Follow-up cutting and inserting mechanism and pole piece and diaphragm compounding equipment
The design of the follow-up cutting and inserting mechanism solves the problems of large size and low efficiency of the cutting mechanism in the prior art, realizes efficient and continuous operation of the cutting and inserting processes, and improves production efficiency.
Patent Information
- Application Number
- CN202422374000.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-09-27
AI Technical Summary
The existing electrode cutting mechanism is bulky and inefficient, causing the material line to stop during cutting, which cannot meet the needs of efficient production.
The follow-up cutting insert mechanism is adopted, which drives the cutter and traction assembly to follow the whole through the mounting seat, so as to achieve uniform feeding of materials during the cutting and conveying process, reduce the action distance and mechanism size, and improve efficiency.
The space requirement of the cutting mechanism is reduced, the speed and efficiency of inserting the sheets are improved, and the material does not need to be stopped during the conveying process, thus achieving efficient cutting and inserting operations.
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Figure CN223353074U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of battery pole pieces, in particular to a follow-up cutting and inserting mechanism and pole piece and diaphragm composite equipment. Background Art
[0002] During the battery production process, electrode sheets need to be cut to accommodate batteries of varying design structures and specifications. Prior art electrode sheet cutting utilizes a fixed cutting method: after being cut by a cutter, the electrode sheet is transported to the inserting station via a electrode clamp. The transport distance of the clamp is greater than the width of the electrode sheet. To accommodate this distance, the mechanism becomes bulky and costly. Furthermore, the cut electrode sheet must be transported to the next station before it can be fed to the cutter. Therefore, the electrode sheet feed line must be stopped during cutting, resulting in low efficiency. Utility Model Content
[0003] In order to overcome the deficiencies of the prior art, the utility model provides a follow-up cutting and inserting mechanism and a pole piece and diaphragm composite device, which can solve the problems of the existing pole piece cutting mechanism being bulky and inefficient.
[0004] The technical solution adopted by the present invention to solve the technical problem is: on the one hand, a follow-up cutting and inserting mechanism is provided, comprising:
[0005] A translation assembly, the translation assembly comprising a moving part and a fixed part, the moving part being slidably connected to the fixed part, the sliding direction of the moving part being the feeding direction, and the moving part comprising a mounting seat;
[0006] A cutting assembly, comprising a cutting drive and a cutter, wherein the cutting drive is used to drive the cutter to cut the material, the cutting drive is mounted on the fixing member, and the cutter is connected to the mounting seat;
[0007] A traction assembly is connected to the mounting seat and is used to continue feeding the material forward during the retreat of the moving part.
[0008] As a further improvement of the above technical solution, the cutting assembly further includes a first cutting guide rail, a lifting plate, a second cutting guide rail and a translation plate, wherein the first cutting guide rail is mounted on the fixing member in a direction perpendicular to the feeding direction, and the cutting drive member is used to drive the lifting plate to slide along the first cutting guide rail; the second cutting guide rail is mounted on the lifting plate in a direction parallel to the feeding direction, and the translation plate is slidably connected to the second cutting guide rail;
[0009] A connecting hole is provided on the mounting seat, a connecting rod is connected between the translation plate and the cutter, and the connecting rod is passed through the connecting hole.
[0010] As a further improvement of the above technical solution, the cutting drive component includes a cutting motor and a crankshaft, the crankshaft includes a first drive shaft, a drive block and a second drive shaft, the length direction of the first drive shaft and the length direction of the second drive shaft are both the same as the feeding direction, one end of the first drive shaft is connected to the rotating shaft of the cutting motor, and the other end is rotatably connected to the drive block, one end of the second drive shaft is rotatably connected to the drive block, and the other end is fixedly connected to the lifting plate.
[0011] As a further improvement of the above technical solution, it also includes a pressure plate assembly, which is used to fix the cut material; the pressure plate assembly includes a first pressure plate, a second pressure plate and a guide plate, the first pressure plate and the second pressure plate are arranged opposite to each other, and the first pressure plate is connected to the translation plate through a bracket, the second pressure plate is connected to the mounting seat, one side of the guide plate is located between the first pressure plate and the second pressure plate, and the other side is bent toward the direction close to the cutter.
