A new energy battery production encapsulating machine
By designing an automated coating machine, which utilizes electromagnets and telescopic devices to automate the feeding and unloading of electrode sheets, the problem of low efficiency in manual feeding in existing technologies is solved, thereby improving battery production efficiency and accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-02-13
- Publication Date
- 2026-03-27
AI Technical Summary
In the existing technology, the rubber injection molding equipment for protruding electrode sheets requires manual assistance for feeding, which results in inefficient feeding and affects battery production efficiency.
A coating machine for new energy battery production was designed. It uses an electromagnet on the suction block to attract electrode sheets. Combined with telescopic equipment and linkage components, it realizes the automated feeding and unloading of electrode sheets. The automated control is achieved through electric slide rails and a control computer.
The automated feeding and unloading of electrode sheets has been achieved, improving production efficiency and ensuring both feeding accuracy and increased production efficiency.
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Figure CN116281163B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of battery production, in particular to a rubber coating machine for new energy battery production. BACKGROUND
[0002] A battery refers to a cup, a groove or other container or part of a composite container containing an electrolyte solution and a metal electrode to generate current, and can convert chemical energy into electric energy. A battery as an energy source can obtain a current with stable voltage, stable current, long-time stable power supply, little influence from the outside world, simple structure, convenient carrying, simple and easy charging and discharging operation, little influence from the outside world, stable and reliable performance, and plays a great role in various aspects of modern social life.
[0003] In the production of the battery, a rubber ring needs to be injection molded on a protruding electrode sheet of the battery, and the existing protruding electrode sheet rubber injection molding equipment needs manual assistance for loading the protruding electrode sheet when in use due to the small size and large quantity of the protruding electrode sheet, which causes inconvenient and inefficient loading of the protruding electrode sheet and indirectly affects the production efficiency of the battery. SUMMARY
[0004] The application aims to solve the problem that the protruding electrode sheet cannot be efficiently loaded when injection molding a rubber ring in the prior art, and provides a rubber coating machine for new energy battery production.
[0005] In order to achieve the above-mentioned purpose, the application adopts the following technical scheme:
[0006] A rubber coating machine for new energy battery production comprises a workbench, and further comprises: an injection molding machine slidingly installed at the upper end of the workbench, wherein a fixed plate is fixedly connected to the workbench, a fixed mold is detachably installed on the fixed plate, and the output end of the injection molding machine extends into the fixed mold; a movable plate opposite to the fixed plate is slidingly connected to the workbench, wherein a movable mold matched with the fixed mold is detachably installed on the movable plate, and a driving part for driving the injection molding machine and the movable plate to move horizontally is arranged on the workbench; two groups of symmetrical conveying belts are fixedly installed on the two sides of the workbench, wherein a feeding plate is connected to the conveying belt through a feeding assembly, a plurality of evenly distributed suction blocks are arranged on the lower end surface of the feeding plate, and electromagnets are fixedly installed on the suction blocks.
[0007] In order to drive the injection molding machine and the movable plate to move horizontally, preferably, the driving part comprises a telescopic cylinder fixedly installed on the injection molding machine, and the telescopic end of the telescopic cylinder is fixedly connected to the fixed plate, wherein an electric sliding rail is fixedly installed on the workbench, and the movable plate is fixedly connected to the sliding block on the electric sliding rail.
[0008] In order to automatically deliver the electrode sheet to the moving mold, preferably, the feeding assembly includes a mounting frame fixedly installed on the outer wall of the conveyor belt, a telescopic device fixedly installed on the mounting frame, wherein the telescopic end of the telescopic device is fixedly connected to a device plate, a rotating shaft is rotatably connected to the device plate, the feeding plate is fixedly connected to one end of the rotating shaft, and a linkage assembly for driving the rotating shaft to rotate is provided on the device plate.
[0009] In order to position the electrode sheet by the suction block, preferably, the lower end of the suction block is provided with a circular groove, and the electromagnet is fixedly installed in the inner top of the circular groove.
[0010] To drive the feeding plate to automatically rotate 90°, the linkage component further includes a rotating rod rotatably connected to the device plate, on which a worm gear and a driven gear are fixedly mounted. A worm wheel meshing with the worm gear is fixedly mounted on the rotating shaft, and a rack meshing with the driven gear is fixedly mounted on the mounting bracket.
[0011] To make the suction block closer to the moving mold, the lower end of the feed plate is provided with a sliding hole, and the suction block is longitudinally slidably connected in the sliding hole. The feed plate is provided with a sliding cavity, and the sliding cavity is provided with an ejection assembly that drives the suction block to move up and down.
