Electrode sheet manufacturing equipment
The electrode sheet manufacturing apparatus uses temperature sensors and a control device to adjust pressing pressure and manage roll temperature, addressing thickness variations caused by thermal expansion, thereby enhancing sheet quality and productivity.
Patent Information
- Application Number
- JP2023095376
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-06-09
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2043-06-09
Smart Images

Figure 0007745592000001 
Figure 0007745592000002 
Figure 0007745592000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to an electrode sheet manufacturing apparatus for an electricity storage device. [Background technology]
[0002] For example, Patent Document 1 discloses a press roll device that continuously passes a metal web for a secondary battery electrode between upper and lower press rolls to press it. The press roll device described in Patent Document 1 is equipped with an in-line film thickness meter that continuously measures the thickness of the web and is configured to increase the bending pressure by a predetermined amount each time it is confirmed that the web thickness has decreased by a predetermined amount. The bending pressure is a pressure applied in the opposite direction to the pressing pressure, and increasing the bending pressure widens the gap between the upper and lower press rolls. Patent Document 1 states that increasing the bending pressure can prevent the gap between the upper and lower press rolls from gradually narrowing due to thermal expansion and deformation of the press rolls, thereby preventing the web from gradually thinning.
[0003] The press roll device disclosed in Patent Document 1 is equipped with a preheating roll that heats the web before pressing with the press roll. According to Patent Document 1, as pressing progresses, heat is generated in the bearing portion of the press roll, and the heat is transferred to both end regions of the press roll. According to Patent Document 1, because the web is heated by the preheating roll, local thermal expansion and deformation only in the both end regions of the upper and lower press rolls is corrected. This makes it possible to maintain the gap and press pressure between the upper and lower press rolls approximately uniform across the width of the web, thereby eliminating thickness variations across the width of the web.
[0004] For example, Patent Document 2 discloses a roll press facility equipped with a thickness gauge that measures the thickness of a compressed material at multiple locations in the width direction. According to Patent Document 2, by adjusting the press cylinder position and bend cylinder pressure based on the thickness of the material measured at multiple locations in the width direction, it is possible to maintain the thickness of the material within a target range at any position in the width direction.
[0005] Patent Document 3 discloses a roll press facility equipped with a measurement sensor that measures the amount of roll deformation, dividing it into deformation due to temperature changes and deformation due to load on the roll. According to Patent Document 3, it is possible to accurately grasp changes in the shape of the roll, enabling more accurate management of the roll. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2006-179401 [Patent Document 2] Japanese Patent Application Laid-Open No. 2013-111647 [Patent Document 3] Japanese Patent Application Laid-Open No. 2014-173996 Summary of the Invention [Problem to be solved by the invention]
[0007] Patent Documents 1 to 3 describe a problem in which heat generated in the bearings of the rolls causes thermal expansion and deformation of the rolls, resulting in changes in the thickness of the sheet material. To address this problem, the devices described in Patent Documents 1 and 2 attempt to control the thickness of the sheet material to a target thickness by adjusting the pressing conditions based on measurements of the thickness of the sheet material after pressing. Furthermore, the device described in Patent Document 3 attempts to control the thickness of the sheet material to a target thickness by controlling the dimensions of the rolls that press the sheet material.
[0008] The inventors of the present application have found that when an electrode sheet on which an electrode active material layer has been formed is pressed, the thickness of the electrode sheet may change from that immediately after pressing. Therefore, adjusting the pressing conditions based on the measurement of the electrode sheet thickness may not be able to properly control the thickness of the electrode sheet.
[0009] Here, an electrode sheet manufacturing device is proposed that is equipped with a pair of rolls that press the electrode sheet, and that is capable of controlling the thickness of the electrode sheet. [Means for solving the problem]
[0010] The electrode sheet manufacturing apparatus disclosed herein includes a pair of rolls for pressing an electrode active material layer formed on an electrode sheet, a press pressure adjustment mechanism for adjusting the press pressure of the pair of rolls, a temperature sensor for detecting the surface temperature of at least one of the pair of rolls, and a control device, which is configured to adjust the press pressure based on the surface temperature of the roll detected by the temperature sensor.
[0011] According to the electrode sheet manufacturing device, the surface temperature of the roll is detected, and the pressing pressure of the roll is adjusted based on the detected temperature, thereby making it possible to control the thickness of the electrode sheet. [Brief explanation of the drawings]
[0012] [Figure 1] FIG. 2 is a schematic diagram of an electrode sheet manufacturing device. [Figure 2] FIG. 1 is a schematic side view of a roll press machine. [Figure 3] FIG. 2 is a schematic front view of a press device. [Figure 4] 10 is a flowchart showing a process for controlling the thickness of an electrode sheet by controlling the bending pressure and the cylinder press pressure. [Figure 5] 10 is an example of correlation data between the amount of change in temperature of the press roll and the amount of change in thickness of the electrode sheet. DETAILED DESCRIPTION OF THE INVENTION
[0013] Hereinafter, one embodiment of a manufacturing apparatus for an electrode sheet of an electricity storage device will be described. Note that the embodiment described here is, of course, not intended to particularly limit the present invention. Furthermore, each figure is a schematic diagram and does not necessarily faithfully reflect an actual product.
