A drainage device for power battery recycling
By designing a combination of a crawler conveyor and a clamping component cutting knife, the problems of unstable clamping of waste batteries of different specifications and the need for manual removal of the caps in existing devices were solved, achieving fast and efficient waste liquid discharge.
Patent Information
- Application Number
- CN202510097295.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-22
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2045-01-22
AI Technical Summary
Existing drainage devices are difficult to stably clamp waste batteries of different sizes, and the cover needs to be removed manually, resulting in low work efficiency.
A device including a crawler conveyor, a clamping component and a cutting knife was designed, which can automatically clamp waste batteries of different specifications and cut off the caps through the cutting knife to achieve rapid discharge of waste liquid.
It achieves stable clamping and rapid drainage of waste batteries of different specifications, improves work efficiency and enhances the applicability of the device.
Smart Images

Figure CN119944143B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of waste battery recycling, and in particular to a drainage device for power battery recycling. Background Art
[0002] Power batteries contain a variety of rare metals, such as nickel, cobalt, manganese, and lithium. Through recycling, these valuable metals can be extracted and reused in battery manufacturing or other industrial fields, reducing dependence on primary mineral resources, lowering resource mining costs, and reducing environmental impact. Power waste battery recycling refers to the reuse of recycled waste power batteries by disassembling and refining rare metals, which is a resource-based treatment of waste power batteries. During the recycling process, the electrolyte and the battery shell in the waste battery are usually separated. However, existing drainage devices have difficulty clamping waste batteries of different sizes when draining the waste batteries, and the cover of the waste battery needs to be manually removed before draining, resulting in low work efficiency. Summary of the Invention
[0003] In response to the shortcomings or deficiencies of the above-mentioned prior art, the present invention provides a drainage device for power battery recycling that can stably clamp batteries of different specifications, improve the applicability of the device, and quickly discharge waste liquid from waste batteries by cutting off the cover, thereby improving work efficiency.
[0004] The technical solution is: a drainage device for power battery recycling, including a base, a crawler conveyor, an electrolyte collection box, a placement table, waste batteries, a storage frame, a cutting knife, a clamping component and a striking component. Two crawler conveyors are fixedly connected to the base, and the two crawler conveyors are symmetrically arranged. The base is fixedly connected to an electrolyte collection box, and the electrolyte collection box is provided with a filter. The electrolyte collection box is fixedly connected to a placement table, and a placement slot is provided on the placement table. Waste batteries are placed on the placement table. Two cutting knives are fixedly connected to the placement table, and the two cutting knives are symmetrically arranged. A storage frame is clamped on the electrolyte collection box. The crawler conveyor is provided with a clamping component, and the clamping component is used to drive the waste batteries to move. The clamping component is provided with a striking component, and the striking component is used to control the clamping component to clamp waste batteries of different sizes.
[0005] As a further preferred solution, the blade of the cutting knife is made of titanium metal.
[0006] As a further preferred solution, the clamping components include a push block, a mounting block, a screw, a splint, a reset spring, a column gear, a mounting box, a sliding tooth plate and a pressure spring. Two push blocks and two mounting blocks are fixedly connected to the two crawler conveyors, each mounting block is connected to a screw by a thread, each screw is rotatably connected to a splint, each splint is slidingly connected to four mounting blocks respectively, a reset spring is connected between the splint and the inside of the screw, a column gear is fixedly connected to the screw, two crawler conveyors are fixedly connected to the mounting box, each mounting box is slidably connected to a sliding tooth plate, and several pressure springs are connected between the sliding tooth plate and the mounting box.
[0007] As a further preferred solution, the striking component includes a mounting bracket, a rotating rod, a cam, a torsion spring and a fixed tooth plate. The four screw rods are rotatably connected to the mounting bracket, and the four mounting brackets are slidingly connected to the four mounting blocks respectively. Each mounting bracket is threadedly connected to the rotating rod, and each rotating rod is fixedly connected to the cam. A torsion spring is connected between the rotating rod and the mounting bracket, and two fixed tooth plates are fixedly connected to the base, and the two fixed tooth plates are symmetrically arranged.
[0008] As a further preferred solution, the initial position of the column gear and the fixed tooth plate are not in the same plane.
