Electrode tab welding device, electrode tab welding method, and secondary battery
The electrode tab welding device and method address the issue of breakage in pouch-type secondary batteries by increasing the length from the electrode assembly to the welding point through a converging and bending process, stabilizing the assembly with support and pressure blocks to prevent tab breakage and reduce fire risk.
Patent Information
- Application Number
- JP2024531687
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-11-29
- Filing Date
- 2022-11-29
- Publication Date
- 2026-01-14
- Estimated Expiration
- 2042-11-29
Smart Images

Figure 0007798433000002 
Figure 0007798433000003 
Figure 0007798433000004
Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2021-0167738 filed November 29, 2021 and Korean Patent Application No. 10-2022-0163018 filed November 29, 2022, the entire contents of which are incorporated herein by reference.
[0002] The present invention relates to an electrode tab welding device, an electrode tab welding method, and a secondary battery. [Background technology]
[0003] In general, secondary batteries are batteries that can be charged and discharged, unlike primary batteries that cannot be recharged, and are widely used in electronic devices such as mobile phones, laptops, and camcorders, as well as electric vehicles, etc. In particular, lithium secondary batteries have a larger capacity and higher energy density than nickel-cadmium batteries or nickel-metal hydride batteries, and therefore their use is rapidly increasing.
[0004] Depending on the shape of the battery case, secondary batteries can be divided into cylindrical batteries and prismatic batteries, in which the electrode assembly is housed in a cylindrical or prismatic metal case, and pouch batteries, in which the electrode assembly is housed in a pouch-shaped case made of an aluminum laminate sheet.
[0005] FIG. 1 illustrates an example of a pouch-type secondary battery. The pouch-type secondary battery 1 includes an electrode assembly 10 formed by alternately stacking electrodes and separators, and a pouch 20 (exterior material) in which the electrode assembly 10 is housed. Electrode tabs 15 may be connected to the electrodes of the electrode assembly 10. The electrode tabs 15 may be welded to each other in predetermined areas and then connected to an electrode lead 17. The pouch 20 includes a recessed cup portion 21 for housing the electrode assembly 10. The pouch 20 may include one or two cup portions 21. FIG. 1 illustrates a pouch 20 including a left cup portion and a right cup portion. A peripheral portion 23 (terrace) for sealing is formed around the periphery of the cup portion 21.
[0006] However, when a tensile force is applied to the electrode tab 15 due to deformation of the periphery 23 of the pouch 20, the electrode tab 15 may gradually become taut and break. Alternatively, when a tensile force is applied to the electrode tab 15 due to expansion of the pouch 20, the electrode tab 15 may gradually become taut and break. Such breakage has been cited as a major cause of fires. In the case of pouch-type secondary batteries, the length of the periphery 23 has recently been reduced to increase energy density in response to demands for higher capacity and performance. However, this reduces the "length from the electrode assembly 10 to the welding point of the electrode tab 15" of the electrode tab 15, further increasing the possibility of breakage. Summary of the Invention [Problem to be solved by the invention]
[0007] An object of the present invention is to provide an electrode tab welding device, an electrode tab welding method, and a secondary battery that can prevent electrode tab breakage even in high-capacity, high-performance pouch-type secondary batteries by increasing the "length from the electrode assembly to the welding point of the electrode tab." [Means for solving the problem]
[0008] In one example, an electrode tab welding device relates to a device for welding electrode tabs protruding from an electrode assembly to each other, and may include a guide portion provided to converge the electrode tabs to a predetermined gathering region, a welding portion provided to weld the electrode tabs converged by the guide portion, and a bending portion provided to bend the electrode assembly so that the length from the electrode assembly to the gathering region of at least some of the electrode tabs increases before welding by the welding portion.
[0009] In another example, when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground, the guide portion may be configured to converge the electrode tabs to the gathering region located below a reference plane that is a plane parallel to the ground and passes through the center of the electrode assembly in the vertical direction, and the bending portion may be configured to bend the edge of the electrode assembly to which the electrode tabs are connected upward.
[0010] In another example, the bending portion may include a support block that supports one of a lower surface and an upper surface of the electrode assembly when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground, and a pressure block that presses the other of the lower surface and the upper surface of the electrode assembly toward the other of the lower surface and the upper surface.
[0011] In another example, a point at which the support block supports one of the lower surface and the upper surface of the electrode assembly may be located closer to the outside of the electrode assembly than a point at which the pressure block presses the other of the lower surface and the upper surface of the electrode assembly.
[0012] In another example, the support block may be configured to support an edge of the electrode assembly to which the electrode tab is connected from below, and the pressure block may be configured to pressurize the edge supported by the support block from above to below for the bending.
[0013] In another example, the support block may include a sloped surface located below the edge, the sloped surface gradually increasing in height toward the outside of the electrode assembly.
[0014] In another example, the electrode tab welding device may further include a mounting portion on which the electrode assembly is mounted, and the bending portion may include a pressure block that is disposed inside the mounting portion and protrudes from an upper surface of the mounting portion on which a lower surface of the electrode assembly is mounted when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground, so as to apply pressure from below to an edge of the electrode assembly to which the electrode tab is connected.
[0015] In another example, the bending portion may further include a support block that partially supports an upper surface of the electrode assembly while the pressure block is applying pressure to the electrode assembly.
