Electrode sheet manufacturing apparatus
The electrode sheet manufacturing apparatus addresses temperature-induced thickness inconsistencies by using a temperature-controlled pressing force adjustment to maintain uniform elongation and prevent breakage in the uncoated portion.
Patent Information
- Application Number
- JP2024086690
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-05-28
- Publication Date
- 2025-12-10
AI Technical Summary
The temperature change of rubber rolls during the manufacturing process affects the uniform thickness of the uncoated portion in electrode sheets, leading to inconsistent elongation and potential breakage.
An electrode sheet manufacturing apparatus that includes a temperature measuring device to monitor the rubber roll temperature and adjusts the pressing force of the pressure roll based on a predetermined relationship to maintain consistent elongation, using a control device to regulate the pressing force of the cylinder driving device.
The apparatus ensures uniform thickness and reduces variations in the uncoated portion's elongation by controlling the pressing force in response to temperature changes, preventing breakage and ensuring consistent production.
Smart Images

Figure 2025179746000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to an electrode sheet manufacturing apparatus. [Background technology]
[0002] Japanese Patent Application Laid-Open Publication No. 2023-36089 discloses a method for manufacturing an electrode in a precursor sheet (electrode sheet) having a metal foil, a coated portion on the metal foil coated with an electrode material, and an uncoated portion on the metal foil not coated with the electrode material, in which the uncoated portion is pressed with a pair of elastic rolls (rubber rolls). The coated portion and the uncoated portion are pressed separately to adjust the difference in elongation. If the uncoated portion is pressed with a roll other than the elastic roll, tensile force generates voids inside the uncoated portion. These voids may cause the uncoated portion to break. By pressing the uncoated portion with a pair of elastic rolls, compressive force and deformation force can be applied to the same location of the uncoated portion. The compressive force is generated by contact between the pair of elastic rolls and deformation of the elastic body of the elastic roll. This allows the uncoated portion to be stretched while suppressing breakage. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2023-36089 Summary of the Invention [Problem to be solved by the invention]
[0004] The inventors of the present application have found that in the manufacturing method disclosed in the above-mentioned publication, if the temperature of the rubber roll changes due to, for example, heat generated by stretching, the amount of elongation of the unformed portion (uncoated portion) changes, making it difficult to achieve a uniform thickness for the unformed portion after stretching. [Means for solving the problem]
[0005] The electrode sheet manufacturing apparatus disclosed herein is an apparatus for manufacturing an electrode sheet having a current collector made of a long metal foil, an unformed portion set along the length of the current collector at a predetermined position in the width direction, and an active material layer formed on the current collector except for the unformed portion, and includes: a conveying device that conveys the electrode sheet along a predetermined conveying path; a support roll that is arranged on the conveying path and extends in the width direction of the electrode sheet to support a first side of the electrode sheet conveyed along the conveying path; a pressure roll that has a rubber layer on its surface and is arranged on a second side of the electrode sheet facing the support roll and extends in the width direction of the electrode sheet; a driving device that drives at least one of the support roll and the pressure roll so that the pressure roll is pressed against the support roll; a temperature measuring device that measures the temperature of the rubber layer of the pressure roll; and a control device. The pressure roll is configured to sandwich the unformed portion of the electrode sheet except for the active material layer between the support roll and the pressure roll. The control device includes a memory unit that stores a predetermined relationship between the temperature measured by the temperature measuring device and the pressing force of the drive device, and a control unit that controls the pressing force of the drive device based on the temperature measured by the temperature measuring device and the relationship stored in the memory unit.
[0006] According to such an electrode sheet manufacturing device, by controlling the pressing force based on a predetermined relationship between the temperature of the rubber layer of the pressing roll and the pressing force pressing the unformed portion, it is possible to suppress changes in the amount of elongation of the unformed portion even if the temperature of the rubber layer changes. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a flow diagram of the manufacturing process of the electrode sheet 10. [Figure 2] FIG. 2 is a schematic diagram of the electrode sheet 10. [Figure 3] FIG. 3 is a schematic side view of the electrode sheet manufacturing apparatus 1. As shown in FIG. [Figure 4] FIG. 4 is a front view of the roll press machine 60. As shown in FIG. [Figure 5] FIG. 5 is a cross-sectional view taken along the line AA shown in FIG. [Figure 6] FIG. 6 is a graph showing the relationship between the temperature of the rubber portion 62ab and the pressing force of the cylinder driving device 73. [Figure 7] FIG. 7 is a graph plotting the temperature of the rubber portion 62ab and the amount of elongation of the uncoated portion 12a. DETAILED DESCRIPTION OF THE INVENTION
[0008] An embodiment of the technology disclosed herein will be described below with reference to the drawings. The embodiment described here is, of course, not intended to limit the present invention. The drawings are schematic and do not necessarily reflect the actual product. Furthermore, the same reference numerals are appropriately used for components and parts that perform the same function, and redundant explanations will be omitted where appropriate.
[0009] Fig. 1 is a flow diagram of the production of an electrode sheet 10 (see Fig. 2) by an electrode sheet manufacturing apparatus 1. As shown in Fig. 1, the production of an electrode sheet 10 by the electrode sheet manufacturing apparatus 1 includes a conveying step S1, a measuring step S2, a kneading step S3, a coating step S4, a drying step S5, and a roll press step S6. However, the production of an electrode sheet 10 by the electrode sheet manufacturing apparatus 1 may include other steps.
