Rechargeable battery manufacturing apparatus and rechargeable battery manufacturing method
The secondary battery manufacturing apparatus with rotating roller molds addresses wire breakage and shape limitations by minimizing tensile force, enabling versatile electrode lead formation without additional molds.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- LG ENERGY SOLUTION LTD
- Filing Date
- 2023-04-27
- Publication Date
- 2026-04-14
AI Technical Summary
Conventional secondary battery manufacturing processes face issues with wire breakage at the joint between the electrode tab and electrode lead due to tensile force during molding, and are limited to molding electrode leads in a single shape using fixed molds, requiring multiple molds for different shapes.
A secondary battery manufacturing apparatus with independently rotating and movable roller molds that minimize tensile force and allow shaping of electrode leads into various forms without additional molds, using a single apparatus.
Prevents wire breakage at the joint and enables the formation of electrode leads in diverse shapes using a single apparatus, reducing manufacturing costs and complexity.
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Abstract
Description
Technical Field
[0001] [Cross - reference to Related Applications] This application claims the benefit of priority based on Korean Patent Application No. 10 - 2022 - 0074849, filed on June 20, 2022, and all the contents disclosed in the literature of the Korean patent application are incorporated herein by reference as part of this specification.
[0002] The present invention relates to an apparatus for manufacturing a secondary battery and a method for manufacturing a secondary battery. Specifically, it relates to an apparatus for manufacturing a secondary battery and a method for manufacturing a secondary battery that can reduce the tensile stress applied to the bonding site between an electrode lead and an electrode tab and prevent disconnection.
Background Art
[0003] Due to the rapid increase in the use of fossil fuels, the demand for alternative and clean energy has increased, and as part of this, the fields of power generation and power storage using electrochemistry are the most actively studied.
[0004] Currently, a typical example of an electrochemical device using such electrochemical energy is a secondary battery, and its usage area is increasingly expanding.
[0005] Recently, as the technology development and demand for portable devices such as portable computers, mobile phones, and cameras have increased, the demand for secondary batteries as an energy source has increased rapidly. Among them, many studies have been conducted on lithium secondary batteries that exhibit high energy density, operating potential, long cycle life, and low self - discharge rate, and they have also been commercialized and widely used.
[0006] Furthermore, as concern for environmental issues grows, much research is being conducted on electric vehicles and hybrid electric vehicles that can replace vehicles that use fossil fuels, such as gasoline and diesel vehicles, which are one of the main causes of air pollution. Nickel-metal hydride secondary batteries are mainly used as the power source for such electric vehicles and hybrid electric vehicles, but research using lithium secondary batteries, which have high energy density and discharge voltage, is also being actively conducted and is in the commercialization stage in some cases.
[0007] Such lithium secondary batteries are manufactured by coating a current collector with a slurry of positive or negative electrode active material, a binder, and a conductive material to form an electrode mixture layer, drying it, manufacturing the positive and negative electrodes, interposing a separation membrane between the positive and negative electrodes, and laminating the electrode assembly together with the electrolyte before housing it in a battery case. The electrode tabs extending from each cell of the electrode assembly housed in the battery case are gathered and welded together to connect to electrode leads. The electrode leads may electrically connect to external devices.
[0008] Figures 1 and 2 illustrate a conventional secondary battery manufacturing apparatus.
[0009] Figure 1 shows the state of the electrode leads before bending and molding in a conventional secondary battery manufacturing apparatus, and Figure 2 shows the state of the electrode leads after bending and molding in a conventional secondary battery manufacturing apparatus.
[0010] Referring to Figures 1 and 2, the electrode assembly 1 is formed by stacking multiple positive and negative electrodes with a separator membrane interposed between them, and a secondary battery can be manufactured by housing such an electrode assembly 1 in a battery case 2. The electrode tabs 3 connected to each electrode in the electrode assembly 1 are assembled and welded together as shown in the drawings, and then connected to the electrode leads 4. The electrode leads 4 may have a lead film 5 surrounding them to enhance the sealing force with the battery case 2.