[0016] In another example, the bending portion may include a support block provided to support from below an edge of the electrode assembly to which the electrode tab is connected when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground.
[0017] In yet another example, an electrode tab welding device may include a guide unit configured to converge the electrode tabs to a predetermined gathering region, a welding unit configured to weld the electrode tabs converged by the guide unit, and a moving unit configured to move the electrode assembly relatively to the guide unit in a direction corresponding to a stacking direction of electrodes and separators of the electrode assembly so that the length from the electrode assembly to the gathering region of at least some of the electrode tabs increases before welding by the welding unit.
[0018] In yet another example, a method for welding electrode tabs is a method for welding electrode tabs protruding from an electrode assembly to each other, and may include the steps of: (a) bending an edge of the electrode assembly to which the electrode tabs are connected; and (b) welding the electrode tabs in the bent state of the electrode assembly.
[0019] In yet another example, the method for welding electrode tabs may further include a step of converging the electrode tabs before step (a) or between step (a) and step (b).
[0020] In another example, the electrode tab welding method may further include, after step (b), a step of removing the force applied to the electrode assembly for bending the electrode assembly in step (a) and returning the electrode assembly to its original state.
[0021] In another example, step (a) may be a step of supporting one of the lower surface and the upper surface of the edge portion while pressing the other of the lower surface and the upper surface of the edge portion toward the other of the lower surface and the upper surface of the edge portion when the electrodes and the separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground.
[0022] In another example, a point supporting one of the lower surface and the upper surface of the edge portion may be located closer to the outside of the electrode assembly than a point pressing the other of the lower surface and the upper surface of the edge portion.
[0023] In another example, a secondary battery may include an electrode assembly, electrode tabs protruding from the electrode assembly, an outer casing that houses the electrode assembly and the electrode tabs, and electrode leads that are electrically connected to the electrode tabs and partially exposed to the outside of the outer casing, wherein the electrode tabs may be coupled to each other at a predetermined coupling region, and a length from the electrode assembly to the coupling region of at least some of the electrode tabs may be longer than a predetermined reference length, and the reference length may be a minimum length from the electrode assembly to the coupling region for each electrode tab.
[0024] In another example, the increase in length of at least some of the electrode tabs from the electrode assembly to the bonding region may increase as the electrode tab is located farther from the bonding region in the stacking direction of the electrodes and separator of the electrode assembly, and the increase in length may be a value obtained by subtracting the reference length from the length from the electrode assembly to the bonding region.
[0025] In another example, when the stacking direction corresponds to the vertical direction, the bonding region may be located corresponding to a lowermost electrode tab of the electrode assembly, and the increase in length may be greater for electrode tabs located vertically upward.
[0026] In another example, when the electrodes and separators of the electrode assembly are stacked in a vertical direction, the electrode tabs located above a reference plane that passes through the bonding region and is perpendicular to the vertical direction and the electrode tabs located below the reference plane may have lengths that are asymmetric with respect to the reference plane. [Effects of the Invention]
[0027] According to the present invention, the electrode assembly can be bent to increase the length from the electrode assembly to the collection area (or welding area) in at least a portion of the electrode tab. In the case of a battery manufactured according to the present invention, even if a tensile force is applied to the electrode tab due to deformation of the periphery (terrace) of the pouch or due to expansion of the battery, breakage of the electrode tab can be prevented. [Brief explanation of the drawings]
[0028] [Figure 1] FIG. 1 is a diagram illustrating an example of a pouch-type secondary battery. [Figure 2a] 10A to 10C are diagrams illustrating an exemplary process applicable to welding electrode tabs of a pouch-type secondary battery. [Figure 2b] 1A to 1C are diagrams illustrating an exemplary process applicable to welding electrode tabs of a pouch-type secondary battery. [Figure 2c] 1A to 1C are diagrams illustrating an exemplary process applicable to welding electrode tabs of a pouch-type secondary battery. [Figure 2d] 1A to 1C are diagrams illustrating an exemplary process applicable to welding electrode tabs of a pouch-type secondary battery. [Figure 3] 1 is a cross-sectional view illustrating a portion of a battery module in which a plurality of pouch-type batteries are housed in a case. [Figure 4] 1 is a diagram illustrating an electrode tab welding device according to a first embodiment of the present invention; [Figure 5] 5 is a diagram illustrating an electrode assembly that is not bent in comparison with the electrode assembly shown in FIG. 4. FIG. [Figure 6a] 5 is a diagram for explaining a method for welding an electrode tab using the welding device of FIG. 4. FIG. [Figure 6b] 5 is a diagram for explaining a method for welding an electrode tab using the welding device of FIG. 4. FIG. [Figure 6c] 5 is a diagram for explaining a method for welding an electrode tab using the welding device of FIG. 4. FIG. [Figure 6d] 5 is a diagram for explaining a method for welding an electrode tab using the welding device of FIG. 4. FIG. [Figure 6e] 5 is a diagram for explaining a method for welding an electrode tab using the welding device of FIG. 4. FIG. [Figure 7] 10A and 10B are diagrams illustrating a welding device for electrode tabs according to a second embodiment of the present invention. [Figure 8] 10A and 10B are diagrams illustrating a welding device for electrode tabs according to a third embodiment of the present invention. [Figure 9] FIG. 10 is a diagram illustrating a modified example of the secondary battery according to the fourth embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0029] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] The present invention will now be described in detail with reference to the accompanying drawings, so that those skilled in the art can easily understand and practice the present invention. However, the present invention may be embodied in various different forms and should not be construed as being limited to the following embodiments.