[0012] To automatically bring the feeding plate closer to the moving mold, the ejection assembly further includes a piston plate slidably connected in the slide cavity. An L-shaped plate is fixedly connected to the side wall of the feeding plate, and an elastic airbag is fixedly installed on the short side of the L-shaped plate. The elastic airbag is connected to the slide cavity through a connecting pipe, and the elastic airbag faces the side wall of the moving plate.
[0013] To further prevent the movable plate from damaging the elastic airbag, a pressure plate is fixedly connected to the outer wall of the elastic airbag.
[0014] In order to ensure that the electrode sheets are evenly placed on the conveyor belt, preferably, the conveyor belt has evenly distributed placement holes, and the placement holes are circular.
[0015] To facilitate more convenient automated control of the entire device, a control computer is fixedly installed on the workbench. The control computer is electrically connected to the injection molding machine, electric slide rail, conveyor belt, telescopic device, and electromagnet.
[0016] Compared with the prior art, the present invention provides a coating machine for new energy battery production, which has the following beneficial effects:
[0017] 1. This new energy battery production coating machine uses an electromagnet on the suction block to attract electrode sheets, and then uses a telescopic device to push the device plate towards the moving mold. When the feeding plate is just aligned with the moving mold, the electromagnet on the suction block loses power and loses its magnetism, thus completing the automatic feeding of electrode sheets. Moreover, the feeding plate can complete the feeding of multiple electrode sheets at one time, greatly improving the feeding efficiency.
[0018] 2. The coating machine for new energy battery production uses a moving device plate to drive the driven gear to slide over the rack. The driven gear then drives the worm gear to rotate through the rotating rod. The worm gear then drives the loading plate to rotate 90° through the rotating shaft. This means that the side of the loading plate with the electrode sheet adsorbed faces the loading surface of the moving mold, thus ensuring that the loading plate completes the subsequent loading work.
[0019] 3. This new energy battery production coating machine uses a moving feeding plate to drive an L-shaped plate to move synchronously. When the feeding plate is perfectly aligned with the moving mold, the L-shaped plate will cause the elastic airbag to press against the outer wall of the moving plate. The piston plate will then drive the suction block to move towards the moving mold, thereby greatly reducing the gap between the suction block and the moving mold. This prevents the electrode sheets on the suction block from falling off during the feeding process and ensures the accuracy of electrode sheet feeding.
[0020] 4. This new energy battery coating machine uses an electric slide rail to reset the moving mold. Then, the telescopic device on the other side of the worktable drives the feeding plate to pick up the electrode sheet processed on the moving mold. The telescopic device then moves the feeding plate to another conveyor belt, and the suction block places the suction electrode sheet onto the conveyor belt, thus completing the automatic unloading of the electrode sheet. This eliminates the need for manual unloading and greatly improves production efficiency. Attached Figure Description
[0021] Figure 1 This is a first-view isometric structural diagram of a coating machine for new energy battery production proposed in this invention.
[0022] Figure 2 This is a second-view isometric structural diagram of a coating machine for new energy battery production proposed in this invention;
[0023] Figure 3 This is a partial structural diagram of a coating machine for new energy battery production proposed in this invention;
[0024] Figure 4 This is a schematic diagram of the second partial structure of a coating machine for new energy battery production proposed in this invention;
[0025] Figure 5 This is a schematic diagram of the third part of the structure of a coating machine for new energy battery production proposed in this invention;
[0026] Figure 6 This invention proposes a coating machine for new energy battery production. Figure 5 Enlarged view of section A in the middle;
[0027] Figure 7 This is a schematic diagram of the cross-sectional structure of the feeding plate of a coating machine for new energy battery production proposed in this invention.