[0012] As a further improvement of the above technical solution, a tension spring is connected between the bracket and the mounting seat;
[0013] A pressure plate slider is connected to the bracket, a pressure plate guide rail is installed on the mounting seat, the pressure plate slider is slidably connected to the pressure plate guide rail, and the pressure plate guide rail is arranged in a direction perpendicular to the feeding direction.
[0014] As a further improvement of the above technical solution, it further includes a dust removal assembly, wherein the dust removal assembly is located between the cutter and the pressing plate assembly;
[0015] The dust removal assembly includes a dust removal box and a dust removal cover. The opening of the dust removal box faces the cutter. The dust removal cover is arranged at the opening of the dust removal box. The dust removal box is installed on the mounting seat. The dust removal cover is provided with a dust suction hole, and the dust suction hole is connected to the interior of the dust removal box.
[0016] As a further improvement of the above technical solution, the cutting assembly further includes a cutting guide rod, the cutting guide rod is mounted on the mounting seat in a direction perpendicular to the feeding direction, the cutter is connected to the cutting guide rod via a connecting block, and the connecting block is slidably connected to the cutting guide rod;
[0017] The connecting block is provided with a dust removal pressure plate, the dust removal pressure plate is connected to the dust removal cover, a dust removal guide rod is provided in the dust removal box, the length direction of the dust removal guide rod is perpendicular to the feeding direction, and the dust removal cover is slidably connected to the dust removal guide rod;
[0018] A first coil spring is sleeved on the cutting guide rod, and the first coil spring is located below the connecting block. A second coil spring is sleeved on the dust removal guide rod, and the second coil spring is located below the dust removal cover.
[0019] As a further improvement of the above technical solution, the traction assembly includes a driving roller, a driven roller, a feed nozzle and a traction drive member; the driving roller and the driven roller are arranged opposite to each other in a direction perpendicular to the feeding direction and both are rotatably connected to the mounting seat, and the traction drive member is installed on the mounting seat, and the traction drive member is used to drive the driving roller to rotate;
[0020] The feed nozzle is mounted on the mounting seat and is located between the active roller and the driven roller. The feed nozzle is used to input materials.
[0021] As a further improvement of the above technical solution, the traction assembly further includes a seam adjustment driving member and a seam adjustment guide member, the seam adjustment driving member being mounted on the mounting seat, and the seam adjustment driving member being used to drive the driven roller to move toward or away from the active roller to adjust the distance between the driven roller and the active roller;
[0022] The seam adjusting guide comprises a linear bearing and a seam adjusting guide rod, the seam adjusting guide rod is slidably connected to the linear bearing, the linear bearing is mounted on the mounting seat, the length direction of the seam adjusting guide rod is perpendicular to the feeding direction, and the seam adjusting guide rod is connected to the driven roller through a traction bracket.
[0023] On the other hand, the present invention also provides a pole piece and diaphragm composite device, comprising two inserting rollers, two composite rollers and two aforementioned follow-up cutting inserting mechanisms, wherein the inserting rollers are located between the pressure plate assembly and the composite rollers.