[0009] As a further preferred solution, it also includes a drilling component. The drilling component is provided on the base, and the drilling component is used to drill holes in waste batteries. The drilling component includes a guide frame, a sliding mounting plate, a drilling machine, two pressure springs and a tension spring. The base is fixedly connected to the guide frame, the sliding mounting plate is slidably connected to the guide frame, the sliding mounting plate is slidably connected to the drilling machine, a number of two pressure springs are connected between the drilling machine and the sliding mounting plate, and two tension springs are connected between the sliding mounting plate and the guide frame.
[0010] As a further preferred solution, a protrusion is provided on the guide frame.
[0011] As a further preferred solution, it also includes a driving component. The clamping component is provided with a driving component, which is used to drive the drilling component to move. The driving component includes a driving rod, three pressure springs and a push rod. The driving rod is slidably connected to the push block, and three pressure springs are connected between the driving rod and the push block. Two push rods are fixedly connected to the guide frame, and the two push rods are symmetrically arranged.
[0012] As a further preferred solution, it also includes a pressure rod and a pressure spring four. Two pressure rods are slidably connected to the drilling machine, and the two pressure rods are symmetrically arranged. A pressure spring four is connected between the two pressure rods and the drilling machine.
[0013] As a further preferred solution, rubber pads are also included, and each splint is fixedly connected to a plurality of rubber pads.
[0014] The present invention has the following advantages: 1. During the rotation of the screw, it will move in the direction close to the waste battery, and the clamping plate hit by the movement of the screw will move together. After the clamping plate contacts the waste battery, the sliding tooth plate will be squeezed and extend into the installation box. Once the pressure spring is compressed, the column gear and the sliding tooth plate will be disengaged, and the waste battery will be clamped by two of the clamping plates. During the movement of the waste battery, the cover on the electrolyte injection port on the waste battery will be cut off by the cutting knife, and the cut cover will fall onto the filter screen on the electrolyte collection box, and the cover will fall into the storage frame along the filter screen. In this way, waste batteries of different specifications can be stably clamped, thereby improving the applicability of the device, and by cutting off the cover, the waste liquid in the waste battery can be quickly discharged from the waste battery, thereby improving work efficiency.
[0015] 2. During the movement of the drilling machine, it will be squeezed by the raised part of the guide frame. The drilling machine will move towards the direction close to the waste battery under the squeezing. The pressure spring 2 will be compressed. The user controls the operation of the drilling machine. The drilling machine will descend and punch holes in the waste battery. In this way, the waste battery can be drilled, thereby promoting the discharge of electrolyte from the waste battery and improving the drainage efficiency.
[0016] 3. When the drilling machine moves toward the waste battery, the drilling machine will drive the pressure rod to move together, and the pressure rod will contact the waste battery. The drilling machine continues to move, and the pressure rod will extend into the drilling machine. The pressure rod will press the waste battery, and the pressure spring 4 will be compressed, making the drilling of the waste battery more stable. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0018] Figure 2 It is a schematic diagram of the three-dimensional structure of the push block, crawler conveyor and guide frame of the present invention.
[0019] Figure 3 It is a schematic diagram of the three-dimensional structure of the electrolytic liquid collecting box, the fixed tooth plate and the ejector rod of the present invention.
[0020] Figure 4 It is a schematic diagram of the partially split three-dimensional structure of the present invention.
[0021] Figure 5 This is a schematic diagram of the three-dimensional structure of the placement table, waste batteries and cutting knife of the present invention.
[0022] Figure 6 It is a schematic diagram of the cross-sectional three-dimensional structure of the mounting block and the screw rod of the present invention.
[0023] Figure 7It is a schematic diagram of the cross-sectional three-dimensional structure of the installation box of the present invention.
[0024] Figure 8 It is a schematic diagram of the disassembled three-dimensional structure of the clamping component of the present invention.
[0025] Figure 9 It is a schematic diagram of the three-dimensional structure of the rotating rod, torsion spring and convex plate of the present invention.
[0026] Figure 10 It is a schematic diagram of the disassembled three-dimensional structure of the striking component of the present invention.
[0027] Figure 11 It is a schematic diagram of the three-dimensional structure of the drilling component of the present invention.