[0011] The electrode lead 4 may be electrically connected to an external device, and may be appropriately molded into various shapes depending on the environment of such connection. A process of bending the electrode lead 4 into an appropriate shape is necessary for molding the electrode lead 4. For such bending, as shown in Figures 1 and 2, upper and lower molds 30 and 40 having the shape of the electrode lead 4 to be obtained are prepared, and with the joint between the battery case 2 and the electrode lead 4 fixed by the upper fixed mold 10 and the lower fixed mold 20, the upper and lower molds 30 and 40 are joined together and the electrode lead 4 is pressed. At this time, the force pressing the electrode lead 4 applies a strong tensile force, especially to the joint A between the electrode lead 4 and the electrode tab 3, which can cause problems such as the connection A between the electrode tab 3 and the electrode lead 4 breaking. Furthermore, according to conventional technology, it is possible to mold the electrode lead 4 in only one shape using upper and lower molds 30 and 40 with fixed shapes, so it is impossible to manufacture electrode lead 4 of various shapes, and therefore there is a problem that individual molds corresponding to the shape of the electrode lead 4 are required depending on the type of product. [Overview of the Initiative] [Problems that the invention aims to solve]
[0012] The problem that the present invention aims to solve is to prevent wire breakage at the joint between the electrode tab and the electrode lead due to tensile force generated during the electrode lead molding process, and to provide a secondary battery manufacturing apparatus and a secondary battery manufacturing method that can mold electrode leads of various shapes using a single manufacturing apparatus.
[0013] However, the problems that the embodiments of the present invention aim to solve are not limited to those described above, and can be broadly expanded within the scope of the technical ideas included in the present invention. [Means for solving the problem]
[0014] A secondary battery manufacturing apparatus according to one embodiment of the present invention is a secondary battery manufacturing apparatus that includes a plurality of electrodes and a separator membrane stacked alternately, electrode tabs provided at the ends of the plurality of electrodes, and electrode leads coupled to the electrode tabs, and includes an upper fixing mold and a lower fixing mold that fix the electrode leads by contacting the upper and lower surfaces of the electrode leads, respectively, with the electrode leads in between, a plurality of lower roller molds arranged at a distance from the lower fixing mold toward the outer ends of the electrode leads, and a plurality of upper roller molds arranged at a distance from the upper fixing mold toward the outer ends of the electrode leads.
[0015] The lower roller mold and the upper roller mold may each be able to rotate and move independently.
[0016] The lower support mold may further include a lower support mold positioned between the lower fixed mold and the lower roller mold, and supporting the lower surface of the electrode lead.
[0017] The upper roller mold may include a first upper roller mold and a second upper roller mold arranged sequentially along the direction toward the outer end of the electrode lead, and the lower roller mold may include a first lower roller mold and a second lower roller mold arranged sequentially along the direction toward the outer end of the electrode lead.
[0018] The first lower roller mold, the first upper roller mold, the second lower roller mold, and the second upper roller mold may be arranged sequentially along the direction toward the outer end of the electrode lead.
[0019] Another embodiment of the present invention relates to a method for manufacturing a secondary battery, comprising a plurality of alternately stacked electrodes and a separator membrane, electrode tabs provided at the ends of the plurality of electrodes, and electrode leads coupled to the electrode tabs, comprising the steps of: fixing the electrode leads between an upper fixing mold and a lower fixing mold; forming a first bending portion by bending the electrode leads toward the lower support mold while supporting the lower part of the electrode leads with a lower support mold positioned adjacent to the lower fixing mold; and forming a second bending portion using a plurality of lower roller molds positioned at a distance from the lower fixing mold toward the outer end of the electrode leads, and a plurality of upper roller molds positioned at a distance from the upper fixing mold toward the outer end of the electrode leads.
