decreases, thereby reducing the overall volume of the secondary battery 1 and increasing the energy density per volume.
[0089] The width of the folding portion 139 is proportional to the thickness t (shown in FIG. 8 ) of the bridge 136. Because the bridge 136 is formed corresponding to the partition wall 212, the thickness t of the bridge 136 is proportional to the thickness of the partition wall 212. Therefore, when forming the pouch film 135, it is preferable to minimize the thickness t of the bridge 136, and therefore it is preferable to minimize the thickness of the partition wall 212 as well. However, if the partition wall 212 is formed too high while being thin, the partition wall 212 may be damaged during the draw-forming process. In particular, conventional dies have a bottom, which poses a problem in that gas present in the space between the pouch film 135 and the forming portion 211 cannot be discharged when the punch 22 forms the pouch film 135. Therefore, in recent years, by removing the bottom from such dies, gas present in the space between the pouch film 135 and the forming portion 211 can be easily discharged, but this poses a problem in that the height of the partition wall 212 is excessively high. 6, a reinforcing portion 2121 having a thickness greater than that of the partition wall 212 may be formed below the partition wall 212. The reinforcing portion 2121 may be formed below the depth D of the cup portion 133 formed in the battery case 13, at a position that will not damage the partition wall 212. The exact position of the reinforcing portion 2121 may be determined experimentally depending on the thickness of the partition wall 212, the material of the partition wall 212, the pressure of the punch 22, and the depth D of the cup portion 133 to be formed.
[0090] FIG. 7 is an enlarged schematic view of a conventional cup portion 333 and bridge 336. As mentioned above, conventionally, aluminum alloys with alloy number AA30XX have been widely used to manufacture moisture barrier layers. The moisture barrier layers have a thickness of approximately 30 to 50 μm, particularly 40 μm, and the stretching assist layer has a relatively thin thickness of approximately 15 μm. Therefore, due to poor formability of the pouch film, even when battery cases and secondary batteries are manufactured, the depth D' of the cup portion 333 is not deep, and there are limitations in manufacturing a sharp overall shape.
[0091] Specifically, conventionally, there is a limit to how much the radius of curvature of the edge 36 of the cup portion 333 can be reduced. The edge 36 of the cup portion 333 includes a punch edge 361 formed to correspond to the edge 221 of the punch 22 (shown in FIG. 6) and a die edge 362 (shown in FIG. 11) formed to correspond to the edge 213 of the die 21 (shown in FIG. 6).
[0092] The punch edge 361 connects the multiple outer walls 338 surrounding the cup portion 333 to the bottom portion 3332. If the edge 221 of the punch 22 is not rounded, the edge 221 of the punch 22 becomes sharp, which can cause stress to concentrate on the punch edge 361 of the cup portion 333 and easily cause cracks when forming the pouch film 135. The die edge 362 connects the multiple outer walls 338 to the side 134 or the degassing portion 137. If the edge 213 of the die 21 is not rounded, the edge of the die 21 becomes sharp, which can cause stress to concentrate on the die edge 362 of the cup portion 333 and easily cause cracks when forming the pouch film 135. Here, "rounded" means forming a curved surface with a curvature. This curved surface may have a constant curvature, but is not limited thereto and may have a non-constant curvature. In this specification, when the punch edge 161, die edge 162, bridge 136, etc. are formed rounded with a specific curvature, this means that it includes not only those that have only the specific curvature overall, but also those that have the specific curvature only in at least a portion.
[0093] To solve the above problem, as shown in Fig. 7, the edge 221 of the punch 22 and the edge 213 of the die 21 are rounded, and the punch edge 361 and the die edge 362 of the cup portion 333 are rounded. This makes it possible to disperse the stress concentrated on the punch edge 361 and the die edge 362 of the cup portion 333 to some extent.
[0094] However, even if the punch edge 361 and the die edge 362 of the cup portion 333 are formed to be rounded, there is a limit to the depth D' of the cup portion 333 that can be made within 2 to 5 times, particularly 2 to 3.25 times, the ratio of the radii of curvature of each edge 361, 362.
[0095] Therefore, in order to form the depth D' of the cup portion 333 to a certain extent, the radius of curvature R2' of the punch edge 361 and the radius of curvature of the die edge 362 must be made sufficiently large, and if the depth D' of the cup portion 333 is excessively deep compared to the radii of curvature of the punch edge 361 and the die edge 362, cracks will occur in the punch edge 361 and the die edge 362.
[0096] Therefore, in the past, even if the depth D' of the cup portion 333 was formed sufficiently deep (e.g., 6.5 mm or more), there was a problem that the radius of curvature R2' of the punch edge 361 of the cup portion 333 and the radius of curvature of the die edge 362 could not be formed to a certain value (e.g., 2 mm) or less.
[0097] Furthermore, when two cup portions 133 are formed, a partition 212 must be present in the die 21 in order to form the bridge 136. However, conventionally, due to poor formability of pouch films, there was a limit to how thin the bridge 336 could be formed. That is, if the partition 212 was also formed to a certain thickness or less in order to form the bridge 336 to a certain thickness or less, the partition 212 would be formed sharply, causing a problem of cracks occurring in the bridge 336.
[0098] To solve this problem, as shown in Figure 7, the partition wall 212 is rounded, and the bridge 336 is formed with a rounded shape. This makes it possible to disperse stress concentrated on the bridge 336 to some extent. In particular, when the radius of curvature R1' of the bridge 336 is constant, the radius of curvature R1' corresponds to half the thickness t' of the bridge 336. For example, when the radius of curvature R1' of the bridge 336 is formed to be approximately 1 mm, the thickness t' of the bridge 336 is formed to be approximately 2 mm.
[0099] However, even if the bridge 336 is formed to be rounded, if the radius of curvature R1' of the bridge 336 is small, there is a problem that cracks occur in the bridge 336 when the depth D' of the cup portion 333 is formed to a certain depth. Therefore, in the past, there was a problem that the thickness t' of the bridge 336 could not be formed to a certain value (e.g., 2 mm) or less, even when the cup portion 333 was formed to a certain depth D' (e.g., 6.5 mm) or more.
[0100] Furthermore, the clearance CL' was quite large, limiting the ability to form the outer wall 338 of the cup portion 333 nearly vertically. The clearance CL refers to the vertical distance between the inner wall of the forming portion 211 of the die 21 and the outer wall of the punch 22. In fact, there is a slight difference in size between the forming portion 211 of the die 21 and the punch 22, which is the clearance CL. If the clearance CL is too small, the distance between the inner wall of the forming portion 211 and the outer wall of the punch 22 becomes too small. As a result, the pouch film 135 may not be inserted into the forming portion 211, or friction may be too great, damaging the pouch film 135. Conversely, if the clearance CL is too large, the inclination angle of the outer wall 338 of the cup portion 333 increases, increasing the space 37 between the outer wall 338 of the cup portion 333 and the electrode assembly 10. Therefore, when forming the pouch film 135, an appropriate size of clearance CL must be set.
[0101] The bridge 336 is formed to correspond to the partition wall 212 of the die 21, and the punch edge 361 is formed to correspond to the edge 221 of the punch 22. Therefore, the clearance CL′, which is the vertical distance between the inner wall of the forming portion 211 of the die 21 and the outer wall of the punch 22, can be represented by the vertical distance between the bridge 336 and the punch edge 361 in the battery case 33.
[0102] Specifically, as shown in FIG. 7 , a bridge vertical line V1' and an edge vertical line V2' are shown imaginary. The bridge vertical line V1' is a virtual vertical line that passes through a boundary point P1' between the bridge 336 and the outer wall 338 on the bridge 336 side and is perpendicular to the bottom 3332. The edge vertical line V2' is a virtual vertical line that passes through a boundary point P2' between the punch edge 361 on the bridge 336 side and the outer wall 338 on the bridge 336 side and is perpendicular to the bottom 3332. The bridge vertical line V1' corresponds to the inner wall of the forming portion 211 of the die 21, particularly the inner wall of the partition wall 212, and the edge vertical line V2' corresponds to the outer wall of the punch 22. Therefore, the vertical distance between the bridge vertical line V1' and the edge vertical line V2' is the clearance CL' that appears in the battery case 33.
[0103] However, in the past, when such clearance CL was reduced to 0.5 mm or less, a problem could arise in which cracks were likely to occur in the pouch film 135 when the depth D' of the cup portion 333 was formed to a certain depth.
[0104] As described above, conventionally, there is a limit to how much the clearance CL' can be made smaller and the depth D' of the cup portion 333 can be made deeper, so when the cup portion 333 is formed to a certain depth D' (for example, 6.5 mm) or more, the outer wall 338 of the cup portion 333 is formed at an inclination angle of more than 95° from the bottom 3332. In other words, there is a limit to how much the outer wall 338 of the cup portion 333 can be formed close to vertical, with an inclination angle of 95° or less.
[0105] Meanwhile, there is a limit to how much the radius of curvature R2' of the edge of the cup portion 333 can be improved, which reduces the volume of the electrode assembly 10 accommodated in the cup portion 333. Specifically, as shown in Fig. 7, in the conventional technology, when the electrode assembly 10 is positioned too close to the outer wall 338 of the cup portion 333 due to the large radius of curvature R2' of the punch edge 361 of the cup portion 333, the electrode 101 of the electrode assembly 10 is damaged by the punch edge 361 of the cup portion 333. That is, one end of the electrode 101 containing metal is positioned on the punch edge 361 of the cup portion 333, which causes the one end of the electrode 101 to deform and be damaged in contact with the punch edge 361 of the cup portion 333.
[0106] To solve this problem, in the past, when the electrode assembly 10 was inserted into the cup portion 333, the electrode assembly 10 was spaced apart from the outer wall 338 of the cup portion 333 to a certain extent. First, a reference vertical line V3' perpendicular to the bottom 3332 was imaginarily drawn, with the vertical distance g' from the edge vertical line V2' being 0.75 mm, particularly 0.5 mm. As shown in FIG. 7, the electrode assembly 10 was then inserted so that one end of the electrode 101 was positioned outside the reference vertical line V3'. This provided a certain degree of space between the electrode 101 and the outer wall 338 of the cup portion 333, preventing damage to the electrode 101. However, this increased the space 37 between the outer wall 338 of the cup portion 333 and the electrode assembly 10, reducing the volume ratio of the electrode assembly 10 to the volume of the cup portion 333, resulting in a problem of reduced energy density per volume of the secondary battery 3. Furthermore, the volume of unnecessary space inside the cup portion 333 increases, which causes the electrode assembly 10 to move inside the cup portion 333 before the sides are sealed.
[0107] In the electrode assembly 10, the electrodes 101 have high rigidity and are not easily deformed by external forces, whereas the separators 102 have high flexibility and are easily deformed by external forces. Direct contact between adjacent electrodes 101 can cause a short circuit, so to prevent this, the separators 102 are formed larger than the electrodes 101. Therefore, when the electrode assembly 10 is formed, the separators 102 also have peripheral portions 1021 that protrude outward from the electrodes 101. Conventionally, the electrode assembly 10 is housed at a certain distance from the outer wall 338 of the cup portion 333, which can cause the peripheral portions 1021 of the separators 102 to wrinkle or fold randomly, exposing the electrodes 101 to the outside and increasing the likelihood of a short circuit.
[0108] As described above, conventional pouch films lacked excellent formability, limiting improvements to the thickness t' of the bridge 336, the depth D' of the cup portion 333, the radius of curvature R2' of the edge 361 of the cup portion 333, and the clearance CL'. Furthermore, the volume ratio of the electrode assembly 10 to the volume of the cup portion 333 was small, and unnecessary volume in the secondary battery 3 was large, resulting in a reduced energy density per volume. Furthermore, the outer wall 338 of the cup portion 333 was not formed nearly vertically, and the radius of curvature R2 of the edge 361 of the cup portion 333 was also large, limiting the ability to manufacture a sharp overall shape. This resulted in problems such as an unattractive appearance for the secondary battery 3 and reduced merchantability.
[0109] FIG. 8 is an enlarged schematic view of the cup portion 133 and bridge 136 according to one embodiment of the present invention, and FIG. 9 is an enlarged schematic view of the cup portion 133 and degassing portion 137 according to one embodiment of the present invention.
[0110] According to one embodiment of the present invention, the improved formability of the pouch film 135 allows the thickness t of the bridge 136 to be made thinner, and the radius of curvature R2 and clearance CL of the edge 16 of the cup portion 133 to be made smaller, thereby increasing the volume of the electrode assembly 10. This also reduces unnecessary volume in the secondary battery 1, thereby increasing the energy density per volume. Furthermore, the pouch-type battery case 13 and the pouch-type secondary battery 1 can be manufactured with an overall sharp shape, resulting in an excellent appearance of the secondary battery 1 and improved merchantability.