[0028] In the diagram: 1. Workbench; 2. Injection molding machine; 3. Fixed plate; 4. Fixed mold; 5. Movable plate; 6. Electric slide rail; 7. Moving mold; 8. Conveyor belt; 9. Belt; 10. Placement hole; 11. Mounting bracket; 12. Telescopic device; 13. Device plate; 14. Rotating shaft; 15. Feeding plate; 16. Suction block; 17. Circular groove; 18. Worm gear; 19. Rotating rod; 20. Worm; 21. Driven gear; 22. Rack; 23. Slide cavity; 24. Piston plate; 25. Slide hole; 26. L-shaped plate; 27. Elastic airbag; 28. Connecting pipe; 29. Control computer; 30. Telescopic cylinder. Detailed Implementation
[0029] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0030] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0031] Example 1:
[0032] Reference Figures 1-7 A coating machine for new energy battery production includes a worktable 1 and an injection molding machine 2, which is slidably mounted on the upper end of the worktable 1. A fixed plate 3 is fixedly connected to the worktable 1, and a fixed mold 4 is detachably mounted on the fixed plate 3. The output end of the injection molding machine 2 extends into the fixed mold 4. A movable plate 5, opposite to the fixed plate 3, is slidably connected to the worktable 1. A movable mold 7, which cooperates with the fixed mold 4, is detachably mounted on the movable plate 5. The movable mold 7 is equipped with an electromagnet for adsorbing products. The worktable 1 is equipped with a drive unit for driving the injection molding machine 2 and the movable plate 5 to move horizontally. Two sets of symmetrically arranged conveyor belts 8 are fixedly mounted on both sides of the worktable 1. A feeding plate 15 is connected to the conveyor belt 8 through a feeding assembly. The lower end face of the feeding plate 15 is provided with multiple evenly distributed suction blocks 16, and an electromagnet is fixedly mounted on the suction blocks 16.
[0033] In use, the protruding electrode sheets are evenly placed on one of the conveyor belts 8. The conveyor belts 8 then transport the evenly placed electrode sheets to the lower end of the loading plate 15. The loading plate 15 can then attract the electrode sheets using the electromagnets on the suction block 16. The feeding assembly then aligns the side of the loading plate 15 with the electrode sheets facing the loading surface of the moving mold 7. When the loading plate 15 is just aligned with the moving mold 7, the electromagnets on the suction block 16 are de-energized and lose their magnetism, while the electromagnets on the moving mold 7 generate magnetic attraction, thus loading the electrode sheets onto the moving mold 7. The telescopic device 12 then moves the loading plate. Once reset, the electrode sheet feeding process can be completed automatically. The feeding plate 15 can feed multiple electrode sheets at once, greatly improving feeding efficiency. After feeding, the drive unit moves the movable plate 5 towards the fixed plate 3 until the movable plate 5 drives the moving mold 7 to fully fit with the fixed mold 4. Then, the injection molding machine 2 performs injection molding on the fixed mold 4 and the moving mold 7 to complete the rubber coating of the electrode sheet. After processing, the electrode sheet can be automatically unloaded by the feeding components on the two conveyor belts 8, eliminating the need for manual unloading and greatly improving production efficiency.
[0034] Furthermore, the conveyor belt 8 has evenly distributed placement holes 10 on its belt 9, and the placement holes 10 are circular. When the electrode sheet is placed on the conveyor belt 8, it is placed in the placement hole 10, which can more accurately position the electrode sheet, thereby facilitating the accuracy of the suction block 16 in adsorbing the electrode sheet, and also when placing the electrode sheet.
[0035] Example 2:
[0036] Reference Figures 1-3 The implementation is basically the same as in Example 1, but further, a specific implementation scheme of the drive unit is disclosed.
[0037] The drive unit includes a telescopic cylinder 30 fixedly installed on the injection molding machine 2. The telescopic end of the telescopic cylinder 30 is fixedly connected to the fixed plate 3. An electric slide rail 6 is fixedly installed on the worktable 1, and the movable plate 5 is fixedly connected to the slider on the electric slide rail 6.
[0038] After the material is loaded, the movable plate 5 is moved towards the fixed plate 3 by the electric slide rail 6 until the movable plate 5 drives the moving mold 7 to fully fit with the fixed mold 4. Then, the injection molding machine 2 performs injection molding on the fixed mold 4 and the moving mold 7 to complete the rubber coating of the electrode sheet. When it is necessary to pull the output end of the injection molding machine 2 out of the fixed mold 4, the telescopic cylinder 30 can be used to pull the injection molding machine 2 out of the fixed mold 4, which facilitates the maintenance of the injection molding machine 2.
[0039] Furthermore, a control computer 29 is fixedly installed on the workbench 1. The control computer 29 is electrically connected to the injection molding machine 2, the electric slide rail 6, the conveyor belt 8, the telescopic device 12, and the electromagnet. Through the control computer 29, the control of the injection molding machine 2, the electric slide rail 6, the conveyor belt 8, the telescopic device 12, and the electromagnet can be completed more automatically.
[0040] Example 3:
[0041] Reference Figure 1 , Figure 2 , Figure 4 , Figure 5 as well as Figure 7 Similar to Example 2, but with a further detail, a specific implementation scheme for the feeding component is disclosed.