[0020] The upper roller mold may include a first upper roller mold and a second upper roller mold arranged sequentially along the direction toward the outer end of the electrode lead, and the lower roller mold may include a first lower roller mold and a second lower roller mold arranged sequentially along the direction toward the outer end of the electrode lead.
[0021] The first lower roller mold, the first upper roller mold, the second lower roller mold, and the second upper roller mold may be arranged sequentially along the direction toward the outer end of the electrode lead.
[0022] The step of forming the second bending portion may include simultaneously lowering the first upper roller die and the second upper roller die to form a primary bending portion having a shape corresponding to the lower part of the first upper roller die and a secondary bending portion having a shape corresponding to the upper part of the second lower roller die.
[0023] The step of forming the second bending portion may include the steps of lowering the first upper roller die to form a primary bending portion having a shape corresponding to the lower portion of the first upper roller die, and lowering the second upper roller die to form a secondary bending portion having a shape corresponding to the upper portion of the second lower roller die.
[0024] The step of forming the second bending portion may include the steps of lowering the second upper roller die to contact the electrode lead, and lowering the first upper roller die to form a primary bending portion having a shape corresponding to the lower portion of the first upper roller die and a secondary bending portion having a shape corresponding to the upper portion of the second lower roller die.
Advantages of the Invention
[0025] According to an embodiment of the present invention, the generation of tensile force can be minimized in the forming process of the electrode lead, and disconnection can be prevented at the joint portion between the electrode tab and the electrode lead. In addition, a manufacturing apparatus for a secondary battery and a manufacturing method for a secondary battery that can form electrode leads of various shapes without manufacturing additional dies or the like using a single manufacturing apparatus can be provided.
[0026] The effects of the present invention are not limited to the effects mentioned above, and other effects not mentioned should be clearly understood by those skilled in the art from the description of the claims.
Brief Description of the Drawings
[0027] [Figure 1] FIG. 1 is a diagram showing a state before bending and forming of an electrode lead in a manufacturing apparatus for a secondary battery according to the prior art. [Figure 2] FIG. 2 is a diagram showing a state after bending and forming of an electrode lead in a manufacturing apparatus for a secondary battery according to the prior art. [Figure 3] FIG. 3 is a diagram showing a state before bending and forming of an electrode lead in a manufacturing apparatus for a secondary battery according to an embodiment of the present invention. [Figure 4]Figure 4 shows the state of the electrode leads after bending and molding in the secondary battery manufacturing apparatus shown in Figure 3. [Figure 5] Figure 5 is a diagram illustrating a method for manufacturing a secondary battery according to one embodiment of the present invention. [Figure 6] Figure 6 is a diagram illustrating a method for manufacturing a secondary battery according to another embodiment of the present invention. [Figure 7] Figure 7 is a diagram illustrating a method for manufacturing a secondary battery according to another embodiment of the present invention. [Modes for carrying out the invention]
[0028] The present invention will be described in detail below, with reference to the attached drawings, so that various embodiments may be easily implemented by a person with ordinary skill in the art to which the invention pertains. The present invention can be embodied in various different forms and is not limited to the embodiments described herein.
[0029] To clearly explain the present invention, irrelevant parts have been omitted, and the same or similar reference numerals have been used throughout the specification for identical or similar components.
[0030] Furthermore, the dimensions and thicknesses of each component shown in the drawings are arbitrary for illustrative purposes and are not necessarily limited to those shown in the present invention. The thicknesses are shown enlarged in the drawings to clearly represent various layers and regions. In addition, the thicknesses of some layers and regions are exaggerated in the drawings for illustrative purposes.
[0031] Furthermore, when we say that a layer, membrane, region, plate, or other part is "on top of" or "on top of" another part, this includes not only the case where it is "directly above" the other part, but also the case where the other part is in between. Conversely, when we say that one part is "directly above" another part, it means that there is no other part in between. Also, when we say that a part is "on top of" or "on top of" a reference part, it means that it is located above or below the reference part, and does not necessarily mean that it is located "on top of" or "on top of" in the opposite direction of gravity.