[0111] To this end, the pouch-type battery case 13 according to one embodiment of the present invention is formed with a cup portion 133 that accommodates an electrode assembly 10 formed by stacking electrodes 101 and separators 102. The cup portion 133 includes a plurality of punch edges 161 that respectively connect a plurality of outer walls 138 surrounding the periphery and a bottom portion 1332, and at least one of the punch edges 161 may be rounded with a radius of curvature of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. If the radius of curvature R2 of the punch edge 161 is less than 1 / 20 of the depth D of the cup portion 133, stress may be excessively concentrated on the punch edge 161, causing cracks. If the radius of curvature R2 of the punch edge 161 is greater than 1 / 6 of the depth D of the cup portion 133, the cup portion 133 may not be formed sharply, resulting in a decrease in energy density. Specifically, at least one of the punch edges 161 may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0112] The electrode assembly 10 further includes a first case 131 and a second case 132, each having a cup portion 133 formed therein, and a bridge 136 formed between the two cup portions 133. The bridge 136 may have a thickness of 1 / 200 to 1 / 30 of the width of the electrode assembly 10. If the thickness t of the bridge 136 is less than 1 / 200 of the width of the electrode assembly 10, stress may be excessively concentrated on the bridge 136, causing cracks, whereas if the thickness t is greater than 1 / 30 of the width of the electrode assembly 10, the bridge 136 may not be formed sharply, resulting in a decrease in energy density. In particular, the bridge 136 may have a thickness of 2 mm or less, particularly 1.4 mm or less.
[0113] In addition, among the plurality of punch edges 161, a punch edge 1611 on the bridge 136 side, which connects the outer wall 1381 on the bridge 136 side and the bottom portion 1332 toward the bridge 136 side, may be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the punch edge 1611 may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0114] In addition, the vertical distance between a bridge vertical line V1 that passes through a boundary point P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side and is perpendicular to the bottom 1332, and an edge vertical line V2 that passes through a boundary point P2 between the punch edge 1611 on the bridge 136 side and the outer wall 1381 on the bridge 136 side and is perpendicular to the bottom 1332, may be 0.5 mm or less, particularly 0.35 mm or less.
[0115] The cup portion 133 is formed by shaping a flexible pouch film 135 using a punch 22 or the like. The cup portion 133 is surrounded by a plurality of outer walls 138 and a bottom portion 1332, and the space formed by the outer walls 138 and the bottom portion 1332 serves as a storage space 1331 for storing the electrode assembly 10.
[0116] The outer wall 138 of the cup portion 133 surrounds the periphery of the cup portion 133 and defines the shape of the cup portion 133. A plurality of outer walls 138 are formed around the periphery of the cup portion 133, and are also formed on the bridge 136 side, on the degassing portion 137 side (described later), and on the electrode lead 12 side. The upper end of each of these outer walls 138 faces the open portion of the cup portion 133, and the lower end faces the bottom 1332.
[0117] Meanwhile, as described above, the edge 16 of the cup portion 133 includes a punch edge 161 formed corresponding to the edge 221 of the punch 22 and a die edge 162 formed corresponding to the edge 213 (shown in FIG. 6) of the die 21. The side 134 and the degassing portion 137 are formed outward from the upper end of the outer wall 138, and the die edge 162 connects the upper end of the outer wall 138 to the side 134 or the degassing portion 137, respectively. The punch edge 161 also connects the lower end of the outer wall 138 to the bottom portion 1332, respectively.
[0118] Since the cup portion 133 has a plurality of outer walls 138, the cup portion 133 also has a plurality of edges 16 formed thereon, the number of which corresponds to the number of outer walls 138. That is, if the cup portion 133 is formed in a rectangular shape, four outer walls 138 of the cup portion 133 are formed, and therefore four punch edges 161 and four die edges 162 are formed. According to one embodiment of the present invention, the formability of the pouch film 135 is improved, so that at least one of the punch edges 161 of the cup portion 133 may be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, at least one of the punch edges 161 may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0119] In particular, according to one embodiment of the present invention, two cup portions 133 are formed in one pouch film 135, and a bridge 136 is also formed between the two cup portions 133. Then, as shown in Fig. 8, among the plurality of punch edges 161, a punch edge 1611 on the bridge 136 side, which connects the outer wall 1381 of the bridge 136 side and the bottom portion 1332 toward the bridge 136 side, may be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the punch edge 1611 on the bridge 136 side may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0120] 9, among the plurality of punch edges 161, a punch edge 1612 on the die edge 162 side, which connects the die edge 162-side outer wall 1382 and the bottom portion 1332 toward the degassing portion 137 or the die edge 162 formed on the electrode lead 12, may also be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. If the curvature radius of the die edge 162 is less than 1 / 20 of the depth D of the cup portion 133, stress may be excessively concentrated on the die edge 162, causing cracks. If the curvature radius of the die edge 162 is greater than 1 / 6 of the depth D of the cup portion 133, the upper end of the cup portion 133 may not be sharp, resulting in a decrease in energy density.
[0121] Specifically, the punch edge 1612 on the die edge 162 side may also be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less. In this case, it is preferable that the inclination is continuous at boundary points P2 and P4 between the punch edge 161 and the outer wall 138.
[0122] For this reason, the edge 221 of the punch 22 can also be rounded with a predetermined radius of curvature. Here, the radius of curvature of the edge 221 of the punch 22 may be a numerical value obtained by subtracting the thickness of the pouch film 135 itself from the radius of curvature R2 of the punch edge 161. For example, if the thickness of the pouch film 135 is 0.2 mm, and the radius of curvature of the edge 221 of the punch 22 is 0.5 mm or less, the radius of curvature R2 of the punch edge 161 is 0.7 mm or less.
[0123] According to one embodiment of the present invention, the formability of the pouch film 135 is improved, so that even if the cup portion 133 is formed to have a relatively large depth D, when such a punch 22 draw-forms the pouch film 135, cracks can be prevented from occurring in the punch edge 161 of the cup portion 133. For example, even if the depth D is 7 mm or more when one cup portion 133 is formed, or 6.5 mm or more, or even 10 mm or more when two cup portions 133 are formed, cracks will not occur in the punch edge 161 of the cup portion 133.
[0124] Here, the depth D of the cup portion 133 where the above-mentioned cracks may occur is determined based on the residual rate of the aluminum alloy in the moisture barrier layer 1352. A residual rate of 60% or more is determined as a good product, and a residual rate of less than 60% is determined as a bad product. The residual rate refers to the ratio of the amount of aluminum alloy remaining in the moisture barrier layer 1352 after molding to the amount remaining before molding at a specific point on the pouch film 135. In fact, when the residual rate is less than 60%, cracks frequently occur at specific points when the cup portion 133 is draw-formed on the pouch film 135, but no cracks occur when the residual rate is 60% or more.
[0125] Conventionally, when the depth D' of the cup portion 333 is formed to be greater than 5 times, particularly 3.25 times, the radius of curvature R2' of the punch edge 361 or the radius of curvature of the die edge 362, the survival rate is relatively low and cracks occur frequently. Hereinafter, "prone to cracks" means that the survival rate is relatively low and cracks occur frequently.
[0126] Meanwhile, the upper end of the outer wall 138 faces the opening of the cup portion 133, and the side 134 and the degassing portion 137 extend outside the cup portion 133. In this case, as shown in FIG. 9 , the cup portion 133 may further include a plurality of die edges 162 connecting the upper end of the outer wall 138 to the side 134 or the degassing portion 137, respectively. At least one of the die edges 162 may also be rounded with a radius of curvature of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, at least one of the die edges 162 may be rounded with a radius of curvature of 1 mm or less, particularly 0.7 mm or less. To this end, the edge 213 of the die 21 may also be rounded with a predetermined radius of curvature. The radius of curvature of the edge 213 of the die 21 may be a value obtained by subtracting the thickness of the pouch film 135 itself from the radius of curvature of the die edge 162. For example, if the thickness of the pouch film 135 is 0.2 mm, and the radius of curvature of the edge 213 of the die 21 is 0.5 mm or less, the radius of curvature of the die edge 162 is 0.7 mm or less.
[0127] In particular, as described above, two cup portions 133 may be formed in one pouch film 135, and a bridge 136 may also be formed between the two cup portions 133. That is, the pouch-type battery case 13 according to one embodiment of the present invention includes a first case 131 and a second case 132, each of which has a cup portion 133 formed therein that accommodates an electrode assembly 10 formed by stacking an electrode 101 and a separator 102, and a bridge 136 formed between the two cup portions 133. Since the bridge 136 is also formed corresponding to the partition wall 212 of the die 21, the bridge 136 may be one type of die edge 162.
[0128] Therefore, according to one embodiment of the present invention, the formability of the pouch film 135 is improved, so that the thickness t of the bridge 136 may be 1 / 200 to 1 / 30 of the width EW (see FIG. 10) of the electrode assembly 10. Specifically, the thickness t of the bridge 136 may be formed to be 2 mm or less, particularly 1.4 mm or less.
[0129] Here, the thickness t of the bridge 136 is preferably the distance between two boundary points P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side, as shown in Fig. 8. Specifically, it is preferably the distance between two bridge perpendicular lines V1 that pass through the boundary points P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side, respectively, and are perpendicular to the bottom 1332. Therefore, when the bridge 136 has a constant radius of curvature, the radius of curvature of the bridge 136 can correspond to half the thickness t. That is, the radius of curvature of the bridge 136 may be 1 mm or less, particularly 0.7 mm or less.
[0130] For this reason, the upper surface of the partition wall 212 of the molding unit 211 may also be rounded with a predetermined radius of curvature. In this case, it is preferable that the slope is continuous at the boundary point P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side. Here, the radius of curvature of the upper surface of the partition wall 212 of the molding unit 211 may be a value obtained by subtracting the thickness of the pouch film 135 itself from the radius of curvature of the bridge 136. For example, if the thickness of the pouch film 135 is 0.2 mm, and the radius of curvature of the upper surface of the partition wall 212 is 0.5 mm or less, the radius of curvature of the bridge 136 is 0.7 mm or less.
[0131] According to one embodiment of the present invention, the formability of the pouch film 135 is improved, so that the depth D of the cup portion 133 is formed to a certain extent, and the radius of curvature of the edge 213 of the die 21 is reduced, and even if the thickness of the partition wall 212 is formed thin, it is possible to prevent cracks from occurring in the die edge 162 and the bridge 136. The bridge 136 may have a fan-shaped cross section, and the more the outer wall 138 of the cup portion 133 is formed to be closer to vertical, the more the cross section may have a shape closer to a semicircle.
[0132] Here, even if the depth D of the cup portion 133 is molded to 3 mm or more, particularly 6.5 mm or more, and even 10 mm or more, based on the case where two cup portions 133 are molded, it is possible to prevent cracks from occurring in the bridge 136.
[0133] Furthermore, as the formability of the pouch film 135 is improved, the clearance CL can be reduced to 0.5 mm or less, and all of the outer walls 138 can be formed nearly vertical. For example, as shown in Fig. 8, among the outer walls 138, the outer wall 1381 on the bridge 136 side can be formed nearly vertical. That is, the clearance CL, which is the vertical distance between a bridge vertical line V1 that passes through a boundary point P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side and is perpendicular to the bottom 1332, and an edge vertical line V2 that passes through a boundary point P2 between the punch edge 1611 on the bridge 136 side and the outer wall 1381 on the bridge 136 side and is perpendicular to the bottom 1332, may be 0.5 mm or less, particularly 0.35 mm or less.
[0134] 9, the outer wall 1382 of the plurality of outer walls 138 on the die edge 162 side may also be formed nearly vertical. That is, a clearance CL, which is a vertical distance between a die edge vertical line V4 that passes through a boundary point P3 between the die edge 162 and the outer wall 1382 on the die edge 162 side and is perpendicular to the bottom 1332, and an edge vertical line V2 that passes through a boundary point P4 between the punch edge 1612 on the die edge 162 side and the outer wall 1382 on the die edge 162 side and is perpendicular to the bottom 1332, may be 0.5 mm or less, and in particular 0.35 mm or less.
[0135] As a result, even if the depth D of the cup portion 133 is formed to be 3 mm or more, particularly 6.5 mm or more, or even 10 mm or more, based on the case where two cup portions 133 are formed, the outer wall 138 of the cup portion 133 can be inclined from the bottom portion 1332 at an angle of 90° to 95°, and can even be formed nearly vertically at an angle of 90° to 93°, thereby preventing cracks from occurring in the battery case 13. In addition, since the space 17 between the outer wall 138 of the cup portion 133 and the electrode assembly 10 is reduced, the energy density per volume of the secondary battery 1 can be increased.
[0136] On the other hand, since the radius of curvature R2 of the punch edge 161 of the cup portion 133 can be further reduced, damage to the electrode 101 of the electrode assembly 10 can be prevented even if the electrode assembly 10 is positioned very close to the outer wall 138 of the cup portion 133.
