Polymer lithium battery processing clamp

By setting up a driving motor and electric guide rail in the polymer lithium battery processing fixture, the continuous discharge of lithium batteries is achieved, and the problem of low discharge efficiency of existing fixtures when clamping multiple lithium batteries is solved, and the processing progress is improved.

CN223289385UActive Publication Date: 2025-09-02SHENZHEN DETAI BATTERY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422670606.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-09-02
Estimated Expiration
2034-11-04

AI Technical Summary

Technical Problem

The existing polymer lithium battery processing fixtures do not have the continuous loading function when used, resulting in slow processing progress.

Method used

By setting up a driving motor to drive the rotary rod, combining electric guide rails and electric sliders, the continuous movement of the feeding box is achieved, the continuous discharge of the lithium battery is driven, and the stable clamping and positioning of the lithium battery is ensured through the design of the limit block and the clamping plate.

Benefits of technology

The continuous discharge of lithium batteries is achieved, processing efficiency is improved, and the problem of low discharge efficiency of existing fixtures when clamping multiple lithium batteries is solved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of lithium battery processing clamps, in particular to a polymer lithium battery processing clamp which comprises a working panel. The device comprises a working panel and further comprises electric guide rails, electric sliding blocks, a support, a feeding box, a driving motor, a rotating rod and a shifting plate, a positioning plate is installed at the left middle position of the upper surface of the working panel, the electric guide rails are installed at the positions, located on the front side and the rear side of the positioning plate, of the upper surface of the working panel, and the electric sliding blocks are slidably connected to the upper surfaces of the two electric guide rails; by arranging the driving motor, the rotating rod can be driven to rotate during operation, the material stirring rod on the surface of the rotating rod can be driven to synchronously rotate, meanwhile, the feeding box can be driven to move towards one side of the lower clamping plate under the cooperation of the electric guide rail and the electric sliding block, and the driving motor can continuously operate while moving; and the material stirring plates are driven to continuously rotate until the two adjacent material stirring plates rotate to the opening position of the bottom of the feeding box, and the lithium batteries can fall on the surface of the lower clamping plate, so that continuous discharging is realized.
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Description

Technical Field

[0001] The utility model relates to the field of lithium battery processing fixtures, in particular to a polymer lithium battery processing fixture. Background Art

[0002] The so-called polymer lithium battery refers to a lithium-ion battery that uses a polymer as an electrolyte. When processing lithium batteries, a clamp is usually used to fix the position of the lithium battery to avoid the position of the lithium battery being offset during processing, resulting in a decrease in processing accuracy.

[0003] When the existing polymer lithium battery processing fixture is in use, the driving assembly drives the clamping plate to clamp the lithium battery. However, due to the continuous feeding structure paired with it, the material cannot be fed quickly and continuously during processing, resulting in slow processing progress.

[0004] Therefore, in view of the fact that the above-mentioned existing polymer lithium battery processing fixture does not have the function of continuous loading when in use, a polymer lithium battery processing fixture can be designed. By setting a driving motor, its output end will drive the rotating rod to rotate during operation, and the material removal rod on the surface of the rotating rod will be driven to rotate synchronously. At the same time, with the cooperation of the electric guide rail and the electric slider, the loading box will be driven to move to one side of the lower clamping plate, so as to achieve continuous material discharge. Utility Model Content

[0005] In order to overcome the problem that the existing polymer lithium battery processing fixture does not have a continuous loading structure when in use, and cannot load materials quickly and continuously during processing, resulting in slow processing progress.