[0024] The beneficial effect of the present invention is as follows: since the cutter and the traction assembly are both connected to the mounting seat, in the process of conveying the material to the inserting station, the mounting seat drives the cutter and the traction assembly to move as a whole. After completing one insertion, the mounting seat drives the cutter and the traction assembly to retreat as a whole in the direction away from the inserting station. During this process, the traction assembly continues to convey the material in the direction close to the inserting station, and the difference between the speed at which the traction assembly conveys the material and the retreat speed of the mounting seat is equal to the moving speed of the material itself, so that the material is always in a uniform feeding state. After the mounting seat retreats a certain distance (less than the required electrode width), the mounting seat drives the cutter and the traction assembly to move as a whole in the direction close to the inserting station. When the moving speed of the mounting seat is consistent with the moving speed of the material itself, the traction assembly stops. At this time, the moving speed of the cutter is consistent with the moving speed of the material itself, and the two are relatively stationary. Finally, the inserting station obtains the cut material and inserts the material. During the entire process, the moving distance of the mounting base is less than the required pole piece width, which saves the space required for the action and is conducive to reducing the size of the mechanism. The reduced action distance is conducive to increasing the insertion speed; and the material moves at a uniform speed toward the insertion station without stopping, which improves efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0026] Figure 1 This is a structural diagram of the follow-up cutting and inserting mechanism provided by the preferred embodiment of the utility model;
[0027] Figure 2 This is a structural diagram of the follow-up cutting insert mechanism provided by the preferred embodiment of the present utility model near the pressure plate assembly;
[0028] Figure 3 This is a structural diagram of the follow-up cutting insert mechanism provided by the preferred embodiment of the utility model from another angle;
[0029] Figure 4 This is a structural diagram of another angle of the follow-up cutting insert mechanism provided by the preferred embodiment of the utility model;
[0030] Figure 5 This is a cross-sectional view of the follow-up cutting and inserting mechanism provided in the preferred embodiment of the utility model;
[0031] Figure 6 This is a cross-sectional view of the follow-up cutting insert mechanism provided by the preferred embodiment of the utility model close to the cutting assembly;
[0032] Figure 7 This is a cross-sectional view of the follow-up cutting insert mechanism provided by the preferred embodiment of the utility model close to the pressure plate assembly;
[0033] Figure 8This is a cross-sectional view of the follow-up cutting insert mechanism provided in the preferred embodiment of the present invention when cutting the material near the cutter;
[0034] Figure 9 This is a cross-sectional view of the follow-up cutting insert mechanism provided by the preferred embodiment of the present invention when the material passes through the cutter;
[0035] Figure 10 This is a structural diagram of the electrode diaphragm composite equipment provided by the preferred embodiment of the present utility model during the composite process;
[0036] Figure 11 This is a structural diagram of the electrode diaphragm composite equipment provided by the preferred embodiment of the present utility model when performing the second composite process;
[0037] Figure 12 This is a structural diagram of the electrode diaphragm composite equipment provided by the preferred embodiment of the present utility model during the third composite process;
[0038] Reference numerals: 1, follow-up cutting and inserting mechanism, 2, translation assembly, 3, cutting assembly, 4, traction assembly, 5, pressing plate assembly, 6, dust removal assembly, 7, inserting roller, 8, composite roller;
[0039] 21. Moving part, 22. Fixed part, 23. Translation drive part, 25. Drag chain, 31. Cutting drive part, 32. Cutter, 33. First cutting guide rail, 34. Second cutting guide rail, 35. Translation plate, 36. Cutting guide rod, 37. Connecting block, 38. Dust removal pressure plate, 39. Lifting plate, 41. Driving roller, 42. Driven roller, 43. Traction drive part, 44. Seam adjustment drive part, 45. Seam adjustment guide rail, 46. Traction bracket, 47. Seam adjustment guide part, 48. Feed nozzle, 51. First pressing plate, 52. Second pressing plate, 61. Dust removal box, 62. Dust removal cover, 63. Dust removal pipe, 64. Guide plate, 65. Dust removal guide rod;
[0040] 211. Mounting seat, 212. Connecting hole, 311. Cutting motor, 312. Crankshaft, 313. First drive shaft, 314. Drive block, 315. Second drive shaft, 351. Connecting rod, 361. First coil spring, 451. Linear bearing, 511. Bracket, 512. Tension spring, 513. Pressure plate slider, 514. Pressure plate guide rail, 621. Dust suction hole, 651. Second coil spring. DETAILED DESCRIPTION
[0041] The following will clearly and completely describe the concept, specific structure and technical effects of the present invention in combination with the embodiments and drawings, so as to fully understand the purpose, characteristics and effects of the present invention. Obviously, the embodiments described are only a part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, other embodiments obtained by those skilled in the art without creative work are all within the scope of protection of the present invention. In addition, all the connection / connection relationships involved in the patent do not simply refer to the direct connection of components, but refer to the fact that a better connection structure can be formed by adding or reducing connection accessories according to the specific implementation situation. For example, fixed connection / fixed installation can be selected from screw connection, bolt connection, pin connection, key connection, bonding, mortise and tenon connection, welding, riveting and other methods as needed. For detachable connection, screw connection, bolt connection, threaded connection, snap connection, mortise and tenon connection, Velcro connection and other methods can be selected as needed. The various technical features in the creation of the present invention can be combined interchangeably without conflicting with each other.
