Copper strip thick shearing device
The guiding, crushing and collection design of the copper strip thick shearing device solves the problem of copper strip waste edges damaging good copper strips during the winding process, achieves efficient waste edge collection and recycling, and improves the quality and production efficiency of the copper strip.
Patent Information
- Application Number
- CN202411183572.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-27
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2044-08-27
AI Technical Summary
During the winding process, the scrap edges of the copper strip can easily hit the good copper strip, resulting in reduced surface quality. In addition, the scrap edges take up a lot of space and the recycling efficiency is low.
A copper strip thick shearing device is used to transport the copper strip through the conveyor roller. The cutting mechanism shears to form waste edges. The guide roller guides the waste strip to the crushing roller. The driving component drives the crushing roller to rotate to form debris. The collecting component collects the debris. The tensioning roller keeps the waste edges in a tensioned state. The swinging component changes the position of the crushing roller. The blowing component cleans the crushing roller.
The probability of scrap edges hitting good copper strips is reduced, the space occupied by scrap edges is reduced, the collection effect and recycling efficiency of scrap edges are improved, and the quality and production efficiency of copper strips are improved.
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Figure CN119115047B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of copper strip processing, and in particular to a copper strip thickening shearing device. Background Art
[0002] Copper strip is a strip of metal that is primarily used in the production of electrical components, lamp holders, battery caps, buttons, seals, and connectors. It is primarily used for conductive, heat-conductive, and corrosion-resistant materials, such as electrical components, switches, washers, gaskets, vacuum devices, radiators, conductive base materials, and various parts such as automotive radiators, heat sinks, and cylinder plates.
[0003] During the production process of copper strips, the edges of the copper strips may be uneven, so the scrap edges need to be sheared and then reeled to ensure the quality of the copper strips. However, the copper strips have a certain hardness. Improper winding during the reeling process can easily cause the scrap edges to hit the good copper strips, thereby damaging the surface quality of the good copper strips and reducing the quality of the copper strips. Summary of the Invention
[0004] In order to improve the quality of copper strip, the present application provides a copper strip thickening shearing device.
[0005] The present application provides a copper strip thickening shearing device, which adopts the following technical solution:
[0006] A copper strip thick shearing device comprises a frame, a conveying roller for conveying the copper strip, and a cutting mechanism for shearing the copper strip to form waste edges. The frame is provided with a crushing mechanism, which comprises:
[0007] Two crushing rollers are rotatably mounted on the frame and are used to crush the waste edges into chips;
[0008] Two guide rollers are rotatably mounted on the frame and are used to guide the scrap edges to the two crushing rollers for crushing;
[0009] A driving assembly, used for driving the multiple crushing rollers to rotate;
[0010] The collecting component is used for collecting debris.
[0011] By adopting the above technical solution, the conveying roller starts to drive the copper strip to be conveyed, and the cutting mechanism starts to shear the copper strip to form waste edges. The waste edges are guided by two guide rollers and conveyed to two crushing rollers. The driving component drives the two crushing rollers to rotate and crush the waste edges to form debris. The debris falls into the collecting component for collection, thereby reducing the probability of the waste edges hitting the good copper strip and improving the quality of the copper strip.
[0012] Moreover, the scrap edges have a certain hardness, so it is extremely troublesome to roll them up and it also takes up a large space. Therefore, compared with rolling up the scrap edges, crushing and collecting them can greatly reduce the space occupied by the scrap edges and improve the collection effect of the scrap edges. Moreover, the scrap edges of the copper strips need to be crushed before recycling, so while improving the collection effect, it does not increase energy consumption, which greatly improves the recycling efficiency of the scrap edges of the copper strips.
[0013] Optionally, the driving component includes:
[0014] Two main gears are respectively arranged on the two crushing rollers and mesh with each other;
[0015] A driving member is arranged on the frame;
[0016] The secondary gear is arranged on the driving member and rotates under the action of the driving member and meshes with one of the main gears.