[0006] The technical solution of the utility model is: a polymer lithium battery processing fixture, comprising a working panel; also comprising an electric guide rail, an electric slider, a support, a loading box, a driving motor, a rotating rod and a material stripping plate. Legs are provided at the corners of the bottom surface of the working panel, and a positioning plate is installed at the middle left position of the upper surface of the working panel. The upper surface of the working panel is located at the front and rear sides of the positioning plate, and an electric guide rail is installed on the upper surfaces of the two electric guide rails. The upper surfaces of the two electric sliders are slidably connected to the electric slider, and the upper surfaces of the two electric sliders are installed with supports. The loading box is installed on the upper surfaces of the two supports, and the driving motor is installed at the lower right corner of the front surface of the loading box. The output end of the driving motor passes through the front side panel of the loading box and is connected to one end of the rotating rod, and the other end of the rotating rod is rotatably connected to the rear side of the inner surface of the loading box. Six material stripping plates distributed in a circumference are installed on the outer surface of the rotating rod, and a mounting frame is installed on the upper surface of the positioning plate. The bottom plate is placed on the inner surface of the mounting frame, and the upper surface of the bottom plate is provided with a lower splint.

[0007] Preferably, by setting a driving motor, its output end will drive the rotating rod to rotate during operation, and the material removing rod on the surface of the rotating rod will be driven to rotate synchronously. During the rotation, a lithium battery inside the loading box will fall into the gap formed by the two material removing plates, and at the same time, the loading box will be driven to move to one side of the lower clamping plate with the cooperation of the electric guide rail and the electric slider. During the movement, the driving motor will continue to operate, driving the material removing plates to rotate continuously until the two adjacent material removing plates rotate to the opening position at the bottom of the loading box, and the lithium battery will fall on the surface of the lower clamping plate, thereby realizing continuous material discharge, so as to solve the problem that the existing polymer lithium battery processing fixture does not have the function of continuous material discharge during use and has low material discharge efficiency when clamping multiple lithium batteries.

[0008] Preferably, a first limit block is installed at the lower left position of the inner surface of the loading box, the upper surface of the first limit block is connected to the bottom surface of the second limit block, and the left surface of the second limit block is connected to the left side of the inner surface of the loading box. By setting the second limit block, the lithium battery to be processed inside the loading box can be guided to ensure that the lithium battery can slide smoothly between the two selector plates, and by setting the first limit block, the outer surface of the lithium battery can be limited when the selector plate rotates to ensure that the falling position is always on the right side of the bottom of the loading box.

[0009] Preferably, a connecting seat is installed on the right side surface of the lower splint, and a first rotating shaft for rotation is inserted through the front and rear surfaces of the connecting seat, and connecting rods are installed on the front and rear end surfaces of the first rotating shaft. The left side of the opposite surfaces of the two connecting rods is connected to the second rotating shaft, and the outer surface of the second rotating shaft is sleeved with an upper splint. By setting the first rotating shaft, the second rotating shaft and the connecting rod, the second rotating shaft can be rotated around the first rotating shaft driven by the connecting rod, thereby achieving the purpose of opening and closing the upper splint.

[0010] Preferably, six equally spaced limit grooves are provided on the upper surfaces of the lower splint and the upper splint, and anti-slip rubber pads are laid on the surfaces of the limit grooves. By setting the limit grooves, when the upper splint is rotated to fit with the upper surface of the lower splint, the limit grooves corresponding to the surfaces of the upper and lower splints will be merged into a circular groove, thereby fitting with the outer surface of the lithium battery. The anti-slip rubber pads inside the limit grooves can increase the friction with the outer surface of the lithium battery to avoid loosening during processing.

[0011] Preferably, a handle is installed at the right end position of the front surface of the upper splint, symmetrical sockets are provided at the right position of the upper surface of the upper splint, and symmetrical pins are installed at the left position of the upper surface of the lower splint, the pins match the sockets, and a pad is installed at the right position of the bottom surface of the upper splint. By providing a handle, it is convenient for the staff to rotate the upper splint. At the same time, when the upper splint and the lower splint are fitted together, the pin will be stuck into the inside of the socket, thereby fixing the position of the upper splint and the lower splint, thereby improving the clamping effect, and by providing a pad, the bumping of the bottom position when the upper splint is flipped can be reduced.

[0012] Preferably, the corners of the upper surface of the base plate are threaded with fixing screws, and the base plate is fixed to the positioning plate by the fixing screws. By setting the fixing screws, the base plate can be easily disassembled and assembled, thereby facilitating the removal of the lower splint from the surface of the working panel.