[0030] In order to clearly explain the present invention, detailed descriptions of parts that are not relevant to the explanation or related known technologies that may obscure the gist of the present invention will be omitted, and when referring to components in each drawing in this specification, the same or similar reference symbols will be used throughout the specification for the same or similar components.
[0031] Furthermore, the terms and words used in this specification and claims should not be interpreted in a limited way to their ordinary or dictionary meanings, but should be interpreted in a way that is consistent with the technical idea of the present invention, based on the principle that the inventors can appropriately define the concepts of terms in order to best explain their invention.
[0032] First, a process for welding electrode tabs of a pouch-type secondary battery will be described with reference to Fig. 2. Fig. 2 is a view for explaining an exemplary process applicable to welding electrode tabs of a pouch-type secondary battery.
[0033] First, as shown in FIG. 2a, an electrode assembly 10 is prepared. The electrode assembly 10 may include an electrode 11 and a plurality of separators 13 stacked together. The electrode 11 includes a positive electrode and a negative electrode. An electrode tab 15 may be connected to the electrode 11. For convenience of explanation, only a negative electrode tab 15 connected to a negative electrode is illustrated in FIG. 2 and other figures. A positive electrode tab connected to a positive electrode may also be provided in the electrode assembly 10 so as to extend in a direction different from the extension direction of the negative electrode tab 15 and may be welded in the same manner as the negative electrode tab. Next, as shown in FIG. 2b, the electrode tabs 15 are converged. For example, the electrode tabs 15 may be converged by applying pressure to them using two rods 111 and 112. Next, as shown in FIG. 2c, the electrode tabs 15 are welded via a welding portion 120.
[0034] Through this process, an electrode assembly 10 having electrode tabs 15 welded together at a predetermined welding area W can be manufactured as shown in Figure 2d. After connecting electrode leads 17 (see Figure 1) to the electrode tabs 15, the electrode assembly 10 can be housed in a pouch 20 (see Figure 1), thereby manufacturing a pouch-type battery 1.
[0035] A plurality of pouch-type batteries 1 can be housed in a single case C to be manufactured as a battery module, as shown in Fig. 3. Fig. 3 is a cross-sectional view illustrating a portion of a battery module in which a plurality of pouch-type batteries are housed in a case.
[0036] Here, during the manufacturing of the battery module, the periphery 23 of the pouch 20 may be bent. Deformation of the periphery 23 may induce bending of the electrode leads 17, which may cause tensile force on the electrode tabs 15 connected to the electrode leads 17 (see, for example, the electrode tab designated by reference numeral 15a in FIG. 3). This force may pull the electrode tabs 15 taut, causing breakage of the electrode tabs 15. This force may be greater in the outer electrode tabs 15a. The above-mentioned breakage problem may also occur when the battery expands.
[0037] The present invention, which will be described in detail below, is intended to solve the above-mentioned problem of broken wires.
[0038] Embodiment 1 FIG. 4 is a diagram illustrating an electrode tab welding apparatus according to a first embodiment of the present invention. The electrode tab welding apparatus according to the first embodiment of the present invention is an apparatus for welding electrode tabs 15 protruding from an electrode assembly 10 to each other, and as shown in FIG. 4, includes a guide unit 110, a welding unit 120, and a bending unit 130. For reference, hereinafter, it is assumed that the electrodes 11 and separators 13 of the electrode assembly 10 are stacked in a vertical direction perpendicular to the ground. However, this is merely an example, and the stacking direction of the electrodes 11 and separators 13 may vary depending on the direction from which the electrode assembly 10 is viewed. The content of this embodiment may be applied to other embodiments as long as they are not mutually contradictory.
[0039] The guide unit 110 may be provided to converge the electrode tabs 15 into a predetermined gathering region G. For example, the guide unit 110 may include a first rod 111 disposed above the electrode tabs 15 and a second rod 112 disposed below the electrode tabs 15. The first rod 111 and the second rod 112 move toward each other to press the electrode tabs 15, thereby converging the electrode tabs 15 into the gathering region G. In this process, the electrode tabs 15 may be bent toward the gathering region G. Here, the gathering region G may be a region where the electrode tabs 15, which were spaced apart from each other, converge toward each other due to the guide unit 110. For reference, the guide unit may be implemented as a stationary first press (not shown) and a second press (not shown) that moves toward the first press.
[0040] The welding unit 120 may be provided to weld the electrode tabs 15 converged by the guide unit 110. For example, the welding unit 120 may include a horn and an anvil for ultrasonic welding. Electrode leads 17 (see FIG. 1) for supplying electricity to the outside of the battery may be welded to the electrode tabs 15 welded by the welding unit 120. For reference, although the guide unit 110 and the welding unit 120 are illustrated separately in FIG. 4 and the like, the guide unit and the welding unit may be connected to each other. For example, a first rod may be connected to the horn of the welding unit, and a second rod may be connected to the anvil of the welding unit.