[0014] [Configuration of electrode sheet manufacturing equipment] FIG. 1 is a schematic diagram of an electrode sheet manufacturing apparatus 10 according to one embodiment. In this embodiment, the electrode sheet manufacturing apparatus 10 manufactures an electrode sheet 1 (see FIG. 2) for a lithium-ion secondary battery. However, the electrode sheet 1 is not limited to an electrode sheet 1 for a lithium-ion secondary battery, and may be an electrode sheet for various known electricity storage devices. The term "electricity storage device" refers generally to devices that can extract electrical energy, and includes so-called storage batteries (chemical batteries) such as lithium-ion secondary batteries and nickel-metal hydride batteries, and capacitors (physical batteries) such as electric double layer capacitors.
[0015] The electrode sheet 1 includes a strip-shaped electrode foil 2 and an electrode active material layer 3 formed on the electrode foil 2. The electrode sheet 1 is a member in which the electrode active material layer 3 containing an electrode active material is formed on the surface of the strip-shaped electrode foil 2 having a predetermined width and thickness. In a lithium-ion secondary battery, when the electrode sheet 1 is a positive electrode sheet, the electrode foil 2 is, for example, aluminum foil. The electrode active material (positive electrode active material) is a material that can release lithium ions during charging and absorb lithium ions during discharging, such as a lithium transition metal composite material. When the electrode sheet 1 is a negative electrode sheet, the electrode foil 2 is, for example, copper foil. The electrode active material (negative electrode active material) is a material that can absorb lithium ions during charging and release the absorbed lithium ions during discharging, such as natural graphite. The positive electrode active material and negative electrode active material are not particularly limited, and various materials other than those described above have been proposed.
[0016] As shown in FIG. 1, the electrode sheet manufacturing apparatus 10 includes a measuring device 20, a kneading device 30, a coating device 40, a drying device 50, and a roll press machine 60.
[0017] The measuring device 20 measures the raw materials for the electrode active material layer 3. The measured raw materials for the electrode active material layer 3 are mixed and kneaded by the kneading device 30. The raw materials for the electrode active material layer 3, which have been kneaded to form a slurry, are applied to the electrode foil 2 by the coating device 40. The drying device 50 dries the applied raw materials for the electrode active material layer 3 in the form of a slurry. The roll press machine 60 presses the electrode sheet 1 to adjust the thickness of the electrode active material layer 3 to within a predetermined range.
[0018] Fig. 2 is a schematic side view of a roll press machine 60. As shown in Fig. 2, the roll press machine 60 according to this embodiment includes an unwinding device 60A, a pressing device 60B, and a winding device 60C. The electrode sheet 1 after the electrode active material layer 3 has been dried is supplied to the unwinding device 60A in the form of a roll. The winding device 60C winds up the electrode sheet 1 that has been unwound from the unwinding device 60A and pressed by the pressing device 60B. The roll press machine 60 includes a control device 100 that controls the operations of the unwinding device 60A, the pressing device 60B, and the winding device 60C.
[0019] Fig. 3 is a schematic front view of the press device 60B. As shown in Fig. 3, the press device 60B includes a pair of press rolls 61U, 61D for pressing the electrode active material layer 3 formed on the electrode sheet 1, a press pressure adjustment mechanism 70 for adjusting the press pressure of the pair of press rolls 61U, 61D, a refrigerant supply device 80 for supplying a refrigerant to the press rolls 61U, 61D, and a plurality of temperature sensors 91-96 for detecting the surface temperatures of the press rolls 61U, 61D.
[0020] The pair of press rolls 61U, 61D face each other in the thickness direction (here, the up-and-down direction) of the electrode sheet 1. The upper press roll 61U has a roll body 62U that contacts and presses the electrode sheet 1. Shafts 63UL and 63UR are connected to both sides of the roll body 62U. The shafts 63UL and 63UR are positioned outward in the width direction from the electrode sheet 1 and have a smaller diameter than the roll body 62U. The shafts 63UL and 63UR do not contact the electrode sheet 1. The lower press roll 61D also has a similar roll body 62D and shafts 63DL, 63DR.
