Unit cell manufacturing device and manufacturing method
The unit cell manufacturing apparatus and method address alignment and correction challenges by using a vision unit and control unit to automate the positioning and cutting of electrodes and films, resulting in improved manufacturing efficiency and reduced defects in secondary batteries.
Patent Information
- Application Number
- JP2023577869
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-03
- Filing Date
- 2022-08-24
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2042-08-24
AI Technical Summary
Existing unit cell manufacturing processes face challenges in achieving precise alignment and automatic correction of central electrodes, upper and lower electrodes, and separation films, which are crucial for the production of high-quality secondary batteries.
A unit cell manufacturing apparatus and method that includes a vision unit to measure position information of electrodes and films, a control unit to calculate and apply position corrections, and a stack transfer unit to automate the alignment and cutting processes, ensuring accurate positioning and cutting of electrodes and films.
The apparatus and method improve alignment and enable automatic correction of unit cells, enhancing the manufacturing process efficiency and reducing defects, thereby improving the quality and consistency of secondary batteries.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims the benefit of priority based on Korean Patent Application No. 10-2021-0117702 filed on September 3, 2021, and all contents disclosed in the documents of said Korean patent application are incorporated herein by reference.
[0002] The present disclosure relates to an apparatus and method for manufacturing a unit cell, and more particularly to an apparatus and method for manufacturing a unit cell in which the position of at least one of a central electrode, an upper separation film, a lower separation film, an upper electrode, and a lower electrode is corrected. [Background technology]
[0003] As technological development and demand for mobile devices increases, rechargeable secondary batteries are widely used as a power source for various mobile devices. Secondary batteries are also attracting attention as a power source for electric vehicles and hybrid vehicles, which are being proposed as a solution to the air pollution caused by existing gasoline and diesel vehicles.
[0004] Secondary batteries are classified into coin-type batteries, cylindrical batteries, prismatic batteries, and pouch-type batteries depending on the shape of the battery case. Generally, the electrode assembly housed in the battery case is classified into a jelly roll type in which a separator is interposed between the positive and negative electrodes and the battery is wound up, a stack type in which multiple unit cells with a separator interposed between the positive and negative electrodes are stacked, and a stack / folding type in which unit cells are wound up with a separator film.
[0005] A unit cell of the stacked electrode assembly may be manufactured by cutting a laminate including a central electrode, an upper separator disposed on the upper surface of the central electrode, a lower separator disposed on the lower surface of the central electrode, an upper electrode disposed on the upper separator, and a lower electrode disposed on the lower separator. At this time, it is necessary to improve the alignment between the central electrode, the upper separator, the lower separator, the upper electrode, and the lower electrode in the unit cell. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Korean Patent Publication No. 10-2021-0058170 Summary of the Invention [Problem to be solved by the invention]
[0007] An object of the present disclosure is to provide a unit cell manufacturing apparatus and method that can improve the alignment of the unit cells.
[0008] It is still another object of the present disclosure to provide a unit cell manufacturing apparatus and method that are capable of automatic correction. [Means for solving the problem]
[0009] To solve the above problem, the present invention provides, as an exemplary means, correcting the position of at least one of the central electrode, the upper electrode, and the lower electrode and / or the cutting position of the laminate cutting unit that cuts the upper isolation film and the lower isolation film.
[0010] For example, one embodiment of the present invention includes a stack transfer unit that transfers a stack including a central electrode, an upper separation film disposed on one side of the central electrode, a lower separation film disposed on the other side of the central electrode, an upper electrode disposed on the upper separation film, and a lower electrode disposed on the lower separation film; a central electrode transfer unit that supplies the central electrode to the stack transfer unit; an upper electrode transfer unit that supplies the upper electrode to the stack transfer unit; a lower electrode transfer unit that supplies the lower electrode to the stack transfer unit; a stack cutting unit that cuts the upper separation film and the lower separation film of the stack to form a unit cell; and a stack transfer unit that transfers the central electrode, the upper separation film, the lower separation film, and the front electrode of the unit cell. A unit cell manufacturing apparatus can be provided, which includes: a vision unit that measures measurement values including position information of at least one of the upper electrode and the lower electrode; and a control unit that calculates a position correction value of at least one of the central electrode, the upper separation film, the lower separation film, the upper electrode, and the lower electrode based on the measurement values measured by the vision unit, and corrects at least one of the position of the central electrode supplied to the stack transfer unit, the position of the upper electrode supplied to the stack transfer unit, the position of the lower electrode supplied to the stack transfer unit, and the cutting position of the stack cutting unit based on the calculated position correction value.
[0011] In another embodiment of the present invention, a method for manufacturing a unit cell may be provided, including: forming a stack including a central electrode, an upper isolation film disposed on one side of the central electrode, a lower isolation film disposed on the other side of the central electrode, an upper electrode disposed on the upper isolation film, and a lower electrode disposed on the lower isolation film; forming a unit cell by cutting the upper isolation film and the lower isolation film of the stack; measuring measurement values including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; calculating a position correction value of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode based on the measurement values; and correcting at least one of a position of the central electrode in forming the stack, a position of the upper electrode in forming the stack, a position of the lower electrode in forming the stack, and a cutting position of the stack in forming the unit cell based on the calculated position correction value. [Effects of the Invention]
[0012] One effect of the present disclosure is to provide a unit cell manufacturing apparatus and method that can improve the alignment of unit cells.
[0013] Another advantage of the present disclosure is that it is possible to provide a manufacturing apparatus and a manufacturing method for a unit cell that are capable of automatic correction. [Brief explanation of the drawings]
[0014] [Figure 1] 1 is a schematic diagram of a unit cell manufacturing apparatus according to an embodiment of the present invention. [Figure 2] FIG. 1 is a perspective view of a unit cell according to an embodiment of the present invention. [Figure 3] FIG. 10 is a perspective view of a unit cell according to another embodiment of the present invention. [Figure 4] 10A and 10B are diagrams illustrating measurement values measured by a vision unit in a unit cell according to an embodiment of the present invention. [Figure 5]10 is a diagram illustrating measurement values measured by a vision unit in a unit cell according to another embodiment of the present invention. FIG. [Figure 6] 10 is a diagram illustrating measurement values measured by a vision unit in a unit cell according to another embodiment of the present invention. FIG. [Figure 7] 1 is a graph showing the improvement of process capability index (Ppk) according to the present invention. [Figure 8] 1 is a graph showing a reduction in the defect rate according to the present invention. [Figure 9] 10 is a graph showing a reduction in the number of manual corrections performed by an operator according to the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. In the drawings, some or all of the components may be exaggerated for ease of explanation. Furthermore, the present invention is not limited to the accompanying drawings or the description herein, and it will be apparent to those skilled in the art that the present invention can be embodied in various forms without departing from the technical spirit of the present invention.
[0016] FIG. 1 is a schematic diagram of a unit cell manufacturing apparatus according to an embodiment of the present invention.