[0017] By adopting the above technical solution, the driving member drives the secondary gear to rotate, and the secondary gear drives a main gear to rotate, thereby driving two main gears and two crushing rollers to rotate, so as to realize the rotation of the two crushing rollers to crush the waste edges.
[0018] Optionally, the frame is provided with a guide mechanism for guiding the copper strip, and the guide mechanism includes:
[0019] Two transfer rollers are rotatably mounted on the frame and are located below the two cutting mechanisms and the copper belt and are used to guide the waste edges to the two guide rollers;
[0020] The rotating assembly is used for driving the two guide rollers and the two transmission rollers to rotate.
[0021] By adopting the above technical solution, the two transfer rollers clamp and guide the cut waste edges for transportation, so that they move downward just after being separated from the copper strip, and the two transfer rollers are close to the cutting mechanism, thereby reducing the probability of the waste edges hitting the good copper strip. The rotating assembly drives the two guide rollers and the two transfer rollers to rotate, thereby realizing the transportation of the waste edges, further reducing the probability of the waste edges hitting the good copper strip, and improving the quality of the copper strip.
[0022] Optionally, a sliding seat is installed on the frame for sliding along the axis of the crushing roller. The two guide rollers are rotatably installed on the sliding seat and are provided with a plurality of limiting grooves spaced along their own axes for the waste edges to pass through for limiting. The frame is provided with a swinging assembly for driving the sliding seat to move back and forth.
[0023] By adopting the above technical solution, the width of the waste edge is narrow, while the length of the crushing roller is long and much larger than the width of the waste edge. When the waste edge is crushed by the two crushing rollers, it is continuously concentrated in one place, which makes the crushing roller easy to be damaged, thereby greatly reducing the crushing effect of the waste edge. As a result, the crushing effect of the waste edge is deteriorated, thereby increasing the probability of the waste edge hitting the good copper strip, and reducing the quality of the copper strip.
[0024] The swing assembly is started to push the sliding seat to move back and forth, and the reciprocating movement of the sliding seat drives the two guide rollers to move back and forth. At the same time, multiple limit grooves are used to limit the waste edges, so that the waste edges can move back and forth, that is, the crushing rollers can continuously change the crushing position, which greatly reduces the probability of the crushing rollers being damaged due to concentrated crushing in one place, greatly improves the crushing effect of the waste edges, and thus improves the quality of the copper strip.
[0025] Optionally, the swing assembly includes:
[0026] The swing plate is rotatably arranged on the frame;
[0027] an eccentric rod, eccentrically arranged on the swing plate;
[0028] A connecting rod, both ends of which are rotatably connected to the sliding seat and the eccentric rod respectively;
[0029] The swinging member is used to drive the swinging plate to rotate.
[0030] By adopting the above technical solution, the swing member drives the swing plate to rotate, the swing plate rotation drives the eccentric rod to rotate around the swing plate axis, the eccentric rod rotation drives the sliding seat to reciprocate through the connecting rod, thereby realizing the reciprocating movement of the sliding seat.
[0031] Optionally, a tensioning roller is rotatably mounted on the frame, and the tensioning roller is located between the transmission roller and the guide roller and is pressed against the scrap edge under the action of gravity to keep the scrap edge in a tensioned state during movement.
[0032] By adopting the above technical solution, the tensioning roller is pressed against the scrap edge under the action of gravity. The tensioning roller is located above the scrap edge, which can prevent the scrap edge from contacting with the good copper strip. The tensioning roller keeps the scrap edge in a tensioned state, thereby reducing the probability of the scrap edge falling from the guide roller and the transmission roller after relaxation and contacting the good copper strip, thereby improving the quality of the copper strip.
[0033] Optionally, the collection component includes:
[0034] a collection box, disposed on the frame and used to collect debris;
[0035] The blowing member is arranged on the frame and blows air toward the contact point between the two crushing rollers and the waste edges to move the debris on the crushing rollers into the collection box for collection.