[0013] Preferably, a mounting plate is provided at the rear side of the upper surface of the working panel, and electric push rods are installed on the left and right sides of the upper surface of the mounting plate, and four sleeves are provided between the two electric push rods and distributed at equal intervals, and the bottom surfaces of the four sleeves are fixedly connected to the upper surface of the mounting plate, and the front surfaces of the four sleeves are inserted with telescopic rods connected in a sliding manner, and the outer surfaces of the telescopic rods and the telescopic ends of the electric push rods are installed with rings, and fixed rods are provided between the rings, and the front end surfaces of the telescopic rods and the telescopic ends of the electric push rods are installed with top blocks. By setting up the electric push rod, during operation, its telescopic end will drive the telescopic rod to extend and retract synchronously in cooperation with the ring and the fixed rod, thereby driving the top block to move to one side of the lower clamping plate and contact with the rear end surface of the lithium battery, so as to ensure the flatness of the clamping.

[0014] Beneficial effects of the utility model:

[0015] 1. By setting a driving motor, its output end will drive the rotating rod to rotate during operation, and the material tapping rod on the surface of the rotating rod will be driven to rotate synchronously. During the rotation, a lithium battery inside the loading box will fall into the gap formed by the two material tapping plates. At the same time, the loading box will be driven to move to one side of the lower clamping plate with the cooperation of the electric guide rail and the electric slider. During the movement, the driving motor will continue to operate, driving the material tapping plates to rotate continuously until the two adjacent material tapping plates rotate to the opening position at the bottom of the loading box, and the lithium battery will fall on the surface of the lower clamping plate, thereby realizing continuous material discharge, so as to solve the problem that the existing polymer lithium battery processing fixture does not have the function of continuous material discharge during use and the material discharge efficiency is low when clamping multiple lithium batteries. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 Shown is a schematic diagram of the three-dimensional structure of a polymer lithium battery processing fixture of the present utility model;

[0017] Figure 2 Shown is a half-cutaway schematic diagram of a loading box of a polymer lithium battery processing fixture of the present invention;

[0018] Figure 3 Shown is a schematic diagram of the three-dimensional structure of the lower clamping plate of a polymer lithium battery processing fixture of the present invention;

[0019] Figure 4 What is shown is a schematic diagram of the three-dimensional structure of an electric push rod of a polymer lithium battery processing fixture of the present invention.

[0020] Explanation of the accompanying drawings: 1. working panel; 2. support leg; 3. positioning plate; 4. electric guide rail; 5. electric slider; 6. support; 7. loading box; 8. driving motor; 9. rotating rod; 10. material plate; 11. first limit block; 12. second limit block; 13. mounting frame; 14. bottom plate; 15. fixing screw; 16. lower clamping plate; 17. connecting seat; 18. first rotating shaft; 19. connecting rod; 20. second rotating shaft; 21. upper clamping plate; 22. limiting groove; 23. handle; 24. socket; 25. latch; 26. pad; 27. mounting plate; 28. electric push rod; 29. ​​sleeve; 30. telescopic rod; 31. ring; 32. fixing rod; 33. top block. DETAILED DESCRIPTION