[0017] In this specification, the longitudinal direction L, width direction W, and thickness direction T are based on the respective directions of movement of the central electrode 11, upper electrode 12, lower electrode 13, stack 20, and unit cell 30. Specifically, the direction of movement of the central electrode 11, upper electrode 12, lower electrode 13, stack 20, and unit cell 30 is referred to as the longitudinal direction L, the direction perpendicular to the longitudinal direction L on a plane is referred to as the width direction W, and the direction perpendicular to the longitudinal direction L and width direction W is referred to as the thickness direction T. Unless otherwise specified, a plane refers to the plane formed by the longitudinal direction L and the width direction W. Furthermore, both sides of any structure refer to one side and the other side facing each other in the longitudinal direction L, and both ends of any structure refer to one end and the other end facing each other in the width direction W.
[0018] 1, the manufacturing apparatus for a unit cell according to an embodiment of the present invention includes a central electrode transfer unit 111 for transferring a central electrode 11, a central electrode cutting unit 112 for cutting the central electrode 11, an upper electrode transfer unit 121 for transferring an upper electrode 12, an upper electrode cutting unit 122 for cutting the upper electrode 12, a lower electrode transfer unit 131 for transferring a lower electrode 13, a lower electrode cutting unit 132 for cutting the lower electrode 13, a cut central electrode 11, a cut upper electrode 12 ... 2, a stack transfer unit 211 that transfers the stack 20 including the cut lower electrode 13, upper separation film 14, and lower separation film 15, a stack cutting unit 212 that cuts the stack 20 to form unit cells 30, a lamination unit 213 that heats and pressurizes the stack 20, a unit cell transfer unit 311 that transfers the unit cells 30, a vision unit 312 that measures the unit cells 30, and a control unit 313 that improves the alignment of the unit cells 30 based on the measurements taken by the vision unit 312.
[0019] The central electrode transport unit 111, the upper electrode transport unit 121, and the lower electrode transport unit 131 may serve to transport the central electrode 11, the upper electrode 12, and the lower electrode 13, respectively. Specifically, the central electrode transport unit 111, the upper electrode transport unit 121, and the lower electrode transport unit 131 may transport the central electrode 11, the upper electrode 12, and the lower electrode 13, respectively, and supply them to the stack transport unit 211. The central electrode transport unit 111, the upper electrode transport unit 121, and the lower electrode transport unit 131 may each be a conveyor belt, and after the electrodes are cut, they may transport the cut electrodes spaced apart from each other at regular intervals.
[0020] The central electrode cutting portion 112, the upper electrode cutting portion 122, and the lower electrode cutting portion 132 may each serve to cut the central electrode 11, the upper electrode 12, and the lower electrode 13, respectively. To this end, the central electrode cutting portion 112, the upper electrode cutting portion 122, and the lower electrode cutting portion 132 may each include cutting means such as a blade, a wheel, a laser, etc. For ease of explanation, the electrode sheet and the individual electrodes formed by cutting the electrode sheet will be referred to as electrodes 11, 12, and 13 in this specification without distinguishing between different terms.
[0021] The stack 20 includes a central electrode 11, an upper separation film 14 disposed on one side of the central electrode 11, a lower separation film 15 disposed on the other side of the central electrode 11, an upper electrode 12 disposed on the upper separation film 14, and a lower electrode 13 disposed on the lower separation film 15. That is, the stack 20 has a structure in which the upper separation film 14 and the upper electrode 12 are stacked in order on one side of the central electrode 11, and the lower separation film 15 and the lower electrode 13 are stacked in order on the other side. In other words, the stack 20 has a structure in which the lower electrode 13, the lower separation film 15, the central electrode 11, the upper separation film 14, and the upper electrode 12 are stacked in order from the bottom up.
[0022] The stack transfer unit 211 may serve to transfer the stack 20. Specifically, the stack transfer unit 211 may transfer the central electrode 11, the upper electrode 12, and the lower electrode 13 supplied from the central electrode transfer unit 111, the upper electrode transfer unit 121, and the lower electrode transfer unit 131, respectively, and supply them to a subsequent unit such as the unit cell transfer unit 311. The stack transfer unit 211 may also be a conveyor belt.
[0023] The laminate cutting unit 212 cuts the laminate 20 to form the unit cells 30. To this end, the laminate cutting unit 212 may also include cutting means such as a blade, a wheel, or a laser.
[0024] The lamination unit 213 may serve to heat and / or pressurize the laminate 20 to fix it. The lamination unit 213 may include at least one of a lamination roller and a lamination heater, and the laminate 20 may be heated and / or pressed by passing through the lamination roller, and then heated by passing through the lamination heater, but is not limited thereto.
[0025] The unit cell transfer part 311 may serve to transfer the unit cells 30. The unit cell transfer part 311 may also be a conveyor belt, and may transfer a plurality of unit cells 30 spaced apart from each other at regular intervals.
[0026] The vision unit 312 measures the unit cell 30. Specifically, the vision unit 312 may measure a measurement value including position information of at least one of the central electrode 11, the upper isolation film 14, the lower isolation film 15, the upper electrode 12, and the lower electrode 13 of the unit cell 30. In other words, the measurement value of the unit cell 30 measured by the vision unit 312 includes position information of at least one of the central electrode 11, the upper isolation film 14, the lower isolation film 15, the upper electrode 12, and the lower electrode 13. Through this, the alignment state between each component of the unit cell 30 may be measured.
[0027] The vision unit 312 can measure the measurement values of each of the plurality of unit cells 30. That is, the vision unit 312 can measure values including position information of at least one of the central electrode 11, the upper isolation film 14, the lower isolation film 15, the upper electrode 12, and the lower electrode 13 of each of the plurality of unit cells 30, which are the measurement values of each of the plurality of unit cells 30.
[0028] The vision portion 312 includes at least one of an upper vision portion 312T disposed on the upper electrode 12 of the unit cell 30 and a lower vision portion 312B disposed on the lower electrode 13 of the unit cell 30. Preferably, the vision portion 312 includes both an upper vision portion 312T disposed on the upper electrode 12 of the unit cell 30 and a lower vision portion 312B disposed on the lower electrode 13 of the unit cell 30.
[0029] The upper vision unit 312T measures the central electrode 11, the upper separation film 14, and the upper electrode 12. The lower vision unit 312B measures the central electrode 11, the lower separation film 15, and the lower electrode 13. The specific measurement values measured by the upper vision unit 312T and the lower vision unit 312B will be described in the explanations for Figures 4 to 6.
[0030] The control unit 313 improves the alignment of the unit cells 30 based on the measurement values measured by the vision unit 312. Specifically, the control unit 313 may calculate a position correction value for at least one of the central electrode 11, the upper separation film 14, the lower separation film 15, the upper electrode 12, and the lower electrode 13 based on the measurement values measured by the vision unit 312. Preferably, the control unit 313 calculates a position correction value for each of the central electrode 11, the upper separation film 14, the lower separation film 15, the upper electrode 12, and the lower electrode 13 based on the measurement values measured by the vision unit 312. In this case, the position correction value includes at least one of a correction direction and a correction distance. In addition, the control unit 313 may correct at least one of the position of the central electrode 11 supplied to the stack transfer unit 211, the position of the upper electrode 12 supplied to the stack transfer unit 211, the position of the lower electrode 13 supplied to the stack transfer unit 211, and the cutting position of the stack cutting unit 212 based on the calculated position correction value. In this case, the control unit 313 can automatically perform corrections through the system based on the calculated position correction value of at least one of the central electrode 11, the upper separation membrane 14, the lower separation membrane 15, the upper electrode 12, and the lower electrode 13. From this perspective, the control unit 313 may include a PLC (Programmable Logic Controller).