[0021] The material of the press rolls 61U, 61D is not limited, but may be a high-hardness material such as high-carbon bearing steel (SUJ material) or alloy tool steel (SKD material). The size of the press rolls 61U, 61D is also not limited, but may be large, for example, with a diameter of approximately 800 mm and a length of approximately 1000 mm. For example, the gap between the press rolls 61U, 61D made of SUJ2 and having a diameter of 800 mm is calculated to decrease by approximately 0.01 mm when the temperature rises by 1°C.
[0022] The press pressure adjustment mechanism 70 includes a pair of upper bearings 71U that support the upper press roll 61U, a pair of upper axle boxes 72U that each house the pair of upper bearings 71U, a pair of lower bearings 71D that support the lower press roll 61D, a pair of lower axle boxes 72D that each house the pair of lower bearings 71D, an upper drive unit 73U that rotates the upper press roll 61U, a lower drive unit 73D that rotates the lower press roll 61D, a pair of gap adjustment screws 74, a pair of press cylinders 75, and a pair of bend cylinders 76.
[0023] The pair of upper bearings 71U rotatably support the two shaft portions 63UL, 63UR of the upper press roll 61U, respectively. When the upper press roll 61U is rotated while applying a press pressure, heat is generated due to friction between the two shaft portions 63UL, 63UR of the upper press roll 61U and the pair of upper bearings 71U. The effects of this heat will be described later. One of the upper axle boxes 72U also houses a transmission member (not shown) connected to the upper drive device 73U and a counterpart transmission member (not shown) connected to one of the shaft portions (e.g., 63UR) of the upper press roll 61U and meshing with the transmission member. The upper drive device 73U is, for example, an electric motor. Both transmission members are, for example, gears.
[0024] The pair of lower bearings 71D rotatably support the two shaft portions 63DL, 63DR of the lower press roll 61D, respectively. One of the lower axle boxes 72D accommodates a transmission member (not shown) connected to the lower drive device 73D and a mating transmission member (not shown) connected to one of the shaft portions (e.g., 63DR) of the lower press roll 61D.
[0025] The pair of gap adjustment screws 74 adjust the vertical position of the upper press roll 61U. The gap between the upper press roll 61U and the lower press roll 61D can be adjusted by rotating the gap adjustment screws 74. However, the gap adjustment screws 74 may be omitted, in which case the gap between the upper press roll 61U and the lower press roll 61D may be adjusted by the operation of the press cylinder 75.
[0026] The pair of press cylinders 75 press the lower press roll 61D toward the upper press roll 61U. The pair of press cylinders 75 support the pair of lower bearings 71D and move them vertically. The electrode sheet 1 sandwiched between the pair of press rolls 61U, 61D is pressed by driving the pair of press cylinders 75. The pair of press cylinders 75 is one of the devices that adjusts the press pressure used to press the electrode sheet 1. In this embodiment, the "press pressure" refers to a combined pressure of a bend pressure (described later) and the pressure generated by the press cylinders 75. Hereinafter, to distinguish it from the "press pressure," the pressure generated by the press cylinders 75 will also be referred to as the "cylinder press pressure." The press cylinders 75 are also an example of an elevating device that raises and lowers one of the pair of press rolls 61U, 61D relative to the other. Driving the press cylinders 75 can adjust the cylinder press pressure and the gap between the pair of press rolls 61U, 61D. The elevating device may be configured to press the upper press roll 61U toward the lower press roll 61D. Alternatively, the lifting device may be configured to lower the upper press roll 61U and lift the lower press roll 61D.
[0027] The pair of bend cylinders 76 is also one of the devices that adjust the press pressure of the press device 60B. The pair of bend cylinders 76 is disposed between the shaft 63UL of the upper press roll 61U and the shaft 63DL of the lower press roll 61D, and between the shaft 63UR of the upper press roll 61U and the shaft 63DR of the lower press roll 61D. The pair of bend cylinders 76 press the press rolls 61U, 61D in the direction opposite to the press pressure applied by the press cylinder 75. This causes the press rolls 61U, 61D to bend or straighten. As a result, the gap between the press rolls 61U, 61D and the press pressure are adjusted. The bend pressure is independently controlled by the left and right bend cylinders 76, thereby adjusting the gap between the press rolls 61U, 61D and the press pressure on the left and right sides. The pair of bend cylinders 76 is an example of a bending device that bends the press rolls 61U, 61D. Here, "curving the press rolls 61U, 61D" may also include curving the press rolls 61U, 61D so as to straighten the press rolls 61U, 61D that have been curved by driving the press cylinder 75. The pair of bending cylinders 76 are configured to be able to adjust the bending pressures that curve the press rolls 61U, 61D, respectively.