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] See also Figures 1-4The utility model provides an embodiment: a polymer lithium battery processing fixture, comprising a working panel 1; also comprising an electric guide rail 4, an electric slider 5, a support 6, a loading box 7, a driving motor 8, a rotating rod 9 and a stripping plate 10. Support legs 2 are provided at the corners of the bottom surface of the working panel 1, a positioning plate 3 is installed at the middle left position of the upper surface of the working panel 1, and the upper surface of the working panel 1 is located at the front and rear sides of the positioning plate 3. The upper surfaces of the two electric guide rails 4 are slidably connected with the electric slider 5, the upper surfaces of the two electric sliders 5 are installed with supports 6, and the upper surfaces of the two supports 6 are installed with a loading box 7, and the driving motor 8 is installed at the lower right corner of the front surface of the loading box 7. The output end of the driving motor 8 passes through the front panel of the loading box 7 and is connected to one end of the rotating rod 9, and the other end of the rotating rod 9 is connected to the rear rotating rod of the inner surface of the loading box 7. Dynamic connection, the outer surface of the rotating rod 9 is equipped with six circumferentially distributed material stripping plates 10, the upper surface of the positioning plate 3 is equipped with a mounting frame 13, the inner surface of the mounting frame 13 is placed with a bottom plate 14, and the upper surface of the bottom plate 14 is provided with a lower clamping plate 16. By setting a driving motor 8, its output end will drive the rotating rod 9 to rotate during operation, and the material stripping rod on the surface of the rotating rod 9 will be driven to rotate synchronously. During the rotation, a lithium battery inside the loading box 7 will fall into the gap formed between the two material stripping plates 10. At the same time, the loading box 7 will be driven to move to one side of the lower clamping plate 16 under the cooperation of the electric guide rail 4 and the electric slider 5. During the movement, the driving motor 8 will continue to operate, driving the material stripping plates 10 to rotate continuously until the two adjacent material stripping plates 10 rotate to the bottom opening position of the loading box 7, and the lithium battery will fall on the surface of the lower clamping plate 16, thereby realizing continuous discharge.

[0023] See also Figure 1-Figure 3The second limiting block 12 is connected to the bottom surface of the second limiting block 12, and the left surface of the second limiting block 12 is connected to the left inner surface of the loading box 7. By setting the second limiting block 12, the lithium battery to be processed inside the loading box 7 can be guided to ensure that the lithium battery can slide smoothly between the two stripping plates 10, and by setting the first limiting block 11, when the stripping plate 10 rotates, the outer surface of the lithium battery can be limited to ensure that the falling position is always at the right bottom position of the loading box 7. The right surface of the lower clamping plate 16 is provided with a connecting seat 17, and the front and rear surfaces of the connecting seat 17 are penetrated by a first rotating shaft 18 connected in rotation. The front and rear end surfaces of the first rotating shaft 18 are both provided with connecting rods 19. The left side of the opposite surface of the rod 19 is connected to a second rotating shaft 20, and the outer surface of the second rotating shaft 20 is sleeved with an upper clamping plate 21. By setting the first rotating shaft 18, the second rotating shaft 20 and the connecting rod 19, the second rotating shaft 20 can be driven by the connecting rod 19 to rotate around the first rotating shaft 18, thereby achieving the purpose of opening and closing the upper clamping plate 21. The upper surfaces of the lower clamping plate 16 and the upper clamping plate 21 are both provided with six equally spaced limit grooves 22, and the surfaces of the limit grooves 22 are covered with anti-slip rubber pads. By setting the limit grooves 22, when the upper clamping plate 21 is rotated to fit with the upper surface of the lower clamping plate 16, the limit grooves 22 corresponding to the surfaces of the upper clamping plate 21 and the lower clamping plate 16 will merge into a circular groove, thereby fitting with the outer surface of the lithium battery. The anti-slip rubber pad inside the limit groove 22 can increase the friction with the outer surface of the lithium battery to avoid loosening during processing.