[0031] As described above, the vision unit 312 can measure the measurement values of the plurality of unit cells 30, and at this time, the control unit 313 can calculate the position correction value based on the average value of the measurement values of the plurality of unit cells 30. In this way, the control unit 313 can calculate the position correction value based on the trend of misalignment of the plurality of unit cells 30.
[0032] In this case, the control unit 313 can set at least one of the number of unit cells 30 used to calculate the position correction value, the position correction value at which correction begins, the percentage of the actual position correction value relative to the position correction value, a first PLC transfer period, a second PLC transfer period for transferring the position correction value to the PLC, and a period for applying the second PLC transfer period. Here, the second PLC transfer period is a period that is applied immediately after the type of unit cell is changed, and the first PLC transfer period is a period that is applied after the second PLC transfer period is applied during the period in which the second PLC transfer period is applied.
[0033] For example, when the number of unit cells 30 used to calculate the position correction value is set to 20, the control unit 313 can calculate the position correction value based on the average value of the measurement values of the 20 unit cells 30.
[0034] The position correction value at which correction starts is intended to prevent excessive correction. For example, if the position correction value at which correction starts is set to 1 mm, position correction is performed only when the calculated position correction value is 1 mm or greater. Therefore, if the calculated position correction value is less than 1 mm, the control unit 313 does not perform position correction.
[0035] The percentage of the actual position correction value relative to the position correction value is also used to prevent excessive correction. For example, if the percentage of the actual position correction value relative to the position correction value is set to 70%, the actual position correction is performed by a value corresponding to 70% of the calculated position correction value.
[0036] The first PLC transmission period is intended to prevent system delays. The vision unit 312 can continuously measure the measurement values of each of the plurality of unit cells 30, and the control unit 313 can calculate and perform position correction values in real time based on the continuously measured measurement values of each of the plurality of unit cells 30. However, this may be undesirable in terms of efficiency. Therefore, a first PLC transmission period may be set, and the calculated position correction values may be transmitted to the PLC at each set period, and correction may be performed based on the position correction values transmitted to the PLC. In this case, the first PLC transmission period may be based on the number of the plurality of unit cells 30. For example, if the first PLC transmission period is 30, position correction values may be transmitted to the PLC based on 30 unit cells 30. If the number of unit cells 30 used to calculate the position correction value is 20 and the first PLC transfer period is 30, the control unit 313 can transfer to the PLC the position correction value calculated based on the average value of the measurement values from the first unit cell 30 to the 20th unit cell 30 as the first transfer, and can transfer to the PLC the position correction value calculated based on the average value of the measurement values from the 31st unit cell 30 to the 50th unit cell 30 as the second transfer. However, the first PLC transfer period can also be set based on time. Also, a period for updating the position correction value can be set instead of the first PLC transfer period to achieve the same effect.
[0037] The second PLC transmission period is intended to increase the frequency of transmission of the position correction value, which is the basis for correction, by applying a shortened PLC transmission period for the position correction value immediately after a type of unit cell 30 with a relatively high misalignment rate is replaced. From this perspective, the second PLC transmission period for transmitting the position correction value immediately after a type of unit cell 30 is replaced may be different from the first PLC transmission period described above, and specifically, may be shorter than the first PLC transmission period. However, depending on the design, the second PLC transmission period may be set to be the same as or longer than the first PLC transmission period. The second PLC transmission period may also be set based on the number of unit cells 30 or based on time. Alternatively, a similar effect may be achieved by setting a period for updating the position correction value immediately after a type of unit cell 30 is replaced instead of the second PLC transmission period.
[0038] The period in which the second PLC transmission period is applied is a period in which the second PLC transmission period is applied immediately after the type of unit cell 30 is changed. Therefore, the second PLC transmission period is applied during the period in which the second PLC transmission period is applied immediately after the type of unit cell 30 is changed, and the first PLC transmission period is applied after the period in which the second PLC transmission period is applied immediately after the type of unit cell 30 is changed. The period in which the second PLC transmission period is applied may also be based on the number of unit cells 30 or may be set based on time.
[0039] Furthermore, when calculating a position correction value based on the average value of each of the measurement values of the plurality of unit cells 30, the control unit 313 can exclude at least one of the measurement values of the nth unit cell 30 that is outside the reference range and the measurement value that differs from the measurement value of the (n-1)th unit cell 30 by a reference value or more from the measurement values that are the basis of the calculation. Measurement values may include erroneous measurements due to measurement errors by the vision unit 312, and if these erroneous measurements are included in the measurement values that are the basis of the calculation, an error may occur in the position correction value. Therefore, the control unit 313 can exclude the measurement values of the nth unit cell 30 that are outside the reference range from the measurement values that are the basis of the calculation, for example, exclude measurement values that are above the upper limit range or below the lower limit range from the measurement values that are the basis of the calculation. Furthermore, the control unit 313 can exclude the measurement values that differ from the measurement value of the (n-1)th unit cell 30 by a reference value or more from the measurement values that are the basis of the calculation, for example, exclude measurement values that are greater than or less than the measurement value of the (n-1)th unit cell 30 by a reference value or more from the measurement values that are the basis of the calculation.
[0040] As described above, the control unit 313 can calculate a position correction value for at least one of the central electrode 11, the upper separation film 14, the lower separation film 15, the upper electrode 12, and the lower electrode 13 based on the measured values measured by the vision unit 312. In addition, the control unit 313 can correct at least one of the position of the central electrode 11 supplied to the stack transfer unit 211, the position of the upper electrode 12 supplied to the stack transfer unit 211, the position of the lower electrode 13 supplied to the stack transfer unit 211, and the cutting position of the stack cutting unit 212 based on the calculated position correction value.
[0041] The control unit 313 can correct the position of the central electrode 11 in the width direction W. The control unit 313 can also correct the positions of the upper electrode 12 and the lower electrode 13 in the longitudinal direction L and the width direction W.
[0042] The control unit 313 may adjust the position of an EPC (Edge Position Control) sensor that measures the position of each end of the central electrode 11, the upper electrode 12, and the lower electrode 13, and correct the position of each of the central electrode 11, the upper electrode 12, and the lower electrode 13 in the width direction W. Specifically, the central electrode transport unit 111, the upper electrode transport unit 121, and the lower electrode transport unit 131 may each include an EPC (Edge Position Control) sensor that measures the position of at least one end of the electrodes 11, 12, and 13, and an EPC roller that adjusts the position of the electrodes 11, 12, and 13 in the width direction W according to the value measured by the EPC sensor, and the control unit 313 may adjust the position of the EPC sensor included in each of the central electrode transport unit 111, the upper electrode transport unit 121, and the lower electrode transport unit 131. At this time, the EPC sensor is placed before the electrodes 11, 12, and 13 are cut by the cutting units 112, 122, and 132, and therefore, the central electrode 11, upper electrode 12, and lower electrode 13, whose positions in the width direction W are corrected by the control unit 313, are the electrode sheets before being cut by the central electrode cutting unit 112, upper electrode cutting unit 122, and lower electrode cutting unit 132, respectively.