[0010] <Electrode sheet manufacturing equipment 1> An electrode sheet 10 that constitutes an electricity storage device is manufactured in an electrode sheet manufacturing apparatus 1. The electrode sheet 10 constitutes the positive electrode sheet or negative electrode sheet of an electrode body housed inside the electricity storage device. An electricity storage device refers to a device that can be repeatedly charged and discharged, and is a concept that encompasses so-called storage batteries (i.e., chemical batteries) such as lithium ion secondary batteries, nickel-metal hydride batteries, and nickel-cadmium batteries, as well as capacitors (i.e., physical batteries) such as electric double layer capacitors. Below, as an example, the configuration of an electrode sheet 10 used in a lithium ion secondary battery will be described, along with the electrode sheet manufacturing apparatus 1 that manufactures the electrode sheet 10.
[0011] <Electrode sheet 10> FIG. 2 is a schematic diagram of an electrode sheet 10. As shown in FIG. 2, the electrode sheet 10 includes a current collector 12 and an electrode active material layer 14. The current collector 12 is a member made of a long metal foil. The current collector 12 is a strip-shaped metal member. A metal material having a required conductivity can be used for the current collector 12. For example, aluminum or an aluminum alloy can be used for the positive electrode current collector foil. For example, copper or a copper alloy can be used for the negative electrode current collector foil. The electrode active material layer 14 is applied to a predetermined position on the current collector 12. The electrode active material layer 14 is formed on at least one surface of the strip-shaped current collector 12. In this embodiment, the electrode active material layer 14 is formed on both surfaces of the current collector 12. The electrode active material layer 14 is a layer containing an electrode active material. For example, a lithium transition metal composite oxide can be used as the positive electrode active material. Examples of the negative electrode active material that can be used include carbon materials, silicon-based materials, and mixed oxides thereof. The electrode active material layer may contain additives other than the electrode active material, such as a binder and a conductive material.
[0012] The electrode sheet 10 is formed by applying an electrode mixture slurry that will become the electrode active material layer 14 to a current collector 12 and drying the applied slurry. The current collector 12 has an uncoated portion 12a and a coated portion 12b. The uncoated portion 12a is a portion of the current collector 12 that is not coated with the electrode active material layer 14. The uncoated portion 12a is set along the length of the current collector 12 at a predetermined position in the width direction. In this embodiment, the uncoated portion 12a is set at both ends of the electrode sheet 10 in the width direction. The uncoated portion 12a is an example of an unformed portion set along the length of the current collector 12 at a predetermined position in the width direction, where the electrode active material layer 14 is not formed. The electrode active material layer 14 is formed on a portion of the current collector 12 excluding the uncoated portion 12a. Here, the electrode active material layer 14 is formed by coating the portion of the current collector 12 excluding the uncoated portion 12a. The coated portions 12b are disposed between the uncoated portions 12a on both ends of the electrode sheet 10. The electrode mixture slurry is applied to the coated portions 12b. As a result, an electrode active material layer 14 is formed on the coated portions 12b of the current collector 12. In other words, the electrode active material layer 14 is disposed between the uncoated portions 12a on both ends of the electrode sheet 10 in the width direction.
[0013] <Conveyor device 15> In the conveying step S1 shown in FIG. 1, the electrode sheet 10 is conveyed. FIG. 3 is a schematic side view of the electrode sheet manufacturing apparatus 1. The conveying step S1 can be achieved by a conveying device 15. The conveying device 15 conveys the long electrode sheet 10 along a predetermined conveying path 18. For example, a motor is used for the conveying device 15. As shown in FIG. 3, the conveying device 15 includes an unwinding roll 15a and a take-up roll 15b. The unwinding roll 15a is disposed upstream of the roll press machine 60 in the conveying direction. The take-up roll 15b is disposed downstream of the roll press machine 60 in the conveying direction. However, the conveying device 15 is not limited to the unwinding roll 15a and the take-up roll 15b. For example, the conveying device 15 may include rolls in addition to the unwinding roll 15a and the take-up roll 15b.
[0014] <Measuring process S2, kneading process S3, coating process S4, drying process S5> In the measuring step S2 shown in FIG. 1, raw materials for the electrode active material layer 14 (see FIG. 2) are measured. The measuring can be achieved, for example, by a measuring device (not shown) having a balance, a load cell, or the like. The measured raw materials for the electrode active material layer 14 are mixed in the kneading step S3. The kneading step S3 can be achieved by a kneading device (not shown). The raw materials for the electrode active material layer 14, which have been made into a slurry by the kneading device, are applied to the current collector 12 (see FIG. 2) in the coating step S4. The coating step S4 can be achieved, for example, by a coating device (not shown) such as a slit coater, gravure coater, die coater, or comma coater. In the drying step S5, the applied raw materials for the electrode active material layer 14 in a slurry state are dried. The drying step S5 can be achieved, for example, by a drying device (not shown) that emits hot air or infrared rays.