[0024] See also Figures 1-4The handle 23 is provided to facilitate the rotation of the upper splint 21. At the same time, when the upper splint 21 and the lower splint 16 are in contact with each other, the latch 25 will be stuck in the inner part of the socket 24, thereby fixing the position of the upper splint 21 and the lower splint 16, thereby improving the clamping effect. In addition, by providing the cushion block 26, the bumping of the bottom position when the upper splint 21 is flipped can be reduced. The upper surface corners of the bottom plate 14 are all threadedly connected with fixing screws 15, and the bottom plate 14 is fixed to the positioning plate 3 by the fixing screws 15. By providing the fixing screws 15, the bottom plate 14 can be easily disassembled and assembled, thereby facilitating The lower clamping plate 16 is taken out from the surface of the working panel 1, and a mounting plate 27 is provided at the rear side of the upper surface of the working panel 1. Electric push rods 28 are installed on the left and right sides of the upper surface of the mounting plate 27. Four sleeves 29 distributed at equal intervals are provided between the two electric push rods 28. The bottom surfaces of the four sleeves 29 are fixedly connected to the upper surface of the mounting plate 27. The front side surfaces of the four sleeves 29 are inserted with telescopic rods 30 that are slidably connected. The outer surfaces of the telescopic ends of the telescopic rods 30 and the electric push rods 28 are both installed with collars 31. A fixing rod 32 is provided between the collars 31. The front surfaces of the telescopic ends of the telescopic rods 30 and the electric push rods 28 are both installed with top blocks 33. By providing the electric push rods 28, during operation, the telescopic ends thereof will drive the telescopic rods 30 to be synchronously extended and retracted in cooperation with the collars 31 and the fixing rods 32, thereby driving the top block 33 to move to one side of the lower clamping plate 16 and contact the rear end surface of the lithium battery to ensure the flushness of the clamping.

[0025] When working, the second limit block 12 can be provided to guide the lithium battery that needs to be processed inside the loading box 7, ensuring that the lithium battery can slide smoothly between the two stripping plates 10, and by providing the first limit block 11, when the stripping plate 10 rotates, the outer surface of the lithium battery can be limited to ensure that the falling position is always at the right position of the bottom of the loading box 7, and by providing the first rotating shaft 18, the second rotating shaft 20 and the connecting rod 19, the second rotating shaft 20 can be driven by the connecting rod 19 to rotate around the first rotating shaft 18, so that the purpose of opening and closing the upper clamping plate 21 can be achieved, and by providing the limiting groove 22, when the upper clamping plate 21 rotates to fit the upper surface of the lower clamping plate 16, the limiting grooves 22 corresponding to the surfaces of the upper clamping plate 21 and the lower clamping plate 16 will merge into a circular groove, thereby fitting with the outer surface of the lithium battery, and the anti-slip rubber pad inside the limiting groove 22 can increase the friction with The friction on the outer surface of the lithium battery prevents loosening during processing, and by providing the handle 23, it is convenient for the staff to rotate the upper clamping plate 21. At the same time, when the upper clamping plate 21 is in contact with the lower clamping plate 16, the pin 25 will be stuck in the inside of the socket 24, thereby fixing the position of the upper clamping plate 21 and the lower clamping plate 16, thereby improving the clamping effect, and by providing the pad 26, the collision of the bottom position when the upper clamping plate 21 is flipped can be reduced, and by providing the fixing screw 15, it is convenient to disassemble and assemble the bottom plate 14, thereby facilitating the removal of the lower clamping plate 16 from the surface of the working panel 1, and by providing the electric push rod 28, during operation, its telescopic end will drive the telescopic rod 30 to retract synchronously in cooperation with the ring 31 and the fixing rod 32, thereby driving the top block 33 to move to one side of the lower clamping plate 16 and contact the rear end surface of the lithium battery, thereby ensuring the flatness of the clamping.

[0026] Through the above steps, by setting the driving motor 8, its output end will drive the rotating rod 9 to rotate during operation, and the material tapping rod on the surface of the rotating rod 9 will be driven to rotate synchronously. During the rotation, the gap formed between the two material tapping plates 10 will fall into a lithium battery inside the loading box 7. At the same time, with the cooperation of the electric guide rail 4 and the electric slider 5, the loading box 7 will be driven to move to one side of the lower clamping plate 16. During the movement, the driving motor 8 will continue to operate, driving the material tapping plate 10 to rotate continuously until the two adjacent material tapping plates 10 rotate to the bottom opening position of the loading box 7, and the lithium battery will fall on the surface of the lower clamping plate 16, thereby realizing continuous discharge, so as to solve the problem that the existing polymer lithium battery processing fixture does not have the function of continuous discharge when in use, and the discharge efficiency is low when clamping multiple lithium batteries.