[0036] By adopting the above technical solution, the debris falls into the collection box for collection, and the blowing piece blows air toward the two crushing rollers to clean them, so that the debris on the crushing rollers falls into the collection box, thereby further improving the crushing effect of the crushing rollers on the waste edges and improving the quality of the copper strip. In addition, the gas can also cool the crushing rollers, further improving the crushing effect on the waste edges.
[0037] Optionally, a placement frame connected to the sliding seat is slidably provided on the rack, and the collection box is placed on the placement frame.
[0038] By adopting the above technical solution, the sliding seat drives the placement frame and the collection box to move back and forth when reciprocating, so that the debris in the collection box is vibrated and flattened, thereby greatly improving the collection effect of the collection box on debris.
[0039] Optionally, the rotating assembly includes:
[0040] two first gears, disposed on the two transmission rollers and meshing with each other;
[0041] A first rotating member is provided on the frame and is used to drive one of the transmission rollers to rotate;
[0042] two second gears, disposed on the two guide rollers and meshing with each other;
[0043] A connecting sleeve is rotatably mounted on the frame, wherein one of the guide rollers is slidably mounted on the connecting sleeve and rotates simultaneously with the connecting sleeve;
[0044] The second rotating member is arranged on the frame and is used for driving the connecting sleeve to rotate.
[0045] By adopting the above technical solution, the rotating member 1 drives one of the transmission rollers to rotate, the transmission roller rotates to drive the first gear connected to it to rotate, the first gear rotates to drive the other first gear to rotate, thereby causing the two transmission rollers to rotate; at the same time, the rotating member 2 drives the connecting sleeve to rotate, the connecting sleeve drives the guide roller connected to it to rotate, the guide roller rotates to drive the second gear connected to it to rotate, the second gear rotates to drive the other second gear to rotate, thereby realizing the rotation of the two guide rollers, and the guide roller slides on the connecting sleeve when moving, thereby realizing the simultaneous rotation of the two transmission rollers and the two guide rollers, so that the guide roller will not drive the rotating member 2 to move when moving.
[0046] Optionally, the cutting mechanism includes:
[0047] A cutting seat, arranged on the frame;
[0048] A cutting motor is arranged on the cutting seat;
[0049] The blade is arranged on the output shaft of the cutting motor and is used for cutting off the waste edges.
[0050] By adopting the above technical solution, the cutting motor starts to drive the blade to rotate, thereby achieving the cutting of the waste edge.
[0051] In summary, this application includes at least one of the following beneficial technical effects:
[0052] 1. The scrap edges are guided and transported to the two crushing rollers through two guide rollers. The driving assembly drives the two crushing rollers to rotate and crush the scrap edges into debris. The debris falls into the collecting assembly for collection, thereby reducing the probability of the scrap edges hitting the good copper strip and improving the quality of the copper strip.
[0053] 2. Crushing and collecting can greatly reduce the space occupied by waste edges, improve the collection effect of waste edges, and the waste edges of copper strips need to be crushed before recycling. Therefore, while improving the collection effect, it does not increase energy consumption, greatly improving the recovery efficiency of copper strip waste edges. BRIEF DESCRIPTION OF THE DRAWINGS
[0054] Figure 1 It is a schematic diagram of the three-dimensional structure of the thick shear device;
[0055] Figure 2 This is a schematic diagram of the structure of the guide mechanism and crushing mechanism in the thick shear device;
[0056] Figure 3 This is a schematic diagram of the structure of the sliding seat, guide roller, rotating assembly and swing assembly in the thick shear device;
[0057] Figure 4 It is a structural diagram of the crushing roller and drive components in the thick shear device.
[0058] Figure markings: 1. Frame; 11. Conveying roller; 12. Sliding seat; 13. Connecting column; 14. Placing frame; 15. Tensioning roller; 2. Cutting mechanism; 21. Cutting seat; 22. Cutting motor; 23. Blade; 3. Guide mechanism; 31. Conveying roller; 32. Rotating assembly; 33. First gear; 34. Rotating part 1; 35. Second gear; 36. Connecting sleeve; 37. Rotating part 2; 4. Crushing mechanism; 41. Crushing roller; 42. Guide roller; 43. Limiting groove; 5. Driving assembly; 51. Main gear; 52. Driving part; 53. Sub-gear; 6. Collecting assembly; 61. Collecting box; 62. Blowing part; 63. Air pipe; 7. Swinging assembly; 71. Swinging disk; 72. Eccentric rod; 73. Connecting rod; 74. Swinging part. DETAILED DESCRIPTION
[0059] The following is combined with Figure 1-4 This application is described in further detail.