[0028] The refrigerant supply device 80 supplies refrigerant to the pair of upper axle boxes 72U and the pair of lower axle boxes 72D. The refrigerant circulates through four circulation channels 81, each of which includes one upper axle box 72U, the other upper axle box 72U, one lower axle box 72D, and the other lower axle box 72D. Each circulation channel 81 is provided with a pump 82 and a cooling device 83. The refrigerant circulates through the circulation channel 81 by the drive of the pump 82, and absorbs heat from the bearing 71U or 71D as it passes through the bearing 71U or 71D. The refrigerant, whose temperature has risen as a result, is cooled by the cooling device 83. The pump 82 is configured to be able to adjust the circulation speed of the refrigerant. The refrigerant supply device 80 controls the pump 82 to adjust the circulation speed of the refrigerant, thereby adjusting the amount of refrigerant (amount per hour) supplied to the axle boxes 72U and 72D.
[0029] A plurality of temperature sensors 91 to 93 (hereinafter also referred to as first temperature sensors 91 to third temperature sensors 93) detect the surface temperature of the upper press roll 61U. Here, the first temperature sensors 91 to 93 are arranged above the upper press roll 61U. The first temperature sensors 91 to 93 are spaced apart from the upper press roll 61U. The first temperature sensors 91 to 93 are non-contact temperature sensors, for example, infrared temperature sensors. However, the first temperature sensors 91 to 93 may also be contact temperature sensors. Furthermore, the first temperature sensors 91 to 93 may be arranged in front of, behind, or at other positions relative to the upper press roll 61U.
[0030] The first temperature sensor 91 is located at the leftmost position among the first to third temperature sensors 91 to 93 and detects the surface temperature of the left end of the upper press roll 61U. The second temperature sensor 92 is located to the right of the first temperature sensor 91 and detects the surface temperature of the center of the upper press roll 61U. The third temperature sensor 93 is located at the rightmost position among the first to third temperature sensors 91 to 93 and detects the surface temperature of the right end of the upper press roll 61U. Here, the "end" of the upper press roll 61U refers to the actual end of the press roll 61U, i.e., the end of the roll main body 62U in this case. The "end" of the upper press roll 61U refers, for example, to the two end regions when the roll main body 62U is divided into three equal parts in the axial direction. Furthermore, the "center" of the upper press roll 61U refers, for example, to the middle region when the roll main body 62U is divided into three equal parts in the axial direction. "Detecting the temperature of the end or center" means measuring the temperature at at least one point of the end or center.
[0031] A plurality of temperature sensors 94 to 96 (hereinafter also referred to as the fourth temperature sensor 94 to the sixth temperature sensor 96) detect the surface temperature of the lower press roll 61D. Here, the fourth temperature sensor 94 to the sixth temperature sensor 96 are arranged below the lower press roll 61D. However, the fourth temperature sensor 94 to the sixth temperature sensor 96 may also be arranged in front of, behind, or at another position of the lower press roll 61D. The fourth temperature sensor 94 to the sixth temperature sensor 96 are also non-contact temperature sensors.
[0032] The fourth temperature sensor 94 is located at the leftmost position among the fourth to sixth temperature sensors 94 to 96, and detects the surface temperature of the left end of the lower press roll 61D (roll main body 62D). The fifth temperature sensor 95 is located to the right of the fourth temperature sensor 94, and detects the surface temperature of the center of the lower press roll 61D (roll main body 62D). The sixth temperature sensor 96 is located at the rightmost position among the fourth to sixth temperature sensors 94 to 96, and detects the surface temperature of the right end of the lower press roll 61D (roll main body 62D).
[0033] The control device 100 is configured to adjust the press pressure based on the surface temperatures of the press rolls 61U and 61D detected by the temperature sensors 91 to 96. Here, the control device 100 adjusts the bending pressure with which the bending cylinder 76 bends the press rolls 61U and 61D based on the temperatures detected by the temperature sensors 91 to 96. Specifically, the control device 100 pre-records correlation data between the temperatures detected by the temperature sensors 91 to 96 and the thickness of the electrode sheet 1. The control device 100 adjusts the bending pressure with which the bending cylinder 76 bends the press rolls 61U and 61D based on the correlation data. The control device 100 also pre-records correlation data between the amount of change in the bending pressure and the amount of change in the thickness of the electrode sheet 1. By adjusting the bending pressure, the control device 100 reduces differences in thickness depending on the position in the width direction of the electrode sheet 1 and makes the thickness uniform.
[0034] 2, the control device 100 includes a first recording unit 101 that records correlation data between the temperatures detected by the temperature sensors 91-96 and the thickness of the electrode sheet 1, and a second recording unit 102 that records correlation data between the amount of change in bending pressure and the amount of change in thickness of the electrode sheet 1. The control device 100 also includes a bending pressure control unit 103 that adjusts the bending pressure with which the bending cylinder 76 bends the press rolls 61U, 61D, based on the correlation data recorded in the first recording unit 101 and the correlation data recorded in the second recording unit 102.