[0137] To this end, a manufacturing method of a pouch-type secondary battery 1 according to one embodiment of the present invention may include the steps of: laminating an electrode 101 and a separator 102 to form an electrode assembly 10; manufacturing a pouch-type battery case 13 by molding a pouch film 135 to form a cup portion 133; accommodating the electrode assembly 10 in an accommodating space 1331 of the cup portion 133; and manufacturing a pouch-type secondary battery 1 by sealing a side 134 formed extending outward from the cup portion 133.
[0138] In particular, in the step of storing the electrode assembly 10, the difference between the width CW of the cup portion 133 and the width EW of the electrode assembly 10 may be 2.5 mm or less, and particularly 1.7 mm or less. Here, the width EW of the electrode assembly 10 may refer to the width of the electrode 101. That is, the peripheral portion 1021 of the separator 102 that protrudes beyond the electrode 101 may be excluded from the calculation of the width EW.
[0139] In addition, the electrode assembly 10 can be stored so that at least one end of the electrode 101 passes through the boundary point P2 between the punch edge 161 and the outer wall 138 and is positioned at a vertical distance g of 0.75 mm, particularly 0.5 mm or less, from an edge vertical line V2 perpendicular to the bottom 1332.
[0140] Specifically, as shown in FIGS. 8 and 9 , an imaginary edge perpendicular line V2 is shown, passing through boundary point P2 between the punch edge 161 and the outer wall 138 and perpendicular to the bottom 1332. The electrode assembly 10 is then housed so that at least one end of the electrode 101 is positioned at a vertical distance g of 0.75 mm or less, particularly 0.5 mm or less, from the edge perpendicular line V2. More specifically, an imaginary reference perpendicular line V3 is shown, perpendicular to the bottom 1332 and at a vertical distance g of 0.75 mm, particularly 0.5 mm, from the edge perpendicular line V2. Since the radius of curvature R2 of the punch edge 161 may be 0.7 mm or less, the reference perpendicular line V3 may pass through the center of curvature C of the punch edge 161. The electrode assembly 10 is then housed so that one end of the electrode 101 is positioned between the edge perpendicular line V2 and the reference perpendicular line V3. This may be confirmed by disassembling the secondary battery 1 itself, but is not limited thereto, and may be confirmed by various methods without disassembling the secondary battery 1, such as computerized tomography (CT), magnetic resonance imaging (MRI), or X-ray. This can further increase the volume ratio of the electrode assembly 10 to the volume of the cup portion 133 while preventing damage to the electrode 101, thereby improving the energy efficiency relative to volume. In addition, since unnecessary volume inside the cup portion 133 is reduced, movement of the electrode assembly 10 inside the cup portion 133 can be prevented.
[0141] Furthermore, since the electrode assembly 10 can be accommodated so as to be positioned very close to the outer wall 138 of the cup portion 133, the separator 102 does not wrinkle or fold randomly. As shown in Fig. 8, the peripheral portion 1021 of the separator 102 that protrudes outward from the electrode 101 can be folded from one end of the electrode 101 toward the opposite direction of the bottom portion 1332.
[0142] The electrode assembly 10 is formed by stacking electrodes 101 and separators 102, and a plurality of electrodes 101 and separators 102 may be formed. The battery case 13 includes a first case 131 and a second case 132. When the bridge 136 of the battery case 13 is folded and the upper portion of the electrode assembly 10 is housed in a cup portion 133, the peripheral portion 1021 of the separator 102 housed in the cup portion 133 of the first case 131 may be folded toward the second case 132, and the peripheral portion 1021 of the separator 102 housed in the cup portion 133 of the second case 132 may be folded toward the first case 131. The peripheral portions 1021 of the separators 102 are folded in an aligned manner, resulting in orderly folding. Furthermore, the separator 102 covers the electrodes 101 to prevent them from being exposed to the outside, thereby preventing short circuits from occurring.
[0143] More specifically, before the electrode assembly 10 is placed in the cup portion 133, the width of the separator 102 may be wider than the width CW of the cup portion 133. Therefore, during the process of placing the electrode assembly 10 in the cup portion 133, the peripheral portion 1021 of the separator 102 may contact the inner peripheral edge of the cup portion 133 and be folded in a certain direction.
[0144] The difference between the width CW of the cup portion 133 and the width EW of the electrode assembly 10 may be as small as 2.5 mm or less, particularly 1.7 mm or less. Therefore, a process may be required to easily fold the peripheral portion 1021 of the separator 102 when the electrode assembly 10 is accommodated in the cup portion 133.
[0145] Therefore, the step of accommodating the electrode assembly 10 in the receiving space 1331 of the cup part 133 may include a process of pressing the electrode assembly 10 into the cup part 133. As a result, compared to the conventional method of placing the electrode assembly 10 in a cup part, the separator 102 can be folded in a certain direction while maintaining a small difference between the width CW of the cup part 133 and the width EW of the electrode assembly 10, thereby allowing the electrode assembly 10 to be easily and reliably accommodated in the receiving space 1331 of the cup part 133.
[0146] In addition, the step of accommodating the electrode assembly 10 in the receiving space 1331 of the cup portion 133 may further include a process of folding each corner (vertex) of the plurality of separators 102 in the electrode assembly 10 by heat and pressure before pressing the electrode assembly 10 into the cup portion 133. This process may be performed by using a separate sealing tool to fold each corner (vertex) of the plurality of separators 102 so that they converge to the center of the electrode assembly 10 in the stacking direction.
[0147] That is, the electrode assembly 10 can be inserted into the cup portion 133 with the four corners of the separator 102 already aligned. This allows the electrode assembly 10 to be smoothly inserted into the receiving space 1331 of the cup portion 133. As described above, according to one embodiment of the present invention, the improved formability of the pouch film 135 allows the thickness t of the bridge 136 to be further reduced, and the radius of curvature R2 and clearance CL of the edge 16 of the cup portion 133 to be further reduced, thereby increasing the volume of the electrode assembly 10. This also reduces unnecessary volume in the secondary battery 1, thereby increasing the energy density per volume. Furthermore, the pouch-type battery case 13 and the pouch-type secondary battery 1 can be manufactured with an overall sharp shape, resulting in a beautiful appearance of the secondary battery 1 and improved marketability.
[0148] FIG. 10 is a schematic top view showing the electrode assembly 10 housed in the cup portion 133 according to an embodiment of the present invention. According to an embodiment of the present invention, as described above, the radius of curvature R2 of the punch edge 161 of the cup portion 133 can be further reduced, and therefore the electrode assembly 10 is accommodated so that one end of the electrode 101 is positioned between the edge perpendicular line V2 and the reference perpendicular line V3. This prevents damage to the electrode 101 of the electrode assembly 10 even if the electrode assembly 10 is positioned very close to the outer wall 138 of the cup portion 133.
[0149] The edge perpendicular line V2 and the reference perpendicular line V3 may also be shown on the punch edge 1611 on the bridge 136 side, and on the punch edge 1612 on the die edge 162 side. The vertical distance g between such edge perpendicular line V2 and the reference perpendicular line V3 may be 0.75 mm, particularly 0.5 mm.
[0150] Furthermore, since the battery case 13 has two cup portions 133 and a bridge 136, a bridge vertical line V1 can be formed on one side of the cup portion 133 and a die edge vertical line V4 can be formed on the other side. The vertical distance CL between the bridge vertical line V1 and the edge vertical line V2 may be 0.5 mm or less, particularly 0.35 mm or less, and the vertical distance CL between the die edge vertical line V4 and the edge vertical line V2 may also be 0.5 mm or less, particularly 0.35 mm or less.
[0151] However, if only one cup portion 133 is formed in the battery case 13, no bridge exists. However, since die edges 162 are formed on both sides of the cup portion 133, die edge vertical lines V4 can be shown on both sides of the cup portion 133.
[0152] When two cup portions 133 are formed in the battery case 13, the width CW of the cup portion 133 can be regarded as the vertical distance from the bridge vertical line V1 to the die edge vertical line V4. However, when only one cup portion 133 is formed, the width CW of the cup portion 133 can also be regarded as the vertical distance between the two die edge vertical lines V4.
[0153] The bridge vertical line V1 and the die edge vertical line V4 both pass through the upper end of the outer wall 138 of the cup portion 133. Therefore, according to one embodiment of the present invention, the width CW of the cup portion 133 may be the vertical distance between the upper ends of the outer walls 138 on both sides of the cup portion 133. The difference between the width CW of the cup portion 133 and the width EW of the electrode assembly 10 may be 2.5 mm or less, particularly 1.7 mm or less. And, as described above, the width EW of the electrode assembly 10 may be 60 mm or more.
[0154] In the battery case 13, the width CW of the cup portion 133 can be determined by measuring the vertical distance between the upper ends of the outer walls 138 of the cup portion 133. In the secondary battery 1, the width CW can be determined by using a laser displacement sensor or the like to determine the position between the upper ends of the outer walls 138 from outside the cup portion 133 and calculating the distance between the two positions. In this case, a laser displacement sensor or the like irradiates a laser from outside the cup portion 133 and moves from the side 134 toward the die edge 162 and the outer wall 138. When a point where the displacement changes suddenly is detected, that point can be recognized as the upper end of the outer wall 138. The above describes one example of a method for measuring the width CW of the cup portion, and the scope of the present invention is not necessarily limited to this measurement method. Any cup width CW that falls within the scope of the claims and the spirit of the present invention can be the cup width CW defined in the present invention.
[0155] FIG. 11 is a schematic diagram of a conventional corner 364, and FIG. 12 is a schematic diagram of a corner 164 according to one embodiment of the present invention. 12, the edge 16 of the cup portion 133 includes not only the punch edge 161 and the die edge 162, but also a thickness edge 163 that connects two adjacent outer walls 138 of the cup portion 133 to each other. The thickness edge 163 is formed in the thickness direction of the cup portion 133, and is formed by stretching the pouch film 135 between a corner of the forming portion 211 of the die 21 and a corner of the punch 22 when the pouch film 135 is stretched. At least one of the thickness edges 163 may also be rounded.
[0156] The radius of curvature of the thickness edge 163 may be the same as or different from the radius of curvature R2 of the two adjacent punch edges 161, i.e., the first punch edge 1613 and the second punch edge 1614. For example, as described above, at least one punch edge 161 may be rounded with a radius of curvature of 1 mm or less, particularly 0.7 mm or less, and at least one thickness edge 163 may be rounded with a radius of curvature of 0.5 mm to 5 mm, particularly 0.5 mm to 2 mm. Conventionally, when the thickness edge 363 is rounded with a radius of curvature of 5 mm or less, particularly 2 mm or less, stress may be concentrated in the thickness edge 363 of the cup portion 333, which may result in cracks. However, according to one embodiment of the present invention, even if the depth D of the cup portion 133 is formed to be relatively deep, cracks may be prevented from occurring in the thickness edge 163 of the cup portion 133. In this case, one of the first punch edge 1613 and the second punch edge 1614 may be a punch edge 1611 on the bridge 136 side, and the other may be a punch edge (not shown) on the electrode lead 12 side. Alternatively, one of the two may be a punch edge 1612 on the die edge 162 side, and the other may be a punch edge (not shown) on the electrode lead 12 side.
[0157] As shown in Fig. 12, the thick edge 163 is connected to two adjacent punch edges 161, i.e., a first punch edge 1613 and a second punch edge 1614, to form a corner 164. Conventionally, as shown in Fig. 11, all of the edges 221 of the punch 22 are rounded with the same radius of curvature, and as a result, the corners (not shown) of the punch 22 are also naturally rounded with the same radius of curvature. Therefore, when the pouch film 135 is formed using such a punch 22 and the pouch film 135 is stretched, the corner 364 is also naturally rounded with the same radius of curvature as the punch edge 361.
[0158] However, when the pouch film 135 is stretched, there is a problem in that stress is concentrated at the corner 364. In particular, since the corner 364 is formed by the intersection of three edges 36, it is stretched more than the punch edge 361 or the thickness edge 363, and therefore stress is concentrated more at the corner 364 than at the punch edge 361 or the thickness edge 363. Therefore, there is a problem in that the pouch film 135 is stretched too much, and a whitening phenomenon occurs in which certain parts turn white just before cracks occur, which makes it more likely for cracks to occur.
[0159] Therefore, according to one embodiment of the present invention, as shown in FIG. 12, at least one of the corners 164 is also formed to be rounded, and the radius of curvature of such corner 164 may be greater than or equal to the radius of curvature of at least one of the punch edge 161 and the thickness edge 163.