[0042] See Figure 1-4The preferred embodiment of the present invention provides a follow-up cutting insert mechanism 1, including a translation component 2, a cutting component 3, and a traction component 4; the translation component 2 includes a moving part 21 and a fixed part 22, the moving part 21 is slidably connected to the fixed part 22, the sliding direction of the moving part 21 is the feeding direction, and the moving part 21 includes a mounting seat 211; the cutting component 3 includes a cutting drive component 31 and a cutter 32, the cutting drive component 31 is used to drive the cutter 32 to cut the material, the cutting drive component 31 is installed on the fixed part 22, and the cutter 32 is connected to the mounting seat 211; the traction component 4 is connected to the mounting seat 211, and the traction component 4 is used to continue feeding forward during the retraction process of the moving part 21. Since the cutter 32 and the traction assembly 4 are both connected to the mounting base 211, during the process of conveying the material to the inserting station, the mounting base 211 drives the cutter 32 and the traction assembly 4 to move as a whole. After completing one inserting, the mounting base 211 drives the cutter 32 and the traction assembly 4 to retreat as a whole away from the inserting station. During this process, the traction assembly 4 continues to convey the material toward the inserting station, and the difference between the speed of the traction assembly 4 conveying the material and the retreat speed of the mounting base 211 is equal to the moving speed of the material itself, so that the material is always fed at a uniform speed. After the mounting base 211 retreats a certain distance (less than the required electrode width), the mounting base 211 drives the cutter 32 and the traction assembly 4 to move as a whole toward the inserting station. When the moving speed of the mounting base 211 matches the moving speed of the material itself, the traction assembly 4 stops. At this time, the moving speed of the cutter 32 matches the moving speed of the material itself, and the two are relatively stationary. The cutting drive 31 drives the cutter 32 to cut the material, and finally the inserting station obtains the cut material and inserts the material. During the entire process, the moving distance of the mounting seat 211 is less than the required pole piece width, which saves the space required for the action and is conducive to reducing the size of the mechanism. The reduced action distance is conducive to increasing the insertion speed; and the material moves at a uniform speed toward the insertion station without stopping, thereby improving efficiency.
[0043] In this embodiment, the translation assembly 2 also includes a translation drive member 23, the stator of the translation drive member 23 is fixedly connected to the fixed member 22, the mover of the translation drive member 23 is fixedly connected to the moving member 21, and the moving member 21 is slidably set on the fixed member 22 through the translation drive member 23. Specifically, the translation drive member 23 is a linear motor. The linear motor does not require additional devices to convert rotational motion into linear motion. It has a simple structure, which is conducive to reducing weight and volume. The linear motor can realize direct transmission, eliminate various positioning errors caused by intermediate links, and has high positioning accuracy.
[0044] In other embodiments, the translation drive member may also be a cylinder, which has a large load, can adapt to applications with high torque output, and has rapid movement and response.
[0045] See Figure 1 and Figure 5 The cutting assembly 3 further includes a first cutting guide rail 33, a lifting plate 39, a second cutting guide rail 34, and a translation plate 35. The first cutting guide rail 33 is mounted on the fixing member 22 in a direction perpendicular to the feeding direction. The cutting drive member 31 is used to drive the lifting plate 39 to slide along the first cutting guide rail 33. The second cutting guide rail 34 is mounted on the lifting plate 39 in a direction parallel to the feeding direction. The translation plate 35 is slidably connected to the second cutting guide rail 34. The mounting base 211 is provided with a connecting hole 212. A connecting rod 351 is connected between the translation plate 35 and the cutter 32. The connecting rod 351 passes through the connecting hole 212. The cutting drive member 31 drives the lifting plate 39 to slide along the first cutting guide rail 33. The lifting plate 39 drives the translation plate 35 to move in a direction perpendicular to the feeding direction, causing the cutter 32 to move in a direction perpendicular to the feeding direction, thereby completing the cutting of the material. The connecting rod 351 can abut against the inner wall of the connecting hole 212, and the mounting seat 211 can drive the connecting rod 351 to move together. The connecting rod 351 drives the translation plate 35 to move along the second cutting guide rail 34, so that the cutter 32 can move in the feeding direction. The cutter 32 can move in two directions at the same time, so that the cutter 32 can complete the cutting of the material during the uniform feeding of the material.