[0015] <Roll Press Machine 60> In the roll press step S6, the electrode sheet 10 is pressed. The roll press step S6 can be achieved by a roll press machine 60 shown in FIG. 3. As shown in FIG. 3, the electrode sheet 10 is pressed by the roll press machine 60 midway along the conveying path 18. The electrode sheet 10 is supplied by an unwinding roll 15a. The electrode sheet 10 pressed by the roll press machine 60 is taken up by a take-up roll 15b. The electrode sheet manufacturing apparatus 1 includes a control device 100 that controls the unwinding roll 15a, the take-up roll 15b, and the roll press machine 60.
[0016] FIG. 4 is a front view of a roll press machine 60. The roll press machine 60 according to this embodiment is a device that presses the uncoated portion 12 a of the electrode sheet 10 with a rubber roll before or after pressing the electrode active material layer 14. When the uncoated portion 12 a is pressed by the rubber roll, the uncoated portion 12 a receives a reaction force from the elastic deformation and compressive deformation of the rubber roll, and the portion pressed by the roll is pressed and stretched. As a result, the uncoated portion 12 a can be stretched while preventing breakage of the uncoated portion 12 a. In view of this function, a device that presses the uncoated portion 12 a of the electrode sheet 10 with a rubber roll may be appropriately referred to as an EPS (Elasticity Powered Stretching) device. In addition to the roll press machine 60, the electrode sheet manufacturing apparatus 1 may also include a device that presses the electrode active material layer 14.
[0017] The roll press machine 60 includes a support roll 61 , a pressure roll 62 , a press pressure adjusting mechanism 70 , a roll driving device 80 , and a temperature measuring device 90 .
[0018] <Support Roll 61> The support roll 61 is disposed on the conveying path 18 (see FIG. 3). The support roll 61 extends in the width direction of the electrode sheet 10. The support roll 61 supports the lower surface 10D of the electrode sheet 10 conveyed along the conveying path 18 in the width direction of the electrode sheet 10. The lower surface 10D is an example of the first surface in the present invention. The support roll 61 is disposed below the pressing roll 62. The support roll 61 is a rubber roll that presses the uncoated portion 12a of the electrode sheet 10 together with the pressing roll 62. The support roll 61 comprises a main body portion 61a and two shaft portions 61b.
[0019] FIG. 5 is a cross-sectional view of the AA cross section shown in FIG. 4. However, FIG. 5 illustrates a state in which the uncoated portion 12a is pressed by the support roll 61 and the pressure roll 62. As shown in FIG. 5, the main body 61a includes a shaft portion 61aa and a rubber portion 61ab. The shaft portion 61aa is made of metal. The material forming the shaft portion 61aa is not particularly limited, but is, for example, a material with relatively high hardness such as SUS304 (stainless steel). The rubber portion 61ab is arranged to cover at least the outer peripheral surface of the shaft portion 61aa. The material forming the rubber portion 61ab is, for example, nitrile rubber (NBR). The support roll 61 presses the uncoated portion 12a of the electrode sheet 10 with the rubber portion 61ab.
[0020] The support roll 61 is rotated in a predetermined direction by a roll driving device 80 (see FIG. 4), which will be described later. In this embodiment, the support roll 61 rotates in the direction of arrow R1 shown in FIG. 5. At this time, the electrode sheet 10 is transported from left to right as viewed in the drawing. That is, the left side in FIG. 5 is the upstream side in the transport direction, and the right side in FIG. 5 is the downstream side in the transport direction.
[0021] As shown in Fig. 4, both shaft portions 61b are inserted into the main body portion 61a. Both shaft portions 61b are inserted into shaft portions 61aa (see Fig. 5) of the main body portion 61a. Both shaft portions 61b extend to the outside in the axial direction of the support roll 61. Although not shown, bearings, gap screws for adjusting the gap between the support roll 61 and the pressure roll 62, and the like are attached to both shaft portions 61b.
[0022] <Pressing Roll 62> As shown in FIG. 5, the pressing roll 62 is disposed on the side of the upper surface 10U of the electrode sheet 10 so as to face the support roll 61. The pressing roll 62 extends in the width direction of the electrode sheet 10. The pressing roll 62 is configured to sandwich the uncoated portions 12a of the electrode sheet 10, excluding the electrode active material layer 14 (see FIG. 2), between the pressing roll 62 and the support roll 61. The upper surface 10U is an example of the second surface of the present invention. The axial center of the pressing roll 62 and the axial center of the support roll 61 are aligned in the vertical direction. As shown in FIG. 4, the pressing roll 62 is a rubber roll that presses the uncoated portions 12a of the electrode sheet 10 together with the support roll 61. The pressing roll 62 is not disposed above the electrode active material layer 14 of the electrode sheet 10. In this embodiment, as described above, the uncoated portions 12a of the electrode sheet 10 are provided at both ends in the width direction of the electrode sheet 10. Therefore, as shown in FIG. 4, the pressure rolls 62 are respectively arranged above the uncoated portions 12a at both ends in the width direction of the electrode sheet 10. Hereinafter, of the two pressure rolls 62, the one arranged on the left will also be referred to as the pressure roll 62L, and the one arranged on the right will also be referred to as the pressure roll 62R. However, the name "pressure roll 62" will be used appropriately in descriptions that apply to both the pressure rolls 62L and 62R. The left and right pressure rolls 62L and 62R each have a main body portion 62a. The left and right pressure rolls 62L and 62R have common shaft portions 62b.