[0032] Furthermore, when a specification states that a certain part "includes" a certain component, this means that, unless otherwise stated, it does not exclude other components, but rather can further include other components.
[0033] In the following, a secondary battery manufacturing apparatus according to one embodiment of the present invention will be described with reference to Figures 3 and 4.
[0034] The secondary battery consists of an electrode assembly 1 housed in a battery case 2, and includes electrode leads 4 that are drawn out to the outside of the battery case 2 for electrical connection to the outside. The electrode assembly 1 is a power generation element capable of charging and discharging, and has a structure in which positive electrodes and negative electrodes are alternately stacked with a separator membrane in between. Electrode tabs 3 are formed by extending from the ends of the electrodes contained in the electrode assembly 1. The electrode tabs 3 may be gathered and welded at one point, or the gathered electrode tabs 3 and the electrode leads 4 may be joined by means of welding or other means.
[0035] One end of the electrode lead 4 is electrically connected to the electrode tab 3 and extends through the sealing portion of the battery case 2, while the other end protrudes outside the battery case 2. The lead film 5 may be positioned to surround the electrode lead 4 at least one of its upper and lower portions. The lead film 5 prevents short circuits from occurring in the electrode lead 4 during heat fusion and improves the airtightness between the sealing portion of the battery case 2 and the electrode lead 4.
[0036] Referring to Figures 3 and 4, a secondary battery manufacturing apparatus according to one embodiment of the present invention is an apparatus for forming the portion of the aforementioned electrode lead 4 that protrudes to the outside of the battery case 2, and includes an upper fixing mold 100 and a lower fixing mold 200 for fixing the electrode lead 4, an upper roller mold 300, a lower roller mold 400, and a lower support mold 500 for forming the shape of the electrode lead 4 by directly contacting the electrode lead 4.
[0037] The upper fixing mold 100 and the lower fixing mold 200 are for fixing the electrode leads 4 during the molding process, and in particular support the portion where the electrode leads 4 are fixed to the battery case 2, thereby fixing the electrode leads 4. To this end, as shown in Figure 3, the upper and lower molds are formed to pressurize the portion where the battery case 2 and the electrode leads 4 overlap while making contact.
[0038] The lower support mold 500 is positioned adjacent to the lower fixed mold 200, spaced apart from the outer end of the electrode lead 4. The lower support mold 500 is configured to contact the starting point of the electrode lead 4 where molding begins, and has a shape corresponding to the first bending portion 41 of the electrode lead 4. In other words, by applying pressure with the upper roller mold 300 and the lower roller mold 400, which will be described later, the first bending portion 41 can be formed at the position corresponding to the lower support mold 500.
[0039] The upper roller mold 300 and the lower roller mold 400 are positioned at a distance from the upper fixed mold 100 and the lower fixed mold 200, respectively, toward the outer ends of the electrode leads 4, and are positioned so that the electrode leads 4 are located between the upper roller mold 300 and the lower roller mold 400. In particular, the lower roller mold 400 is separated from the lower fixed mold 200 by the lower support mold 500.
[0040] Multiple upper roller molds 300 and lower roller molds 400 may be provided, and in this embodiment, an example will be given of a configuration including two upper roller molds 300 and two lower roller molds 400, but the invention is not limited to this, and the number and position of the upper roller molds 300 and lower roller molds 400 can be adjusted in various ways.
[0041] The upper roller mold 300 includes a first upper roller mold 310 and a second upper roller mold 320, and the lower roller mold 400 includes a first lower roller mold 410 and a second lower roller mold 420. These roller molds are arranged in the order of the first lower roller mold 410, the first upper roller mold 310, the second lower roller mold 420, and the second upper roller mold 320, from the lower support mold 500 toward the outer end of the electrode lead 4, as shown in Figures 3 and 4. In this configuration, the upper roller mold 300 descends toward the electrode lead 4, and then descends while positioned between the lower roller molds 400, thereby forming the electrode lead 4 while applying pressure to it.