[0046] See Figure 3 In this embodiment, a drag chain 25 is connected between the mounting base 211 and the fixing member 22, and the drag chain 25 is used to store, pull and protect the pipeline.
[0047] See Figure 5 and Figure 6 The cutting drive component 31 includes a cutting motor 311 and a crankshaft 312. The rotating shaft of the cutting motor 311 is connected to the crankshaft 312, and the crankshaft 312 is connected to the lifting plate 39. The crankshaft 312 can convert the rotation of the cutting motor 311 into the linear motion of the lifting plate 39. In this mechanism, the cutter 32 moves a small distance during cutting but the cutting frequency is high. Therefore, the lifting plate 39 is required to perform a linear motion with a high frequency but a small reciprocating distance. The characteristics of the crankshaft 312 are suitable for such requirements.
[0048] Specifically, the crankshaft 312 includes a first drive shaft 313, a drive block 314 and a second drive shaft 315. The length direction of the first drive shaft 313 and the length direction of the second drive shaft 315 are the same as the feeding direction. One end of the first drive shaft 313 is connected to the rotating shaft of the cutting motor 311, and the other end is rotatably connected to the drive block 314. One end of the second drive shaft 315 is rotatably connected to the drive block 314, and the other end is fixedly connected to the lifting plate 39. The first drive shaft 313 is driven to rotate by the rotating shaft of the cutting motor 311, and the first drive shaft 313 drives the drive block 314 to rotate, so that the end of the second drive shaft 315 connected to the drive block 314 rotates, and the other end of the second drive shaft 315 drives the lifting plate 39 to move up and down.
[0049] See Figure 1 and Figure 2 The follow-up cutting insert mechanism 1 also includes a pressure plate assembly 5, which is used to secure the cut material. The pressure plate assembly 5 includes a first pressure plate 51, a second pressure plate 52, and a guide plate 64. The first pressure plate 51 and the second pressure plate 52 are arranged opposite each other, and the first pressure plate 51 is connected to the translation plate 35 via a bracket 511. The second pressure plate 52 is connected to the mounting base 211. One side of the guide plate 64 is located between the first and second pressure plates 51, 52, and the other side is curved toward the cutter 32. During the cutting process of the cutter 32, driven by the translation plate 35, the first pressure plate 51 and the cutter 32 move synchronously, ensuring that the first and second pressure plates 51, 52 can clamp the cut material at the first moment of cutting, preventing the cut material from falling. The guide plate 64 guides the cut material, ensuring that the cut material enters between the first and second pressure plates 51, 52.
[0050] A tension spring 512 is connected between the bracket 511 and the mounting base 211. A pressure plate slider 513 is connected to the bracket 511, and a pressure plate guide rail 514 is mounted on the mounting base 211. The pressure plate slider 513 is slidably connected to the pressure plate guide rail 514, which is arranged perpendicular to the feed direction. During the cutting process of the cutter 32, the pressure plate guide rail 514 guides the movement of the first pressure plate 51. When the bracket 511 is raised, the ends of the tension spring 512 are pulled apart, and the tension spring 512 attempts to pull its ends back, clamping the first and second pressure plates 51, 52 together.
[0051] See Figure 7 and Figure 8 The follow-up cutting insert mechanism 1 also includes a dust removal assembly 6, which is located between the cutter 32 and the pressure plate assembly 5. The dust removal assembly 6 includes a dust box 61 and a dust cover 62. The opening of the dust box 61 faces the cutter 32, and the dust cover 62 is located at the opening of the dust box 61. The dust box 61 is mounted on the mounting base 211. The dust cover 62 is provided with a dust suction hole 621, which is connected to the interior of the dust box 61. Specifically, the dust box 61 is mounted on the mounting base 211. During the material conveying process, the dust removal assembly 6 can absorb dust from the material.