[0023] The left and right pressing rolls 62L, 62R each have a rubber layer on their surface. As shown in FIG. 5, the main body 62a of the left pressing roll 62L includes a shaft 62aa and a rubber portion 62ab. The shaft 62aa is made of metal. The material forming the shaft 62aa is not particularly limited, but is, for example, a material with relatively high hardness such as SUS304 (stainless steel). The rubber portion 62ab is arranged to cover at least the outer peripheral surface of the shaft 62aa. The material forming the rubber portion 62ab is not particularly limited, but is, for example, nitrile rubber (NBR). The pressing roll 62 presses the uncoated portion 12a of the electrode sheet 10 with the rubber portion 62ab.
[0024] The right pressing roll 62R is arranged alongside the left pressing roll 62L in the width direction of the electrode sheet 10. The right pressing roll 62R presses, with a rubber part 62ab, a part of the uncoated portion 12a that is different from the part pressed by the left pressing roll 62L (here, the uncoated portion 12a at the right end of the electrode sheet 10). The right pressing roll 62R has a similar configuration to the left pressing roll 62L.
[0025] As shown in Fig. 4, both shaft portions 62b are inserted into the main body portions 62a of the left and right pressing rolls 62L, 62R. Both shaft portions 62b are inserted into the shaft portions 62aa (see Fig. 5) of the main body portions 62a. Both shaft portions 62b extend to the outside in the axial direction of the two pressing rolls 62. Although not shown, both shaft portions 62b are fitted with bearings, gap screws for adjusting the gap between the support roll 61 and the pressing roll 62, and the like.
[0026] As shown in Fig. 5, when the support roll 61 and the pressure roll 62 sandwich the electrode sheet 10 and the support roll 61 rotates in the direction of arrow R1, the pressure roll 62 receives a force rotating in the direction of arrow R2 via the electrode sheet 10. Alternatively, when the electrode sheet 10 is not disposed and the support roll 61 and the pressure roll 62 are in contact, the pressure roll 62 receives a force rotating in the direction of arrow R2 due to the force of the rotation of the support roll 61. As a result, the pressure roll 62 rotates in the direction of arrow R2. In other words, the pressure roll 62 rotates in conjunction with the rotation of the support roll 61.
[0027] <Press pressure adjustment mechanism 70> As shown in FIG. 4, the press pressure adjusting mechanism 70 includes a press cylinder 71, a roll chock 72, a cylinder driving device 73, and a support portion 74.
[0028] The press cylinders 71 press the pressure roll 62 against the support roll 61. The press cylinders 71 are arranged one on each side of the pressure roll 62, one on the outside. In FIG. 4, the press cylinder 71 arranged to the left of the electrode sheet 10 is referred to as press cylinder 71L, and the press cylinder 71 arranged to the right of the electrode sheet 10 is also referred to as press cylinder 71R. However, when describing matters common to the press cylinders 71L and 71R, they will also be referred to as press cylinder 71. In this embodiment, the press cylinder 71 is a pneumatic cylinder. The press cylinder 71 includes a rod 71a. The rod 71a is connected to a roll chock 72. The roll chock 72 is a member that rotatably supports both shaft portions 62b of the pressure roll 62. When the press cylinders 71L and 71R are driven and the respective rods 71a are lowered, the pressure rolls 62L and 62R are lowered. When the press cylinders 71L and 71R are driven and the rods 71a thereof are raised, the pressing rolls 62L and 62R are raised.
[0029] The cylinder driving device 73 is a device that presses the pressure roll 62 against the support roll 61 with the electrode sheet 10 sandwiched therebetween. The cylinder driving device 73 is an example of a driving device in the present invention. The driving device drives at least one of the support roll 61 and the pressure roll 62 so that the pressure roll 62 is pressed against the support roll 61. Here, the cylinder driving device 73 drives the pressure roll 62. However, the driving device may also drive the support roll 61 or both the support roll 61 and the pressure roll 62. The cylinder driving device 73 is connected to a control device 100 (see FIG. 3).
[0030] In this embodiment, the cylinder drive device 73 is configured to independently drive the press cylinder 71L and the press cylinder 71R. That is, the cylinder drive device 73 independently drives the press rolls 62L, 62R arranged above the uncoated portions 12a at both ends of the electrode sheet 10 in the width direction. As shown in FIG. 4, the cylinder drive device 73 includes a left cylinder drive device 73L that presses the left press roll 62L against the support roll 61 and a right cylinder drive device 73R that presses the right press roll 62R against the support roll 61. The left cylinder drive device 73L is connected to the left press cylinder 71L. The left cylinder drive device 73L drives the left press cylinder 71L, thereby raising and lowering the rod 71a of the left press cylinder 71L. The right cylinder drive device 73R is connected to the right press cylinder 71R. The right cylinder drive device 73R drives the right press cylinder 71R. This causes the rod 71a of the right press cylinder 71R to move up and down.