[0060] The embodiment of the present application discloses a copper strip thickening shearing device.
[0061] Reference Figure 1 and Figure 2 The copper strip thick shearing device includes a frame 1, a conveyor roller 11, a cutting mechanism 2 and a crushing mechanism 4. The conveyor roller 11 is rotatably installed on the frame 1 and multiple conveyor rollers are arranged at intervals along the length direction of the frame 1. The multiple conveyor rollers 11 are rotated to drive the copper strip to move for conveying. The cutting mechanism 2 is used to shear the two sides of the copper strip to form waste edges; the crushing mechanism 4 is used to crush the waste edges to form debris for collection.
[0062] The cutting mechanism 2 is arranged at two sides of the copper strip and is used to cut the two sides of the copper strip. The cutting mechanism 2 is located between two adjacent conveying rollers 11. The cutting mechanism 2 includes a cutting seat 21, a cutting motor 22 and a blade 23. The cutting seat 21 is fixedly mounted on the frame 1 and extends above the copper strip; the cutting motor 22 is fixedly mounted on the side wall of the cutting seat 21, and the blade 23 is fixedly mounted on the output shaft of the cutting motor 22 and is used to cut the side edges of the copper strip.
[0063] Reference Figure 1 and Figure 2 The frame 1 is also provided with a guide mechanism 3 for guiding the waste edges. The guide mechanism 3 includes two transmission rollers 31 and a rotating assembly 32. The two transmission rollers 31 are rotatably mounted on the frame 1 and are spaced apart in a direction perpendicular to the axis of the conveying roller 11. The two transmission rollers 31 are located below the two cutting mechanisms 2 and the copper belt. The two transmission rollers 31 are used to clamp the waste edges for conveying; the rotating assembly 32 is provided on the frame 1 and is used to drive the two transmission rollers 31 to rotate. The rotating assembly 32 includes two first gears 33 and a rotating member 1 34. The two first gears 33 are respectively keyed to the two transmission rollers 31 and mesh with each other. The rotating member 1 34 is a motor. The rotating member 1 34 is fixedly mounted on the frame 1 and the output shaft is coaxially connected to one of the transmission rollers 31. The rotating member 1 34 is started to drive the two transmission rollers 31 to rotate, thereby realizing the clamping and conveying of the waste edges.
[0064] Reference Figure 1 、 Figure 2 The crushing mechanism 4 includes two crushing rollers 41, two guide rollers 42, a driving assembly 5 and a collecting assembly 6. The two crushing rollers 41 are rotatably mounted on the frame 1 and are spaced apart in a direction perpendicular to the axis of the conveying roller 11. The two crushing rollers 41 are used to crush the waste edges to form debris; the two crushing rollers 41 are located below the two transmission rollers 31; two sliding seats 12 are horizontally installed on the frame 1 and directly above the two crushing rollers 41. The two sliding seats 12 are located on one side of the two transmission rollers 31 and below the transmission rollers 31. At the same time, the sliding direction of the two sliding seats 12 is parallel to the axis of the crushing rollers 41. The frame 1 is provided with a swinging assembly 7 that drives the two sliding seats 12 to move back and forth.