Claims

1. A polymer lithium battery processing fixture, comprising a working panel (1); characterized in that: The machine also includes an electric guide rail (4), an electric slider (5), a support (6), a loading box (7), a driving motor (8), a rotating rod (9) and a material diverting plate (10). The bottom surface corners of the working panel (1) are provided with support legs (2). A positioning plate (3) is installed at the middle left position of the upper surface of the working panel (1). The upper surface of the working panel (1) is provided with electric guide rails (4) on both sides of the front and rear of the positioning plate (3). The upper surfaces of the two electric guide rails (4) are both slidably connected to the electric sliders (5). The upper surfaces of the two electric sliders (5) are both provided with supports (6). The two supports A loading box (7) is installed on the upper surface of (6), and a driving motor (8) is installed at the lower right corner of the front surface of the loading box (7). The output end of the driving motor (8) passes through the front panel of the loading box (7) and is connected to one end of a rotating rod (9). The other end of the rotating rod (9) is rotatably connected to the rear side of the inner surface of the loading box (7). Six circumferentially distributed material-selecting plates (10) are installed on the outer surface of the rotating rod (9). A mounting frame (13) is installed on the upper surface of the positioning plate (3), and a bottom plate (14) is placed on the inner surface of the mounting frame (13). A lower clamping plate (16) is provided on the upper surface of the bottom plate (14).

2. The polymer lithium battery processing fixture according to claim 1, characterized in that: A first limiting block (11) is installed at a lower position on the left side of the inner surface of the loading box (7), the upper surface of the first limiting block (11) is connected to the bottom surface of the second limiting block (12), and the left side surface of the second limiting block (12) is connected to the left side of the inner surface of the loading box (7).

3. The polymer lithium battery processing fixture according to claim 1, characterized in that: A connecting seat (17) is installed on the right side surface of the lower splint (16), and a first rotating shaft (18) is inserted through the front and rear surfaces of the connecting seat (17). Connecting rods (19) are installed on the front and rear end surfaces of the first rotating shaft (18). The left side of the opposite surface of the two connecting rods (19) is connected to the second rotating shaft (20), and the outer surface of the second rotating shaft (20) is sleeved with an upper splint (21).

4. The polymer lithium battery processing fixture according to claim 3, characterized in that: Six limiting grooves (22) with equal spacing are provided on the upper surfaces of the lower clamping plate (16) and the upper clamping plate (21), and the surfaces of the limiting grooves (22) are paved with anti-slip rubber pads.

5. The polymer lithium battery processing fixture according to claim 4, characterized in that: A handle (23) is installed at the right end position of the front side surface of the upper splint (21), and mutually symmetrical sockets (24) are provided at the right position of the upper surface of the upper splint (21). Mutually symmetrical pins (25) are installed at the left position of the upper surface of the lower splint (16), and the pins (25) match the sockets (24). A pad (26) is installed at the right position of the bottom surface of the upper splint (21).

6. The polymer lithium battery processing fixture according to claim 1, characterized in that: The corners of the upper surface of the bottom plate (14) are all threadedly connected with fixing screws (15), and the bottom plate (14) is fixed to the positioning plate (3) through the fixing screws (15).

7. The polymer lithium battery processing fixture according to claim 1, characterized in that: A mounting plate (27) is provided at the rear side of the upper surface of the working panel (1), and electric push rods (28) are installed on both sides of the upper surface of the mounting plate (27). Four sleeves (29) are provided between the two electric push rods (28) and are distributed at equal intervals. The bottom surfaces of the four sleeves (29) are fixedly connected to the upper surface of the mounting plate (27). The front side surfaces of the four sleeves (29) are all inserted with telescopic rods (30) connected in a sliding manner. The outer surfaces of the telescopic rods (30) and the telescopic ends of the electric push rods (28) are both installed with collars (31), and fixed rods (32) are provided between the collars (31). The front end surfaces of the telescopic rods (30) and the telescopic ends of the electric push rods (28) are both installed with top blocks (33).