[0041] The bending portion 130 may be provided to bend the electrode assembly 10. The bending portion 130 may increase the reference length L of all or part of the electrode tab 15 by bending. Here, the reference length L may be the "length from the electrode assembly 10 to the collection region G" of the electrode tab 15.
[0042] For example, when the electrode assembly 10 of FIG. 5 is bent upward, as shown in FIG. 4, the right edge 19 of the electrode assembly 10 rises, pulling the left end of the electrode tab 15 (i.e., the end connected to the electrode assembly) upward, thereby increasing the "length L from the electrode assembly 10 to the collection region G" of the electrode tab 15. At this time, the remaining portion of the electrode tab 15 (e.g., the portion of the electrode tab located to the right of the point pressed by the first and second rods in FIG. 5) may also be pulled leftward. FIG. 5 illustrates an electrode assembly that is not bent, in comparison with the electrode assembly shown in FIG. 4. For reference, the guide member 110 may apply pressure to the electrode tab 15 to an extent that allows the electrode tab 15 to be pulled. To this end, the guide member may have a roller (not shown) on the side that contacts the electrode tab. For example, a roller that rotates by contact with the electrode tab may be provided at the lower end of the first rod and / or the upper end of the second rod.
[0043] When the electrode tab 15 is welded in this bent state or after bending, the "length L from the electrode assembly 10 to the assembly region G" of at least a portion of the electrode tab 15 increases, and therefore the "length from the electrode assembly 10 to the welding region W" of at least a portion of the electrode tab 15 also increases. This increase in length can prevent or delay breakage of the electrode tab 15 due to being pulled taut. This is because the increased length causes the electrode tab 15 to become taut when pulled more than before the increase in length. For reference, force applied to the electrode lead 17 (see FIG. 1) can be transmitted to the electrode tab 15 via the connection point between the electrode tab 15 and the electrode lead 17.
[0044] The electrode tab welding device of this embodiment includes a bending portion 130 that is provided to bend the electrode assembly 10 so that the length from the electrode assembly 10 to the collection region G is increased in at least a portion of the electrode tab 15 before welding by the welding portion 120. Therefore, in the case of a battery manufactured by the electrode tab welding device of this embodiment, even if a tensile force is applied to the electrode tab 15 due to deformation of the peripheral portion 23 (terrace) of the pouch 20 or even if a tensile force is applied to the electrode tab 15 due to expansion of the battery, the electrode tab 15 will not break.
[0045] In the present embodiment, the bending portion 130 can determine the degree of bending of the electrode assembly 10 in consideration of the increase in length required to prevent breakage. For example, in the case of a battery module in which the peripheral portion 23 of the pouch 20 deforms significantly, the bending portion 130 can bend the electrode assembly 10 more. This adjustment can be achieved by adjusting the size of the support block 131, which will be described later.
[0046] Meanwhile, the gathering region G may be located below a reference plane P, which is a plane parallel to the ground and passes through the center of the electrode assembly 10 in the vertical direction. The guide unit 110 may gather the electrode tabs 15 in the gathering region G. In this case, the bending unit 130 may bend the edge 19 of the electrode assembly 10, to which the electrode tabs 15 are connected, upward. FIG. 4 illustrates the gathering region G located corresponding to the bottom of the electrode assembly 10.
[0047] When the edge 19 of the electrode assembly 10 is bent upward, the electrode tabs (e.g., electrode tab 15b) that were located on a plane that passes through the collection area G parallel to the ground or above this plane before bending may have their reference length L increased compared to before bending the electrode assembly 10. The more the collection area G is located below the reference plane P, the more electrode tabs 15 whose reference length L is increased by the bending portion 130 may increase. For reference, the terms "upper" and "lower" herein may be used relative terms. For example, if the collection area is located above the reference plane P, the bending portion 130 may bend the edge 19 of the electrode assembly 10 downward.
[0048] Meanwhile, the bending unit 130 of this embodiment may include a support block 131 that supports one of the lower and upper surfaces of the electrode assembly 10. The bending unit 130 of this embodiment may include a pressure block 133 that presses the other of the lower and upper surfaces of the electrode assembly 10 toward the other of the lower and upper surfaces. The pressure block 133 may be configured to move vertically for pressure application. Figure 4 illustrates the support block 131 that supports the lower surface of the electrode assembly 10 and the pressure block 133 that presses the upper surface of the electrode assembly 10 toward the lower surface.
[0049] The electrode assembly 10 can be bent only by being supported by the support block 131, and the bending unit 130 can include only the support block 131. However, if the electrode assembly 10 is pressed by the pressure block 133 while being supported by the support block 131, the electrode assembly 10 can be bent more easily, and the bending unit 130 can include both the support block 131 and the pressure block 133.
[0050] The point at which the support block 131 supports the electrode assembly 10 may be closer to the outside of the electrode assembly 10 than the point at which the pressure block 133 presses the electrode assembly 10. For example, in FIG. 4, the point at which the support block 131 supports the bottom surface of the electrode assembly 10 is located to the right of the point at which the pressure block 133 presses the top surface of the electrode assembly 10. This positional relationship allows the bending portion 130 of this embodiment to effectively bend the edge portion 19 of the electrode assembly 10 upward or downward.
[0051] 4, the support block 131 may be provided to support from below the edge 19 of the electrode assembly 10 to which the electrode tab 15 is connected. The pressure block 133 may be provided to apply pressure from above to below the edge 19 of the electrode assembly 10 supported by the support block 131 for bending.