[0065] Reference Figure 2 and Figure 3 The two ends of the two guide rollers 42 are rotatably mounted on the two sliding seats 12, so that the two guide rollers 42 are located close to the two crushing rollers 41, and the axes of the guide rollers 42 and the crushing rollers 41 are parallel. The two guide rollers 42 are coaxially provided with limiting grooves 43, and the limiting grooves 43 on the two guide rollers 42 are arranged in multiple intervals along the axes of the guide rollers 42 and are arranged one to one; the transmission roller 31 is used to guide the waste edge to the two guide rollers 42, and the waste edge passes through the limiting groove 43. The guide roller 42 rotates to drive the waste edge to pass through the limiting groove 43. The width of the limiting groove 43 is greater than or equal to the width of the waste edge and is used to limit the waste edge. The two guide rollers 42 rotate to drive the waste edge vertically downward to between the two crushing rollers 41 for crushing.
[0066] A single copper strip can produce up to two scrap edges. Therefore, scrap edges cut from copper strips conveyed from multiple units or locations can be directed to the guide rollers 42 for transport, allowing the two crushing rollers 41 to crush more scrap edges and improve crushing efficiency. Simultaneously, the swing assembly 7 drives the two sliding seats 12 to reciprocate, causing the two guide rollers 42 to reciprocate, and the scrap edges to reciprocate along the axis of the crushing rollers 41. This allows the scrap edges to change their contact position with the crushing rollers 41, reducing the probability of the crushing rollers 41 damaging the scrap edges due to the crushing point of the crushing rollers 41 being concentrated at one point, thereby improving the scrap edge crushing effect.
[0067] Reference Figure 1 and Figure 3 The swing assembly 7 is located above the two guide rollers 42. The swing assembly 7 includes a swing plate 71, an eccentric rod 72, a connecting rod 73 and a swing member 74. The swing plate 71 is rotatably mounted on the frame 1 and is in a vertical state. The eccentric rod 72 is eccentrically fixedly mounted on the lower surface of the swing plate 71, and the axis of the eccentric rod 72 is parallel to the axis of the swing plate 71; the two ends of the connecting rod 73 are rotatably connected to the eccentric rod 72 and the sliding seat 12 respectively. The swing member 74 is a motor. The swing member 74 is fixedly mounted on the frame 1 and the output shaft is set vertically downward. The output shaft of the swing member 74 is connected to the swing plate 71 and is used to drive the swing plate 71 to rotate.
[0068] The swing member 74 starts to drive the swing plate 71 to rotate, and the swing plate 71 rotates to drive the eccentric rod 72 to rotate around the axis of the swing plate 71. The rotation of the eccentric rod 72 drives the sliding seat 12 to move back and forth through the connecting rod 73, thereby realizing the reciprocating movement of the two guide rollers 42.
[0069] The rotating assembly 32 can also drive the two guide rollers 42 to rotate. The rotating assembly 32 also includes two second gears 35, a connecting sleeve 36 and a rotating member 2 37. The two second gears 35 are respectively keyed to the two guide rollers 42 and mesh with each other. The connecting sleeve 36 is rotatably mounted on the frame 1, and the connecting sleeve 36 is coaxially arranged with one of the guide rollers 42. At the same time, the guide roller 42 is slidably mounted in the connecting sleeve 36, and a guide block slidably mounted on the connecting sleeve 36 is fixedly mounted on the guide roller 42, so that the guide roller 42 and the connecting sleeve 36 rotate simultaneously.
[0070] The second rotating part 37 is a motor. The second rotating part 37 is fixedly mounted on the frame 1 and the output shaft is coaxially connected to the end of the connecting sleeve 36 away from the guide roller 42. The second rotating part 37 is started to drive the connecting sleeve 36 and the guide roller 42 to rotate, and the guide roller 42 will not interfere with the rotation of the connecting sleeve 36 and the second rotating part 37 when it moves. The second rotating part 37 is started to drive the two guide rollers 42 to rotate, thereby achieving the clamping and conveying of the waste edges.