[0042] In this configuration, the upper roller mold 300 and the lower roller mold 400 are configured to rotate independently. When the electrode lead 4 is pressurized, the rotation of these roller molds 300 and 400 minimizes the frictional force with the electrode lead 4, thereby reducing the tensile force applied to the electrode lead 4. In particular, this reduction in tensile force can prevent wire breakage at the joint A between the electrode tab 3 and the electrode lead 4, where the joint strength is relatively weak. At the joint A between the electrode tab 3 and the electrode lead 4, wire breakage frequently occurred due to the tensile force applied to that part during the molding of the electrode lead 4. However, as in this embodiment, by using roller molds 300 and 400 instead of conventional stamp-type molds, the generation of friction and tensile force can be minimized, thereby preventing such wire breakage.
[0043] Furthermore, the upper roller mold 300 and the lower roller mold 400 can be deformed independently of each other. Therefore, by adjusting the vertical, horizontal, and vertical positions of the roller molds 300 and 400 to accommodate the shape required for the product, it is possible to mold electrode leads 4 of various shapes without changing molds. For example, when molding an electrode lead of an embodiment that includes a first bending portion 41 and a second bending portion 42, the bending angle of the first bending portion 41 may be determined by the vertical position and applied pressure of the first upper roller mold 310. Also, in the case of the second bending portion 42, it may have two bends, namely a primary bend portion 42a and a secondary bend portion 42b, but the shape of the primary bend portion 42a may correspond to the lower surface of the first upper roller mold 310, and the shape of the secondary bend portion 42b may correspond to the upper surface of the second lower roller mold 420. The degree of bending of the primary bent portion 42a and the secondary bent portion 42b, i.e., the depth or width, can be changed by adjusting the lowering height of the upper roller mold 300 and the spacing between the upper roller mold 300 and the lower roller mold 400. Furthermore, the size and number of roller molds 300 and 400 are not limited to this embodiment and may be appropriately determined based on the required shape of the electrode lead 4, etc.
[0044] As described above, according to the secondary battery manufacturing apparatus of one embodiment of the present invention, the tensile force applied to the electrode lead 4 and electrode tab 3 during bending of the electrode lead 4 can be minimized to prevent wire breakage, and various shapes of electrode lead 4 can be formed with a single manufacturing apparatus without changing molds, thus reducing manufacturing costs.
[0045] The following describes a manufacturing method for secondary batteries using the secondary battery manufacturing apparatus described above, and explains one embodiment and another embodiment of the present invention.
[0046] Figure 5 is a diagram illustrating a method for manufacturing a secondary battery according to one embodiment of the present invention, and Figures 6 and 7 are diagrams illustrating a method for manufacturing a secondary battery according to another embodiment of the present invention.
[0047] Referring to Figure 5, in one embodiment of the present invention, the method for manufacturing a secondary battery involves first fixing the electrode lead 4 between the upper fixing mold 100 and the lower fixing mold 200, and then bending the electrode lead 4 in the portion where the lower support mold 500 supports the electrode lead 4 to form a first bending portion 41. At this time, the electrode lead 4 can be bent downward while supported by the lower support mold 500, that is, toward the lower support mold 500, and thereby the first bending portion 41 can have a shape corresponding to the upper surface of the lower support mold 500.
[0048] Next, the upper roller mold 300 and the lower roller mold 400 are used to form the second bending section 42. In this embodiment, as shown in Figure 5, the first and second upper roller molds 310 and 320 contained within the upper roller mold 300 are lowered simultaneously to form the primary bending section 42a and the secondary bending section 42b contained within the second bending section 42. In other words, by lowering the first and second upper roller molds 310 and 320 simultaneously and applying pressure to the electrode lead 4, the primary bending section 42a corresponding to the lower surface shape of the first upper roller mold 310 and the secondary bending section 42b corresponding to the upper surface shape of the second lower roller mold 420 can be formed.