[0031] The left and right cylinder drive devices 73L, 73R are each configured to be able to change the pressing force of the press cylinder 71 based on an input from the control device 100. Here, the left cylinder drive device 73L is equipped with an electro-pneumatic regulator 73La. The electro-pneumatic regulator 73La controls the output air pressure in response to an input signal (for example, in response to an input voltage or current). Typically, the electro-pneumatic regulator 73La outputs air pressure proportional to the input voltage. The right cylinder drive device 73R is also equipped with an electro-pneumatic regulator 73Ra similar to the left cylinder drive device 73L. In the following, the term "electro-pneumatic regulator 73a" will be used appropriately in descriptions that apply to both the left and right electro-pneumatic regulators 73La, 73Ra. However, the cylinder drive device 73 is not limited to one equipped with the electro-pneumatic regulator 73a. Furthermore, the electro-pneumatic regulator 73a is not limited to one that is voltage-controlled.
[0032] The support portion 74 is a member that supports the support roll 61. The support portion 74 supports both shaft portions 61b of the support roll 61.
[0033] <Roll driving device 80> The roll driving device 80 is connected to the support roll 61. The roll driving device 80 is a device that rotates the support roll 61. In this embodiment, the roll driving device 80 rotates the support roll 61 in the direction of arrow R1 shown in FIG. 5. The configuration of the roll driving device 80 is not particularly limited, but here, the roll driving device 80 includes an electric motor 81. The electric motor 81 is connected to the control device 100 (see FIG. 3). Note that the roll driving device 80 may also rotate the pressing roll 62.
[0034] <Temperature measuring device> The temperature measuring device 90 measures the temperature of the rubber portion 62ab of the pressure roll 62. In this embodiment, the temperature measuring device 90 includes a left temperature measuring device 90L that measures the temperature of the rubber portion 62ab of the left pressure roll 62L, and a right temperature measuring device 90R that measures the temperature of the rubber portion 62ab of the right pressure roll 62R. In this embodiment, the temperature measuring devices 90L and 90R are non-contact temperature measuring devices. The temperature measuring devices 90L and 90R are, for example, radiation thermometers. However, the type of the temperature measuring devices 90L and 90R is not particularly limited.
[0035] <Control device 100> 3, the control device 100 includes a temperature acquisition unit 101, a pressure storage unit 102, a pressure control unit 103, and a warning unit 104. The configuration of the control device 100 is not particularly limited. The control device 100 includes, for example, a microcomputer. The microcomputer may include, for example, an interface (I / F) that receives data and the like from an external device, a central processing unit (CPU) that executes program instructions, a read only memory (ROM) that stores the program executed by the CPU, a random access memory (RAM) used as a working area for expanding the program, and a storage device such as a memory that stores the program and various data.
[0036] The temperature acquisition unit 101 acquires the surface temperature of the rubber part 62ab of the pressing roll 62 from the temperature measurement device 90. Here, the temperature acquisition unit 101 includes a first temperature acquisition unit 101L that acquires the surface temperature of the rubber part 62ab of the left pressing roll 62L from the left temperature measurement device 90L, and a second temperature acquisition unit 101R that acquires the surface temperature of the rubber part 62ab of the right pressing roll 62R from the right temperature measurement device 90R.
[0037] The pressure memory unit 102 stores a predetermined relationship between the temperature measured by the temperature measuring device 90 and the pressing force of the cylinder driving device 73. Fig. 6 is a graph showing the relationship between the temperature of the rubber portion 62ab and the pressing force of the cylinder driving device 73. As shown in Fig. 6, the relationship stored in the pressure memory unit 102 is such that the pressing force of the cylinder driving device 73 decreases as the temperature of the rubber portion 62ab increases.
[0038] Graph G1 in Fig. 7 is a graph plotting the temperature of the rubber portion 62ab and the elongation of the uncoated portion 12a of the electrode sheet 10 when the uncoated portion 12a is rolled with a constant pressing force of the cylinder driving device 73. As shown in graph G1, the rubber portion 62ab generates heat when the uncoated portion 12a is rolled, and as its temperature rises, the elongation of the uncoated portion 12a tends to increase. Therefore, in order to make the elongation of the uncoated portion 12a more uniform, it is necessary to weaken the pressing force of the cylinder driving device 73 as the temperature of the rubber portion 62ab increases.
[0039] According to the inventors' findings, when the temperatures of the rubber portions 61ab and 62ab increase, the rubber portions 61ab and 62ab soften. When the rubber portions 61ab and 62ab soften, the amount of elastic deformation of the rubber portions 61ab and 62ab increases, and the amount of elongation of the uncoated portion 12a increases. This reduces the thickness of the uncoated portion 12a.
[0040] The pressure control unit 103 controls the pressing force of the cylinder drive device 73 based on the temperature measured by the temperature measuring device 90 and the relationship stored in the pressure memory unit 102. In this embodiment, the pressure control unit 103 applies a voltage corresponding to the pressing force of the cylinder drive device 73 to be applied to the electropneumatic regulator 73a. In this embodiment, the pressure control unit 103 includes a first pressure control unit 103L that controls the pressing force of the left cylinder drive device 73L based on the temperature measured by the left temperature measuring device 90L and the relationship stored in the pressure memory unit 102, and a second pressure control unit 103R that controls the pressing force of the right cylinder drive device 73R based on the temperature measured by the right temperature measuring device 90R and the relationship stored in the pressure memory unit 102.
