On-line crushing, conveying, baling and packing device for copper foil slitting slitter edges

The online crushing, conveying, and bundling device for copper foil slitting waste edges enables equidistant shearing and efficient bundling of copper foil waste edges, solving the problem of inconsistent waste lengths and improving the recycling efficiency and utilization rate of copper resources.

CN121373028APending Publication Date: 2026-01-23SHANDONG JIAYUAN NEW ENERGY MATERIAL CO LTD
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Patent Information

Application Number
CN202511828527.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-05
Publication Date
2026-01-23

AI Technical Summary

Technical Problem

In the process of copper foil waste treatment, the difference in conveying speed and shearing rate leads to waste of varying lengths, which affects the subsequent dissolution and recycling of fragments and reduces the utilization rate of copper resources.

Method used

An online crushing, conveying, and bundling device for copper foil slitting waste edges is adopted. Through the linkage of control components, switching components, and conveying components, equidistant shearing and automatic feeding are achieved. Combined with collection and pressing components, efficient processing and bundling of copper foil slitting waste edges are realized.

Benefits of technology

This improves the coordination and consistency of the copper foil slitting process, avoids the problem of inconsistent lengths, and ensures efficient recycling and high-density packaging of copper resources.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an online crushing, conveying, baling and packaging device for copper foil slitting waste edges, and relates to the technical field of copper foil waste treatment. Comprising a conveying table, a conveying assembly for conveying copper foil slitter edges in a stepping mode is arranged on the left side of the inner wall of the conveying table, and when the copper foil slitter edges are crushed, under the transmission work that a control assembly is in linkage with a conversion assembly and the conveying assembly, the copper foil slitter edges can be crushed, and the copper foil slitter edges can be conveyed in a pressing mode. The effects of equal-distance shearing and crushing and linkage feeding of copper foil slitting slitter edges can be achieved, the problem of large length difference can be avoided, the copper foil slitting slitter edges are in an undetermined state when the upper shearing knife and the lower shearing knife are sheared, and after the upper shearing knife and the lower shearing knife are separated, the copper foil slitting slitter edges are driven by the conversion assembly and the conveying assembly to be in an undetermined state. The copper foil slitting slitter edges are controlled to be conveyed to the upper portion of the lower shearing knife to wait for next shearing and crushing treatment, the whole machining process is high in linkage, and the copper foil slitting slitter edges can be efficiently treated to wait for follow-up copper resource recycling treatment.
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Description

Technical Field

[0001] This invention relates to the field of copper foil waste treatment technology, specifically to an online crushing, conveying, and bundling device for copper foil slitting waste edges. Background Technology

[0002] The online crushing, conveying, and bundling device for copper foil slitting waste edges is a specialized environmentally friendly equipment that connects to the copper foil production line. After the copper foil sealing strip cutting waste edges are generated, it can complete three core actions: crushing irregular waste edges into uniform fragments, continuously conveying them to a designated area using a channel, and compressing them into high-density bundles using hydraulic or mechanical pressure. Ultimately, it achieves efficient recycling and standardized storage and transportation of waste edges. Its application focuses on the electronics industry, where copper foil is a key conductive material for batteries and copper-clad laminates. During production, due to uneven edge thickness, waste edges need to be cut. This device can be directly embedded after the cutting process, eliminating the need for manual transfer and offline processing.

[0003] Regarding the aforementioned technologies, it is believed that when processing copper foil waste, long sheet-shaped waste is generally first cut into materials of a certain length, and then the cut materials are continuously compressed to form high-density block bundles. The compressed and packaged bundles are easy to stack and transport. However, when cutting long sheet-shaped waste, due to the difference between the conveying speed and the cutting rate, there will be a large difference in the length of the waste, which will affect the subsequent dissolution and recycling of fragments, thus affecting the utilization rate of copper resources. Summary of the Invention

[0004] The purpose of this invention is to provide an online crushing, conveying, and bundling device for copper foil slitting waste edges, which solves the problems mentioned in the background art.

[0005] To achieve this objective, the present invention adopts the following technical solution:

[0006] A copper foil slitting waste edge online crushing, conveying, and bundling device includes a conveying platform. A conveying component for step-feeding the copper foil waste edge strips is installed on the left side of the inner wall of the conveying platform. A control component for controlling lifting and shearing is fixedly installed on the top wall of the conveying platform. A conversion component for connecting the conveying component and the control component to achieve linked feeding is installed on the front wall of the conveying platform. A collection component for receiving and tilting the sheared copper foil waste edge strips is rotatably installed on the inner wall of the conveying platform. A pressing component for bundling and packaging the sheared and crushed copper foil waste edge strips is installed on the right side of the inner wall of the conveying platform.

[0007] Furthermore, the control component includes two U-shaped frames arranged left and right and fixed to the top wall of the conveyor table. A connector is fixedly installed between the U-shaped frames. A hydraulic cylinder is fixedly installed on the top wall of the connector. The movable end of the hydraulic cylinder slides through the connector and is fixedly installed with an I-shaped component. The right side of the bottom wall of the I-shaped component is fixedly connected to the pressing component. The two sides of the I-shaped component slide inside the U-shaped frame. Limiting blocks are fixedly installed at the front and rear ends of both sides of the I-shaped component. Each limiting block has a limiting groove corresponding to the position of the inner wall of the U-shaped frame. The inner wall of the limiting groove is slidably connected to the outer wall of the limiting block. The limiting block at the front left is fixedly connected to the conversion component. The limiting block at the rear left is fixedly connected to the collection component. An upper shearing blade is fixedly installed on the left side of the bottom wall of the I-shaped component. A lower cutting groove is opened in the inner wall of the U-shaped frame. A lower shearing blade is fixedly installed on the inner wall of the lower cutting groove. The blade positions of the lower shearing blade and the upper shearing blade are staggered to cut and segment the copper foil waste strips that pass through.