[0035] The thickness of the electrode sheet 1 in the above correlation data was measured after the pressing process was completed. The thickness of the electrode sheet 1 may increase compared to immediately after pressing, for example, due to springback of the electrode sheet 1. Therefore, the gap between the upper press roll 61U and the lower press roll 61D may not be the same as the thickness of the electrode sheet 1 after the pressing process. Therefore, the above correlation data was created based on the thickness of the electrode sheet 1 measured after the pressing process was completed.
[0036] The control device 100 also controls the press cylinder 75 and adjusts the press pressure based on the temperatures detected by the temperature sensors 91-96. Specifically, the control device 100 performs the above-described control based on correlation data between the temperatures detected by the temperature sensors 91-96 and the thickness of the electrode sheet 1. The control device 100 thereby controls the thickness of each portion of the electrode sheet 1 in the width direction to fall within a predetermined range. The control device 100 also stores correlation data between the amount of change in the cylinder press pressure and the amount of change in the electrode sheet 1. As shown in FIG. 2, the control device 100 includes a third recording unit 104 that stores correlation data between the amount of change in the cylinder press pressure and the amount of change in the thickness of the electrode sheet 1, and a press pressure control unit 105 that controls the press cylinder 75 and adjusts the cylinder press pressure based on the temperatures detected by the temperature sensors 91-96.
[0037] Furthermore, the control device 100 adjusts the amount of refrigerant supplied from the refrigerant supply device 80 based on the temperatures detected by the temperature sensors 91-96. More specifically, the control device 100 controls the multiple pumps 82 to adjust the refrigerant supply speed. As shown in FIG. 2, the control device 100 includes a cooling control unit 106 that controls the pumps 82 based on the temperatures detected by the temperature sensors 91-96 to adjust the amount of refrigerant supplied from the refrigerant supply device 80. In this way, the control device 100 brings the temperatures of the press rolls 61U, 61D closer to a predetermined temperature and reduces temperature differences between locations on the press rolls 61U, 61D. Here, the control device 100 independently controls each pump 82.
[0038] [Controlling electrode sheet thickness] An example of thickness control of the electrode sheet 1 using the roll press machine 60 is described below. The roll press machine 60 suppresses a temperature rise in the press rolls 61U, 61D by flowing a refrigerant to facilitate thickness control of the electrode sheet 1. When the temperature of the press rolls 61U, 61D rises, the press rolls 61U, 61D thermally expand, narrowing the gap between them. This reduces the thickness of the electrode sheet 1. By suppressing the temperature rise of the press rolls 61U, 61D, it is possible to prevent the thickness of the electrode sheet 1 from becoming thinner. When the temperature of the press rolls 61U, 61D rises, the roll press machine 60 increases the amount of refrigerant supplied. When the temperature of the press rolls 61U, 61D rises despite cooling, the roll press machine 60 controls the thickness of the electrode sheet 1 by controlling the bending pressure and cylinder press pressure.
[0039] FIG. 4 is a flowchart showing the process of controlling the thickness of the electrode sheet 1 by controlling the bending pressure and cylinder press pressure. As shown in FIG. 4, in step S01 of controlling the thickness of the electrode sheet 1, the roll press machine 60 acquires the temperatures of the left ends of the press rolls 61U and 61D measured by the first temperature sensor 91 and the fourth temperature sensor 94, respectively. In step S02, the thickness of the left end of the electrode sheet 1 is estimated from the acquired temperatures of the left ends of the press rolls 61U and 61D based on the correlation data recorded in the first recording unit 101. FIG. 5 shows an example of correlation data between temperature and the thickness of the electrode sheet 1, more specifically, correlation data between the amount of change in temperature of the press rolls 61U and 61D and the amount of change in thickness of the electrode sheet 1. As shown in FIG. 5, the estimated thickness of the electrode sheet 1 decreases as the temperature of the press rolls 61U and 61D increases. Here, the estimated thickness of the left end of the electrode sheet 1 decreases as the temperature of the left ends of the press rolls 61U and 61D increases.
[0040] In step S03, the roll press machine 60 acquires the temperatures of the right ends of the press rolls 61U, 61D measured by the third temperature sensor 93 and the sixth temperature sensor 96, respectively, in the same manner as for the left ends. In the following step S04, the thickness of the right end of the electrode sheet 1 is estimated from the acquired temperatures of the right ends of the press rolls 61U, 61D based on the correlation data recorded in the first recording unit 101. As the temperatures of the right ends of the press rolls 61U, 61D increase, the estimated thickness of the right end of the electrode sheet 1 becomes thinner.