[0043] Furthermore, the control unit 313 may adjust the speed at which the upper electrode 12 and the lower electrode 13 are supplied to the laminate transfer unit 211, and correct the positions of the upper electrode 12 and the lower electrode 13 in the longitudinal direction L. In this case, the upper electrode 12 and the lower electrode 13, whose positions in the longitudinal direction L are corrected by the control unit 313, are the individual electrodes cut by the upper electrode cutting unit 122 and the lower electrode cutting unit 132, respectively.
[0044] The cutting position correction of the laminate cutting unit 212 may be performed by automatic correction via a system within the control unit 313 based on a position correction value calculated by the control unit 313, or by manual correction by an operator directly inputting the cutting position of the laminate cutting unit 212 corrected by the calculated position correction value into the control unit 313.
[0045] The control unit 313 may have an alarm function. For example, the control unit 313 can determine defects that are difficult to correct automatically, such as an incorrect placement angle due to rotation of the central electrode 11, an incorrect placement angle due to rotation of the upper electrode 12, an incorrect placement angle due to rotation of the lower electrode 13, an incorrect cutting of the central electrode 11, an incorrect cutting of the upper electrode 12, an incorrect cutting of the lower electrode 13, or an incorrect cutting angle of the separation membranes 14 and 15, and can sound an alarm when such defects occur. Therefore, an operator can hear the alarm and manually correct items that are difficult to correct automatically. For this reason, it goes without saying that the vision unit 312 can further measure values necessary for defect determination using measured values.
[0046] FIG. 2 is a perspective view of a unit cell according to an embodiment of the present invention.
[0047] FIG. 3 is a perspective view of a unit cell according to another embodiment of the present invention.
[0048] 2 and 3, a unit cell 30 includes a central electrode 11 having a tab 11T, an upper separator 14 disposed on the upper surface of the central electrode 11, an upper electrode 12 disposed on the upper surface of the upper separator 14 and having a tab 12T, a lower separator 15 disposed on the lower surface of the central electrode 11, and a lower electrode 13 disposed on the lower surface of the lower separator 15 and having a tab 13T. The tabs 11T, 12T, and 13T protrude from one end of the electrodes 11, 12, and 13.
[0049] The upper electrode 12 and the lower electrode 13 may each be an electrode of a different polarity from the central electrode 11. For example, the central electrode 11 may be a negative electrode, and the upper electrode 12 and the lower electrode 13 may each be a positive electrode. Alternatively, the central electrode 11 may be a positive electrode, and the upper electrode 12 and the lower electrode 13 may each be a negative electrode.
[0050] 2, in a unit cell 30 according to an embodiment of the present invention, the tab 12T of the upper electrode 12 and the tab 13T of the lower electrode 13 are arranged in the opposite direction to the tab 11T of the central electrode 11. The tab 11T of the central electrode 11, the tab 12T of the upper electrode 12, and the tab 13T of the lower electrode 13 may each be arranged at the center of one end where the electrode tabs are formed. Furthermore, when viewed in the width direction W, the tab 12T of the upper electrode 12 and the tab 13T of the lower electrode 13 may be arranged to overlap the tab 11T of the central electrode 11 in the thickness direction T.
[0051] 3, in a unit cell 30 according to another embodiment of the present invention, the tab 12T of the upper electrode 12 and the tab 13T of the lower electrode 13 are spaced apart in the same direction as the tab 11T of the central electrode 11. The tab 11T of the central electrode 11 may be offset to one side of the unit cell 30, and the tabs 12T of the upper electrode 12 and the tabs 13T of the lower electrode 13 may be offset to the other side of the unit cell 30. Although FIG. 3(a) illustrates the tab 11T of the central electrode 11 as being offset to the left side of the unit cell 30 and the tabs 12T of the upper electrode 12 and the tabs 13T of the lower electrode 13 as being offset to the right side of the unit cell 30, it goes without saying that the tab 11T of the central electrode 11 may be offset to the right side of the unit cell 30, and the tabs 12T of the upper electrode 12 and the tabs 13T of the lower electrode 13 may be offset to the left side of the unit cell 30. The tab 12T of the upper electrode 12 and the tab 13T of the lower electrode 13 may be arranged to overlap each other on a plane.
[0052] Fig. 4 is a diagram for explaining the measurement values measured by the vision section in the unit cell of Fig. 2. Fig. 4(a) is a diagram for explaining the measurement values of the upper vision section 312T, and Fig. 4(b) is a diagram for explaining the measurement values of the lower vision section 312B.
[0053] Fig. 5 is a diagram for explaining the measurement values measured by the vision section in the unit cell of Fig. 3. Fig. 5(a) is a diagram for explaining the measurement values of the upper vision section 312T, and Fig. 5(b) is a diagram for explaining the measurement values of the lower vision section 312B.
[0054] Figure 6 is a diagram for explaining the measurement values measured by the vision unit in a structure in which the unit cell in Figure 3 is deformed. Figure 6(a) is a diagram for explaining the measurement values of the upper vision unit 312T, and Figure 6(b) is a diagram for explaining the measurement values of the lower vision unit 312B.
[0055] The upper vision unit 312T measures at least one of the following: the distance TL1 between one side 14s of the upper separation film 14 and one side 11Ts of the tab 11T of the central electrode 11; the distances TL2a and TL2b between both sides 14s of the upper separation film 14 and both sides 12s of the upper electrode 12; the distances TL3a and TL3b between both ends 14e of the upper separation film 14 and both ends 12e of the upper electrode 12; and the distance TL4 between one end 14e of the upper separation film 14 and the end 11Te of the tab 11T of the central electrode 11. As shown in the figure, the end 11Te of the tab 11T of the central electrode 11 refers to the edge region connecting both sides 11Ts of the tab 11T of the central electrode 11. Preferably, the upper vision unit 312T measures all of the above-mentioned distances. Here, the one end 14e of the upper separation film 14 is the end of both ends 14e of the upper separation film 14 that is closest to the tab 11T of the central electrode 11.
[0056] Similarly, the lower vision unit 312B measures at least one of the following: the distance BL1 between one side 15s of the lower separation film 15 and one side 11Ts of the tab 11T of the central electrode 11; the distances BL2a and BL2b between both sides 15s of the lower separation film 15 and both sides 13s of the lower electrode 13; the distances BL3a and BL3b between both ends 15e of the lower separation film 15 and both ends 13e of the lower electrode 13; and the distance BL4 between one end 15e of the lower separation film 15 and the end 11Te of the tab 11T of the central electrode 11. Preferably, the lower vision unit 312B measures all of the above-mentioned distances. Here, the one end 15e of the lower separation film 15 is the end of both ends 15e of the lower separation film 15 that is closest to the tab 11T of the central electrode 11.