[0028] Figure 12 It is a schematic diagram of the disassembled three-dimensional structure of the drilling component of the present invention.
[0029] Figure 13 It is a schematic diagram of the cross-sectional three-dimensional structure of the push block of the present invention.
[0030] Figure 14 Schematic diagram of the three-dimensional structure of the driving rod, pressure spring four and push rod of the present invention.
[0031] Among them: 1-base, 2-crawler conveyor, 3-electrolyte collection box, 4-placing table, 5-waste batteries, 6-storage frame, 7-cutting knife, 81-push block, 82-mounting block, 83-screw, 84-clamping plate, 85-reset spring, 86-column gear, 87-mounting box, 88-sliding tooth plate, 89-pressure spring 1, 91-mounting frame, 92-rotating rod, 93-convex plate, 94-torsion spring, 95-fixed tooth plate, 101-guide frame, 102-sliding mounting plate, 103-drilling machine, 104-pressure spring 2, 105-tension spring, 111-driving rod, 112-pressure spring 3, 113-lift rod, 12-pressure rod, 13-pressure spring 4, 14-rubber pad. DETAILED DESCRIPTION
[0032] The following further illustrates the technical solution with reference to specific embodiments. It should be noted that terms such as "up," "down," "left," and "right" used herein to indicate directions refer only to the positions of the structures depicted in the corresponding drawings. Component numbers, such as "first" and "second," are used solely to distinguish the components being described and do not convey any sequential or technical meaning. References to "connected" and "coupled" in this application, unless otherwise specified, include both direct and indirect connections (couplings).
[0033] Example 1: A drainage device for power battery recycling, such as Figures 1-14As shown, it includes a base 1, a crawler conveyor 2, an electrolyte collection box 3, a placement table 4, waste batteries 5, a storage frame 6, a cutting knife 7, a clamping component and a top striking component. Two crawler conveyors 2 are fixedly connected to the base 1, and the two crawler conveyors 2 are symmetrically arranged. The base 1 is fixedly connected to the electrolyte collection box 3, and the electrolyte collection box 3 is provided with a filter. The electrolyte collection box 3 is fixedly connected to the placement table 4, and the placement table 4 is provided with a placement groove. Waste batteries 5 are placed on the placement table 4, and two cutting knives 7 are fixedly connected to the placement table 4. The two cutting knives 7 are symmetrically arranged. The electrolyte collection box 3 is clamped with a storage frame 6. The crawler conveyor 2 is provided with a clamping component, which is used to drive the waste batteries 5 to move. The clamping component is provided with a top striking component, which is used to control the clamping component to clamp waste batteries 5 of different sizes.
[0034] The blade of the cutting knife 7 is made of titanium to avoid being corroded by the electrolyte.
[0035] The clamping parts include a push block 81, a mounting block 82, a screw 83, a clamping plate 84, a return spring 85, a column gear 86, a mounting box 87, a sliding tooth plate 88 and a pressure spring 89. Two push blocks 81 and two mounting blocks 82 are fixedly connected to the two crawler conveyors 2. Each mounting block 82 is connected to a screw 83 by a thread. Each screw 83 is rotatably connected to a clamping plate 84. The clamping plate 84 is used to clamp the waste batteries 5. Each clamping plate 84 is slidably connected to four mounting blocks 82 respectively. A return spring (85) is connected between the clamping plate 84 and the screw 83. A column gear 86 is fixedly connected to the screw 83. The two crawler conveyors 2 are connected to the mounting box 87 by bolts. Each mounting box 87 is slidably connected to a sliding tooth plate 88. Several pressure springs 89 are connected between the sliding tooth plate 88 and the mounting box 87.
[0036] The striking component includes a mounting frame 91, a rotating rod 92, a cam 93, a torsion spring 94 and a fixed tooth plate 95. The four screw rods 83 are rotatably connected to the mounting frame 91, and the four mounting frames 91 are respectively slidably connected to the four mounting blocks 82. Each mounting frame 91 is threadedly connected to a rotating rod 92, and each rotating rod 92 is fixedly connected to a cam 93. The cam 93 is used to drive the sliding tooth plate 88 to descend. A torsion spring 94 is connected between the rotating rod 92 and the mounting frame 91. Two fixed tooth plates 95 are connected to the base 1 by bolts, and the two fixed tooth plates 95 are symmetrically arranged.