[0160] Specifically, according to an embodiment of the present invention, the radius of curvature of the corner 164 may vary internally. That is, the radius of curvature of the center 1641 of the corner 164 may be different from the radius of curvature of the peripheral portion 1642 of the corner 164. In particular, the radius of curvature of the center 1641 of the corner 164 may be greater than the radius of curvature of the peripheral portion 1642 of the corner 164. For example, the radius of curvature of the peripheral portion 1642 of the corner 164 may be the same as the radius of curvature of at least one of the punch edge 161 and the thickness edge 163 because the peripheral portion 1642 is relatively adjacent to the first punch edge 1613, the second punch edge 1614, and the thickness edge 163. In contrast, the radius of curvature of the center 1641 of the corner 164 may be greater than the radius of curvature of at least one of the punch edge 161 and the thickness edge 163 because the center 1641 is relatively far from the first punch edge 1613, the second punch edge 1614, and the thickness edge 163. That is, the corner 164 may have a radius of curvature equal to or greater than the radius of curvature of at least one of the punch edge 161 and the thickness edge 163 .
[0161] Therefore, the radius of curvature of the corner 164 may gradually increase from the peripheral portion 1642 of the corner 164 to the center portion 1641 of the corner 164. As described above, since the radius of curvature of the corner 164 is not constant but varies inside, the center portion 1641 of the corner 164 may have an aspherical shape rather than an exact spherical shape.
[0162] Unlike the punch edge 161, the corner 164 must be clearly defined not only in terms of the radius of curvature but also in terms of the area within the cup portion 133. If the area within the cup portion 133 within which the corner 164 is formed is too narrow, the pouch film 135 may be excessively stretched, resulting in problems such as whitening or cracking. In contrast, if the area within the cup portion 133 within which the corner 164 is formed is too wide, the space 17 between the outer wall 138 of the cup portion 133 and the electrode assembly 10 may be reduced, thereby increasing the energy density per volume of the secondary battery 1. Therefore, according to one embodiment of the present invention, as shown in FIG. 12 , the corner 164 may be formed within 2 mm to 3.5 mm from the thick edge 163 in the length direction lc of the cup portion 133, 2 mm to 3.5 mm from the thick edge 163 in the width direction wc of the cup portion 133, and 2 mm to 3.5 mm from the punch edge 161 in the thickness direction dc of the cup portion 133. The area where the corner 164 is formed may gradually increase as the depth D of the cup portion 133 increases.
[0163] By forming the corners 164 of the cup portion 133 as described above, stress concentrated at the corners 164 can be further dispersed, thereby preventing problems such as whitening and cracks.
[0164] FIG. 13 is a schematic diagram showing how a battery case 13 according to one embodiment of the present invention is folded, and FIG. 14 is a schematic diagram showing how a battery case 13 according to one embodiment of the present invention is folded.
[0165] When the two cup portions 133 are formed in the pouch film 135, the first case 131 and the second case 132 of the battery case 13 each have a cup portion 133. After the electrode assembly 10 is accommodated in the receiving space 1331 of the cup portion 133 of the first case 131, the bridge 136 formed between the two cup portions 133 of the battery case 13 is folded so that the two cup portions 133 face each other, as shown in FIG. 13 . By folding the bridge 136, a folding portion 139 is formed on one side of the secondary battery 1. An electrolyte is then injected inside, and the sides 134 extending outward from the cup portions 133 of the first case 131 and the second case 132 are sealed, thereby manufacturing a pouch-type secondary battery 1 as shown in FIG. 14 .
[0166] The pouch-type secondary battery 1 according to one embodiment of the present invention thus manufactured includes an electrode assembly 10 formed by stacking an electrode 101 and a separator 102, and a pouch-type battery case 13 having a cup portion 133 formed therein for accommodating the electrode assembly 10. The cup portion 133 may include a plurality of punch edges 161 connecting a plurality of outer walls 138 surrounding the periphery and a bottom portion 1332. At least one of the punch edges 161 may be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, at least one of the punch edges 161 may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0167] The difference between the width CW of the cup portion 133 and the width EW of the electrode assembly 10 may be 2.5 mm or less, particularly 1.7 mm or less. The electrode assembly 10 may have at least one end of the electrode 101 positioned at a vertical distance g of 0.75 mm, particularly 0.5 mm or less from an edge vertical line V2 that passes through a boundary point P2 between the punch edge 161 and the outer wall 138 and is perpendicular to the bottom 1332. The battery case 13 may include a first case 131 and a second case 132, at least one of which has a cup portion 133 formed on one side thereof, and a folding portion 139 that connects the first case 131 and the second case 132 together.
[0168] When the battery case 13 is folded to manufacture the secondary battery 1, the bridge 136 becomes the folding section 139, and therefore the folding section 139 integrally connects the first case 131 and the second case 132 in the secondary battery 1. The punch edge 1611 on the bridge 136 side becomes the punch edge 1611 on the folding section 139 side, and the outer wall 1381 on the bridge 136 side becomes the outer wall 1381 on the folding section 139 side.
[0169] Among the plurality of punch edges 161, a punch edge 1611 on the folding portion 139 side, which connects the outer wall 1381 on the folding portion 139 side and the bottom portion 1332 toward the folding portion 139 side, may be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the punch edge 1611 on the folding portion 139 side may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less. In the electrode assembly 10, at least one end of the electrode 101 may be positioned between an edge vertical line V2 that passes through a boundary point P2 between the punch edge 161 and the outer wall 138 and is perpendicular to the bottom portion 1332, and a reference vertical line V3 that is perpendicular to the bottom portion 1332 and has a vertical distance g of 0.75 mm, particularly 0.5 mm, from the edge vertical line V2. As described above, such a reference vertical line V3 can pass through the center of curvature C of the punch edge 161.
[0170] FIG. 15 is an enlarged view of a groove 1391 formed in a battery case 13 according to one embodiment of the present invention. According to one embodiment of the present invention, as described above, when the battery case 13 is folded to manufacture the secondary battery 1, the bridge 136 may take the form of the folding portion 139. Specifically, when the battery case 13 is folded, the rounded shape of the bridge 136 also unfolds to a certain extent, and a trace of the bridge 136 remains on the secondary battery 1, and this trace may become the folding portion 139. Therefore, the bridge 136 and the folding portion 139 of the battery case 13 may correspond to each other.
[0171] For example, if the rounded shape of the bridge 136 does not fully unfold in a plane, the folding portion 139 is formed to include a recess 1391 recessed into the inside of the secondary battery 1, as shown in Fig. 15. In this case, the folding portion 139 has a smaller curvature than the bridge 136, and therefore can have a larger radius of curvature.
[0172] Because the bridge 136 has a curved surface and the outer wall 1381 on the bridge 136 side has a flat shape, the amounts of deformation are different. Therefore, when the battery case 13 is folded, the outer wall 1381 on the bridge 136 side deforms relatively more, while the bridge 136 deforms relatively less, only to the extent that its rounded shape unfolds to a certain extent. Then, when the battery case 13 is folded, as shown in FIG. 15 , the amount of change in the slope switches between increasing and decreasing around the boundary point P1. That is, the boundary point P1 becomes an inflection point. Therefore, the folding portion 139 can be formed on the curved surface between the two boundary points P1, i.e., the two inflection points.
[0173] Furthermore, if the rounded shape of the bridge 136 is not fully developed on a plane, the two boundary points P1, i.e., the portions corresponding to the two inflection points, may protrude outward to form protrusions. That is, the protrusions may be formed as a pair of protrusions protruding outward with the folding portion 139, more specifically, the groove 1391, interposed therebetween.
[0174] Alternatively, even if the rounded shape of the bridge 136 is fully unfolded on a plane, the boundary point P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side will form two lines (not shown) on the secondary battery 1, and the folding portion 139 will be formed on the plane between these two lines.
[0175] The folding portion 139 can also be seen with the naked eye from the exterior of the secondary battery 1. As described above, the thickness t of the bridge 136 is preferably the distance between the two boundary points P1 between the bridge 136 and the outer wall 1381 on the bridge 136 side, and therefore the width FW of the folding portion 139 is the distance between the two boundary points P1. If the rounded shape of the bridge 136 does not fully unfold on a plane, the width FW of the folding portion 139 is the distance between the two boundary points P1, i.e., the two inflection points. Alternatively, if the rounded shape of the bridge 136 is fully unfolded on a plane, the width FW of the folding portion 139 is the distance between the two boundary points P1, i.e., the distance between the two lines.
[0176] The width FW of the folding portion 139 may be 1 mm to 3.2 mm, particularly 1 mm to 1.6 mm, without exceeding the length of the bridge 136. As described above, the width FW of the folding portion 139 may be measured directly using a ruler, or may be measured using a magnifying glass, a 3D camera, or a laser 2D line sensor, and may be measured in various ways without limitation.
[0177] In the past, the thickness t' of the bridge 336 was large and the width of the folding portion 339 was also large, resulting in a large space 37 between the outer wall 338 of the cup portion 333 and the electrode assembly 10. However, according to one embodiment of the present invention, the width FW of the folding portion 139 can be reduced, thereby reducing the space 17 between the outer wall 138 of the cup portion 133 and the electrode assembly 10. As a result, the energy density per volume of the secondary battery 1 can be increased.
[0178] In addition, in the past, the protrusions protruded significantly outward due to the poor formability of the pouch film. However, according to one embodiment of the present invention, the protrusions can protrude relatively less, thereby improving the flatness of the folding portion 139 or the outer wall 1381 on the folding portion 139 side.
[0179] Specifically, the distance p between the innermost portion of the groove 1391 and the outermost portion of the protrusion can be defined as the flatness. In the case of a conventional battery case, the flatness is 1 mm or more, and even up to 1.5 mm. In contrast, according to an embodiment of the present invention, the flatness p can be 0.8 mm or less, preferably 0.3 mm or less. As a result, the energy density per volume of the secondary battery 1 can be further increased.
[0180] FIG. 16 is a schematic enlarged view of a cup portion 133 and a die edge 1621 according to another embodiment of the present invention. According to one embodiment of the present invention, two forming portions 211 are formed adjacent to each other in the die 21, and a partition wall 212 may be formed between the two forming portions 211. Therefore, when the pouch film 135 is formed, two cup portions 133 are formed in one pouch film 135, and a bridge 136 is also formed between the two cup portions 133. That is, one cup portion 133 is formed in each of the first case 131 and the second case 132.
[0181] According to another embodiment of the present invention, only one molding portion 211 is formed in the die 21, and no partition wall is present. Therefore, when the pouch film 135 is molded, one cup portion 133 is formed in one pouch film 135, and no bridge is present. That is, the cup portion 133 is formed only in the first case 131.
[0182] According to another embodiment of the present invention, at least one punch edge 161a of the cup portion 133 may be rounded with a radius of curvature of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, at least one punch edge 161a of the cup portion 133 may be rounded with a radius of curvature of 1 mm or less, particularly 0.7 mm or less. This improves the formability of the pouch film 135, thereby preventing cracks from occurring in the punch edge 161a of the cup portion 133 even when the depth D of the cup portion 133 is formed to a certain extent, such as 3 mm or more, particularly 7 mm or more, or even 10 mm or more, based on the depth D of a single cup portion 133.
[0183] 16, among the plurality of punch edges 161a, a punch edge 1611a on the second case 132a side that connects an outer wall 1381a on the second case 132a side and the bottom portion 1332 toward the second case 132a side may be rounded with a radius of curvature of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the punch edge 1611a on the second case 132a side may be rounded with a radius of curvature of 1 mm or less, particularly 0.7 mm or less.
[0184] Furthermore, the punch edge 1612 on the die edge 162 side may also be rounded with a radius of curvature that is 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the punch edge 1612 on the die edge 162 side may be rounded with a radius of curvature of 1 mm or less, particularly 0.7 mm or less. In this case, it is preferable that the inclination is continuous at a boundary point P2 between the punch edge 161a and the outer wall 138.
[0185] Hereinafter, the description of other embodiments of the present invention that overlap with the one embodiment of the present invention will be omitted, but this is for the convenience of explanation and is not intended to limit the scope of the rights.
[0186] FIG. 17 is a schematic diagram showing how a battery case 13a according to another embodiment of the present invention is folded, and FIG. 18 is a schematic diagram showing how a battery case 13a according to another embodiment of the present invention is folded.
[0187] The upper end of the outer wall 138 faces the opening of the cup portion 133, and the second case 132a, the side 134, and the degassing portion 137 extend outside the cup portion 133. In this case, the die edge 162 connecting the upper end of the outer wall 138 to the second case 132a, the side 134, or the degassing portion 137 may also be rounded with a curvature radius of 1 / 20 to 1 / 6 of the depth D of the cup portion 133. Specifically, the die edge 162 may be rounded with a curvature radius of 1 mm or less, particularly 0.7 mm or less.
[0188] That is, according to another embodiment of the present invention, as shown in Fig. 17, there is no bridge in the battery case 13a, and the die edge 1621 connects the cup portion 133 of the first case 131 and the second case 132a to each other. To this end, the edge 213 of the die 21 may be rounded with a curvature radius obtained by subtracting the thickness of the pouch film 135 from the die edge 162. For example, if the thickness of the pouch film 135 is 0.2 mm, the edge 213 of the die 21 may be rounded with a curvature radius of 0.8 mm or less, particularly 0.5 mm or less.