[0057] As shown in the figure, the upper vision unit 312T can measure the distance TL2a between one side 14s of the upper isolation film 14 and one side 12s of the upper electrode 12 in two or more regions, and can measure the distance TL2b between the other side 14s of the upper isolation film 14 and the other side 12s of the upper electrode 12 in two or more regions. Similarly, the lower vision unit 312B can measure the distance BL2a between one side 15s of the lower isolation film 15 and one side 13s of the lower electrode 13 in two or more regions, and can measure the distance BL2b between the other side 15s of the lower isolation film 15 and the other side 13s of the lower electrode 13 in two or more regions. However, the upper vision unit 312T can also measure the distance TL2a between one side 14s of the upper isolation film 14 and one side 12s of the upper electrode 12 in one region, and the distance TL2b between the other side 14s of the upper isolation film 14 and the other side 12s of the upper electrode 12 in one region. Similarly, the lower vision unit 312B can measure the distance BL2a between one side 15s of the lower separation film 15 and one side 13s of the lower electrode 13 in one area, and can also measure the distance BL2b between one side 15s of the lower separation film 15 and one side 13s of the lower electrode 13 in one area.
[0058] In addition, the upper vision unit 312T can measure the distance TL3a between one end 14e of the upper isolation film 14 and one end 12e of the upper electrode 12 in two or more regions, and the distance TL3b between the other end 14e of the upper isolation film 14 and the other end 12e of the upper electrode 12 in two or more regions. Similarly, the lower vision unit 312B can measure the distance BL3a between one end 15e of the lower isolation film 15 and one end 13e of the lower electrode 13 in two or more regions, and the distance BL3b between the other end 15e of the lower isolation film 15 and the other end 13e of the lower electrode 13 in two or more regions. However, as shown in the figure, the upper vision unit 312T can also measure the distance TL3a between one end 14e of the upper isolation film 14 and one end 12e of the upper electrode 12 in one region, and the distance TL3b between the other end 14e of the upper isolation film 14 and the other end 12e of the upper electrode 12 in one region. Similarly, the lower vision unit 312B can measure the distance BL3a between one end 15e of the lower separation film 15 and one end 13e of the lower electrode 13 in one area, and can also measure the distance BL3b between the other end 15e of the lower separation film 15 and the other end 13e of the lower electrode 13 in one area.
[0059] If the distance TL1 between one side 14s of the upper separation film 14 and one side 11Ts of the tab 11T of the central electrode 11 measured by the upper vision unit 312T and the distance BL1 between one side 15s of the lower separation film 15 and one side 11Ts of the tab 11T of the central electrode 11 measured by the lower vision unit 312B are greater than a reference value, the control unit 313 corrects the cutting position of the laminate cutting unit 212 in a direction from one side to the other side of the tab 11T of the central electrode 11, and if the distance TL1 is smaller than the reference value, the control unit 313 corrects the cutting position of the laminate cutting unit 212 in a direction from the other side to one side of the tab 11T of the central electrode 11. However, the cutting position of the laminate cutting unit 212 can also be manually corrected by an operator directly inputting the cutting position of the laminate cutting unit 212 corrected by the calculated position correction value into the control unit 313.
[0060] If the distance TL2a or TL2b between one side 14s of the upper separation film 14 and one side 12s of the upper electrode 12 measured by the upper vision unit 312T is greater than a reference value and the distance TL2b or TL2a between the other side 14s of the upper separation film 14 and the other side 12s of the upper electrode 12 is smaller than the reference value, the control unit 313 corrects the upper electrode 12 in a direction from the other side of the upper electrode 12 toward one side. Similarly, if the distance BL2a or BL2b between one side 15s of the lower separation film 15 and one side 13s of the lower electrode 13 measured by the lower vision unit 312B is greater than a reference value and the distance BL2b or BL2a between the other side 15s of the lower separation film 15 and the other side 13s of the lower electrode 13 is smaller than the reference value, the control unit 313 corrects the lower electrode 13 in a direction from the other side of the lower electrode 13 toward one side. Here, one side means the opposite side of the other side, and the other side means the opposite side of the one side, and the positions of the one side and the other side are not set to specific positions.
[0061] If the distance TL3a or TL3b between one end 14e of the upper separation film 14 and one end 12e of the upper electrode 12 measured by the upper vision unit 312T is greater than a reference value and the distance TL3b or TL3a between the other end 14e of the upper separation film 14 and the other end 12e of the upper electrode 12 is smaller than the reference value, the control unit 313 corrects the upper electrode 12 in a direction from the other end toward one end of the upper electrode 12. Similarly, if the distance BL3a or BL3b between one end 15e of the lower separation film 15 and one end 13e of the lower electrode 13 measured by the lower vision unit 312B is greater than a reference value and the distance BL3b or BL3a between the other end 15e of the lower separation film 15 and the other end 13e of the lower electrode 13 is smaller than the reference value, the control unit 313 corrects the lower electrode 15 in a direction from the other end toward one end. Here, one end means an end opposite to the other end, and the other end means an end opposite to the one end, and the positions of the one end and the other end are not set to specific positions.
[0062] If the distance TL4 between one end 14e of the upper separation membrane 14 and the end 11Te of the tab 11T of the central electrode 11 measured by the upper vision unit 312T is greater than a reference value, the control unit 313 corrects the position of the central electrode 11 in the direction from one end to the other end of the upper separation membrane 14, and if it is smaller than the reference value, the control unit 313 corrects the position of the central electrode 11 in the direction from the other end to one end of the upper separation membrane 14. Similarly, if the distance BL4 between one end 15e of the lower separation membrane 15 and the end 11Te of the tab 11T of the central electrode 11 measured by the lower vision unit 312B is greater than a reference value, the control unit 313 corrects the position of the central electrode 11 in the direction from one end to the other end of the lower separation membrane 15, and if it is smaller than the reference value, the control unit 313 corrects the position of the central electrode 11 in the direction from the other end to one end of the lower separation membrane 15.
[0063] 4 to 6, the positions of one side 14s of the upper separation membrane 14 and one side 11Ts of the tab 11T of the central electrode 11 measured by the upper vision section 312T, and one side 15s of the lower separation membrane 15 and one side 11Ts of the tab 11T of the central electrode 11 measured by the lower vision section 312B will be described below. The direction of movement of the unit cell 30 is indicated by an arrow in the figures.
[0064] In FIG. 4, the tab 11T of the central electrode 11, one side 11Ts, 14s, 15s of the upper separation membrane 14, and one side 11Ts of the lower separation membrane 15 may be located in the opposite direction to the direction of movement of the unit cell 30. With reference to FIG. 4(a), one side of the tab 11T of the central electrode 11 and one side of the upper separation membrane 14 are located on the left side, and with reference to FIG. 4(b), one side of the tab 11T of the central electrode 11 and one side of the lower separation membrane 15 are located on the right side. Therefore, with reference to FIG. 4(a), the upper vision unit 312T can measure the distance TL1 between the left side 14s of the upper separation membrane 14 and the left side 11Ts of the tab 11T of the central electrode 11, and with reference to FIG. 4(b), the lower vision unit 312B can measure the distance BL1 between the right side 15s of the lower separation membrane 15 and the right side 11Ts of the tab 11T of the central electrode 11.