[0042] The feeding assembly includes a mounting frame 11 fixedly installed on the outer wall of the conveyor belt 8. A telescopic device 12 is fixedly installed on the mounting frame 11. A device plate 13 is fixedly connected to the telescopic end of the telescopic device 12. A rotating shaft 14 is rotatably connected to the device plate 13. A feeding plate 15 is fixedly connected to one end of the rotating shaft 14. A linkage assembly for driving the rotating shaft 14 to rotate is provided on the device plate 13.
[0043] In use, the protruding electrode sheets are evenly placed on one of the conveyor belts 8. The conveyor belts 8 then transport the evenly placed electrode sheets to the lower end of the loading plate 15. The loading plate 15 can then attract the electrode sheets by the electromagnet on the suction block 16. Then, the telescopic device 12 pushes the device plate 13 towards the moving mold 7. The device plate 13 can then drive the loading plate 15 towards the moving mold 7. During the movement of the loading plate 15 and the device plate 13, the linkage component can drive the loading plate 15 to rotate 90°, that is, so that the side of the loading plate 15 with the electrode sheets attracted faces the loading surface of the moving mold 7. When the loading plate 15 is just aligned with the moving mold 7, the electromagnet on the suction block 16 is de-energized and loses its magnetism. At the same time, the electromagnet on the moving mold 7 generates magnetic attraction, which can load the electrode sheets onto the moving mold 7. Then, the telescopic device 12 drives the loading plate 15 to reset, thus completing the automatic loading of the electrode sheets. The loading plate 15 can load multiple electrode sheets at one time.
[0044] During unloading, the working principle is basically similar to the above principle. The telescopic device 12 on the other side of the workbench 1 drives the loading plate 15 to move to align with the moving mold 7. Then, the suction block 16 on the loading plate 15 picks up the electrode sheet processed on the moving mold 7. Then, the telescopic device 12 drives the loading plate 15 to move to another conveyor belt 8, and the suction block 16 places the suction electrode sheet onto the conveyor belt 8, thus completing the automatic unloading of the electrode sheet. Therefore, manual unloading is not required, and the production efficiency is greatly improved.
[0045] Furthermore, the lower end of the suction block 16 is provided with a circular groove 17, and the electromagnet is fixedly installed on the inner top of the circular groove 17. When the suction block 16 picks up the electrode sheet, it can attract the electrode sheet into the circular groove 17, thereby making the positioning of the electrode sheet more accurate and facilitating the delivery of the electrode sheet into the moving mold 7.
[0046] Example 4:
[0047] Reference Figures 4-6 Similar to Example 3, but further, a specific implementation scheme for the linkage component is disclosed.
[0048] The linkage assembly includes a rotating rod 19 rotatably connected to the device plate 13, a worm gear 20 and a driven gear 21 fixedly mounted on the rotating rod 19, wherein a worm wheel 18 meshing with the worm gear 20 is fixedly mounted on the rotating shaft 14, and a rack 22 meshing with the driven gear 21 is fixedly mounted on the mounting bracket 11.
[0049] During the movement of the loading plate 15 and the device plate 13, the device plate 13 will drive the driven gear 21 to slide over the rack 22. The driven gear 21 will then drive the worm 20 to rotate through the rotating rod 19. The worm 20 will drive the worm wheel 18 to rotate. The worm wheel 18 will then drive the loading plate 15 to rotate 90° through the rotating shaft 14. That is, the side of the loading plate 15 with the electrode sheet adsorbed will face the loading surface of the moving mold 7. Conversely, when the loading plate 15 and the device plate 13 move and reset, the driven gear 21 will slide over the rack 22 again. The rack 22 will drive the driven gear 21 to reverse, thereby driving the loading plate 15 to rotate 90° and reset.
[0050] Example 5:
[0051] Reference Figures 4-7 The implementation is basically the same as in Example 4, but with a further addition of a specific implementation plan to improve the feeding accuracy of the material suction block 16.
[0052] The lower end of the feeding plate 15 is provided with a sliding hole 25, and the suction block 16 is longitudinally slidably connected in the sliding hole 25. The feeding plate 15 is provided with a sliding cavity 23, and the sliding cavity 23 is provided with an ejection assembly that drives the suction block 16 to move up and down. The ejection assembly includes a piston plate 24 slidably connected in the sliding cavity 23. An L-shaped plate 26 is fixedly connected to the side wall of the feeding plate 15. An elastic airbag 27 is fixedly installed on the short side of the L-shaped plate 26. The elastic airbag 27 is connected to the sliding cavity 23 through a connecting pipe 28. The elastic airbag 27 faces the side wall of the movable plate 5.