[0189] Furthermore, the clearance CL may be reduced to 0.5 mm or less, so that the outer wall 138a of the cup portion 133 is nearly vertical. For example, as shown in Fig. 16, the clearance CL, which is the vertical distance between a die edge vertical line V4 that passes through a boundary point P1 between the die edge 1621 and the outer wall 1381a on the second case 132a side and is perpendicular to the bottom 1332, and an edge vertical line V2 that passes through a boundary point P2 between the punch edge 1611a on the second case 132a side and the outer wall 1381a on the second case 132a side and is perpendicular to the bottom 1332, may be 0.5 mm or less, particularly 0.35 mm or less.
[0190] In addition, the electrode assembly 10 can be stored so that one end of the electrode 101 is positioned between the edge vertical line V2 and a reference vertical line V3 that is perpendicular to the bottom 1332 and has a vertical distance of 0.75 mm, particularly 0.5 mm, from the edge vertical line V2.
[0191] Therefore, according to another embodiment of the present invention, the formability of the pouch film 135 is improved, so that even if the depth D of the cup portion 133 is formed to a certain extent, that is, approximately 3 mm or more, particularly 7 mm or more, or even 10 mm or more based on the case where one cup portion 133 is formed, it is possible to prevent cracks from occurring in the punch edge 161a and the die edge 162 of the cup portion 133. In addition, the outer wall 138 of the cup portion 133 can be formed nearly vertically with an inclination angle of 90° to 95°, particularly 90° to 93°, from the bottom 1332. This prevents damage to the electrode 101 while further increasing the volume ratio of the electrode assembly 10 to the volume of the cup portion 133, thereby improving the energy efficiency per volume.
[0192] FIG. 19 is an enlarged view of a groove 1391a formed in a battery case 13a according to another embodiment of the present invention. According to another embodiment of the present invention, when the battery case 13a is folded to manufacture the secondary battery 1a, the die edge 1621 on the second case 132a side becomes the folding portion 139a. Specifically, when the battery case 13a is folded, the rounded shape of the die edge 1621 also unfolds, and a mark of the die edge 1621 remains on the secondary battery 1a, and this mark becomes the folding portion 139a. Therefore, the die edge 1621 on the second case 132a side of the battery case 13a corresponds to the folding portion 139a.
[0193] For example, if the rounded shape of the die edge 1621 does not fully unfold into a plane, the folding portion 139a will be formed to include a recess 1391a that is recessed into the inside of the secondary battery 1a, as shown in Figure 19. In this case, the folding portion 139a has a smaller curvature than the die edge 1621, and therefore can have a larger radius of curvature.
[0194] Because the die edge 1621 has a curved surface and the outer wall 1381a on the die edge 1621 side has a flat shape, the amounts of deformation are different. Therefore, when the battery case 13 is folded, the outer wall 1381a on the die edge 1621 side deforms relatively more, while the die edge 1621 deforms relatively less, only enough to allow its rounded shape to unfold to a certain extent. Then, when the battery case 13 is folded, as shown in FIG. 19, the amount of change in the slope switches between increasing and decreasing around the boundary point P1. That is, the boundary point P1 becomes an inflection point. Therefore, the folding portion 139a is formed on the curved surface between the two boundary points P1, i.e., the two inflection points.
[0195] Alternatively, even if the rounded shape of the die edge 1621 is fully unfolded in a plane, the boundary point P1 between the die edge 1621 and the outer wall 1381 on the second case 132a side and the boundary point between the die edge 1621 and the second case 132a form two lines (not shown) on the secondary battery 1a, and the folding portion 139a is formed in the plane between these two lines. The width FW of such a folding portion 139 does not exceed the length of the die edge 1621 and may be 1 mm to 3.2 mm, particularly 1 mm to 1.6 mm.
[0196] FIG. 20 is a schematic diagram showing the state of a conventional battery case 33 from above before the degassing section 337 is cut off. The bridge 136 of the battery case 13 is folded to form a folding portion 139 on one side of the secondary battery 1, and this folding portion 139 integrally connects the first case 131 and the second case 132. The battery case 13 is formed by draw-molding a pouch film 135. In this process, not only the cup portion 133 is stretched in a limited manner, but also the sides 134 surrounding the cup portion 133 are slightly stretched as a whole. Therefore, when the bridge 136 is folded, the slightly stretched portions of the sides 134 accumulate and visibly protrude outward from both ends of the folding portion 139. This is called a bat ear 35 or 15.
[0197] The size of the bat ears 35 varies depending on the thickness t' of the bridge 336, the clearance CL', the radius of curvature R2' of the punched edge 361 of the cup portion 333, and the depth D' of the cup portion 333. That is, the thicker the thickness t' of the bridge 336, the larger the clearance CL', and the larger the radius of curvature R2' of the punched edge 361 of the cup portion 333, the larger the size of the bat ears 35. However, in the past, there was a limit to how much the thickness t' of the bridge 336, the radius of curvature R2' of the punched edge 361 of the cup portion 333, and the clearance CL' could be improved. Therefore, as shown in FIG. 20, the size of the bat ears 35 was formed to be quite large, and there was also a limit to how much it could be reduced.
[0198] If the bat ears 35 are made larger, unnecessary volume of the secondary battery 3 increases, resulting in a discrepancy between the design values and actual values of the shape and size of the secondary battery 3. Therefore, when assembling the secondary battery 3 into the battery module 5 (shown in FIG. 27), assembly is not easy, and there is a problem that the size of the secondary battery 3 must be designed small from the beginning, taking into account the bat ears 35. In addition, there is a problem that the energy density per volume decreases as the volume of the secondary battery 3 increases.
[0199] Meanwhile, as described above, the pouch-type battery case 13 according to one embodiment of the present invention includes a cup portion 133 having an accommodating space 1331 for accommodating the electrode assembly 10, and a vent portion 137 formed on one side of the cup portion 133 and configured to discharge gas generated inside the cup portion 133 through a vent hole H.
[0200] Then, a formation process and a degassing process may be performed during the process of sealing the side 134. Specifically, after the electrode assembly 10 is housed in the cup portion 133, the edge 1371 included in the degassing portion 137 of the battery case 13 may be opened, and the remaining side 134 may be sealed. When the edge 1371 of the battery case 13 is opened to form an opening, an electrolyte solution is injected into the battery case 13 through the opening.
[0201] After the electrolyte is poured into the battery case 13, the degassing section 137 is primarily sealed to form the temporary seal section 1340. Since the degassing section 137 will be secondarily sealed later to form the seal section 1341, the temporary seal section 1340 is preferably formed in a position close to the edge 1371 of the degassing section 137.
[0202] Thereafter, an activation process (formation process) can be performed. The activation process (formation process) is a process for finally completing charging so that the secondary battery 1 can supply power. Since the activation process is performed after the temporary seal portion 1340 is formed and the battery case 13 is completely sealed, the charging rate is high, gas is quickly discharged, and the production of the secondary battery 1 can be completed within a specified process time.
[0203] When the activation process is completed, gas is generated inside the battery case 13. Therefore, vent holes H are punched in the vent portion 137 of the battery case 13. The gas is discharged from the inside of the battery case 13 to the outside through the vent holes H. At this time, as the gas is easily discharged, the injected electrolyte may leak through the vent holes H. To prevent this, the vent holes H are preferably punched in a position close to the temporary seal portion 1340. After the vent holes H are punched, a degassing process is performed to discharge the gas to the outside of the battery case 13.
[0204] When the vent hole H is punched out, the interior of the battery case 13 is opened again, and the electrolyte inside may leak to the outside. Therefore, the boundary between the cup portion 133 and the vent portion 137 is secondarily sealed to form the seal portion 1341. In this case, the seal portion 1341 is preferably formed between the cup portion 133 and the vent hole H, particularly at a position close to the cup portion 133.
[0205] In this way, the vent holes H must be punched and the primary and secondary sealing must be performed while the activation and deaeration processes are being performed. Furthermore, when mass-producing secondary batteries 1, it is necessary to centrally manage the specifications and quality of the secondary batteries 1. For this purpose, the battery case 13 or the secondary battery 1 can be inspected using an inspection device 4 (shown in FIG. 22) that includes a vision sensor 41.
[0206] Conventionally, there has been a limit to how well the battery case 33 and secondary battery 3 can be manufactured to have a sharp overall shape. Therefore, when the battery case 33 is photographed using a vision sensor, there are large errors in the size and position of each component.
[0207] Specifically, once the secondary batteries 1 are manufactured, the electrode leads 12 of the secondary batteries 1 can be connected to one another to manufacture a battery module 5 (shown in FIG. 27). For this reason, the positions of the electrode leads 12 formed on the secondary batteries 1 must all be consistent. Conventionally, the electrodes 101 are positioned at a certain distance from the outer wall 338 of the cup portion 333, which allows the electrode assembly 10 to move within the cup portion 333 before the side 134 is sealed. Therefore, when secondary batteries 3 are mass-produced, even if the volumes of the cup portion 333 and the electrode assemblies 10 are consistent, the positions of the electrode assemblies 10 and the electrode leads 12 vary slightly. Therefore, the positions of the electrode leads 12 must be accurately measured using the inspection device 4.
[0208] Furthermore, in order to punch out the vent hole H in the correct position and size and to perform the primary and secondary seals in the correct position and size, the position of the vent portion 137 must be accurately measured. Additionally, in order to efficiently manage the overall quality of a plurality of secondary batteries 1, the positions of various components of the battery case 13 or secondary battery 1, such as the side 134, folding portion 139, and insulating portion 14 protruding from the battery case 13, and even the width between the cup portions 133, must be accurately measured.
[0209] To measure the position of a component, a specific reference line must be established, and the vertical distance from the reference line to the component to be measured must be measured. For example, when the electrode assembly 10 moves within the cup portion 333, it generally moves to the left or right of the reference shown in FIG. 20, i.e., toward the folding portion 339 and the degassing portion 337. Therefore, to measure the position of the electrode lead 12, the position of the left or right edge of the electrode lead 12 must be measured, and a reference parallel to the left or right edge must be established to measure the vertical distance to the left or right edge.
[0210] However, in the past, because the outer wall 338 of the cup portion 333 was not formed nearly vertically and the radius of curvature R2' of the punch edge 361 of the cup portion 333 was also large, when the battery case 33 was photographed using the vision sensor 41, the punch edge 361 of the cup portion 333 did not appear clearly in the image, as shown in Figure 20. Therefore, the position of the above-mentioned components could not be measured using the punch edge 361 of the cup portion 333 as a reference, so the bat ears 35 close to the punch edge 361 were set as a reference, or the punch edge 361 of the cup portion 333 was manually set by the user.
[0211] However, since the bat ears 35 are formed by folding the bridge 136 while the peripheral side 134 of the cup portion 133 is also slightly stretched overall, the size of the bat ears 35 varies slightly for each of the multiple secondary batteries 1. As a result, even if the position of the above components is measured using a vision sensor, the size of the reference bat ears 35 varies, resulting in a large deviation in the position of the components between the secondary batteries 3, making quality control difficult.
[0212] In particular, even if the positions of the electrode leads 12 are measured by photographing the battery case 33 using a vision sensor, the positions of the electrode leads 12 vary slightly, making it difficult to connect the electrode leads 12 to manufacture the battery module 5. In addition, when stacking a plurality of secondary batteries 1 sequentially or aligning them in a row to manufacture the battery module 5, the position of the cup portion 333 is not accurate, resulting in a problem of poor alignment of the plurality of secondary batteries 1.
[0213] Furthermore, when manufacturing a battery module 5 by storing the secondary battery 3 in a separate housing 51 (shown in Figure 27), there is a problem that, due to the large deviation in the measurement values, the design tolerance is set unnecessarily large when designing the housing 51, which also reduces the energy density per volume of the battery module 5.
[0214] Figure 21 is a schematic diagram showing the state of a battery case 13 according to one embodiment of the present invention, viewed from above, before the degassing section 137 is cut, and Figure 22 is a block diagram of an inspection device 4 according to one embodiment of the present invention.
[0215] 21, the formability of the pouch film 135 is improved, so that the thickness t of the bridge 136 can be made thinner, and the radius of curvature R2 and clearance CL of the punched edge 1611 of the cup portion 133 can be made smaller, thereby further reducing the size of the bat ears 15. Therefore, the secondary battery 1 can be easily assembled into the battery module 5, and unnecessary volume of the secondary battery 1 can be reduced, thereby increasing the energy density per volume.
[0216] 21 , the punch edge 1611 of the cup portion 133 clearly appears in the image of the battery case 13, so the inspection device 4 can automatically set the punch edge 161 of the cup portion 133 as the reference line ST, and can accurately measure the distance to various components of the battery case 13 or secondary battery 1 based on the punch edge 161 of the cup portion 133, and can even accurately measure the width CW between the cup portions 133. As a result, the positions of the components of the battery case 13 or secondary battery 1 can be accurately measured, reducing measurement errors and deviations between secondary batteries 1.