[0071] Reference Figure 1 、 Figure 2 and Figure 4 The crushing mechanism 4 also includes a driving assembly 5 and a collecting assembly 6. The driving assembly 5 is arranged on the frame 1 and is used to drive the two crushing rollers 41 to rotate. The driving assembly 5 includes two main gears 51, a driving member 52 and a sub-gear 53. The two main gears 51 are respectively keyed to the two crushing rollers 41 and meshed with each other; the driving member 52 is a motor, which is fixedly mounted on the frame 1 and the output shaft is parallel to the axis of the crushing roller 41. The sub-gear 53 is keyed to the output shaft of the driving member 52 and meshed with one of the main gears 51. The driving member 52 starts to drive the two crushing rollers 41 to rotate to crush the waste edges to form debris.
[0072] The collecting assembly 6 is arranged on the frame 1 and is used to collect debris. The collecting assembly 6 includes a collecting box 61 and a blowing piece 62. A placing frame 14 is slidably installed on the bottom of the frame 1 along the axis of the crushing roller 41. The collecting box 61 is placed on the placing frame 14 and is used to catch the debris falling from the crushing roller 41; the blowing piece 62 is fixedly installed on the frame 1, and the blowing piece 62 is arranged along the axis of the crushing roller 41. The blowing piece 62 is located above the two crushing rollers 41 and has a blowing hole on the lower surface along the axis of the crushing roller 41. An air pipe 63 connected to the air source is fixedly installed on the blowing piece 62, so that the gas is blown out through the blowing hole and blown to the crushed waste edges of the two crushing rollers 41, so that the debris on the crushing roller 41 falls into the collecting box 61 under the blowing of the gas for collection, thereby cleaning the two crushing rollers 41 and cooling the two crushing rollers 41.
[0073] Reference Figure 1 、 Figure 2A connecting column 13 connected to the placement frame 14 is fixedly installed on the sliding seat 12. The reciprocating movement of the sliding seat 12 can drive the placement frame 14 and the collection box 61 to move reciprocally, so that the debris in the collection box 61 is flattened, thereby further reducing the space occupied by the debris and improving the collection effect of the debris; at the same time, compared with winding up the waste edges, crushing collection can greatly reduce the space occupied by the waste edges and improve the collection effect of the waste edges. Moreover, the waste edges of the copper strip need to be crushed and recycled when they are recycled. Therefore, while improving the collection effect, there is no additional energy consumption.
[0074] A tensioning roller 15 is rotatably installed on the frame 1 and located between the transmission roller 31 and the guide roller 42. The tensioning roller 15 is located below the transmission roller 31 and above the guide roller 42. The tensioning roller 15 is pressed against the waste edge under the action of gravity. The reciprocating movement of the sliding seat 12 drives the waste edge to move, and the movement of the waste edge drives the tensioning roller 15 to rotate. The tensioning roller 15 makes the waste edge in a tensioned state during the transportation process, and the tensioning roller 15 is located above the waste edge, so as to prevent the waste edge from moving up and hitting the good copper strip, thereby improving the quality of the copper strip.
[0075] The working principle of the embodiment of this application is as follows:
[0076] The conveying roller 11 drives the copper strip to move, and the two cutting mechanisms 2 cut the side edges of the copper strip to form waste edges. The rotating member 1 34, the rotating member 2 37 and the driving member 52 are started at the same time, so that the two conveying rollers 31, the two guide rollers 42 and the two crushing rollers 41 rotate, and the waste edges are clamped and conveyed by the two conveying rollers 31, and the waste edges are tensioned by the tensioning roller 15. Multiple waste edges are limited by multiple limiting grooves 43, so that the waste edges are moved to the two crushing rollers 41 through the limiting grooves 43 for crushing, and the crushed debris falls into the collection box 61 for collection, and the swing member 74 starts to drive the two guide rollers 42 and the collection box 61 to move back and forth, so that the waste edges move back and forth and change the contact point with the crushing roller 41, and at the same time, the debris in the collection box 61 is flattened, thereby reducing the probability of the waste edges hitting the good copper strip, and also improving the convenience of waste edge collection, thereby improving the quality of the copper strip and the waste edge collection efficiency.