[0037] The initial position of the column gear 86 and the fixed tooth plate 95 are not in the same plane.
[0038] At first, the user places the waste battery 5 on the placement slot on the placement rack, and then the user controls the crawler conveyor 2 to start running. The operation of the two crawler conveyors 2 will drive the pushing block 81 and the mounting block 82 to rotate with the crawler wheels. The pushing block 81 will contact the waste battery 5 during the movement, and the pushing block 81 will push the waste battery 5 toward the storage frame 6. The movement of the mounting block 82 will drive the screw 83 and the column gear 86 to move together. The column gear 86 will mesh with the sliding gear plate 88 during the movement, so that the column gear 86 will rotate. The rotation of the column gear 86 will drive the screw 83 to rotate. The screw 83 will move toward the direction close to the waste battery 5 during the rotation process. The splint 84 hit by the movement of the screw 83 moves together, and the splint 84 and the waste battery When the battery 5 contacts, the screw 83 continues to move, the clamping plate 84 will extend into the screw 83, and the reset spring 85 will be compressed. When the clamping plate 84 extends into the screw 83, the clamping plate 84 will squeeze the rotating rod 92. The rotating rod 92 is squeezed by the clamping plate 84 and extends out of the screw 83. When the rotating rod 92 extends out of the screw 83, it will mesh with the mounting bracket 91, so that the rotating rod 92 will rotate. The rotation of the rotating rod 92 will drive the cam 93 to rotate, and the torsion spring 94 is twisted. When the cam 93 rotates, it will squeeze the sliding tooth plate 88. The sliding tooth plate 88 is squeezed and extends into the mounting box 87. The pressure spring 1 89 is compressed, so that the column gear 86 and the sliding tooth plate 88 are disengaged, and the waste battery 5 will be clamped by two of the clamping plates 84, and the crawler conveyor 2 crawler continues to run, and the two clamping plates 84 will drive the waste battery 5 to move together. During the movement of the waste battery 5, the cover on the electrolyte injection port on the waste battery 5 will be cut off by the cutting knife 7, and the cut cover will fall on the filter screen on the electrolyte collection box 3, and the cover will fall into the storage frame 6 along the filter screen. The movement of the mounting block 82 drives the rotating rod 92 and the convex plate 93 to move. After the convex plate 93 and the sliding tooth plate 88 fall off, the pressure spring 89 resets and drives the sliding tooth plate 88 to reset. After the cover of the waste battery 5 is cut off, the electrolyte in the waste battery 5 will flow out through the injection port of the waste battery 5 and the waste battery 5 will fall into the electrolyte collection box 3. The column gear 86 continues to move and meshes with the fixed tooth plate 95, causing the column gear 86 to reverse and repeat. The column gear 86 is reversed to drive the screw 83 to reset, the reset spring 85 is reset to drive the clamping plate 84 to extend the screw 83, the torsion spring 94 is reset to drive the rotating rod 92 to reset, the rotating rod 92 is reset to drive the convex plate 93 to reset, and after the clamping plate 84 and the screw 83 are reset, the column gear 86 will be disengaged from the fixed tooth plate 95. After the clamping plate 84 and the waste battery 5 are disengaged, the user takes away the waste battery 5 and then places the unprocessed waste battery 5 on the placement table 4 again. The drainage treatment of the waste battery 5 is completed in this way. In this way, waste batteries 5 of different specifications can be stably clamped, the applicability of the device is improved, and by cutting off the cover, the waste liquid in the waste battery 5 can be quickly discharged from the waste battery 5, thereby improving work efficiency.
[0039] Example 2: Based on Example 1, Figure 11-14 As shown, a drilling component is also included. The base 1 is provided with a drilling component, which is used to drill holes in the waste batteries 5. The drilling component includes a guide frame 101, a sliding mounting plate 102, a drilling machine 103, a second pressure spring 104 and a tension spring 105. The base 1 is connected to the guide frame 101 by bolts, and the guide frame 101 is slidably connected to the sliding mounting plate 102. The sliding mounting plate 102 is slidably connected to the drilling machine 103. The drilling machine 103 is used to drill holes in the waste batteries 5. Several second pressure springs 104 are connected between the drilling machine 103 and the sliding mounting plate 102, and two tension springs 105 are connected between the sliding mounting plate 102 and the guide frame 101.