[0052] See Figure 3 In this embodiment, the dust removal component 6 also includes a dust removal pipe 63, which is connected to the interior of the dust removal box 61. By connecting the dust removal pipe 63 to a negative pressure source, a negative pressure can be formed on the surface of the dust suction hole 621, thereby collecting the dust on the material into the dust removal box 61.
[0053] See Figure 2The cutting assembly 3 also includes a cutting guide rod 36, which is installed on the mounting seat 211 in a direction perpendicular to the feeding direction. The cutter 32 is connected to the cutting guide rod 36 through a connecting block 37, and the connecting block 37 is slidably connected to the cutting guide rod 36. During the cutting process of the cutter 32, the connecting block 37 can drive the cutter 32 to slide along the cutting guide rod 36, thereby guiding the movement of the cutter 32.
[0054] In this embodiment, one end of the connecting rod 351 is connected to the translation plate 35 , and the other end is connected to the connecting block 37 . When the translation plate 35 drives the connecting rod 351 to move, the connecting block 37 drives the cutter 32 to move.
[0055] See Figure 2 , a dust removal pressure plate 38 is provided on the connecting block 37, see Figure 7 The dust removal pressure plate 38 is connected to the dust removal cover 62. A dust removal guide rod 65 is provided in the dust removal box 61. The length direction of the dust removal guide rod 65 is perpendicular to the feeding direction. The dust removal cover 62 is slidably connected to the dust removal guide rod 65. Figure 8 When the cutter 32 is cutting, the connecting block 37 drives the dust cover 62 to move downward along the dust guide rod 65 to avoid the cutter 32. Figure 9 After cutting is completed, the cutter 32 is lifted up, and the dust removal cover 62 rises along the dust removal guide rod 65 and is flush with the second pressing plate 52, allowing the material to pass smoothly.
[0056] See Figure 2 and Figure 7 A first coil spring 361 is sleeved on the cutting guide rod 36 and is located below the connecting block 37. This spring acts as a buffer when the connecting block 37 moves, making the cutter 32 cut the material more gently. A second coil spring 651 is sleeved on the dust removal guide rod 65 and is located below the dust removal cover 62. This spring acts as a buffer when the dust removal cover 62 moves, transmitting the buffering force to the cutter 32, further enhancing the cutter 32's smoothness in cutting the material.
[0057] See Figure 4The traction assembly 4 includes a driving roller 41, a driven roller 42, a feed nozzle 48, and a traction drive 43. The driving roller 41 and the driven roller 42 are arranged opposite each other in a direction perpendicular to the feeding direction and are both rotatably connected to the mounting base 211. The traction drive 43 is mounted on the mounting base 211 and is used to drive the driving roller 41 to rotate. The feed nozzle 48 is mounted on the mounting base 211 and is located between the driving roller 41 and the driven roller 42. The feed nozzle 48 is used to input material. The material is input through the feed nozzle 48 and passes between the driving roller 41 and the driven roller 42. During the retraction process of the moving member 21, the traction drive 43 drives the driving roller 41 to rotate, causing the material to move toward the inserting station.
[0058] The traction assembly 4 also includes a seam adjustment drive 44 and a seam adjustment guide 47. The seam adjustment drive 44 is mounted on the mounting seat 211. The seam adjustment drive 44 is used to drive the driven roller 42 to move toward or away from the active roller 41 to adjust the distance between the driven roller 42 and the active roller 41; the seam adjustment guide 47 includes a linear bearing 451 and a seam adjustment guide rod 45. The seam adjustment guide rod 45 is slidably connected to the linear bearing 451. The linear bearing 451 is mounted on the mounting seat 211. The length direction of the seam adjustment guide rod 45 is perpendicular to the feeding direction. The seam adjustment guide rod 45 is connected to the driven roller 42 through the traction bracket 46. Specifically, the seam adjustment drive 44 is a cylinder, and its piston rod is connected to the driven roller 42 through the traction bracket 46. The driven roller 42 is rotatably connected to the traction bracket 46. For materials of different sizes, the size of the gap between the active roller 41 and the driven roller 42 can be adjusted. During the gap adjustment process, the gap adjustment drive 44 is started, so that the gap adjustment guide rod 45 moves along the linear bearing 451, and the gap adjustment guide rod 45 drives the traction bracket 46 to move toward or towards the active roller 41, thereby adjusting the size of the gap between the active roller 41 and the driven roller 42.