[0077] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A copper strip thick shearing device, characterized in that: The invention comprises a frame (1), a conveying roller (11) for conveying a copper strip, and a cutting mechanism (2) for shearing the copper strip to form waste edges. The frame (1) is provided with a crushing mechanism (4), and the crushing mechanism (4) comprises: Two crushing rollers (41) are rotatably mounted on the frame (1) and are used to crush the waste edges into chips; Two guide rollers (42) are rotatably mounted on the frame (1) and are used to guide the waste edges to the two crushing rollers (41) for crushing; A driving assembly (5) for driving the plurality of crushing rollers (41) to rotate; A collecting component (6) for collecting debris; The frame (1) is provided with a guide mechanism (3) for guiding the copper strip, and the guide mechanism (3) comprises: Two transfer rollers (31) are rotatably mounted on the frame (1) and are located below the two cutting mechanisms (2) and the copper belt and are used to guide the waste edges to the two guide rollers (42); A rotating assembly (32) for driving the two guide rollers (42) and the two transmission rollers (31) to rotate; A sliding seat (12) is slidably mounted on the frame (1) along the axis of the crushing roller (41). The two guide rollers (42) are rotatably mounted on the sliding seat (12) and are provided with a plurality of limiting grooves (43) spaced apart along their own axes for allowing waste edges to pass through for limiting. The frame (1) is provided with a swinging assembly (7) for driving the sliding seat (12) to move back and forth.
2. A copper strip thick shearing device according to claim 1, characterized in that: The driving assembly (5) comprises: Two main gears (51) are respectively arranged on the two crushing rollers (41) and mesh with each other; A driving member (52) is provided on the frame (1); The secondary gear (53) is arranged on the driving member (52) and rotates under the action of the driving member (52) and meshes with one of the main gears (51).
3. The copper strip thickening shearing device according to claim 1, characterized in that: The swing assembly (7) comprises: A swing plate (71) is rotatably mounted on the frame (1); An eccentric rod (72) eccentrically arranged on the swing plate (71); A connecting rod (73), both ends of which are rotatably connected to the sliding seat (12) and the eccentric rod (72); The swing member (74) is used to drive the swing plate (71) to rotate.
4. The copper strip thickening shearing device according to claim 1, characterized in that: A tensioning roller (15) is rotatably mounted on the frame (1). The tensioning roller (15) is located between the transmission roller (31) and the guide roller (42) and is pressed against the waste edge under the action of gravity to maintain a tensioned state during the movement of the waste edge.
5. The copper strip thick shearing device according to claim 1, characterized in that: The collecting component (6) comprises: A collection box (61) is provided on the frame (1) and is used to collect debris; The blowing member (62) is arranged on the frame (1) and blows air toward the contact point between the two crushing rollers (41) and the waste edges, so that the debris on the crushing rollers (41) moves to the collection box (61) for collection.
6. The copper strip thickening shearing device according to claim 5, characterized in that: A placement frame (14) connected to the sliding seat (12) is slidably provided on the frame (1), and the collection box (61) is placed on the placement frame (14).
7. The copper strip thickening shearing device according to claim 1, characterized in that: The rotating assembly (32) comprises: Two first gears (33) are arranged on the two transmission rollers (31) and mesh with each other; A rotating member (34) is provided on the frame (1) and is used to drive one of the transmission rollers (31) to rotate; Two second gears (35) are arranged on the two guide rollers (42) and mesh with each other; A connecting sleeve (36) is rotatably mounted on the frame (1), wherein one of the guide rollers (42) is slidably mounted on the connecting sleeve (36) and rotates simultaneously with the connecting sleeve (36); The second rotating member (37) is arranged on the frame (1) and is used to drive the connecting sleeve (36) to rotate.
8. The copper strip thickening shearing device according to claim 1, characterized in that: The cutting mechanism (2) comprises: A cutting seat (21) is provided on the frame (1); A cutting motor (22) is provided on the cutting seat (21); A blade (23) is provided on the output shaft of the cutting motor (22) and is used for cutting off the waste edges.
Citation Information
Patent Citations
Edge cutting device capable of recycling waste edges
CN109179012A
Insulation board trimming device with waste recovery mechanism
CN218639851U