[0217] To this end, the inspection device 4 for a battery case 13 or a secondary battery 1 according to one embodiment of the present invention includes a vision sensor 41 that photographs the battery case 13 to acquire an image of the battery case 13 or the secondary battery 1, an outline extraction unit 421 that extracts an outline of the configuration of the battery case 13 or the secondary battery 1 from the image, an image analysis unit 422 that analyzes the image and detects the outline corresponding to the punch edge 161 of the cup portion 133 in the battery case 13, which is provided with an accommodating space 1331 that accommodates the electrode assembly 10, a reference line setting unit 423 that sets the outline corresponding to the punch edge 161 as a reference line ST, and a distance calculation unit 424 that calculates the distance from the reference line ST to the configuration.
[0218] An inspection method for a battery case 13 or a secondary battery 1 according to one embodiment of the present invention using such an inspection device 4 includes the steps of: a vision sensor 41 photographing the battery case 13 and acquiring an image of the battery case 13 or the secondary battery 1; an outline extraction unit 421 extracting an outline of the configuration of the battery case 13 or the secondary battery 1 from the image; an image analysis unit 422 analyzing the image and detecting the outline corresponding to the punch edge 161 of the cup portion 133 in the battery case 13, which is provided with an accommodating space 1331 for accommodating the electrode assembly 10; a reference line setting unit 423 setting the outline corresponding to the punch edge 161 as a reference line ST; and a distance calculation unit 424 calculating the distance from the reference line ST to the configuration.
[0219] Specifically, as shown in FIG. 22, the inspection device 4 includes a vision sensor 41 and a control unit 42. These components are interconnected and capable of communicating with each other via a bus (not shown). All components included in the control unit 42 can be connected to the bus via at least one interface or adapter, or directly connected to the bus. The bus may also be connected to other subsystems in addition to the components described above. Such buses include a memory bus, a memory controller, a peripheral bus, and a local bus.
[0220] The vision sensor 41 captures an image by capturing an image of a specific area and receiving an image signal for the specific area. To achieve this, the vision sensor 41 typically includes an imaging element such as a charge-coupled device (CCD) or a complementary metal-oxide semiconductor (CMOS) image sensor. In particular, the vision sensor 41 according to one embodiment of the present invention can capture an image of the battery case 13 after the bridge 136 of the battery case 13 is folded, thereby capturing an image of each component of the battery case 13 or the secondary battery 1. Here, the components include the cup portion 133, the degassing portion 137, the electrode leads 12, the bat ears 15, the side 134, the folding portion 139, and the insulating portion 14. The secondary battery 1 is then manufactured by later cutting the degassing portion 137. Therefore, when the vision sensor 41 photographs the battery case 13 before cutting the deaeration section 137, it can obtain images of the battery case 13 and the electrode lead 12, etc., and when the vision sensor 41 photographs the battery case 13 after cutting the deaeration section 137, it can obtain an image of the secondary battery 1.
[0221] The control unit 42 receives the image signal acquired by the vision sensor 41 and determines the position of each component of the battery case 13 or the secondary battery 1 from the image signal. The control unit 42 includes an outline extraction unit 421, an image analysis unit 422, a reference line setting unit 423, and a distance calculation unit 424. The control unit 42 is preferably a CPU (Central Processing Unit), an MCU (Micro Controller Unit), or a DSP (Digital Signal Processor), but is not limited thereto and various logic operation processors can be used.
[0222] The outline extraction unit 421 extracts the outline of each component of the battery case 13 or the secondary battery 1 from the image received from the vision sensor 41. In this case, the outline extraction unit 421 may extract the outline of all components appearing in the image, but is not limited thereto. Alternatively, a region of interest (ROI) may be set in a portion of the image and only the outline of components appearing within the ROI may be extracted. To extract the outline, information about the pixels of the image is first extracted, and a commonly used gradient formula may be used for this purpose. The outlines of the battery case 13 and the electrode leads 12 are revealed through the extracted pixel information.
[0223] According to an embodiment of the present invention, the radius of curvature R2 and the clearance CL of the punch edge 161 of the cup portion 133 can be made smaller, and the outer wall 138 of the cup portion 133 can be made nearly vertical, so that the gradient of pixel information corresponding to the punch edge 161 of the cup portion 133 in the image is large. Therefore, the boundary between the outline and the background is clear, and the outline corresponding to the punch edge 161 of the cup portion 133 can be clearly extracted.
[0224] The image analysis unit 422 analyzes the image to detect an outline corresponding to the punch edge 161 of the cup portion 133 in the battery case 13. To this end, the image analysis unit 422 can detect the outline corresponding to the punch edge 161 of the cup portion 133 by matching the extracted outline information with pre-stored reference outline information of the punch edge 161 of the cup portion 133. In this case, the image analysis unit 422 can match the two pieces of information using a template matching technique.
[0225] The reference line setting unit 423 may set the outline corresponding to the punch edge 161 as the reference line ST. Because the cup portion 133 includes a plurality of punch edges 161, a plurality of outlines corresponding to the punch edges 161 are also extracted. At this time, in order to accurately measure the position of each component of the battery case 13 or the secondary battery 1, it is preferable that the reference line setting unit 423 sets the outline corresponding to the punch edge 161 closest to the component to be measured as the reference line ST among the plurality of punch edges 161. Furthermore, as described above, since the position of a component must be determined by measuring the vertical distance from the reference line ST, the reference line setting unit 423 may set the outline corresponding to the punch edge 161 parallel to the edge of the component to be measured as the reference line ST among the plurality of punch edges 161.
[0226] For example, in order to punch the deaeration hole H and perform the primary and secondary sealing, the inspection device 4 must measure the position of the deaeration section 137. In this case, the reference line setting unit 423 can set the reference line ST to the outline of the punch edge 1612 on the die edge 162 side, which is close to the deaeration section 137 and parallel to the edge 1371 included in the deaeration section 137, among the multiple punch edges 161.
[0227] Then, for example, in order to inspect whether the positions of all the electrode leads 12 are consistent, the inspection device 4 must measure the positions of the electrode leads 12. In this case, the reference line setting unit 423 may set the outline of the electrode lead 12 side corresponding to the punch edge 1611 on the folding portion 139 side, which is close to the electrode lead 12 and parallel to the left or right edge of the electrode lead 12, among the multiple punch edges 161, as the reference line ST.
[0228] Furthermore, in order to measure the width between the cup portions 133, the reference line setting unit 423 may set the outline of any one of the outlines of two punch edges 161 among the multiple punch edges 161 that correspond to the boundary of the width of the cup portions 133 as the reference line ST.
[0229] That is, the reference line setting unit 423 can set various outlines as the reference line ST without any restrictions, as long as the positions of the components of the battery case 13 or the secondary battery 1 can be measured accurately.
[0230] The distance calculation unit 424 calculates the distance from the reference line ST to each component of the battery case 13 or the secondary battery 1 in the image. For example, when an outline corresponding to the punch edge 1612 on the die edge 162 side is set as the reference line ST, the distance calculation unit 424 may calculate the distance from the reference line ST to an edge included in the degassing unit 137. Alternatively, when an outline corresponding to the punch edge 1611 on the folding unit 139 side is set as the reference line ST, the distance calculation unit 424 may calculate the distance from the reference line ST to one edge of the electrode lead 12, or may calculate the distance to the outline corresponding to the punch edge 1612 on the die edge 162 side.
[0231] The distance calculation unit 424 can use pre-stored information on the relationship between the number of pixels of an image and the actual distance. That is, the distance calculation unit 424 can count the distance from the reference line ST to each feature in the image in terms of the number of pixels, and then calculate the actual distance corresponding to the counted number of pixels using pre-stored information on the relationship between the number of pixels of an image and the actual distance.
[0232] The inspection device 4 may further include a storage unit 44. The storage unit 44 stores programs for processing and controlling the operation of the inspection device 4, as well as various data or received signals generated during the execution of each program. In particular, the storage unit 44 may store reference information for the battery case 13 so that the image analysis unit 422 can detect an outline corresponding to the punch edge 1611 of the cup portion 133. Here, the reference information for the battery case 13 may include reference outline information for the punch edge 1611 of the cup portion 133 and reference information for the distance to the battery case 13 or the components of the secondary battery 1. This information may be directly stored in the storage unit 44 by a user, or the inspection device 4 may generate and store the reference information through repeated learning. The storage unit 44 may also store information regarding the relationship between the number of pixels in an image and the actual distance so that the distance calculation unit 424 can calculate the actual distance from the reference line ST to each component. The storage unit 44 may also store inspection result information for the battery case 13 to be inspected. The storage unit 44 may be built into the inspection device 4 or may be provided as a separate storage server. The storage unit 44 includes a non-volatile memory device and a volatile memory device, where the non-volatile memory device is a NAND flash memory that is small in volume, light in weight, and resistant to external shocks, and the volatile memory device may be a DDR SDRAM.
[0233] The control unit 42 may further include a defect determination unit 425 that determines whether the battery case 13 to be inspected is defective. The defect determination unit 425 can compare reference information for the battery case 13 stored in the storage unit 44 with the inspection result information for the battery case 13 to be inspected. If the inspection result information is within the error range of the reference information, the battery case 13 is determined to be normal. On the other hand, if the inspection result information is outside the error range of the reference information, the battery case 13 is determined to be defective.
[0234] Meanwhile, the inspection device 4 may further include a display unit 43 that receives an image signal and displays it. The display unit 43 receives the image signal and displays it to a user. When the outline extraction unit 421 extracts the outline of the battery case 13, the outline is displayed on the image so that a user can check it through the display unit 43. The display unit 43 may use various types of displays, such as a liquid crystal display (LCD), an organic liquid crystal display (OLED), a cathode ray tube (CRT), or a plasma display panel (PDP). The display unit 43 is connected to a bus via a video interface, and data transmission between the display unit 43 and the bus may be controlled by a graphic controller.
[0235] The inspection device 4 may further include an alarm unit 45 that generates an alarm when the defect determination unit 425 determines that the battery case 13 is defective. When generating an alarm, it is preferable to generate the alarm audibly or visually, such as by lighting a lamp or sounding an alarm, so that the user can intuitively know the alarm.
[0236] The components of the vision sensor 41, control unit 42, storage unit 44, and display unit 43 described above may be realized by software such as a task, class, subroutine, process, object, execution thread, or program executed in a predetermined area of memory, or by hardware such as an FPGA (field-programmable gate array) or ASIC (application-specific integrated circuit), or may be a combination of the software and hardware. The components may be included in a computer-readable storage medium, or may be partially distributed across multiple computers.
[0237] Each block may represent a module, segment, or portion of code that includes one or more executable instructions for performing a specific logical function. In some alternative implementations, the functions described in the blocks may occur out of order. For example, two blocks shown one after the other may actually be performed substantially simultaneously, or the blocks may sometimes be performed in reverse order depending on the functions involved.
[0238] When using the inspection device 4 according to one embodiment of the present invention, the punch edge 1611 of the cup portion 133 is clearly visible, allowing the inspection device 4 to automatically set the punch edge 161 of the cup portion 133 as the reference line ST, and accurately measure the distance to each component of the battery case 13 using the punch edge 1611 of the cup portion 133 as a reference. For example, the size and position of the venting portion 137 can be measured, and even after the production of the secondary battery 1 is complete, the size and position of the cup portion 133, electrode lead 12, bat ears 15, sides 134, folding portion 139, and insulating portion 14 can be accurately determined. This makes it easy to determine whether the secondary battery 1 is defective, and allows efficient and centralized management of the specifications and quality of secondary batteries 1, even when mass-produced.
[0239] In particular, since the positions of the electrode leads 12 can be accurately measured, the electrode leads 12 can be easily connected when manufacturing the battery module 5. In addition, since the positions of the cup portions 333 can be accurately measured, the alignment of the secondary batteries 1 can be improved when stacking the secondary batteries 1 sequentially or aligning them in a row to manufacture the battery module 5.
[0240] FIG. 23 is a schematic diagram showing a state in which the manufacture of the secondary battery 1 is completed by cutting the degassing portion 137 of the battery case 13 according to one embodiment of the present invention. After the battery case 13 is secondarily sealed to form the sealed portion 1341, a cut line CT is set on the outside of the sealed portion 1341 to cut the vent portion 137. As a result, as shown in Fig. 23, the length of the vent portion 137 is shortened, thereby reducing the volume of the secondary battery 1. Through the above process, the manufacture of the pouch-type secondary battery 1 is completed.
[0241] Meanwhile, the side 134 remaining after cutting the vent 137 does not have the electrode lead 12 protruding from it among the multiple sides 134. However, if the side 134 is left as is after being sealed, the overall volume of the secondary battery 1 increases. Therefore, it is preferable to fold the side 134 to reduce the energy density relative to the volume.
[0242] 23, the side 134 may include a sealed portion 1341 and an unsealed portion 1342. The sealed portion 1341 is located relatively outside and is a sealed area, and the unsealed portion 1342 is located relatively inside and is an unsealed area.