[0052] The support block 131 may be implemented in various shapes capable of supporting the electrode assembly 10. For example, as shown in FIG. 4, the support block 131 may be implemented in a shape including an inclined surface 131a that supports the underside of the edge 19 of the electrode assembly 10. The inclined surface 131a of the support block 131 may be a surface located below the edge 19 and gradually increase in height toward the outside of the electrode assembly 10 (e.g., the right side in FIG. 4). When the support block 131 includes the inclined surface 131a, the edge 19 of the electrode assembly 10 can be prevented from being damaged and the edge 19 of the electrode assembly 10 can be supported. The pressure block 133 may also be implemented in various shapes capable of applying pressure to the electrode assembly 10. FIG. 4 illustrates a rod-shaped pressure block 133.
[0053] The welding process of the electrode tab 15 by the welding device of this embodiment will be described below with reference to Fig. 6. Fig. 6 is a diagram for explaining the method of welding the electrode tab by the welding device of Fig. 4.
[0054] First, as shown in Fig. 6a, an electrode assembly 10 is prepared. Here, the electrode assembly 10 may be placed on a mounting portion 140. The mounting portion 140 may be a jig or a die on which the electrode assembly 10 may be placed.
[0055] Next, as shown in Figure 6b, the electrode tabs 15 are gathered together. This can be achieved by operating the guide unit 110. For example, with the second rod 112 supporting the electrode tabs 15 from below, the first rod 111 presses the electrode tabs 15 from above to below, thereby gathering the electrode tabs 15 into the gathering region G.
[0056] Next, as shown in FIG. 6c, the electrode assembly 10 is bent. This can be achieved by operating the bending unit 130. The bending unit 130 can bend the edge 19 of the electrode assembly 10 to which the electrode tab 15 is connected. For example, the edge 19 of the electrode assembly 10 can be bent by the support block 131 supporting the lower right surface of the edge 19 and the pressure block 133 pressing the upper right surface of the edge 19. For reference, when the electrode assembly 10 is placed on the mounting unit 140, the support block 131 may already be disposed on the upper surface of the mounting unit 140. Alternatively, the support block may be provided so as to protrude from the inside of the mounting unit to the upper surface of the mounting unit.
[0057] Next, as shown in FIG. 6d, while the electrode assembly 10 is in the bent state, the electrode tab 15 is welded via the welded portion 120.
[0058] Through this process, the "length L from the electrode assembly 10 to the gathering region G" can be increased for at least some of the electrode tabs 15, and the electrode tabs 15 can be welded to each other in this state. As a result, as shown in FIG. 6e, the length from the electrode assembly 10 to the welding region W can be increased for at least some of the electrode tabs 15 (e.g., the electrode tab designated by reference numeral 15c) compared to when the bending process is not performed. For reference, although FIG. 6 illustrates an example of the process of bending the electrode assembly 10 after gathering the electrode tabs 15, it is also possible to gather the electrode tabs 15 after bending the electrode assembly 10.
[0059] Meanwhile, after welding, the force applied to the electrode assembly 10 can be removed to bend the electrode assembly 10. For example, the support block 131 can be removed and the pressure block 133 can be moved upward. Removal of the force allows the electrode assembly 10 to return to its original shape. Because the electrodes 11 and separators 13 constituting the electrode assembly 10 have a certain degree of elasticity, they can be bent by the application of force through the bending portion 130, and can return to their original shape by removal of this force.
[0060] Embodiment 2 7 is a diagram illustrating an electrode tab welding apparatus according to a second embodiment of the present invention. The welding apparatus of the second embodiment differs from the welding apparatus of the first embodiment in the support block and the pressure block. The following description will focus on the support block and the pressure block. For reference, the content of this embodiment may also be applied to other embodiments as long as they are not mutually contradictory.
[0061] The bending unit 230 of the present embodiment may include a pressure block 233 that is protrusively provided on the mounting unit 240 on which the electrode assembly 10 is mounted. The pressure block 233 is disposed inside the mounting unit 240 and protrudes from the upper surface of the mounting unit 240 on which the lower surface of the electrode assembly 10 is mounted, thereby applying pressure to the electrode assembly 10. Here, the pressure block 233 may apply pressure from below to the edge 19 of the electrode assembly 10 to which the electrode tabs 15 are connected. By configuring the bending unit 230 in this manner, the pressure block 233 may protrude after the electrode assembly 10 is mounted on the mounting unit 240, allowing the electrode assembly 10 to be moved smoothly while applying pressure by the pressure block 233 when necessary (e.g., after the electrode assembly is mounted on the mounting unit).
[0062] The bending unit 230 of this embodiment may include a drive unit 235 for vertical movement of the pressure block 233. For example, the drive unit 235 may be a cylinder with a cylinder rod that is extended or retracted.
[0063] The bending unit 230 of the present embodiment may include a support block 231 to support the electrode assembly 10 while it is being pressed by the pressure block 233. The support block 231 may be provided to partially support the upper surface of the electrode assembly 10. The support block 231 may support an area other than the area pressed by the pressure block 233 so as not to interfere with the bending of the electrode assembly 10. For example, when the pressure block 233 presses the edge 19 of the electrode assembly 10, the support block 231 may be provided to support the upper surface of the electrode assembly 10 in an area other than the edge 19 of the electrode assembly 10. The support block 231 may be provided to move vertically so as not to interfere with the placement of the electrode assembly 10.