[0065] However, depending on the design, the respective sides 11Ts, 14s, 15s of the tab 11T of the central electrode 11, the upper separation film 14, and the lower separation film 15 may be sides arranged in the transport direction of the unit cell 30. Therefore, with reference to (a) of Figure 4, the upper vision unit 312T can measure the distance between the right side 14s of the upper separation film 14 and the right side 11Ts of the tab 11T of the central electrode 11, and with reference to (b) of Figure 4, the lower vision unit 312B can measure the distance between the left side 15s of the lower separation film 15 and the left side 11Ts of the tab 11T of the central electrode 11. In addition, the upper vision unit 312T can measure the distance between both side portions 14s of the upper separation membrane 14 and both side portions 11Ts of the tab 11T of the central electrode 11, and the lower vision unit 312B can measure the distance between both side portions 15s of the lower separation membrane 15 and both side portions 11Ts of the tab 11T of the central electrode 11.
[0066] 5, one side 14s, 15s of each of the upper separation membrane 14 and the lower separation membrane 15 may be a side of both sides 14s, 15s of each of the upper separation membrane 14 and the lower separation membrane 15 that is closer to the tab 11T of the central electrode 11. One side 11Ts of the tab 11T of the central electrode 11 may be a side of both sides 11Ts of the tab 11T of the central electrode 11 that is closer to the one side 14s, 15s of each of the upper separation membrane 14 and the lower separation membrane 15. With reference to (a) of FIG. 5, one side of each of the tab 11T of the central electrode 11 and the upper separation membrane 14 is a side located on the left side, and with reference to (b) of FIG. 5, one side of each of the tab 11T of the central electrode 11 and the lower separation membrane 15 is a side located on the right side. 5(a) as a reference, the upper vision unit 312T measures the distance TL1 between the left side 14s of the upper separation film 14 and the left side 11Ts of the tab 11T of the central electrode 11, and the lower vision unit 312B measures the distance BL1 between the right side 15s of the lower separation film 15 and the right side 11Ts of the tab 11T of the central electrode 11 as a reference, and thus the distance between the components to be measured can be measured without interference from other components.
[0067] 6, one side 14s, 15s of each of the upper separation membrane 14 and the lower separation membrane 15 may be a side of both sides 14s, 15s of each of the upper separation membrane 14 and the lower separation membrane 15 that is closer to the tab 11T of the central electrode 11. One side 11Ts of the tab 11T of the central electrode 11 may be a side of both sides 11Ts of the tab 11T of the central electrode 11 that is closer to one side of each of the upper separation membrane 14 and the lower separation membrane 15. With reference to (a) of FIG. 6, one side of each of the tab 11T of the central electrode 11 and the upper separation membrane 14 is a side located on the right side, and with reference to (b) of FIG. 6, one side of each of the tab 11T of the central electrode 11 and the lower separation membrane 15 is a side located on the left side. 6(a) as a reference, the upper vision unit 312T measures the distance TL1 between the right side 14s of the upper separation film 14 and the right side 11Ts of the tab 11T of the central electrode 11, and the lower vision unit 312B measures the distance BL1 between the left side 15s of the lower separation film 15 and the left side 11Ts of the tab 11T of the central electrode 11 as a reference, and thus the distance between the components to be measured can be measured without interference from other components.
[0068] A method for manufacturing a unit cell according to an embodiment of the present invention may include: forming a stack including a central electrode, an upper isolation film disposed on one side of the central electrode, a lower isolation film disposed on the other side of the central electrode, an upper electrode disposed on the upper isolation film, and a lower electrode disposed on the lower isolation film; forming a unit cell by cutting the upper isolation film and the lower isolation film of the stack; measuring measurement values including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; calculating a position correction value of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode based on the measurement values; and correcting, based on the calculated position correction value, at least one of a position of the central electrode in forming the stack, a position of the upper electrode in forming the stack, a position of the lower electrode in forming the stack, and a cutting position of the stack in forming the unit cell.
[0069] The above description of the unit cell manufacturing apparatus according to an embodiment of the present invention may be substantially similarly applied to the unit cell manufacturing method according to an embodiment of the present invention. For example, the measuring step may measure the measurement value of each of the plurality of unit cells, and the calculating step may calculate the position correction value based on an average value of the measurement values of the plurality of unit cells. Therefore, a detailed description of the unit cell manufacturing method according to an embodiment of the present invention will be omitted.
[0070] FIG. 7 is a graph showing the improvement in process capability index (Ppk) according to the present invention.
[0071] The process capability index is an index that indicates whether a process has sufficient ability to produce products that meet specifications, based on the ratio of process capability to specifications, and a high process capability index means that the accuracy is high, being centered between the upper and lower limits of the specifications. Process capability indexes that indicate process capability include Cp, Cpk, Pp, and Ppk, and among these, Ppk, which uses the overall standard deviation of the long-term process, was measured.
[0072] Referring to the graph, when automatic X-axis correction, which is longitudinal direction L correction, is performed using the vision unit 312 and control unit 313 of the present invention, the process capability index increases by 0.4, from 1.57 to 1.97, compared to when manual correction is performed by directly inputting a position correction value determined by an operator based on the alignment state of the unit cells 30 into the control unit 313. Also, when automatic Y-axis correction, which is width direction W correction, is performed, the process capability index increases by 0.22, from 1.32 to 1.54, compared to when manual correction is performed.
[0073] FIG. 8 is a graph showing the reduction in the defect rate according to the present invention.
[0074] Referring to the graph, it can be seen that when automatic correction is performed using the vision unit 312 and control unit 313 of the present invention, the positional error rate is reduced by 0.56%, from 1.71% to 1.15%, compared to when manual correction is performed by directly inputting a position correction value determined by an operator based on the alignment state of the unit cells 30 into the control unit 313.
[0075] FIG. 9 is a graph showing the reduction in the number of manual corrections performed by the operator according to the present invention.
[0076] Referring to the graph, when automatic correction is performed using the vision unit 312 and control unit 313 of the present invention, the number of manual corrections made by the worker over a one-week period was reduced by approximately 72%, from 176 times to 49 times, compared to when manual correction was performed by the worker observing the alignment state of the unit cells 30 and directly inputting the position correction value determined by the worker into the control unit 313.
[0077] In the case of manual correction, the control unit does not calculate a position correction value based on the position information of each of the unit cells, but rather the operator determines the alignment state based on the position information of each of the unit cells measured by a vision unit or the position information directly confirmed by the operator's eyes, and then directly inputs the position correction value determined by the operator to the control unit. Therefore, in the case of manual correction, not only is the input position correction value inaccurate, but different position correction values are derived and applied depending on the operator. On the other hand, in the case of calculating a position correction value by the control unit and performing automatic correction based on the calculated position correction value, as in the present invention, it is possible to accurately determine the trend of misalignment, calculate a position correction value accordingly, and improve the alignment of the unit cells, thereby reducing the operator's efforts.
[0078] Although an embodiment of the present invention has been described above as an example, it is not intended that the present invention be limited to the above embodiment. Those skilled in the art may appropriately modify an embodiment of the present invention by omitting, changing, or replacing all or part of the configuration of the present invention, or by adding other configurations, without departing from the technical spirit of the present invention, by referring to this specification and the accompanying drawings.