[0041] In step S05, the roll press machine 60 acquires the temperatures of the centers of the press rolls 61U and 61D measured by the second temperature sensor 92 and the fifth temperature sensor 95, respectively. In step S06, the thickness of the center of the electrode sheet 1 is estimated from the acquired temperatures of the centers of the press rolls 61U and 61D based on the correlation data recorded in the first recording unit 101. Heat generation is mainly caused by friction between the press rolls 61U and 61D and the bearings 71U and 71D. Therefore, the temperature of the centers of the press rolls 61U and 61D is usually lower than the temperatures at both ends. The estimated thickness of the center of the electrode sheet 1 is usually thicker than the estimated thickness at both ends. Note that the order of the set of steps S01 and S02, the set of steps S03 and S04, and the set of steps S05 and S06 may be interchanged.
[0042] In step S07, the roll press machine 60 determines the difference between the estimated thickness of the left end and the central portion of the electrode sheet 1. In step S08, based on the correlation data recorded in the second recording unit 102, the bending pressure of the left bending cylinder 76 is adjusted to eliminate the difference determined in step S07. The greater the difference between the estimated thickness of the left end and the central portion of the electrode sheet 1, the greater the bending pressure is set to. Similarly, in step S09, the difference between the estimated thickness of the right end and the central portion of the electrode sheet 1 is determined. In step S10, based on the correlation data recorded in the second recording unit 102, the bending pressure of the right bending cylinder 76 is adjusted to eliminate the difference determined in step S09.
[0043] Furthermore, in step S11, the difference between the thickness of the central portion of the electrode sheet 1 estimated in step S06 and a predetermined target value for the thickness of the central portion is determined. In step S12, the cylinder press pressure of the press cylinder 75 is adjusted based on the correlation data recorded in the third recording unit 104 so as to eliminate the difference from the target value. The thinner the estimated thickness of the central portion of the electrode sheet 1, the smaller the cylinder press pressure is set. Although not shown in the figure, steps S01 to S12 are repeated, for example, at predetermined time intervals. Note that the order of the set of steps S07 and S08, the set of steps S09 and S10, and the set of steps S11 and S12 may be interchanged.
[0044] [Effects of the embodiment] The following describes the effects that can be achieved by the manufacturing apparatus 10 for the electrode sheet 1 according to this embodiment.
[0045] The manufacturing apparatus 10 for the electrode sheet 1 according to this embodiment includes a pair of press rolls 61U, 61D for pressing the electrode active material layer 3 formed on the electrode sheet 1, a press pressure adjustment mechanism 70 for adjusting the press pressure of the pair of press rolls 61U, 61D, temperature sensors 91-96 for detecting the surface temperatures of the pair of press rolls 61U, 61D, and a control device 100. The control device 100 is configured to adjust the press pressure based on the surface temperatures of the press rolls 61U, 61D detected by the temperature sensors 91-96. Note that the temperature sensor may detect the surface temperature of at least one of the pair of press rolls 61U, 61D.
[0046] According to the manufacturing apparatus 10 for the electrode sheet 1, the thickness of the electrode sheet 1 can be controlled by detecting the surface temperatures of the press rolls 61U, 61D and adjusting the pressing pressure of the press rolls 61U, 61D based on the detected temperatures.
[0047] Conventional roll press machines attempt to address the problem of electrode sheet thickness changes due to heat generated in the bearing portions of the press rolls by measuring the thickness of the electrode sheet after pressing. Specifically, conventional roll press machines attempt to control the electrode sheet thickness to a target thickness by feedback-controlling the pressing pressure based on measurements of the electrode sheet thickness after pressing. However, the present inventors have found that, at least when pressing an electrode sheet on which an electrode active material layer has been formed, the thickness of the electrode sheet may change from immediately after pressing due to, for example, springback of the electrode sheet. Therefore, adjusting the pressing pressure based on measurements of the electrode sheet thickness may not always result in successful control of the electrode sheet thickness.
[0048] In the manufacturing apparatus 10 for the electrode sheet 1 according to this embodiment, the thickness of the electrode sheet 1 after pressing is estimated based on the surface temperatures of the press rolls 61U and 61D, and the pressing pressure of the press rolls 61U and 61D is adjusted. Therefore, even if the thickness of the electrode sheet 1 changes immediately after pressing, the thickness of the electrode sheet 1 can be controlled.
[0049] In this embodiment, the press pressure adjustment mechanism 70 includes a bend cylinder 76 that bends the press rolls 61U, 61D. The control device 100 adjusts the bend pressure with which the bend cylinder 76 bends the press rolls 61U, 61D, based on the temperatures detected by the temperature sensors 91 to 96. With this configuration, bending the press rolls 61U, 61D can be prevented from causing local changes in the thickness of the electrode sheet 1 (here, the thickness becomes thinner at both end portions of the electrode sheet 1).