[0064] Embodiment 3 8 is a diagram illustrating an electrode tab welding apparatus according to a third embodiment of the present invention. The welding apparatus of the third embodiment differs from the welding apparatuses of the above-described embodiments in the manner in which the "length from the electrode assembly to the collecting region" of the electrode tab is increased. For reference, the content of this embodiment may also be applied to the other embodiments unless mutually inconsistent.
[0065] The electrode tab welding device of this embodiment relates to a device for welding electrode tabs protruding from an electrode assembly together, and may include a guide unit 110, a welding unit 120, and a moving unit 340. The guide unit 110 and the welding unit 120 may be the same as the guide unit 110 and the welding unit 120 described above.
[0066] The moving unit 340 may be provided to move the electrode assembly 10 relative to the guide unit 110 in a direction corresponding to the stacking direction of the electrodes 11 and separators 13 of the electrode assembly 10 (vertical direction in the case of FIG. 8). Because of the relative movement, the moving unit 340 may, for example, move the electrode assembly 10 upward in FIG. 8 so as to be farther away from the guide unit 110, or may move the guide unit 110 downward in FIG. 8 so as to be farther away from the electrode assembly 10. FIG. 8 illustrates an example of a moving unit 340 provided to move the electrode assembly 10.
[0067] Because the moving unit 340 moves the entire electrode assembly 10 relative to the guide unit 110 before welding by the welding unit 120, the length of at least some of the electrode tabs 15 from the electrode assembly 10 to the collection region (see G in FIG. 6b) can be increased, similar to when bending the electrode assembly 10 in the above-described embodiment. In the embodiment of FIG. 8, the length of all of the electrode tabs 15 can be increased.
[0068] The moving unit 340 may include a placing unit 340a that is configured to move in the stacking direction of the electrode assembly 10 while the electrode assembly 10 is placed thereon. The moving unit 340 may include a support unit 340b that supports the electrode assembly 10 from the opposite side of the placing unit 340a. The moving unit 340 may stably move the electrode assembly 10 via the support unit 340b. The support unit 340b may be configured to move in conjunction with the movement of the placing unit 340a while pressing the electrode assembly 10 toward the placing unit 340a.
[0069] Embodiment 4 The fourth embodiment relates to a secondary battery, and more particularly to a secondary battery manufactured by the above-described welding device / method. However, the device / method for manufacturing the secondary battery of the fourth embodiment is not limited to the above-described device / method.
[0070] 6c, the secondary battery of this embodiment may include an electrode assembly 10 and an electrode tab 15 protruding from the electrode assembly 10. The secondary battery of this embodiment may also include a housing 20 (see FIG. 1) that houses the electrode assembly 10 and the electrode tab 15, and an electrode lead 17 (see FIG. 1) that is electrically connected to the electrode tab 15. A portion of the electrode lead 17 may be exposed to the outside of the housing 20.
[0071] The electrode tabs 15 can be bonded to one another at predetermined bonding areas, which can be the weld areas W described above.
[0072] The length "from the electrode assembly 10 to the joining region W" of at least some of the electrode tabs 15 (see FIG. 6e) may be longer than a predetermined reference length. Here, the length "from the electrode assembly 10 to the joining region W" may be the sum of the length L from the electrode assembly 10 to the aforementioned gathering region G and the length from the gathering region G to the joining region W (welding region). The reference length may be the minimum length from the electrode assembly 10 to the joining region W (see FIG. 2d). The reference length may be determined for each individual electrode tab. For example, the reference length may be calculated as the straight line length from the point where the electrode tab protrudes from the electrode assembly 10 to the point where the electrode tab joins with another electrode tab. Here, to accurately calculate the straight line length, if necessary, the reference length may be calculated when the electrode tab is pulled taut, for example, with the joining point pulled away from the electrode assembly.
[0073] For example, the length L from the electrode assembly 10 to the collection area G of the uppermost electrode tab among the electrode tabs in FIG. 6c is T The sum of the length from the assembly area G to the welding area W and the length from the assembly area G to the welding area W is the length L from the electrode assembly 10 to the assembly area of the uppermost electrode tab of the electrode tabs in FIG. T’ and the length from the gathering region to the welding region (see FIG. 2d). Similarly, the length L from the electrode assembly 10 to the gathering region G of the electrode tab located at the bottom of the electrode tabs in FIG. 6c can be larger than the sum of the lengths L B The sum of the length from the assembly area G to the welding area W and the length from the assembly area G to the welding area W is the length L from the electrode assembly 10 to the assembly area of the electrode tab located at the bottom of the electrode tabs in FIG. B’ and the length from the gathering region to the welding region." For reference, in the above example, the "lengths from the gathering region to the welding region" may be the same.
[0074] Meanwhile, the increased length of at least some of the electrode tabs 15 "from the electrode assembly 10 to the coupling region W" may increase as the electrode tab is located farther from the coupling region W in the stacking direction of the electrodes and separators (the vertical direction in FIG. 6c). In FIG. 6c, since the coupling region W is located corresponding to the bottom of the electrode assembly 10 in the vertical direction, the increased length of the bottom electrode tab may be the shortest and the increased length of the top electrode tab may be the longest.