[0040] The guide frame 101 is provided with a protrusion, and the protrusion of the guide frame 101 is used to drive the drilling machine 103 to descend.
[0041] It also includes a driving component. The clamping component is provided with a driving component, which is used to drive the drilling component to move. The driving component includes a driving rod 111, a pressure spring 112 and a push rod 113. The push block 81 is slidably connected with the driving rod 111. The driving rod 111 is used to drive the sliding mounting plate 102 to move. A pressure spring 112 is connected between the driving rod 111 and the push block 81. Two push rods 113 are connected to the guide frame 101 by bolts, and the two push rods 113 are symmetrically arranged.
[0042] It also includes a pressure rod 12 and a pressure spring four 13. Two pressure rods 12 are slidably connected to the drilling machine 103. The pressure rods 12 are used to press the waste batteries 5. The two pressure rods 12 are symmetrically arranged. A pressure spring four 13 is connected between the two pressure rods 12 and the drilling machine 103.
[0043] It also includes rubber pads 14 . A plurality of rubber pads 14 are fixedly connected to each clamping plate 84 . The rubber pads 14 are used to increase the friction between the clamping plate 84 and the waste battery 5 .
[0044] The movement of the push block 81 will drive the driving rod 111 to move. During the movement of the driving rod 111, the sliding mounting plate 102 will be hit, so that the sliding mounting plate 102 will move with the waste battery 5. The tension spring 105 is stretched, and the movement of the sliding mounting plate 102 will drive the drilling machine 103 and the waste battery 5 to move synchronously. During the movement of the drilling machine 103, it will be squeezed by the raised part on the guide frame 101. The drilling machine 103 will move in the direction close to the waste battery 5 under the squeeze. The pressure spring 104 is compressed, and the user controls the drilling machine 103 to run. The drilling machine 103 descends to punch the waste battery 5. The drilling machine 103 continues to move. The drilling machine 103 and the guide frame 101 are pressed together. After the 01 raised part is disengaged, the pressure spring 2 104 resets and drives the drilling machine 103 to reset, the driving rod 111 continues to drive the sliding mounting plate 102 to move, the driving rod 111 will be squeezed by the push rod 113, so that the push rod 113 will extend into the push block 81, the pressure spring 3 112 is compressed, the driving rod 111 extends into the push block 81 and will be disengaged from the sliding mounting plate 102, the tension spring 105 resets and drives the sliding mounting plate 102 to reset, the driving rod 111 continues to move and will be disengaged from the push rod 113, the pressure spring 3 112 drives the driving rod 111 to reset, in this way, the waste battery 5 can be drilled, thereby promoting the electrolyte to be discharged from the waste battery 5, and improving the drainage efficiency.
[0045] When the drilling machine 103 moves toward the waste battery 5, the drilling machine 103 will drive the pressure rod 12 to move together, and the pressure rod 12 will contact the waste battery 5. The drilling machine 103 continues to move, and the pressure rod 12 will extend into the drilling machine 103. The pressure rod 12 will press the waste battery 5, and the pressure spring four 13 will be compressed, so that the waste battery 5 can be drilled more smoothly during the hole drilling process. After the drilling machine 103 is reset, the pressure spring four 13 is reset and drives the pressure rod 12 to extend out of the drilling machine 103. When the splint 84 moves toward the waste battery 5, the rubber pad 14 on the splint 84 will contact the waste battery 5, thereby increasing the friction between the splint 84 and the waste battery 5, and strengthening the fixing effect of the splint 84 on the waste battery 5.
[0046] The above-described embodiments merely represent preferred embodiments of the present invention. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make various modifications, improvements, and substitutions without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.