[0050] The electrode sheet 1 manufacturing apparatus 10 according to this embodiment further includes a refrigerant supply device 80 that supplies refrigerant to the press rolls 61U and 61D. The control device 100 adjusts the amount of refrigerant supplied from the refrigerant supply device 80 based on the temperatures detected by the temperature sensors 91 to 96. This configuration can suppress an increase in the temperature of the press rolls 61U and 61D, thereby preventing the electrode sheet 1 from becoming thin.
[0051] In this embodiment, the press pressure adjustment mechanism 70 includes a press cylinder 75 that raises and lowers one of the pair of press rolls 61U, 61D relative to the other (here, raises and lowers the lower press roll 61D). The control device 100 controls the press cylinder 75 based on the temperatures detected by the temperature sensors 91 to 96 to adjust the press pressure. With this configuration, the thickness of the electrode sheet 1 can be controlled simultaneously across the entire width.
[0052] In this embodiment, correlation data between the temperatures detected by the temperature sensors 91-96 and the thickness of the electrode sheet 1 is pre-recorded in the control device 100. The control device 100 controls the press pressure adjustment mechanism 70 based on the correlation data. With this configuration, the control of the press pressure adjustment mechanism 70 is performed based on the correlation data between the temperatures detected by the temperature sensors 91-96 and the thickness of the electrode sheet 1. Therefore, even if the thickness of the electrode sheet 1 changes immediately after pressing, the thickness of the electrode sheet 1 can be controlled.
[0053] More specifically, the manufacturing apparatus 10 for the electrode sheet 1 according to this embodiment includes a first temperature sensor 91 to a sixth temperature sensor 96. The first temperature sensor 91 and the fourth temperature sensor 94 detect the temperatures of the left ends of the press rolls 61U and 61D, and the second temperature sensor 92 and the fifth temperature sensor 95 detect the temperatures of the central portions of the press rolls 61U and 61D. The third temperature sensor 93 and the sixth temperature sensor 96 detect the temperatures of the right ends of the press rolls 61U and 61D. This configuration measures the temperatures of the ends and the central portions of the press rolls 61U and 61D, allowing the thickness of the electrode sheet 1 in the width direction to be controlled. More specifically, the control device 100 adjusts the bending pressure with which the bending cylinder 76 bends the press rolls 61U and 61D based on the recorded correlation data. As a result, the difference in thickness between the ends and the central portion of the electrode sheet 1 in the width direction, which occurs due to the temperature difference between the ends and the central portion of the press rolls 61U and 61D, can be reduced. The difference in thickness between the left and right ends of the electrode sheet 1 caused by the temperature difference between the left and right ends of the press rolls 61U and 61D is also suppressed.
[0054] In this embodiment, the temperature sensors 91 to 96 are non-contact temperature sensors. With this configuration, there is no risk of the surfaces of the press rolls 61U, 61D being damaged by contact with the temperature sensors. This prevents foreign matter from being mixed into the electrode sheet 1 and degrading the quality of the electrode sheet 1. Furthermore, because there is no risk of this happening, the press rolls 61U, 61D can be rotated at high speed. This allows the productivity of the electrode sheet 1 to be improved.
[0055] [Other embodiments] The above describes one embodiment of the electrode sheet manufacturing apparatus proposed herein. However, the above embodiment is merely an example, and the present invention can be implemented in other ways. For example, in the above embodiment, the press pressure is controlled by controlling the press cylinder 75 and the bend cylinder 76, but this is not limiting. The press pressure may be controlled, for example, by controlling one or more press cylinders.
[0056] In the above embodiment, the coolant supply device 80 is provided, but it may not be provided if possible.
[0057] The above-described embodiments do not limit the present invention unless otherwise specified. Furthermore, the technology disclosed herein can be modified in various ways, and the components and processes described herein can be omitted or combined as appropriate, provided that no particular problems arise.
[0058] This specification includes the disclosures set forth in the following sections:
[0059] Section 1: a pair of rolls for pressing the electrode active material layer formed on the electrode sheet; a press pressure adjusting mechanism for adjusting the press pressure of the pair of rolls; a temperature sensor for detecting a surface temperature of at least one of the pair of rolls; a control device; The control device is configured to adjust the pressing pressure based on the surface temperature of the roll detected by the temperature sensor. Electrode sheet manufacturing equipment.
[0060] Section 2: the press pressure adjustment mechanism includes a bending device that bends the roll, the control device adjusts the bending pressure with which the bending device bends the roll, based on the temperature detected by the temperature sensor. Item 1. The electrode sheet manufacturing apparatus according to item 1.
[0061] Section 3: a coolant supply device for supplying a coolant to the roll; the control device adjusts the amount of refrigerant supplied from the refrigerant supply device based on the temperature detected by the temperature sensor. Item 1 or 2. The electrode sheet manufacturing apparatus according to item 1 or 2.