[0049] Referring to Figure 6, the method for manufacturing a secondary battery according to another embodiment of the present invention differs from the manufacturing method of the first embodiment in that the first and second upper roller molds 310 and 320 are not lowered simultaneously, but the first upper roller mold 310 is lowered first, and then the second upper roller mold 320 is lowered. In other words, after the first upper roller mold 310 is lowered so that the electrode lead 4 comes into contact with the first lower roller mold 410, the first upper roller mold 310, and the second lower roller mold 420, the second upper roller mold 320 is then lowered so as to pressurize the electrode lead 4, thereby forming the primary bent portion 42a and the secondary bent portion 42b.
[0050] Referring to Figure 7, the method for manufacturing a secondary battery according to another embodiment of the present invention differs from the manufacturing method of the first embodiment in that the first and second upper roller molds 310 and 320 are not lowered simultaneously, but the second upper roller mold 320 is lowered first, and then the first upper roller mold 310 is lowered. In other words, after the second upper roller mold 320 is lowered so that the electrode lead 4 comes into contact with the second upper roller mold 320, the first upper roller mold 310 is then lowered so as to pressurize the electrode lead 4, thereby forming the primary bent portion 42a and the secondary bent portion 42b.
[0051] In this manufacturing method for forming electrode leads 4 using a secondary battery manufacturing apparatus according to one embodiment of the present invention, the electrode leads 4 can be manufactured in a desired shape by lowering and moving each roller mold, particularly the upper roller mold, in a variety of sequences.
[0052] In the following, we measure the tensile force generated in the secondary battery manufacturing method according to the embodiment of the present invention and the secondary battery manufacturing method according to the comparative example, and explain the results.
[0053] In Example 1, the upper roller mold 300 was moved approximately 12 mm according to the manufacturing method shown in Figure 5, and the maximum tensile force applied to the joint A between the electrode tab 3 and the electrode lead 4 was measured. In Example 2, the maximum tensile force was measured in the same manner as the manufacturing method shown in Figure 6, and in Example 3, the maximum tensile force was measured in the same manner as in Example 1, according to the manufacturing method shown in Figure 7. On the other hand, in the comparative example, the molds shown in Figures 1 and 2 were used, and the upper mold 30 was moved approximately 12 mm in the same manner as in Example 1, and the maximum tensile force applied to the joint A between the electrode tab 3 and the electrode lead 4 was measured. The results are shown in Table 1 below.
[0054] [Table 1]
[0055] As shown in Table 1 above, in the embodiment of the present invention in which the electrode lead 4 was formed using roller molds 300 and 400, it was confirmed that the maximum tensile force value was significantly lower compared to the comparative example. Therefore, it was found that according to the embodiment of the present invention, it is possible to prevent the breakage of the electrode tab 3 and electrode lead 4 during the forming process of the electrode lead 4.
[0056] Although preferred embodiments of the present invention have been described in detail above, the scope of the present invention is not limited thereto. Various modifications and improvements by those skilled in the art, using the basic concepts of the present invention as defined in the following claims, also fall within the scope of the present invention. [Explanation of Symbols]
[0057] 3: Electrode tabs 4: Electrode Leads 100: Upper fixed mold 200: Lower fixed mold 300: Upper roller mold 310: First upper roller mold 320: Second upper roller mold 400: Lower roller mold 410: First lower roller mold 420: Second lower roller mold 500: Lower support mold
Claims
1. An apparatus for forming electrode leads for a secondary battery, comprising a plurality of alternately stacked electrodes and a separator membrane, electrode tabs provided at the ends of the plurality of electrodes, and electrode leads coupled to the electrode tabs, An upper fixing mold and a lower fixing mold that sandwich the electrode lead and fix the electrode lead, A plurality of lower roller molds are arranged at a distance from the lower fixed mold toward the outer end of the electrode lead, A plurality of upper roller molds are arranged at a distance from the upper fixed mold toward the outer end of the electrode lead, Includes, Each of the aforementioned lower roller molds and upper roller molds can rotate and move independently. The apparatus for forming electrode leads for a secondary battery comprises a plurality of lower roller molds and a plurality of upper roller molds that pressurize the electrode leads while rotating in order to form a bending portion on the electrode leads.