[0243] Specifically, when forming the seal portion 1341 by secondarily sealing the battery case 13, the seal portion 1341 may not be directly connected to the cup portion 133 but may be spaced apart to a certain extent. To seal the side 134, heat and pressure must be applied to the side 134 using a separate sealing tool (not shown). However, if the side 134 is sealed with such a sealing tool in close contact with the cup portion 133, the sealant layer 1351 located inside the side 134 may partially melt and leak toward the electrode assembly 10, contaminating the electrode assembly 10. Furthermore, heat from the sealing tool may be transferred to the electrode assembly 10, potentially damaging it. Therefore, it is preferable to seal the side 134 with the sealing tool spaced apart from the cup portion 133 to a certain extent. In this case, the portion sealed by the sealing tool becomes the seal portion 1341, and the portion not sealed due to the separation of the sealing tool from the cup portion 133 becomes the unsealed portion 1342.
[0244] FIG. 24 is a schematic side view of the conventional side 334 after folding, and FIG. 25 is a schematic top view of the conventional side 334 after folding.
[0245] In the past, when the side 334 was folded, the side 334 was not fixed and would unfold again at a predetermined angle. Specifically, as described above, the pouch film 135 is formed by laminating the sealant layer 1351, moisture barrier layer 1352, stretching assist layer 1354, and surface protection layer 1353. Among these, the sealant layer 1351 contains a first polymer, particularly polypropylene (PP), and therefore has high flexibility and elasticity. Therefore, when the side 134 is folded, it has a strong restoring force to return to its original state. In contrast, since the moisture barrier layer 1352 is made of metal, particularly an aluminum alloy, after the side 334 is folded, it exceeds its elastic deformation limit and has a strong restoring force to maintain the folded state.
[0246] Conventional pouch films have a moisture barrier layer with a thickness of approximately 30 to 50 μm and a sealant layer with a thickness of approximately 60 to 100 μm. That is, the moisture barrier layer is formed to be significantly thinner than the sealant layer. Therefore, the restoring force is greater than the storage force, and the side 334 is not fixed and is unfolded again at a predetermined angle. This poses a problem in that the side 334 increases the unnecessary volume of the secondary battery 3.
[0247] To solve this problem, a separate tape 38 is attached to the side 334 as shown in Figures 24 and 25. In particular, the tape 38 is attached to both the outer surface of the bottom 3332 of the cup portion 333 and the side 334, thereby fixing the side 334 to the cup portion 333 and preventing it from being unfolded again. However, this method has the problem of increasing the overall thickness of the secondary battery 3 due to the thickness of the tape 38 itself, as shown in Figure 24. In addition, an additional process of attaching the tape 38 is required after the process of folding the side 334, which takes a lot of time, increases the number of processes, and reduces the manufacturing yield of the secondary battery 3.
[0248] Meanwhile, during the degassing process, the internal pressure of the cup portion 133 decreases as gas is discharged from the inside of the battery case 13 to the outside. Conventionally, the electrode assembly 10 is disposed at a certain distance from the outer wall 338 of the cup portion 333. Therefore, as the internal pressure of the cup portion 333 decreases, the volume of the space 37 between the outer wall 338 of the cup portion 333 and the electrode assembly 10 also decreases, which can cause deformation of the outer wall 338 or the bottom 3332 of the cup portion 333. In particular, as shown in FIG. 24 , as the outer wall 338 on the folding portion side of the secondary battery 3 sinks inward, the punch edge 361 on the folding portion 339 side of the cup portion 333 protrudes outward, resulting in an edge-high phenomenon. This edge-high phenomenon increases the unnecessary thickness of the secondary battery 3, resulting in a decrease in the energy density per volume. In addition, the outer wall 338 on the folding section 339 side of the cup section 333 is deformed, which causes a problem of the appearance of the secondary battery 3 being unattractive and reducing its marketability. Furthermore, there is also the problem that the edge-high phenomenon causes the bat ears 15 to increase in size and become more noticeable.
[0249] FIG. 26 is a schematic side view of the folded side 134 according to one embodiment of the present invention. According to one embodiment of the present invention, the pouch film 135 has a moisture barrier layer 1352 having a thickness of 50 to 70 μm and a sealant layer 1351 having a thickness of 70 to 100 μm, so that the moisture barrier layer 1352 is thicker than conventional pouch films. Therefore, when the side 134 is folded, the preservative strength is further increased, so that the side 134 can be prevented from being unfolded again without the need for a separate tape 38.
[0250] To this end, a secondary battery 1 according to one embodiment of the present invention includes an electrode assembly 10 formed by stacking an electrode 101 and a separator 102, and a pouch-type battery case 13 having a cup portion 133 for accommodating the electrode assembly 10 therein. The pouch-type battery case 13 includes a side 134 extending outward from the cup portion 133. The side 134 includes a sealed portion 1344 located relatively outward and sealed, and an unsealed portion 1345 located relatively inward and unsealed. The side 134 is not attached to the cup portion 133 and is folded at the unsealed portion 1345.
[0251] That is, as shown in FIG. 26 , after the side 134 of the secondary battery 1 is folded toward the cup portion 133, the side 134 is not attached to the cup portion 133 and remains folded, not unfolded. In this case, the side 134 may be folded at an angle of 85° to 95°, particularly at an angle of 88° to 92°. The side 134 may be folded adjacent to the cup portion 133, so that the side 134 may come into contact with the outer wall 138 of the cup portion 133. In particular, as described above, the side 134 may include a sealed portion 1341 disposed relatively outward and sealed, and an unsealed portion 1342 disposed relatively inward and unsealed. When the side 134 is folded, it is preferable that the unsealed portion 1342, which is relatively closer to the cup portion 133, be folded. This can further reduce unnecessary volume of the secondary battery 1. However, even in this case, the side 134 and the cup part 133 are not bonded to each other, but the restoring force of the side 134 is increased to maintain the folded state.
[0252] When two cup portions 133 are formed in the pouch film 135, the depth D of the cup portion 133 may be thinner than when one cup portion 133 is formed. As described above, this is because the cup portion 133 is not stretched in a concentrated manner, but the sides 134 surrounding the cup portion 133 are also stretched finely as a whole. However, if the width of the sides 134 is longer than the depth D of the cup portion 133, the outer end 1343 of the sides 134 may protrude further outward than the bottom 1332 of the cup portion 133 when the sides 134 are folded only once.
[0253] Therefore, when two cup portions 133 are formed in the pouch film 135, a double side folding (DSF) method can be used in which the side 134 is folded twice, as shown in FIG. 26 . Specifically, the side 134 may include a first folding portion 1344 and a second folding portion 1345. The first folding portion 1344 is a portion folded relatively closer to the outer edge 1343, and the second folding portion 1345 is a portion folded relatively closer to the cup portion 133. Therefore, the side 134 may be primarily folded based on the first folding portion 1344, and then the side 134 may be secondarily folded based on the second folding portion 1345. In this case, the first folding portion 1344 may be located at the sealed portion 1341 of the side 134, and the second folding portion 1345 may be located at the unsealed portion 1342 of the side 134. The side 134 may be folded at an angle of 170° to 180°, particularly 180°, at the first folding portion 1344. The side 134 may be folded at an angle of 85° to 95°, particularly 88° to 92°, at the second folding portion 1345. This prevents the outer end 1343 of the side 134 from protruding further outward than the bottom 1332 of the cup portion 133.
[0254] Meanwhile, according to one embodiment of the present invention, the electrode assembly 10 can be positioned very close to the outer wall 138 of the cup part 133, thereby reducing unnecessary volume of the cup part 133. Therefore, even if the internal pressure of the cup part 133 is reduced by performing a degassing process, deformation of the outer wall 138 or the bottom part 1332 of the cup part 133 can be prevented. That is, as shown in FIG. 26, the edge-high phenomenon can be prevented, and therefore the energy density per volume does not decrease.
[0255] FIG. 27 is a schematic diagram of a battery module 5 according to one embodiment of the present invention. Medium to large electronic devices such as automobiles require large output power and therefore require many secondary batteries 1. A battery module 5 can be manufactured to easily move and install such secondary batteries 1. When multiple secondary batteries 1 are installed in such a battery module 5, electricity can be stably supplied to the outside.
[0256] Meanwhile, as electricity is produced from the electrode assembly 10 of the secondary battery 1, a chemical reaction occurs between the electrodes 101 and the electrolyte, generating heat during this process. However, if the ambient temperature rises excessively due to the heat, there is a problem that the circuits of the electrical equipment in which the secondary battery 1 is installed may malfunction or the lifespan of the electrical equipment may be shortened. Therefore, the battery module 5 includes a cooling system for cooling the secondary battery 1. Cooling systems are broadly divided into water-cooled systems that use cooling water and air-cooled systems that use air. Among these, water-cooled systems are more widely used than air-cooled systems because they have higher cooling efficiency.
[0257] The cooling system includes a cooling plate that directly cools the secondary battery 1, and a separate flow path is formed inside the cooling plate to allow the coolant to flow. The thinner and longer the flow path, the larger the surface area and the greater the cooling efficiency.
[0258] To manufacture a battery module 5, a plurality of secondary batteries 1 are first manufactured, and then these secondary batteries 1 are connected to one another and housed in a housing 51. At this time, the secondary batteries 1 can be stacked in a line. As shown in Fig. 27, when the secondary batteries 1 are housed in the housing 51, the long side of the secondary batteries 1 faces downward, and a cooling plate (not shown) can be formed on the underside of the housing 51. Therefore, the cooling plate cools the long side of the secondary batteries 1, thereby increasing cooling efficiency.
[0259] Meanwhile, a folding portion 139 is formed on one side of the secondary battery 1 by folding the bridge 136, and a side 134 is formed on the other side, which is the area remaining after the degassing portion 137 is cut off. However, if the cooling plate cools the side where the side 134 is formed among the multiple surfaces of the secondary battery 1, the cooling efficiency may decrease because the side 134 increases the distance between the cooling plate and the electrode assembly 10. Therefore, it is preferable that the cooling plate cools the side where the folding portion 139 is formed among the longer sides of the secondary battery 1. For this reason, when the secondary battery 1 is inserted into the housing 51, the folding portion 139 may be inserted in a direction toward the cooling plate, i.e., downward.
[0260] FIG. 28 is an enlarged front view showing a conventional secondary battery 3 housed in a housing 51 of a battery module 5, and FIG. 29 is an enlarged side view showing a conventional secondary battery 3 housed in a housing 51 of a battery module 5.
[0261] As described above, conventionally, there has been a limit to reducing the size of bat ears 35. In particular, even when the depth D' of cup portion 333 is formed sufficiently deep (e.g., 6.5 mm or more), there is a limit to reducing the size of bat ears 35 to a certain value (e.g., 1.5 mm) or less.
[0262] Furthermore, in the past, the angle θ′ formed between the folding portion 339 and the inner edge 35a of the bat ear 35 was set to 151 degrees or less. Here, the angle θ′ may refer to the angle formed between a virtual first line L1 corresponding to the folding portion 339 and a virtual second line L2 corresponding to the inner edge 35a of the bat ear 35. In particular, the first line L1 and the second line L2 may be determined by image analysis. For example, the first line L1 and the second line L2 may be extracted by connecting a plurality of edge points identified within a region of interest (ROI) in a vision device. Therefore, even if the folding portion 339 or the inner edge 35a of the bat ear 35 is partially bent or curved, the first line L1 and the second line L2 may be clearly defined. Since such image analysis is a well-known technique, a detailed description thereof will be omitted.
[0263] 28, when the secondary battery 3 is housed in the housing 51, the bat ears 35 create a large gap d' (e.g., greater than 1.5 mm) between the housing 51 and the folding portion 339. This gap d' can impede the cooling of the cooling plate, reducing cooling efficiency. To address this issue, a heat transfer material 52 is injected into the space between the cooling plate and the folding portion 339 of the secondary battery 1, allowing the cooling plate to cool the folding portion 339 through the heat transfer material 52. For example, the heat transfer material 52 may be thermal grease.
[0264] However, if the size of the bat ears 15 is large, a large amount of the heat transfer material 52 must be injected, which increases the cost, and the large distance d' between the cooling plate and the folding portion 139 still results in low cooling efficiency.
[0265] Furthermore, when a degassing process is performed through the vent hole H, the internal pressure of the battery case 33 decreases, and as a result, the folding portion 339 of the battery case 33 comes into close contact with the electrode assembly 10, as shown in FIG. 29. However, in the past, there was a limit to how much the clearance CL' could be reduced, and the width of the folding portion 339 was also large. This resulted in a large space 37 between the outer wall 338 of the cup portion 333 and the electrode assembly 10, which reduced the energy density per volume of the secondary battery 3. Furthermore, the distance between the electrode assembly 10 and the thermal grease 52 also increased, which further reduced the cooling efficiency.