[0079] In this specification, terms such as one side, the other side, one end, and the other end are used to distinguish positions from one another and do not refer to absolute positions. A side referred to in one part of this specification may also be referred to as the other side in another part of this specification. Similarly, a one end referred to in one part of this specification may also be referred to as the other end in another part of this specification.
[0080] In this specification, the terms "first," "second," etc. are used to distinguish components from one another and do not imply a priority or an absolute order between components. A first component in one part of this specification may be referred to as a second component in another part of this specification.
[0081] Terms and expressions in this specification should be interpreted broadly and not in a limiting sense. In this specification, the expression "comprise" does not exclude the presence or addition of one or more other components other than the mentioned configuration. In this specification, expressions in the singular include the plural unless the context clearly excludes otherwise. In addition, each embodiment can be combined with each other, and the content described in a specific embodiment can also be applied to other embodiments unless there is a contradiction. [Explanation of symbols]
[0082] 11: Central electrode 12: Upper electrode 13: Lower electrode 14: Upper separation membrane 15: Lower separation membrane 111: Central electrode transfer section 112: Central electrode cutting part 121: Upper electrode transfer section 122: Upper electrode cutting part 131: Lower electrode transfer section 132: Lower electrode cutting part 20: Laminate 211: Laminate transfer section 212: Laminate cutting section 213: Lamination department 311: Unit cell transfer section 312: Vision Department 313: Control unit
Claims
1. a stack transfer unit configured to transfer a stack including a central electrode, an upper separation film disposed on one surface of the central electrode, a lower separation film disposed on the other surface of the central electrode, an upper electrode disposed on the upper separation film, and a lower electrode disposed on the lower separation film; a central electrode transfer section for supplying the central electrode to the stack transfer section; an upper electrode transfer unit that supplies the upper electrode to the stack transfer unit; a lower electrode transfer unit that supplies the lower electrodes to the stack transfer unit; a laminate cutting unit that cuts the upper and lower separation films of the laminate to form unit cells; a vision unit that measures a measurement value including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; and a control unit that calculates a position correction value for at least one of the central electrode, the upper separation film, the lower separation film, the upper electrode, and the lower electrode based on the measurement values measured by the vision unit, and corrects at least one of the position of the central electrode supplied to the stack transfer unit after the measured stack, the position of the upper electrode supplied to the stack transfer unit, the position of the lower electrode supplied to the stack transfer unit, and the cutting position of the stack cutting unit based on the calculated position correction value; the vision unit measures the measurement values of each of a plurality of unit cells; the control unit calculates the position correction value based on an average value of the measurement values of the plurality of unit cells. Unit cell manufacturing equipment.
2. The vision section includes at least one of an upper vision section disposed on the upper electrode of the unit cell and a lower vision section disposed on the lower electrode of the unit cell; the upper vision unit measures at least one of the distance between one side of the upper isolation film and one side of the tab of the central electrode, the distance between both sides of the upper isolation film and both sides of the upper electrode, the distance between both ends of the upper isolation film and both ends of the upper electrode, and the distance between one end of the upper isolation film and an end of the tab of the central electrode; the lower vision unit measures at least one of a distance between one side of the lower separation film and one side of a tab of the central electrode, a distance between both sides of the lower separation film and both sides of the lower electrode, a distance between both ends of the lower separation film and both ends of the lower electrode, and a distance between one end of the lower separation film and an end of the tab of the central electrode; one end of each of the upper and lower isolation films is an end of each of the upper and lower isolation films that is closer to the tab of the central electrode, The two sides refer to one side and the other side facing each other in the conveying direction, and the two ends refer to one end and the other end facing each other in a direction perpendicular to the conveying direction on a plane. An apparatus for manufacturing a unit cell according to claim 1 .
3. the tab of the upper electrode and the tab of the lower electrode are arranged in an opposite direction to the tab of the central electrode; the tab of the central electrode, the upper separator, and the lower separator each correspond to a side of the tab of the central electrode, the upper separator, and the lower separator, the side being disposed in a direction opposite to a direction in which the unit cells are moved. The manufacturing apparatus for a unit cell according to claim 2 .
4. the tab of the upper electrode and the tab of the lower electrode are spaced apart from each other in the same direction as the tab of the central electrode; one side of each of the upper and lower isolation films is a side of each of both sides of the upper and lower isolation films that is closer to the tab of the central electrode, The one side of the tab of the central electrode is a side of both sides of the tab of the central electrode that is closer to one side of each of the upper and lower separation membranes. The manufacturing apparatus for a unit cell according to claim 2 .
5. When the direction of movement of each of the central electrode, the upper electrode, and the lower electrode is defined as a longitudinal direction, and the direction perpendicular to the longitudinal direction on a plane is defined as a width direction, the control unit corrects the position of the central electrode in a width direction, and corrects the positions of the upper electrode and the lower electrode in a longitudinal direction and a width direction. An apparatus for manufacturing a unit cell according to claim 1 .
6. the control unit adjusts the speed at which the upper electrode and the lower electrode are supplied to the stack transfer unit, and corrects the positions of the upper electrode and the lower electrode in the longitudinal direction. The manufacturing apparatus for a unit cell according to claim 5 .
7. the control unit adjusts the position of an EPC (Edge Position Control) sensor that measures the position of at least one of both end portions of the central electrode, the upper electrode, and the lower electrode, and corrects the positions of the central electrode, the upper electrode, and the lower electrode in the width direction. The manufacturing apparatus for a unit cell according to claim 5 .
8. A stack transfer unit that transfers a stack including a central electrode, an upper separation membrane arranged on one side of the central electrode, a lower separation membrane arranged on the other side of the central electrode, an upper electrode arranged on the upper separation membrane, and a lower electrode arranged on the lower separation membrane; a central electrode transfer section for supplying the central electrode to the stack transfer section; an upper electrode transfer unit that supplies the upper electrode to the stack transfer unit; a lower electrode transfer unit that supplies the lower electrodes to the stack transfer unit; a laminate cutting unit that cuts the upper and lower separation films of the laminate to form unit cells; a vision unit that measures a measurement value including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; and a control unit that calculates a position correction value for at least one of the central electrode, the upper separation film, the lower separation film, the upper electrode, and the lower electrode based on the measurement values measured by the vision unit, and corrects at least one of the position of the central electrode supplied to the stack transfer unit after the measured stack, the position of the upper electrode supplied to the stack transfer unit, and the position of the lower electrode supplied to the stack transfer unit based on the calculated position correction value; the vision portion includes at least one of an upper vision portion disposed on the upper electrode of the unit cell and a lower vision portion disposed on the lower electrode of the unit cell; the upper vision unit measures at least one of the distance between one side of the upper isolation film and one side of the tab of the central electrode, the distance between both sides of the upper isolation film and both sides of the upper electrode, the distance between both ends of the upper isolation film and both ends of the upper electrode, and the distance between one end of the upper isolation film and an end of the tab of the central electrode; the lower vision unit measures at least one of a distance between one side of the lower separation film and one side of a tab of the central electrode, a distance between both sides of the lower separation film and both sides of the lower electrode, a distance between both ends of the lower separation film and both ends of the lower electrode, and a distance between one end of the lower separation film and an end of the tab of the central electrode; one end of each of the upper and lower isolation films is an end of each of the upper and lower isolation films that is closer to the tab of the central electrode, The two sides refer to one side and the other side facing each other in the conveying direction, and the two ends refer to one end and the other end facing each other in a direction perpendicular to the conveying direction on a plane. Unit cell manufacturing equipment.