[0075] Here, the increased length may be a value obtained by subtracting the aforementioned reference length from the length from the electrode assembly 10 to the joining region W. For example, in FIG. 6c, the increased length of the electrode tab located at the bottom is the length L from the electrode assembly 10 to the joining region G. B + length from the collection area G to the bonding area W” in FIG. 2b to “length L from the electrode assembly 10 to the collection area B’ + the length from the collection region to the bond region.
[0076] In the embodiment of Figure 6c, since the bonding region W is located in the vertical direction (the stacking direction of the electrodes and separators) corresponding to the lowest electrode tab of the electrode assembly 10, the increased length of each electrode tab may be longer as the electrode tab is positioned vertically higher. For example, the increased length of the electrode tab located at the bottom may be the shortest, and the increased length of the electrode tab located at the top may be the longest. For reference, Figure 6c may also be applied to a pouch-type battery having only one cup portion for receiving the electrode assembly.
[0077] In FIG. 6c, the horizontal length of the support block 131 (the length of the surface that is horizontally disposed on the top surface of the mounting portion) is X (unit: mm, the same below), and the vertical length of the support block 131 (the length of the surface that is vertically disposed on the top surface of the mounting portion) is Y. The lengths "from the electrode assembly 10 to the coupling region W" (see "total length" in the table below) and the increased lengths of the electrode tabs located at the bottom and top are as shown in the table below. For reference, when Y is "0," there is no bending due to the support block 131, and this can be used as the basis for calculating the increased length for the case of FIG. 2b or 2d. In addition, the table below relates to the case where the horizontal linear distance from the electrode assembly to the collection region G (the position where the guide portion is disposed) for the positive electrode tab is 2.5 mm, and the thickness of the electrode assembly is 10 mm.
[0078] [Table 1]
[0079] As summarized in the table above, when X and Y are the same, the increased length of the upper electrode tab is greater than that of the lower electrode tab. For electrode tabs at the same position, if X is the same, the increased length of the electrode tab increases as Y increases. This is the same for both the lower and upper electrode tabs. It is believed that the increased length increases as the edge of the electrode assembly is bent higher. For electrode tabs at the same position, if Y is the same, the increased length increases as the angle between the inclined surface 131a of the support block 131 and the lower surface of the support block 131 increases (e.g., see the cases where X is 3 and Y is 4 and where X is 4 and Y is 4). This is the same for both the lower and upper electrode tabs. It is believed that the increased length increases as the edge of the electrode assembly is bent at an inclination.
[0080] On the other hand, the secondary battery of the fourth embodiment can be modified as shown in Fig. 9. Fig. 9 is a diagram for explaining a modified example of the secondary battery according to the fourth embodiment of the present invention.
[0081] In the case of the secondary battery described in FIG. 9, when the electrodes and separators of the electrode assembly are stacked in the vertical direction (the up-down direction in FIG. 9), the electrode tabs located above and below the reference plane P' that passes through the bonding area W and is perpendicular to the vertical direction may have lengths that are asymmetrical with respect to the reference plane. For example, in the case of the secondary battery manufactured as shown in FIG. 9, when the support block 131 is removed and the electrode assembly returns to its original shape, the uppermost electrode tab and the lowermost electrode tab may be positioned symmetrically with respect to the reference plane P' located at the mid-height of the electrode assembly, but the length L of the uppermost electrode tab T’’ is the length of the bottom electrode tab L B’’ It can be longer.
[0082] The above description is merely an illustrative example of the technical concept of the present invention, and various modifications and variations can be made by a person having ordinary knowledge in the technical field to which the present invention pertains without departing from the essential characteristics of the present invention.
[0083] Therefore, the embodiments disclosed in the present invention are for illustrative purposes only and are not intended to limit the technical idea of the present invention, and the scope of the technical idea of the present invention is not limited by such embodiments.
[0084] The scope of protection of the present invention should be interpreted by the following claims, and all technical ideas within the scope equivalent thereto should be interpreted as being included in the scope of the present invention. [Explanation of symbols]
[0085] 1. Pouch-type secondary battery 10 Electrode assembly 11 electrodes 13 Separator 15, 15a, 15b, 15c Electrode tabs 17 Electrode Lead 19 Edge 20 pouches 21 Cup section 23 Periphery 110 Guide part 111 First Rod 112 Second Rod 120 Welded Section 130 Bending Section 131 Support Block 131a Slope 133 Pressure Block 140 Placement section 230 Bending Section 231 Support Block 233 Pressurized Block 235 Drive Unit 240 Placement section 340 Mobile Unit 340a Placement part 340b Support part
Claims
1. An electrode tab welding device for welding electrode tabs protruding from an electrode assembly to each other, a guide portion provided to converge the electrode tabs to a predetermined collection area; a welding portion provided to weld the electrode tabs converged by the guide portion; a bending portion provided to bend the electrode assembly so that a length from the electrode assembly to the collecting region increases in at least a portion of the electrode tab before welding by the welding portion.
2. The guide portion is When the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground, the electrode tabs are gathered in the gathering region located below a reference plane that is a plane parallel to the ground and passes through a center of the electrode assembly in the vertical direction, The bending portion is 2. The electrode tab welding device according to claim 1, further comprising a means for bending upward an edge of the electrode assembly to which the electrode tab is connected.