[0059] See Figure 10-12 The preferred embodiment of the present invention also provides a device for compounding a pole piece and a separator, comprising two inserting rollers 7, two compounding rollers 8, and two follower cutting and inserting mechanisms 1 of the above-described embodiment. The inserting rollers 7 are located between the pressure plate assembly 5 and the compounding rollers 8. After being cut by the two follower cutting and inserting mechanisms 1, the positive and negative pole pieces are conveyed between the two inserting rollers 7. The inserting rollers 7 then convey the separator, which is then conveyed between the two compounding rollers 8 for compounding, ultimately producing a composite material of the pole piece and separator. The cutting station of this device occupies little space, and the pole piece conveying does not require pausing, resulting in high efficiency.
[0060] The electrode diaphragm composite equipment has multiple feeding methods and can complete various composite processes, such as:
[0061] See Figure 10, Composite process 1: After the positive electrode sheet and the negative electrode sheet are cut by two follow-up cutting and inserting mechanisms 1, they are transported to between two inserting rollers 7. The two diaphragms are covered on both sides of the electrode sheet by the inserting rollers 7, and the composite roller 8 composites them to form a composite material of diaphragm-electrode sheet-diaphragm structure.
[0062] See Figure 11 , Composite process 2: After the positive electrode sheet and the negative electrode sheet are cut by two follow-up cutting and inserting mechanisms 1, they are transported between two inserting rollers 7. One of the diaphragms is transported between the two electrode sheets by the inserting roller 7, and the other covers the outside of the electrode sheet. The composite roller 8 performs composite bonding to form a composite material of electrode sheet-diaphragm-electrode sheet-diaphragm structure.
[0063] See Figure 12 , Composite process three: After the positive electrode sheet and the negative electrode sheet are cut by two follow-up cutting and inserting mechanisms 1, they are transported between two inserting rollers 7. The diaphragm is transported between the two electrode sheets by the inserting roller 7, and the composite roller 8 composites them to form a composite material of electrode sheet-diaphragm-electrode sheet structure.
[0064] The above is a specific description of the preferred implementation of the present invention, but the invention of the present invention is not limited to the embodiments. Those skilled in the art can make various equivalent modifications or substitutions without violating the spirit of the present invention. These equivalent modifications or substitutions are all included in the scope defined by the claims of this application.
Claims
1. A follow-up cutting and inserting mechanism, characterized in that: include: A translation assembly, the translation assembly comprising a moving part and a fixed part, the moving part being slidably connected to the fixed part, the sliding direction of the moving part being the feeding direction, and the moving part comprising a mounting seat; A cutting assembly, comprising a cutting drive and a cutter, wherein the cutting drive is used to drive the cutter to cut the material, the cutting drive is mounted on the fixing member, and the cutter is connected to the mounting seat; A traction assembly is connected to the mounting seat and is used to continue feeding the material forward during the retreat of the moving part.
2. The follow-up cutting and inserting mechanism according to claim 1, characterized in that: The cutting assembly further includes a first cutting guide rail, a lifting plate, a second cutting guide rail and a translation plate, wherein the first cutting guide rail is mounted on the fixing member in a direction perpendicular to the feeding direction, and the cutting drive member is used to drive the lifting plate to slide along the first cutting guide rail; the second cutting guide rail is mounted on the lifting plate in a direction parallel to the feeding direction, and the translation plate is slidably connected to the second cutting guide rail; A connecting hole is provided on the mounting seat, a connecting rod is connected between the translation plate and the cutter, and the connecting rod is passed through the connecting hole.