[0041] The warning unit 104 issues a warning when the difference between the temperature measured by the left temperature measuring device 90L and the temperature measured by the right temperature measuring device 90R exceeds a predetermined temperature. Here, "warning" can broadly mean various signals, such as alerting a supervisor of the electrode sheet manufacturing apparatus 1, sending a signal indicating an abnormality to a system connected to the electrode sheet manufacturing apparatus 1, or stopping the electrode sheet manufacturing apparatus 1. Here, when the difference between the temperature measured by the left temperature measuring device 90L and the temperature measured by the right temperature measuring device 90R exceeds a predetermined temperature, the warning unit 104 considers this to be an abnormality and stops the electrode sheet manufacturing apparatus 1. The predetermined temperature difference is set to a temperature difference that can occur when there is an abnormality in the electrode sheet manufacturing apparatus 1 or the electrode sheet 10.
[0042] The control device 100 may be provided with multiple warning units that issue warnings of different levels, for example, a warning unit that issues a warning to call attention and a warning unit that issues a warning to stop the electrode sheet manufacturing apparatus 1. The electrode sheet manufacturing apparatus 1 may be provided with a display device (for example, a display or lamp) not shown that displays warnings.
[0043] <Press Control> The operation of pressing the uncoated portion 12a of the electrode sheet 10 by the roll press machine 60 will be described below.
[0044] First, the control device 100 (see FIG. 3) controls the cylinder drive device 73 and the roll drive device 80. The left and right cylinder drive devices 73L and 73R lower the rods 71a of the left and right press cylinders 71L and 71R, respectively. The left and right cylinder drive devices 73L and 73R lower the left and right rods 71a to predetermined positions. This causes the left and right pressing rolls 62L and 62R to lower. Then, the roll drive device 80 rotates the support roll 61. In this embodiment, as shown in FIG. 5, the roll drive device 80 rotates the support roll 61 in the direction of arrow R1. When the pressing roll 62 lowers, the uncoated portion 12a is compressed in a portion sandwiched between the support roll 61 and the pressing roll 62L and in a portion sandwiched between the support roll 61 and the pressing roll 62R.
[0045] As shown in FIG. 5, the rubber portion 61ab of the support roll 61 and the rubber portion 62ab of the pressing roll 62 are compressed and deformed near the uncoated portion 12a. When the support roll 61 and the pressing roll 62 rotate, the compressed portions of the rubber portions 61ab, 62ab return to their original shapes due to elasticity. At this time, the portions of the rubber portions 61ab, 62ab that have moved near the uncoated portion 12a are compressed. In this way, when the support roll 61 and the pressing roll 62 rotate and the electrode sheet 10 is transported, the rubber portions 61ab, 62ab repeatedly elastically deform along the circumferential direction of the support roll 61 and the pressing roll 62 near the uncoated portion 12a. The repeated elastic deformation of the rubber portions 61ab, 62ab causes the rubber portions 61ab, 62ab to generate heat.
[0046] The first pressure control unit 103L and the second pressure control unit 103R control the pressing forces of the left and right cylinder drive units 73L and 73R, respectively, based on the temperatures measured by the left and right temperature measurement devices 90L and 90R and the relationship (see FIG. 6) stored in the pressure memory unit 102. For example, when the temperature of the rubber portion 62ab of the left pressure roll 62L increases, the first pressure control unit 103L reduces the pressing force of the left cylinder drive unit 73L based on the relationship shown in FIG. 6. As a result, when the temperature of the rubber portion 62ab of the pressure roll 62L decreases, the pressing force of the left cylinder drive unit 73L is increased. By repeating this control, the thickness of the left uncoated portion 12a after rolling becomes uniform. Furthermore, depending on the conditions, the temperature of the left rubber portion 62ab and the pressing force of the left cylinder drive unit 73L also approach a constant value, with minimal fluctuation. The same applies to the control of the right cylinder drive unit 73R.
[0047] Graph G2 in Fig. 7 is a graph plotting the temperature of the rubber portion 62ab and the elongation of the uncoated portion 12a of the electrode sheet 10 when the uncoated portion 12a is rolled while controlling the pressing force of the cylinder drive device 73. As shown in graph G2, when the uncoated portion 12a is rolled while controlling the pressing force of the cylinder drive device 73, the variation in the elongation of the uncoated portion 12a due to the temperature of the rubber portion 62ab is greatly reduced compared to when the pressing force is constant. Therefore, the variation in the thickness of the uncoated portion 12a due to the position in the conveyance direction of the electrode sheet 10 is also reduced.
[0048] If there is any problem and the difference between the temperature measured by the left temperature measuring device 90L and the temperature measured by the right temperature measuring device 90R exceeds a predetermined temperature, the control device 100 stops the electrode sheet manufacturing apparatus 1.
[0049] <Effects of the embodiment> The following describes the effects that can be achieved by the electrode sheet manufacturing apparatus 1 according to this embodiment.