[0266] Figure 30 is an enlarged front view showing a secondary battery 1 according to one embodiment of the present invention housed in a housing 51 of a battery module 5, and Figure 31 is an enlarged side view showing a secondary battery 1 according to one embodiment of the present invention housed in a housing 51 of a battery module 5.
[0267] A pouch-type secondary battery 1 according to one embodiment of the present invention includes an electrode assembly 10 formed by stacking electrodes 101 and separators 102, and a pouch-type battery case 13 having a cup portion 133 for accommodating the electrode assembly 10 therein. The battery case 13 includes a first case 131 and a second case 132, at least one of which has the cup portion 133 formed therein, a folding portion 139 that integrally connects the first case 131 and the second case 132, and bat ears 15 formed to protrude outward from portions of both ends of the folding portion 139, and the bat ears 15 have a length d of 1.5 mm or less.
[0268] In addition, the angle θ formed between the folding portion 139 and the inner edge 15a of the bat ear 15 may be greater than 151 degrees. The angle θ may also be less than 180 degrees. If the angle θ is 180 degrees, it may indicate that the bat ear 15 does not exist.
[0269] Here, the angle θ may refer to the angle formed by an imaginary first line L1 corresponding to the folding portion 139 and an imaginary second line L2 corresponding to the inner edge 15a of the bat ear 15. The above-mentioned content is also applicable to the first line L1 and the second line L2. A battery module 5 according to one embodiment of the present invention includes a pouch-type secondary battery 1 in which an electrode assembly 10 formed by stacking an electrode 101 and a separator 102 is housed inside a cup portion 133 formed in a pouch-type battery case 13, and a housing 51 in which the secondary battery 1 is housed. The battery case 13 includes a first case 131 and a second case 132 each having the cup portion 133 formed therein, a folding portion 139 connecting the first case 131 and the second case 132 together, and bat ears 15 formed to protrude outward from portions of both ends of the folding portion 139, and the bat ears 15 have a length d of 1.5 mm or less.
[0270] As described above, the bat ears 15 are formed by folding the bridge 136 and protruding outward from portions of both ends of the folding portion 139. According to one embodiment of the present invention, the length of the bat ears 15 may be 1.5 mm or less, and particularly 1 mm or less. The length of the bat ears 15 may be measured from the outer wall 1381 on the folding portion 139 side to the outermost end of the bat ears 15. In this case, as described above, the outer wall 1381 on the folding portion 139 side may have an inclination angle of 90° to 95° from the bottom 1332 due to the clearance CL. In consideration of this, as an example of measuring the length of the bat ears, the length of the bat ears 15 may be measured from the outermost protruding portion of the outer wall 1381 on the folding portion 139 side to the outermost end of the bat ears 15.
[0271] The length of bat ears 15 may be measured by directly contacting secondary battery 1 using a ruler or vernier caliper, or may be measured in a non-contact manner using a laser displacement sensor or a vision sensor.
[0272] The above is an example of a method for measuring bat ear length, and the scope of the present invention is not necessarily limited to the above measurement method. Any bat ear length that falls within the scope of the claims and the spirit of the present invention can be considered as the bat ear length defined in the present invention.
[0273] According to one embodiment of the present invention, the formability of the pouch film 135 is improved, thereby enabling the thickness t of the bridge 136 to be made thinner, and the radius of curvature R2 and clearance CL of the punch edge 1611 of the cup portion 133 to be made smaller.
[0274] As a result, the depth D of the cup portion 133 can be formed to 3 mm or more, particularly 6.5 mm or more, while the length d of the bat ears 15 can be further reduced to 1.5 mm or less, particularly 1 mm or less. Therefore, as shown in Fig. 30, the distance d between the housing 51 and the folding portion 139 can be narrowed to 1.5 mm or less. As a result, the thickness of the heat transfer material 52 inside the housing 51 can be 1.5 mm or less, and the amount of thermal grease 52 injected can be further reduced, thereby reducing costs and increasing cooling efficiency.
[0275] 31, the clearance CL can be further reduced, and the width FW of the folding portion 139 can also be reduced. This reduces the space 17 between the outer wall 138 of the cup portion 133 and the electrode assembly 10, thereby increasing the energy density per volume of the secondary battery 1. Furthermore, the distance between the electrode assembly 10 and the thermal grease 52 is reduced, thereby further improving cooling efficiency.
[0276] Those skilled in the art will understand that the present invention can be embodied in other specific forms without changing the technical spirit or essential characteristics thereof. Therefore, it should be understood that the above-described embodiments are illustrative in all respects and are not limiting. The scope of the present invention is defined by the claims set forth below rather than the above detailed description, and various embodiments derived from the meaning and scope of the claims and their equivalents should be construed as being included within the scope of the present invention. [Explanation of symbols]
[0277] 1: Secondary battery 2: Molding equipment 3: Conventional secondary batteries 4: Inspection equipment 5: Battery module 10: Electrode assembly 11: Electrode tab 12: Electrode lead 13: Battery case 14: Insulation section 15:Bat ears 16: Edge 17: Space 21: Die 22: Punch 33: Conventional battery case 35: Traditional bat ears 36: Conventional Edge 37: Traditional space 38: Conventional tape 41: Vision sensor 42: Control unit 43: Display section 44: Storage area 45: Alarm section 51: Housing 52: Thermal grease 101: Electrode 102: Separator 111: Positive electrode tab 112: Negative electrode tab 121: Positive lead 122: Negative electrode lead 131: First Case 132: Second Case 133: Cup part 134: Side 135: Pouch film 136: Bridge 137: Degassing section 138: Exterior wall 139: Folding section 161: Punch Edge 162: Die Edge 163: Thickness Edge 164: Corner 211: Molding section 212: Bulkhead 213: Die Edge 221: Edge of the Punch 333: Conventional cup part 334: Conventional side 336: Conventional bridge 337: Conventional degassing section 338: Conventional exterior wall 339: Conventional folding section 361: Conventional punch edge 362: Conventional die edge 421: Outline extraction section 422: Image Analysis Department 423: Reference line setting section 424: Distance calculation section 425: Defect judgment department 1021: Periphery 1331: Containment Space 1332: Bottom 1333: Exterior wall 1340:Temporary Seal Section 1341: Seal part 1342: Unsealed part 1343: Outer edge 1344: First Folding Section 1345: Second Folding Section 1351: Sealant layer 1352: Moisture barrier layer 1353: Surface protective layer 1354: Stretched auxiliary layer 1371: Edge 1381: Bridge side exterior wall 1382: Outer wall of degassing section 1391: Groove 1611:Punched edge on bridge side 1612: Punch edge on the degassing section side 1613: First punch edge 1614: Second punch edge
Claims
1. an electrode assembly formed by stacking electrodes and separators; a pouch-type battery case having a cup portion for accommodating the electrode assembly therein, The pouch-type battery case includes: a first case and a second case, at least one of which has the cup portion formed thereon; a folding portion that integrally connects the first case and the second case; bat ears formed to protrude outward from portions of both ends of the folding portion, The bat ears are The length is 1.5 mm or less, The pouch-type battery case includes: It is manufactured by molding pouch film, The pouch film is a sealant layer made from a first polymer and formed as an innermost layer; a surface protection layer made from a second polymer and formed as an outermost layer; a moisture barrier layer laminated between the surface protection layer and the sealant layer, the moisture barrier layer is made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a grain size of 10 to 13 μm; The pouch-type secondary battery, wherein the sealant layer has a thickness of 60 to 100 μm.
2. The bat ears are 2. The pouch-type secondary battery according to claim 1, wherein a length measured from an outer wall of the cup portion on the folding portion side to an outermost end of the bat ear is 1.5 mm or less.
3. The pouch-type secondary battery according to claim 1 or 2, wherein an angle formed between the folding portion and an inner edge of the bat ear is greater than 151 degrees.
4. The cup portion is a plurality of punch edges respectively connecting a plurality of outer walls surrounding the periphery and the bottom; The punch edge is The pouch-type secondary battery according to claim 1 , wherein at least one of the pouches is rounded.
5. 5. The pouch-type secondary battery according to claim 4, wherein the radius of curvature of the punch edge is 1 / 20 to 1 / 6 of the depth of the cup portion.
6. The cup portion is Further comprising a thickness edge connecting two adjacent outer walls to each other; The thickness edge is The pouch-type secondary battery according to claim 4 or 5, wherein two adjacent punch edges are connected to form a corner.
7. The corner is At least one of them is rounded, The pouch-type secondary battery according to claim 6 , wherein the radius of curvature is equal to or greater than the radius of curvature of at least one of the punch edge and the thickness edge.
8. The first case and the second case are The cup portions are each formed, The pouch-type battery case includes: a bridge formed between the two cup portions; The bridge is The pouch-type secondary battery according to claim 1 , which is formed in a round shape.
9. The pouch-type secondary battery according to claim 1 , wherein the cup portion has a depth of 6.5 mm or more.
10. The area of the electrode assembly is 15,000 mm 2 ~100,000 mm 2 The pouch-type secondary battery according to claim 1 , wherein
11. The aluminum alloy thin film is 2. The pouch-type secondary battery according to claim 1, wherein the alloy number is AA8021.
12. The aluminum alloy thin film is 2. The pouch-type secondary battery according to claim 1, containing 1.3 wt % to 1.7 wt % of iron and 0.2 wt % or less of silicon.
13. The moisture barrier layer is The thickness is 55 to 65 μm, The sealant layer is The pouch-type secondary battery according to any one of claims 1 to 12, having a thickness of 75 to 85 µm.
14. The pouch film is The pouch-type secondary battery according to claim 1 , further comprising an extension-assisting layer made of a third polymer and laminated between the surface protection layer and the moisture barrier layer.
15. The stretching assist layer is The pouch-type secondary battery according to claim 14, having a thickness of 20 to 50 μm.
16. an electrode assembly formed by stacking electrodes and separators; a pouch-type battery case having a cup portion for accommodating the electrode assembly therein, The pouch-type battery case includes: a first case and a second case, at least one of which has the cup portion formed thereon; a folding portion that integrally connects the first case and the second case; bat ears formed to protrude outward from portions of both ends of the folding portion, the angle between the folding portion and the inner edge of the bat ear is greater than 151 degrees; The pouch-type battery case includes: It is manufactured by molding pouch film, The pouch film is a sealant layer made from a first polymer and formed as an innermost layer; a surface protection layer made from a second polymer and formed as an outermost layer; a moisture barrier layer laminated between the surface protection layer and the sealant layer, the moisture barrier layer is made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a grain size of 10 to 13 μm; The pouch-type secondary battery, wherein the sealant layer has a thickness of 60 to 100 μm.
17. a pouch-type secondary battery in which an electrode assembly formed by stacking electrodes and a separator is housed inside a cup portion formed in a pouch-type battery case; a housing in which the pouch-type secondary battery is housed, The pouch-type battery case includes: a first case and a second case, at least one of which has the cup portion formed thereon; a folding portion that integrally connects the first case and the second case; bat ears formed to protrude outward from portions of both ends of the folding portion, The bat ears are The length is 1.5 mm or less, The pouch-type battery case includes: It is manufactured by molding pouch film, The pouch film is a sealant layer made from a first polymer and formed as an innermost layer; a surface protection layer made from a second polymer and formed as an outermost layer; a moisture barrier layer laminated between the surface protection layer and the sealant layer, the moisture barrier layer is made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a grain size of 10 to 13 μm; The battery module, wherein the sealant layer has a thickness of 60 to 100 μm.
18. The battery module of claim 17 , wherein the angle formed between the folding portion and the inner edge of the bat ear is greater than 151 degrees.
19. The housing includes: The battery module according to claim 17 or 18, further comprising a cooling plate for cooling the pouch-type secondary batteries.
20. The battery module of claim 19 , further comprising a heat transfer material formed between the cooling plate and the folding portion of the pouch-type secondary battery.
21. The heat transfer material is 21. The battery module according to claim 20, wherein the thickness inside the housing is 1 mm or less.
22. a pouch-type secondary battery in which an electrode assembly formed by stacking electrodes and a separator is housed inside a cup portion formed in a pouch-type battery case; a housing in which the pouch-type secondary battery is housed, The pouch-type battery case includes: a first case and a second case, at least one of which has the cup portion formed thereon; a folding portion that integrally connects the first case and the second case; bat ears formed to protrude outward from portions of both ends of the folding portion, the angle between the folding portion and the inner edge of the bat ear is greater than 151 degrees; The pouch-type battery case includes: It is manufactured by molding pouch film, The pouch film is a sealant layer made from a first polymer and formed as an innermost layer; a surface protection layer made from a second polymer and formed as an outermost layer; a moisture barrier layer laminated between the surface protection layer and the sealant layer, the moisture barrier layer is made of an aluminum alloy thin film having a thickness of 50 to 80 μm and a grain size of 10 to 13 μm; The battery module, wherein the sealant layer has a thickness of 60 to 100 μm.
Citation Information
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