[0062] Section 4: the press pressure adjustment mechanism includes an elevating device that elevates one of the pair of rolls relative to the other, the control device controls the lifting device based on the temperature detected by the temperature sensor to adjust the press pressure. Item 4. The electrode sheet manufacturing apparatus according to any one of Items 1 to 3.
[0063] Section 5: correlation data between the temperature detected by the temperature sensor and the thickness of the electrode sheet is recorded in advance in the control device; the control device controls the press pressure adjusting mechanism based on the correlation data. Item 5. An electrode sheet manufacturing apparatus according to any one of Items 1 to 4.
[0064] Item 6: The temperature sensor is a non-contact temperature sensor. Item 6. An electrode sheet manufacturing apparatus according to any one of Items 1 to 5.
[0065] Section 7: Further comprising another temperature sensor; one of the temperature sensor and the other temperature sensor detects a temperature of the end of the roll; the other of the temperature sensor and the other temperature sensor detects the temperature of the central portion of the roll. Item 7. The electrode sheet manufacturing apparatus according to any one of Items 1 to 6.
[0066] Section 8: the press pressure adjustment mechanism includes a bending device that bends the roll, correlation data between the temperature detected by the temperature sensor or the other temperature sensor and the thickness of the electrode sheet is recorded in advance in the control device; the control device adjusts the bending pressure at which the bending device bends the roll based on the correlation data. Item 8. The electrode sheet manufacturing apparatus according to item 7. [Explanation of symbols]
[0067] 1 Electrode sheet 2 Electrode foil 3 Electrode active material layer 10. Electrode sheet manufacturing equipment 20 Weighing device 30 Kneading equipment 40 Coating equipment 50 Drying equipment 60 Roll press machine 60A Unwinding Device 60B Press Device 60C winding device 61D Lower press roll (roll) 61U Upper press roll (roll) 62D Roll body (lower side) 62U Roll body (upper side) 63DL Shaft 63DR shaft part 63UL Shaft 63UR shaft 70 Press pressure adjustment mechanism 71D Lower bearing 71U Upper bearing 72D Lower axle box 72U upper axle box 73D Lower Drive Unit 73U Upper Drive Unit 74 Gap adjustment screw 75 Press cylinder (lifting device) 76 Bend cylinder (bend device) 80 Refrigerant supply device 81 Circulation flow path 82 Pump 83 Cooling device 91 First temperature sensor (temperature sensor) 92 Second temperature sensor (another temperature sensor) 93 Third temperature sensor (temperature sensor) 94 4th temperature sensor (temperature sensor) 95 5th temperature sensor (other temperature sensor) 96 6th temperature sensor (temperature sensor) 100 control device 101 First Recording Section 102 Second Recording Section 103 Bend pressure control section 104 Third Recording Department 105 Press pressure control section 106 Cooling control unit
Claims
1. a pair of rolls for pressing the electrode active material layer formed on the electrode sheet; a press pressure adjusting mechanism for adjusting the press pressure of the pair of rolls; a temperature sensor for detecting a surface temperature of at least one of the pair of rolls; a control device; the press pressure adjustment mechanism includes a bending device that bends the roll, the control device is configured to adjust a press pressure based on the surface temperature of the roll detected by the temperature sensor, and the bending device adjusts a bend pressure for bending the roll based on the temperature detected by the temperature sensor. Electrode sheet manufacturing equipment.
2. a coolant supply device for supplying a coolant to the roll; the control device adjusts the amount of refrigerant supplied from the refrigerant supply device based on the temperature detected by the temperature sensor. The electrode sheet manufacturing device according to claim 1 .
3. the press pressure adjustment mechanism includes an elevating device that elevates one of the pair of rolls relative to the other, the control device controls the lifting device based on the temperature detected by the temperature sensor to adjust the press pressure. The electrode sheet manufacturing device according to claim 1 .
4. correlation data between the temperature detected by the temperature sensor and the thickness of the electrode sheet is recorded in advance in the control device; the control device controls the press pressure adjusting mechanism based on the correlation data. The electrode sheet manufacturing device according to claim 1 .
5. The temperature sensor is a non-contact temperature sensor. The electrode sheet manufacturing device according to claim 1 .
6. Further comprising another temperature sensor; one of the temperature sensor and the other temperature sensor detects a temperature of the end of the roll; the other of the temperature sensor and the other temperature sensor detects the temperature of the central portion of the roll. The electrode sheet manufacturing device according to claim 1 .
7. the press pressure adjustment mechanism includes a bending device that bends the roll, correlation data between the temperature detected by the temperature sensor or the other temperature sensor and the thickness of the electrode sheet is recorded in advance in the control device; the control device adjusts the bending pressure at which the bending device bends the roll based on the correlation data. The electrode sheet manufacturing apparatus according to claim 6 .
Citation Information
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