[0050] The electrode sheet manufacturing apparatus 1 according to this embodiment is a manufacturing apparatus for manufacturing an electrode sheet 10 having a current collector 12 made of a long metal foil, uncoated portions 12a set along the length of the current collector 12 at predetermined positions in the width direction, and an electrode active material layer 14 formed on the current collector 12 except for the uncoated portions 12a, and is provided with a conveying device 15 that conveys the electrode sheet 10 along a predetermined conveying path 18, and an electrode active material layer 14 that is arranged on the conveying path 18 and extends in the width direction of the electrode sheet 10 and is conveyed along the conveying path 18. The apparatus includes a support roll 61 that supports the lower surface 10D of the electrode sheet 10, a pressing roll 62 that has a rubber portion 62ab on its surface and is arranged on the side of the upper surface 10U of the electrode sheet 10 so as to face the support roll 61 and extend in the width direction of the electrode sheet 10, a cylinder driving device 73 that drives at least one of the support roll 61 and the pressing roll 62 so that the pressing roll 62 is pressed against the support roll 61, a temperature measuring device 90 that measures the temperature of the rubber portion 62ab of the pressing roll 62, and a control device 100. The pressing roll 62 is configured to sandwich the uncoated portion 12a of the electrode sheet 10, excluding the electrode active material layer 14, between itself and the support roll 61. The control device 100 includes a pressure memory unit 102 that stores a predetermined relationship between the temperature measured by the temperature measuring device 90 and the pressing force of the cylinder driving device 73, and a pressure control unit 103 that controls the pressing force of the cylinder driving device 73 based on the relationship between the temperature measured by the temperature measuring device 90 and the pressure memory unit 102.
[0051] According to this electrode sheet manufacturing apparatus 1, by controlling the pressing force of the cylinder drive device 73 based on a predetermined relationship between the temperature of the rubber portion 62ab of the pressing roll 62 and the pressing force pressing the uncoated portion 12a, it is possible to suppress changes in the amount of elongation of the uncoated portion 12a even if the temperature of the rubber portion 62ab changes due to heat generated by rolling. As a result, the thickness of the uncoated portion 12a can be made more uniform.
[0052] In this embodiment, the relationship stored in the pressure memory unit 102 is such that the higher the temperature of the rubber portion 62ab, the weaker the pressing force of the cylinder drive device 73. As described above, according to the knowledge of the present inventors, when the temperature of the rubber portion 62ab is high, the amount of elongation of the uncoated portion 12a tends to increase. Therefore, by controlling the pressing force of the cylinder drive device 73 based on the relationship that weakens the pressing force of the cylinder drive device 73 as the temperature of the rubber portion 62ab increases, it is possible to suppress changes in the amount of elongation of the uncoated portion 12a.
[0053] In this embodiment, the temperature measuring device 90 is a non-contact type temperature measuring device. With this configuration, the temperature of the rotating pressure roll 62 can be easily measured.
[0054] The electrode sheet manufacturing apparatus 1 according to this embodiment includes a left pressure roll 62L and a right pressure roll 62R that is arranged alongside the left pressure roll 62L in the width direction of the electrode sheet 10 and that uses its rubber portion 62ab to press a portion of the uncoated portion 12a different from the portion pressed by the pressure roll 62L. The electrode sheet manufacturing apparatus 1 also includes a left temperature measuring device 90L that measures the temperature of the rubber portion 62ab of the left pressure roll 62L and a right temperature measuring device 90R that measures the temperature of the rubber portion 62ab of the right pressure roll 62R. The control device 100 includes a warning unit 104 that issues a warning when the difference between the temperature measured by the left temperature measuring device 90L and the temperature measured by the right temperature measuring device 90R exceeds a predetermined temperature. With this configuration, if a temperature difference between the left and right pressure rolls 62L and 62R exceeds a predetermined temperature, it is considered an abnormality and a warning is issued, thereby preventing the production of defective electrode sheets 10.
[0055] Various embodiments of the invention disclosed herein have been described above. Unless otherwise specified, the embodiments described herein do not limit the present invention. Furthermore, the embodiments of the invention disclosed herein can be modified in various ways, and each component and each process described herein can be omitted or combined as appropriate, unless a particular problem arises.
[0056] For example, in the above-described embodiment, the support roll 61 includes the rubber portion 61ab. However, it is sufficient that the rubber layer is provided at least on the pressing roll 62, and the support roll 61 does not necessarily have to include the rubber portion 61ab.
[0057] For example, in the above-described embodiment, the pressing rolls 62 include two pressing rolls, 62L and 62R, on the left and right. However, if the number of uncoated portions 12a of the electrode sheet 10 is three or more, the number of pressing rolls 62 may be three or more. If the number of uncoated portions 12a of the electrode sheet 10 is one, the number of pressing rolls 62 may be one.
[0058] In the above-described embodiment, the left and right pressing rolls 62L, 62R are controlled independently. However, the left and right pressing rolls 62L, 62R may be collectively controlled by a single cylinder driving device 73. In this case, the temperature measuring device 90 may be configured with only one temperature measuring device that measures the temperature of the rubber portion 62ab of the left pressing roll 62L or the right pressing roll 62R.
[0059] As described above, this specification includes the disclosures set forth in the following sections.