2. The apparatus for forming electrode leads of a secondary battery according to claim 1, further comprising a lower support mold disposed between the lower fixed mold and the lower roller mold and supporting the lower surface of the electrode lead.
3. The upper roller mold includes a first upper roller mold and a second upper roller mold arranged sequentially along the direction toward the outer end of the electrode lead, The apparatus for forming electrode leads of a secondary battery according to claim 1 or 2, wherein the lower roller mold includes a first lower roller mold and a second lower roller mold arranged sequentially along the direction toward the outer end of the electrode lead.
4. The apparatus for forming electrode leads for a secondary battery according to claim 3, wherein the first lower roller mold, the first upper roller mold, the second lower roller mold, and the second upper roller mold are arranged sequentially along the direction toward the outer end of the electrode lead.
5. A method for manufacturing a secondary battery, comprising a plurality of electrodes and a separator membrane stacked alternately, electrode tabs provided at the ends of the plurality of electrodes, and electrode leads coupled to the electrode tabs, The steps include fixing the electrode lead between the upper fixing mold and the lower fixing mold, The steps include: forming a first bending portion by bending the electrode lead toward the lower support mold while supporting the lower part of the electrode lead with a lower support mold positioned adjacent to the lower fixing mold; The steps include forming a second bending portion using a plurality of lower roller molds arranged at a distance from the lower fixed mold toward the outer end of the electrode lead, and a plurality of upper roller molds arranged at a distance from the upper fixed mold toward the outer end of the electrode lead, Includes, Each of the aforementioned lower roller molds and upper roller molds can rotate and move independently. A method for manufacturing a secondary battery, wherein the plurality of lower roller molds and the plurality of upper roller molds pressurize the electrode leads while rotating in order to form the second bending portion on the electrode leads.
6. The upper roller mold includes a first upper roller mold and a second upper roller mold arranged sequentially along the direction toward the outer end of the electrode lead, The method for manufacturing a secondary battery according to claim 5, wherein the lower roller mold includes a first lower roller mold and a second lower roller mold arranged sequentially along the direction toward the outer end of the electrode lead.
7. The method for manufacturing a secondary battery according to claim 6, wherein the first lower roller mold, the first upper roller mold, the second lower roller mold, and the second upper roller mold are arranged sequentially along the direction toward the outer end of the electrode lead.
8. The step of forming the second bending portion is: A method for manufacturing a secondary battery according to claim 6 or 7, comprising the step of simultaneously lowering the first upper roller mold and the second upper roller mold to form a primary bent portion having a shape corresponding to the lower part of the first upper roller mold and a secondary bent portion having a shape corresponding to the upper part of the second lower roller mold.
9. The step of forming the second bending portion is: The steps include lowering the first upper roller mold to form a primary bent portion having a shape corresponding to the lower part of the first upper roller mold, A method for manufacturing a secondary battery according to claim 6 or 7, comprising the step of lowering the second upper roller mold to form a secondary bent portion having a shape corresponding to the upper part of the second lower roller mold.
10. The step of forming the second bending portion is: The steps include lowering the second upper roller mold and bringing it into contact with the electrode lead, A method for manufacturing a secondary battery according to claim 6 or 7, comprising the step of lowering the first upper roller mold to form a primary bent portion having a shape corresponding to the lower part of the first upper roller mold and a secondary bent portion having a shape corresponding to the upper part of the second lower roller mold.
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