3. The bending portion is 2. The electrode tab welding device according to claim 1, further comprising: a support block that supports one of a lower surface and an upper surface of the electrode assembly when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground; and a pressure block that presses the other of the lower surface and the upper surface of the electrode assembly toward the other of the lower surface and the upper surface.
4. 4. The electrode tab welding device of claim 3, wherein a point where the support block supports one of the lower surface and the upper surface of the electrode assembly is located closer to an outer side of the electrode assembly than a point where the pressure block presses the other of the lower surface and the upper surface of the electrode assembly.
5. the support block is provided to support from below an edge of the electrode assembly to which the electrode tab is connected; 4. The electrode tab welding device according to claim 3, wherein the pressure block is provided to apply pressure from above to below to the edge portion supported by the support block for the bending.
6. The support block is 6. The electrode tab welding device according to claim 5, wherein the surface located below the edge includes an inclined surface whose height gradually increases toward the outside of the electrode assembly.
7. The electrode assembly further includes a mounting portion on which the electrode assembly is mounted. The bending portion is 2. The electrode tab welding device according to claim 1, further comprising: a pressure block disposed inside the mounting portion, protruding from an upper surface of the mounting portion on which a lower surface of the electrode assembly is placed, so as to apply pressure from below to an edge of the electrode assembly to which the electrode tab is connected, when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground.
8. The bending portion is 8. The electrode tab welding apparatus according to claim 7, further comprising a support block for partially supporting an upper surface of said electrode assembly during pressure application by said pressure block.
9. The bending portion is 2. The electrode tab welding device according to claim 1, further comprising a support block provided to support from below an edge of the electrode assembly to which the electrode tab is connected when the electrodes and separators of the electrode assembly are stacked in a vertical direction perpendicular to the ground.
10. An electrode tab welding device for welding electrode tabs protruding from an electrode assembly to each other, a guide portion provided to converge the electrode tabs to a predetermined collection area; a welding portion provided to weld the electrode tabs converged by the guide portion; a moving unit that moves the electrode assembly relative to the guide unit in a direction corresponding to a stacking direction of electrodes and separators of the electrode assembly so that a length from the electrode assembly to the collecting region of at least a portion of the electrode tab increases before welding by the welding portion.
11. 1. A method for welding electrode tabs protruding from an electrode assembly together, comprising: (a) bending an edge of the electrode assembly to which the electrode tab is connected; (b) welding the electrode tabs to the bent electrode assembly; before step (a) or between step (a) and step (b), converging the electrode tabs into a predetermined collection area; The electrode tab welding method, wherein step (a) is a step of bending an edge of the electrode assembly so that a length from the electrode assembly to the collecting region of at least a portion of the electrode tab increases.
12. 12. The electrode tab welding method according to claim 11, further comprising, after step (b), the step of removing the force applied to the electrode assembly for bending the electrode assembly in step (a) to return the electrode assembly to its original state.
13. A method for welding electrode tabs protruding from an electrode assembly together, comprising: (a) bending an edge of the electrode assembly to which the electrode tab is connected; (b) welding the electrode tabs to the bent electrode assembly; The step (a) a step of pressing one of the lower surface and the upper surface of the edge portion toward the other of the lower surface and the upper surface of the edge portion while supporting the other of the lower surface and the upper surface of the edge portion when the electrodes and the separator of the electrode assembly are stacked in a vertical direction perpendicular to the ground.
14. 14. The method of claim 13, wherein a point that supports one of the lower surface and the upper surface of the edge portion is located closer to an outer side of the electrode assembly than a point that presses the other of the lower surface and the upper surface of the edge portion.
15. an electrode assembly; an electrode tab protruding from the electrode assembly; an exterior material that accommodates the electrode assembly and the electrode tabs; an electrode lead electrically connected to the electrode tab and partially exposed to the outside of the outer casing; the electrode tabs are bonded to one another at predetermined bonding regions; a length of at least some of the electrode tabs from the electrode assembly to the connecting region is longer than a predetermined reference length; the reference length is the minimum length from the electrode assembly to the bonding region for each electrode tab; an increase in length of at least some of the electrode tabs from the electrode assembly to the bonding region increases as the electrode tabs are positioned farther from the bonding region along a stacking direction of the electrodes and separators of the electrode assembly; The increase in length is a value obtained by subtracting the reference length from the length from the electrode assembly to the bonding region.
16. the joining region is located corresponding to a lowermost electrode tab of the electrode assembly when the stacking direction corresponds to a vertical direction, The secondary battery according to claim 15 , wherein the increase in length is greater for electrode tabs located vertically upward.
17. 16. The secondary battery of claim 15, wherein when the electrodes and separators of the electrode assembly are stacked in a vertical direction, an electrode tab located above a reference plane that passes through the bonding region and is perpendicular to the vertical direction and an electrode tab located below the reference plane have lengths that are asymmetric with respect to the reference plane.
Citation Information
Patent Citations
Square battery, battery module and manufacturing process thereof
CN112713343A
Stacked lithium ion cell and its manufacturing method
JP2007234466A
A secondary battery with improved safety due to the deformation of the electrode assembly receiving section inside the case.
JP2010509711A
Secondary battery
JP2013178997A
Lithium ion secondary battery
JP2017168462A