[0060] Section 1: 1. A manufacturing apparatus for manufacturing an electrode sheet having a current collector made of a long metal foil, an unformed portion set along a length direction of the current collector at a predetermined position in a width direction thereof, and an active material layer formed on a portion of the current collector excluding the unformed portion, a conveying device that conveys the electrode sheet along a predetermined conveying path; a support roll that is disposed in the transport path, extends in a width direction of the electrode sheet, and supports a first surface of the electrode sheet transported along the transport path; a pressing roll having a rubber layer on its surface, arranged on the second surface side of the electrode sheet so as to face the support roll, and extending in the width direction of the electrode sheet; a drive device that drives at least one of the support roll and the pressure roll so that the pressure roll is pressed against the support roll; a temperature measuring device for measuring the temperature of the rubber layer of the pressing roll; a control device; the pressing roll is configured to sandwich the unformed portion of the electrode sheet, excluding the active material layer, between the pressing roll and the support roll, The control device a storage unit that stores a predetermined relationship between the temperature measured by the temperature measuring device and the pressing force of the driving device; a control unit that controls the pressing force of the drive unit based on the temperature measured by the temperature measuring device and the relationship stored in the storage unit, Electrode sheet manufacturing equipment.
[0061] Section 2: The relationship stored in the storage unit is a relationship in which the pressing force of the driving device is weakened as the temperature of the rubber layer increases. Item 1. The electrode sheet manufacturing apparatus according to item 1.
[0062] Section 3: The temperature measuring device is a non-contact temperature measuring device. Item 1 or 2. The electrode sheet manufacturing apparatus according to item 1 or 2.
[0063] Section 4: a second pressing roll that is arranged alongside the pressing roll in the width direction of the electrode sheet and presses, with a rubber layer, a portion of the unformed portion that is different from the portion pressed by the pressing roll; a second temperature measuring device that measures the temperature of the rubber layer of the second pressing roll, The control device includes a warning unit that issues a warning when a difference between the temperature measured by the temperature measuring device and the temperature measured by the second temperature measuring device exceeds a predetermined temperature. Item 4. The electrode sheet manufacturing apparatus according to any one of Items 1 to 3. [Explanation of symbols]
[0064] 1. Electrode sheet manufacturing equipment 10 Electrode sheet 10D Bottom surface (1st surface) 10U top surface (second surface) 12 Current collector 12a Uncoated area (unformed area) 12b Coating Department 14 Electrode active material layer (active material layer) 15. Conveying equipment 15a Unwinding roll 15b Winding roll 18 Transport Route 60 Roll press machine 61 Support Roll 61a Main body 61aa Shaft 61ab Rubber part 61b Both shafts 62 Pressing roll 62L Left pressure roll 62R Right pressure roll 62a Main body 62aa shaft 62ab Rubber part (rubber layer) 62b Both shafts 70 Press pressure adjustment mechanism 71 Press Cylinder 71L Left press cylinder 71R Right press cylinder 71a Rod 72 Roll Chock 73 Cylinder drive unit (drive unit) 73L Left cylinder drive unit 73R Right cylinder drive unit 73a Electro-pneumatic regulator 73La Left electro-pneumatic regulator 73Ra Right electro-pneumatic regulator 74 Support part 80 Roll drive unit 81 Electric motor 90 Temperature measuring device 90L left temperature measuring device 90R Right temperature measuring device 100 control device 101 Temperature acquisition section 101L 1st temperature acquisition section 101R 2nd temperature acquisition section 102 Pressure memory unit (memory unit) 103 Pressure control unit (control unit) 103L First pressure control section 103R Second pressure control section 104 Warning section S1 Transport process S2 Weighing process S3 kneading process S4 Coating process S5 Drying process S6 Roll press process
Claims
1. 1. A manufacturing apparatus for manufacturing an electrode sheet having a current collector made of a long metal foil, an unformed portion set along a length direction of the current collector at a predetermined position in a width direction thereof, and an active material layer formed on a portion of the current collector excluding the unformed portion, a conveying device that conveys the electrode sheet along a predetermined conveying path; a support roll that is disposed in the transport path, extends in a width direction of the electrode sheet, and supports a first surface of the electrode sheet transported along the transport path; a pressing roll having a rubber layer on its surface, disposed on the second surface side of the electrode sheet so as to face the support roll, and extending in the width direction of the electrode sheet; a drive device that drives at least one of the support roll and the pressure roll so that the pressure roll is pressed against the support roll; a temperature measuring device for measuring the temperature of the rubber layer of the pressing roll; a control device; the pressing roll is configured to sandwich the unformed portion of the electrode sheet, excluding the active material layer, between the pressing roll and the support roll, The control device a storage unit that stores a predetermined relationship between the temperature measured by the temperature measuring device and the pressing force of the driving device; a control unit that controls the pressing force of the drive unit based on the temperature measured by the temperature measuring device and the relationship stored in the storage unit, Electrode sheet manufacturing equipment.
2. The relationship stored in the storage unit is a relationship in which the pressing force of the driving device is weakened as the temperature of the rubber layer increases. The electrode sheet manufacturing device according to claim 1 .
3. The temperature measuring device is a non-contact temperature measuring device. The electrode sheet manufacturing device according to claim 1 .
4. a second pressing roll disposed alongside the pressing roll in the width direction of the electrode sheet and configured to press, with a rubber layer, a portion of the unformed portion different from a portion pressed by the pressing roll; a second temperature measuring device that measures the temperature of the rubber layer of the second pressing roll, The control device includes a warning unit that issues a warning when a difference between the temperature measured by the temperature measuring device and the temperature measured by the second temperature measuring device exceeds a predetermined temperature. The electrode sheet manufacturing device according to claim 1 .
Citation Information
Patent Citations
Manufacturing method of electrode
JP2023036089A