[0053] During the feeding process, when the feeding plate 15 moves towards the moving mold 7, the feeding plate 15 also drives the L-shaped plate 26 to move synchronously. When the feeding plate 15 is just fully aligned with the moving mold 7, the L-shaped plate 26 will cause the elastic airbag 27 to press against the outer wall of the movable plate 5. The elastic airbag 27 will then transport the air inside to the slide cavity 23 through the connecting pipe 28. Under the action of the air pressure in the slide cavity 23, the piston plate 24 will drive the suction block 16 to move towards the moving mold 7, thereby causing the suction block 16 to move towards the moving mold 7. The gap between the device plate 13 and the moving mold 7 is greatly reduced, thereby preventing the electrode sheet on the suction block 16 from falling off during the feeding process and ensuring the feeding accuracy of the electrode sheet. When the device plate 13 drives the feeding plate 15 away from the moving mold 7, the elastic airbag 27 is no longer pressed by the moving plate 5. The elastic airbag 27 will elastically reset and draw the air in the slide cavity 23 back into the elastic airbag 27 through the connecting pipe 28. The piston plate 24 in the slide cavity 23 will drive the suction block 16 to slide reset and move away from the moving mold 7.
[0054] Furthermore, a pressure plate is fixedly connected to the outer wall of the elastic airbag 27. When the elastic airbag 27 is compressed, the movable plate 5 will press against the pressure plate first, and then the pressure plate will compress the elastic airbag 27, thereby making the elastic airbag 27 less susceptible to damage from the movable plate 5.
[0055] In this new energy battery production coating machine, protruding electrode sheets are evenly placed onto one of the conveyor belts 8. The conveyor belts 8 then transport the evenly placed electrode sheets to the lower end of the loading plate 15. The loading plate 15 then attracts the electrode sheets via electromagnets on the suction block 16. The telescopic device 12 then pushes the device plate 13 towards the moving mold 7. During the movement of the loading plate 15 and device plate 13, the device plate 13 drives the driven gear 21 to slide over the rack 22. The driven gear 21 then drives the worm gear 20 to rotate via the rotating rod 19. The worm gear 20 drives the worm wheel 18 to rotate, and the worm wheel 18, through the rotating shaft 14, causes the loading plate 15 to rotate 90°, thus causing the loading plate 15 to be attracted upwards. The side with the electrode sheet faces the feeding surface of the moving mold 7. When the feeding plate 15 is just aligned with the moving mold 7, the electromagnet on the suction block 16 is de-energized and loses its magnetism. At the same time, the electromagnet on the moving mold 7 generates magnetic attraction, which can feed the electrode sheet onto the moving mold 7. Then, the feeding plate 15 is reset by the telescopic device 12, which can complete the automatic feeding of the electrode sheet. The feeding plate 15 can feed multiple electrode sheets at one time, which greatly improves the feeding efficiency. When the feeding plate 15 moves and resets in the direction of the device plate 13, the driven gear 21 will slide over the rack 22 again. The rack 22 will drive the driven gear 21 to reverse, thereby driving the feeding plate 15 to reverse 90° and reset. When feeding is needed again, the suction block 16 can use the electromagnet to attract the electrode sheet on the conveyor belt 8.
[0056] During the feeding process, when the feeding plate 15 moves towards the moving mold 7, the feeding plate 15 also drives the L-shaped plate 26 to move synchronously. When the feeding plate 15 is just fully aligned with the moving mold 7, the L-shaped plate 26 will cause the elastic airbag 27 to press against the outer wall of the movable plate 5. The elastic airbag 27 will then transport the air inside to the slide cavity 23 through the connecting pipe 28. Under the action of the air pressure in the slide cavity 23, the piston plate 24 will drive the suction block 16 to move towards the moving mold 7, thereby causing the suction block 16 to move towards the moving mold 7. The gap between the device plate 13 and the moving mold 7 is greatly reduced, thereby preventing the electrode sheet on the suction block 16 from falling off during the feeding process and ensuring the feeding accuracy of the electrode sheet. When the device plate 13 drives the feeding plate 15 away from the moving mold 7, the elastic airbag 27 is no longer pressed by the moving plate 5. The elastic airbag 27 will elastically reset and draw the air in the slide cavity 23 back into the elastic airbag 27 through the connecting pipe 28. The piston plate 24 in the slide cavity 23 will drive the suction block 16 to slide reset and move away from the moving mold 7.