9. A stack transfer unit that transfers a stack including a central electrode, an upper separation membrane arranged on one side of the central electrode, a lower separation membrane arranged on the other side of the central electrode, an upper electrode arranged on the upper separation membrane, and a lower electrode arranged on the lower separation membrane; a central electrode transfer section for supplying the central electrode to the stack transfer section; an upper electrode transfer unit that supplies the upper electrode to the stack transfer unit; a lower electrode transfer unit that supplies the lower electrodes to the stack transfer unit; a laminate cutting unit that cuts the upper and lower separation films of the laminate to form unit cells; a vision unit that measures a measurement value including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; and a control unit that calculates a position correction value for at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode based on the measurement values measured by the vision unit, and corrects a cutting position of the laminate cutting unit based on the calculated position correction value; the vision portion includes at least one of an upper vision portion disposed on the upper electrode of the unit cell and a lower vision portion disposed on the lower electrode of the unit cell; the upper vision unit measures at least one of the distance between one side of the upper isolation film and one side of the tab of the central electrode, the distance between both sides of the upper isolation film and both sides of the upper electrode, the distance between both ends of the upper isolation film and both ends of the upper electrode, and the distance between one end of the upper isolation film and an end of the tab of the central electrode; the lower vision unit measures at least one of a distance between one side of the lower separation film and one side of a tab of the central electrode, a distance between both sides of the lower separation film and both sides of the lower electrode, a distance between both ends of the lower separation film and both ends of the lower electrode, and a distance between one end of the lower separation film and an end of the tab of the central electrode; one end of each of the upper and lower isolation films is an end of each of the upper and lower isolation films that is closer to the tab of the central electrode, The two sides refer to one side and the other side facing each other in the conveying direction, and the two ends refer to one end and the other end facing each other in a direction perpendicular to the conveying direction on a plane. The control unit corrects the cutting position of the laminate cutting unit in a direction from one side of the tab of the central electrode to the other side when the distance between one side of the upper separation film and one side of the tab of the central electrode measured by the upper vision unit and the distance between one side of the lower separation film and one side of the tab of the central electrode measured by the lower vision unit are greater than a reference value, and corrects the cutting position of the laminate cutting unit in a direction from the other side of the tab of the central electrode to the one side when the distance between the one side of the tab of the central electrode and the other side of the tab of the central electrode measured by the lower vision unit are smaller than the reference value. Unit cell manufacturing equipment.
10. The control unit When the distance between one side of the upper isolation film and one side of the upper electrode measured by the upper vision unit is greater than a reference value and the distance between the other side of the upper isolation film and the other side of the upper electrode is smaller than a reference value, the upper electrode is corrected in a direction from the other side of the upper electrode to the one side thereof, When the distance between one side of the lower isolation film and one side of the lower electrode measured by the lower vision unit is greater than a reference value and the distance between the other side of the lower isolation film and the other side of the lower electrode is smaller than a reference value, the lower electrode is corrected in a direction from the other side of the lower electrode to the one side thereof, When the distance between one end of the upper isolation film and one end of the upper electrode measured by the upper vision unit is greater than a reference value and the distance between the other end of the upper isolation film and the other end of the upper electrode is smaller than a reference value, the upper electrode is corrected in a direction from the other end of the upper electrode to the one end thereof, When the distance between one end of the lower isolation film and one end of the lower electrode measured by the lower vision unit is greater than a reference value and the distance between the other end of the lower isolation film and the other end of the lower electrode is smaller than a reference value, the lower electrode is corrected in a direction from the other end to the one end. The manufacturing apparatus for a unit cell according to claim 2 .
11. The control unit If the distance between one end of the upper separation film and the tab end of the central electrode measured by the upper vision unit is greater than a reference value, the position of the central electrode is corrected in a direction from one end of the upper separation film to the other end thereof, and if the distance is smaller than the reference value, the position of the central electrode is corrected in a direction from the other end of the upper separation film to the one end thereof; If the distance between one end of the lower separator and the tab end of the central electrode measured by the lower vision unit is greater than a reference value, the position of the central electrode is corrected in a direction from one end of the lower separator to the other end, and if the distance is smaller than the reference value, the position of the central electrode is corrected in a direction from the other end of the lower separator to the one end. The manufacturing apparatus for a unit cell according to claim 2 .
12. At least one of the number of the unit cells used in calculating the position correction value in the control unit, a position correction value at which correction starts, a percentage of an actual position correction value relative to the position correction value, a first PLC transmission period and a second PLC transmission period for transmitting the position correction value to a PLC (Programmable Logic Controller), and a period for applying the second PLC transmission period are configurable; the second PLC transmission period is a period applied immediately after the type of the unit cell is changed, The first PLC transmission period is a period that is applied after the second PLC transmission period is applied during a period in which the second PLC transmission period is applied. An apparatus for manufacturing a unit cell according to claim 1 .
13. and when calculating the position correction value, the control unit excludes at least one of the measurement values of the n-th unit cell that is outside a reference range and the measurement value that has a difference from the measurement value of the (n-1)-th unit cell that is equal to or greater than a reference value from the measurement values that are the basis of calculation. An apparatus for manufacturing a unit cell according to claim 1 .
14. forming a stack including a central electrode, an upper isolation film disposed on one surface of the central electrode, a lower isolation film disposed on the other surface of the central electrode, an upper electrode disposed on the upper isolation film, and a lower electrode disposed on the lower isolation film; cutting the upper and lower isolation films of the stack to form unit cells; measuring a measurement value including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; calculating a position correction value for at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode based on the measurement value; and correcting at least one of a position of the central electrode in forming the stack, a position of the upper electrode in forming the stack, a position of the lower electrode in forming the stack, and a cutting position of the stack in forming the unit cell, based on the calculated position correction value; The step of measuring the measurement value includes measuring the measurement value for each of a plurality of unit cells; the step of calculating the position correction value calculates the position correction value based on an average value of the measurement values of the plurality of unit cells. Method for manufacturing unit cells.
15. forming a laminate including a central electrode, an upper isolation film disposed on one side of the central electrode, a lower isolation film disposed on the other side of the central electrode, an upper electrode disposed on the upper isolation film, and a lower electrode disposed on the lower isolation film; cutting the upper and lower isolation films of the stack to form unit cells; measuring a measurement value including position information of at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode of the unit cell; calculating a position correction value for at least one of the central electrode, the upper isolation film, the lower isolation film, the upper electrode, and the lower electrode based on the measurement value; and correcting at least one of a position of the central electrode in forming the stack, a position of the upper electrode in forming the stack, and a position of the lower electrode in forming the stack based on the calculated position correction value; Method for manufacturing unit cells.
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