Claims
1. A drainage device for power battery recycling, characterized in that: The invention comprises a base (1), a crawler conveyor (2), an electrolyte collection box (3), a placement table (4), waste batteries (5), a storage frame (6), a cutting knife (7), a clamping component and a top striking component. Two crawler conveyors (2) are fixedly connected to the base (1), and the two crawler conveyors (2) are symmetrically arranged. An electrolyte collection box (3) is fixedly connected to the base (1), and a filter is provided on the electrolyte collection box (3). A placement table (4) is fixedly connected to the electrolyte collection box (3), and a placement slot is provided on the placement table (4). Waste batteries (5) are placed on the placement table (4). Two cutting knives (7) are fixedly connected to the placement table (4), and the two cutting knives (7) are symmetrically arranged. A storage frame (6) is clamped on the electrolyte collection box (3). A clamping component is provided on the crawler conveyor (2), and the clamping component is used to drive the waste batteries (5) to move. A top striking component is provided on the clamping component, and the top striking component is used to control the clamping component to clamp waste batteries (5) of different sizes. The clamping components include a push block (81), a mounting block (82), a screw (83), a clamping plate (84), a return spring (85), a column gear (86), a mounting box (87), a sliding tooth plate (88) and a pressure spring (89). The two crawler conveyors (2) are fixedly connected to two push blocks (81) and two mounting blocks (82). Each mounting block (82) is connected to a screw (83) by a thread. Each screw (83) is rotatably connected to a clamping plate (84). ), each splint (84) is slidably connected to four mounting blocks (82), a return spring (85) is connected between the splint (84) and the inside of the screw (83), a column gear (86) is fixedly connected to the screw (83), and a mounting box (87) is fixedly connected to the two crawler conveyors (2), and each mounting box (87) is slidably connected to a sliding tooth plate (88), and a plurality of pressure springs (89) are connected between the sliding tooth plate (88) and the mounting box (87); The top striking component includes a mounting frame (91), a rotating rod (92), a convex plate (93), a torsion spring (94) and a fixed tooth plate (95). The four screw rods (83) are all rotatably connected to the mounting frame (91). The four mounting frames (91) are respectively slidably connected to the four mounting blocks (82). Each mounting frame (91) is connected to the rotating rod (92) by a thread. Each rotating rod (92) is fixedly connected to the convex plate (93). A torsion spring (94) is connected between the rotating rod (92) and the mounting frame (91). Two fixed tooth plates (95) are fixedly connected to the base (1). The two fixed tooth plates (95) are symmetrically arranged. The initial position of the column gear (86) and the fixed tooth plate (95) are not in the same plane.
2. A drainage device for power battery recycling according to claim 1, characterized in that: The blade of the cutting knife (7) is made of titanium metal.
3. A drainage device for power battery recycling according to claim 1, characterized in that: The invention also includes a drilling component. The base (1) is provided with the drilling component, and the drilling component is used to drill holes in the waste battery (5). The drilling component includes a guide frame (101), a sliding mounting plate (102), a drilling machine (103), a second pressure spring (104), and a tension spring (105). The base (1) is fixedly connected to the guide frame (101), the sliding mounting plate (102) is slidably connected to the guide frame (101), the sliding mounting plate (102) is slidably connected to the drilling machine (103), a plurality of second pressure springs (104) are connected between the drilling machine (103) and the sliding mounting plate (102), and two tension springs (105) are connected between the sliding mounting plate (102) and the guide frame (101).
4. A drainage device for power battery recycling according to claim 3, characterized in that: The guide frame (101) is provided with a protrusion.
5. The drainage device for power battery recycling according to claim 3, characterized in that: The invention also includes a driving component, wherein the driving component is provided on the clamping component and is used to drive the drilling component to move. The driving component includes a driving rod (111), a third pressure spring (112) and a push rod (113). The push block (81) is slidably connected to the driving rod (111), and a third pressure spring (112) is connected between the driving rod (111) and the push block (81). Two push rods (113) are fixedly connected to the guide frame (101), and the two push rods (113) are symmetrically arranged.
6. A drainage device for power battery recycling according to claim 5, characterized in that: It also includes a pressure rod (12) and a pressure spring four (13). The drilling machine (103) is slidably connected to two pressure rods (12). The two pressure rods (12) are symmetrically arranged. A pressure spring four (13) is connected between the two pressure rods (12) and the drilling machine (103).
7. A drainage device for power battery recycling according to claim 6, characterized in that: It also includes rubber pads (14), and each clamping plate (84) is fixedly connected to a plurality of rubber pads (14).
Citation Information
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