[0057] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A new energy battery production encapsulating machine, comprising a workbench (1), characterized in that, Also include: Injection molding machine (2), slidingly mounted on the upper end of the workbench (1), Wherein, the workbench (1) is fixedly connected with a fixed plate (3), the fixed plate (3) is detachably installed with a fixed mold (4), the output end of the injection molding machine (2) extends into the fixed mold (4); The movable plate (5) opposite to the fixed plate (3) is slidingly connected on the workbench (1), Wherein, the movable plate (5) is detachably installed with a movable mold (7) matched with the fixed mold (4), and the workbench (1) is provided with a driving part for driving the horizontal movement of the injection molding machine (2) and the movable plate (5); Two groups of symmetrical conveying belts (8) are respectively fixedly installed on the two sides of the workbench (1), Wherein, the conveying belt (8) is connected with a feeding plate (15) through a feeding assembly, the lower end surface of the feeding plate (15) is provided with a plurality of evenly distributed suction blocks (16), and the suction blocks (16) are fixedly installed with electromagnets; The feeding assembly comprises: A mounting bracket (11) is fixedly installed on the outer wall of the conveying belt (8), and the mounting bracket (11) is fixedly installed with a telescopic device (12), Wherein, the telescopic end of the telescopic device (12) is fixedly connected with a device plate (13), the device plate (13) is rotatably connected with a rotating shaft (14), the feeding plate (15) is fixedly connected with one end of the rotating shaft (14), and the device plate (13) is provided with a linkage assembly for driving the rotating shaft (14) to rotate; The linkage assembly comprises: A rotating shaft (19) is rotatably connected to the device plate (13), and the rotating shaft (19) is fixedly installed with a worm (20) and a driven gear (21), Wherein, the rotating shaft (14) is fixedly installed with a worm wheel (18) engaged with the worm (20), and the mounting bracket (11) is fixedly installed with a rack (22) engaged with the driven gear (21); The lower end of the feeding plate (15) is provided with a sliding hole (25), and the suction blocks (16) are longitudinally slidingly connected in the sliding hole (25), Wherein, the feeding plate (15) is provided with a sliding cavity (23), and the sliding cavity (23) is provided with an ejection assembly for driving the suction blocks (16) to move up and down; The ejection assembly comprises: A piston plate (24) is slidingly connected in the sliding cavity (23), a L-shaped plate (26) is fixedly connected to the side wall of the feeding plate (15), the L-shaped plate (26) is fixedly installed with an elastic air bag (27), the elastic air bag (27) is communicated with the sliding cavity (23) through a connecting pipe (28), and the elastic air bag (27) is towards the side wall of the movable plate (5); The driven gear (21) will drive the worm (20) to rotate through the rotating shaft (19); The worm wheel (18) will drive the feeding plate (15) to overturn 90° through the rotating shaft (14); The feeding plate (15) will drive the L-shaped plate (26) to move synchronously, when the feeding plate (15) is completely aligned with the movable mold (7), the L-shaped plate (26) will drive the elastic air bag (27) to tightly abut against the outer wall of the movable plate (5).
2. The encapsulating machine for new energy battery production according to claim 1, characterized in that, The driving part comprises: A telescopic air cylinder (30) is fixedly installed on the injection molding machine (2), and a telescopic end of the telescopic air cylinder (30) is fixedly connected to the fixed plate (3), Wherein, the workbench (1) is fixedly installed with an electric sliding rail (6), and the movable plate (5) is fixedly connected with a sliding block on the electric sliding rail (6).
3. The encapsulating machine for new energy battery production according to claim 1, characterized in that, The lower end of the suction block (16) is provided with a circular groove (17), and the electromagnet is fixedly installed at the inner top of the circular groove (17).
4. The encapsulating machine for new energy battery production according to claim 1, characterized in that, The outer wall of the elastic air bag (27) is fixedly connected with a pressing plate.
5. The encapsulating machine for new energy battery production according to claim 1, characterized in that, The belt (9) of the conveying belt (8) is provided with uniformly distributed placing holes (10), and the placing holes (10) are circular.
6. The encapsulating machine for new energy battery production according to claim 2, characterized in that, The workbench (1) is fixedly installed with a control computer (29), and the control computer (29) is electrically connected with the injection molding machine (2), the electric sliding rail (6), the conveying belt (8), the telescopic device (12) and the electromagnet.
Citation Information
Patent Citations
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CN113910539A
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CN216914139U