3. The follow-up cutting and inserting mechanism according to claim 2, characterized in that: The cutting drive component includes a cutting motor and a crankshaft, the crankshaft includes a first drive shaft, a drive block and a second drive shaft, the length direction of the first drive shaft and the length direction of the second drive shaft are both the same as the feeding direction, one end of the first drive shaft is connected to the rotating shaft of the cutting motor, and the other end is rotatably connected to the drive block, one end of the second drive shaft is rotatably connected to the drive block, and the other end is fixedly connected to the lifting plate.
4. The follow-up cutting and inserting mechanism according to claim 2, characterized in that: It also includes a pressure plate assembly, which is used to fix the cut material; the pressure plate assembly includes a first pressure plate, a second pressure plate and a guide plate, the first pressure plate and the second pressure plate are arranged opposite to each other, and the first pressure plate is connected to the translation plate through a bracket, and the second pressure plate is connected to the mounting seat, one side of the guide plate is located between the first pressure plate and the second pressure plate, and the other side is bent toward the direction close to the cutter.
5. The follow-up cutting and inserting mechanism according to claim 4, characterized in that: A tension spring is connected between the bracket and the mounting seat; A pressure plate slider is connected to the bracket, a pressure plate guide rail is installed on the mounting seat, the pressure plate slider is slidably connected to the pressure plate guide rail, and the pressure plate guide rail is arranged in a direction perpendicular to the feeding direction.
6. The follow-up cutting and inserting mechanism according to claim 4, characterized in that: Also included is a dust removal assembly, the dust removal assembly being located between the cutter and the pressure plate assembly; The dust removal assembly includes a dust removal box and a dust removal cover. The opening of the dust removal box faces the cutter. The dust removal cover is arranged at the opening of the dust removal box. The dust removal box is installed on the mounting seat. The dust removal cover is provided with a dust suction hole, and the dust suction hole is connected to the interior of the dust removal box.
7. The follow-up cutting and inserting mechanism according to claim 6, characterized in that: The cutting assembly further includes a cutting guide rod, the cutting guide rod being mounted on the mounting seat in a direction perpendicular to the feeding direction, the cutter being connected to the cutting guide rod via a connecting block, and the connecting block being slidably connected to the cutting guide rod; The connecting block is provided with a dust removal pressure plate, the dust removal pressure plate is connected to the dust removal cover, a dust removal guide rod is provided in the dust removal box, the length direction of the dust removal guide rod is perpendicular to the feeding direction, and the dust removal cover is slidably connected to the dust removal guide rod; A first coil spring is sleeved on the cutting guide rod, and the first coil spring is located below the connecting block. A second coil spring is sleeved on the dust removal guide rod, and the second coil spring is located below the dust removal cover.
8. The follow-up cutting and inserting mechanism according to claim 1, characterized in that: The traction assembly includes a driving roller, a driven roller, a feed nozzle, and a traction drive member; the driving roller and the driven roller are arranged opposite to each other in a direction perpendicular to the feeding direction and are both rotatably connected to the mounting base, and the traction drive member is mounted on the mounting base and is used to drive the driving roller to rotate; The feed nozzle is mounted on the mounting seat and is located between the active roller and the driven roller. The feed nozzle is used to input materials.
9. The follow-up cutting and inserting mechanism according to claim 8, characterized in that: The traction assembly further includes a seam adjustment driving member and a seam adjustment guide member, wherein the seam adjustment driving member is mounted on the mounting seat and is used to drive the driven roller to move toward or away from the active roller to adjust the distance between the driven roller and the active roller; The seam adjusting guide comprises a linear bearing and a seam adjusting guide rod, the seam adjusting guide rod is slidably connected to the linear bearing, the linear bearing is mounted on the mounting seat, the length direction of the seam adjusting guide rod is perpendicular to the feeding direction, and the seam adjusting guide rod is connected to the driven roller through a traction bracket.
10. A pole piece and diaphragm composite device, characterized by: It comprises two inserting rollers, two composite rollers and two follow-up cutting inserting mechanisms according to any one of claims 4 to 7, wherein the inserting rollers are located between the pressure plate assembly and the composite rollers.