[0008] Furthermore, the conversion assembly includes a mounting shaft rotatably mounted on the front wall of the conveyor table. A gear that meshes with the conveyor assembly is fixedly mounted at the front end of the mounting shaft. A steering seat is fixedly mounted on the outer wall of the mounting shaft. A plurality of mounting grooves are evenly provided on the outer wall of the steering seat. Angle teeth are rotatably mounted on the inner wall of a plurality of mounting grooves. A support spring fixed to the corresponding mounting groove is provided on the bottom wall of each angle tooth. A toothed ring is provided on the outer wall of the steering seat. A plurality of angle grooves are evenly provided on the inner wall of the toothed ring. The inner wall of each angle groove abuts and is fixed to the corresponding angle tooth. Protective covers are provided on the front and rear walls of the toothed ring and rotatably sleeved on the outer wall of the mounting shaft. A conversion rack that meshes with the toothed ring is fixedly mounted on the front wall of the limiting block at the front left side.

[0009] Furthermore, when the conversion rack descends, it causes the meshing gear ring to rotate freely on the outer wall of the steering seat. The angle tooth compresses the corresponding support spring into the mounting groove and rotates counterclockwise along the inner wall of the angle groove. When the conversion rack rises, it causes the meshing gear ring to mesh and rotate on the outer wall of the steering seat. Under the action of the support spring, the angle tooth enters the inner wall of the angle groove and rotates clockwise to control the rotation of the steering seat, mounting shaft and gear, and meshes with the linkage conveying assembly to step-feed the copper foil waste strips.

[0010] Furthermore, the conveying assembly includes several conveying rollers rotatably mounted on the inner wall of the conveying platform. Several anti-slip rings are evenly installed on the outer wall of the conveying rollers to increase the contact friction with the copper foil waste edge, improve conveying efficiency and reduce slippage. Several conveying roller shafts are connected to the same sprocket drive group through the conveying platform via bearings. The front end of the rightmost conveying roller is fixedly installed with a gear two that meshes with gear one through the conveying platform via a bearing.

[0011] Furthermore, the gear two controls one of the conveying rollers to rotate under the meshing transmission of the gear one, and drives several conveying rollers to rotate in the same direction under the transmission control of the sprocket transmission group to step-feed the copper foil waste strips passing through the conveying table and the bottom of the anti-slip ring.

[0012] Furthermore, the collection assembly includes a shift rack fixedly installed on the left rear limit block, a steering shaft rotatably installed on the inner wall of the conveyor table and on the side of the lower shear blade, a shift gear that meshes with the shift rack is fixedly installed at the rear end of the steering shaft through the conveyor table via a bearing, and a collection frame that receives the copper foil waste strips sliding down from the lower shear blade is fixedly installed on the outer wall of the steering shaft.

[0013] Furthermore, the shift rack descends, driving the shift gear and steering shaft to rotate, controlling the collection frame to be close to the lower shearing blade to receive the copper foil waste strips. The shift rack rises, driving the shift gear and steering shaft to rotate, controlling the collection frame to move away from the lower shearing blade and pour the copper foil waste strips into the pressing assembly.

[0014] Furthermore, the pressing assembly includes a connecting seat fixedly installed on the right side of the I-shaped part. Several mounting cylinders are evenly installed on the bottom wall of the connecting seat. A cross groove is opened on the inner wall of the mounting cylinder. A return spring is fixedly installed on the inner wall of the mounting cylinder. A cross block that is slidably connected to the inner wall of the mounting cylinder is fixedly installed at the bottom end of each return spring. The protruding parts of the cross blocks are slidably connected to the inner wall of the corresponding cross groove. A pressing column is fixedly installed on the bottom wall of the cross block. A pressure plate for pressing and packaging copper foil waste strips is fixedly installed at the bottom end of each pressing column.

[0015] Furthermore, a packing frame is provided on the inner wall of the conveyor platform, and lifting plates are fixedly installed on the front and rear walls of the packing frame. Placement slots are provided on the front and rear walls of the conveyor platform at positions corresponding to the lifting plates, and the inner walls of the placement slots are respectively attached to the outer walls of the lifting plates.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] 1. This online crushing, conveying, and bundling device for copper foil slitting waste edges achieves equidistant shearing and crushing, and coordinated feeding of copper foil slitting waste edges through the transmission of the control components, linkage conversion components, and conveying components. This avoids the problem of large length differences. When the upper and lower shearing blades are shearing, the copper foil slitting waste edges are in a waiting state. After separation, the copper foil slitting waste edges are conveyed to the upper position of the lower shearing blade under the drive of the conversion components and conveying components to await the next shearing and crushing process. This makes the entire processing process highly interconnected and can efficiently process copper foil slitting waste edges for subsequent copper resource recycling.

[0018] 2. This online crushing, conveying, and bundling device for copper foil slitting waste edges, after cutting the copper foil slitting waste edges into segments, the segments of waste material slide down through the lower shearing blade into the collection component for unified collection. When the upper and lower shearing blades separate, the control component, in conjunction with the collection component, pours the copper foil slitting waste edges in the collection frame into the bundling frame. During the next cutting process, the control component compresses and bundles the copper foil slitting waste edge segments placed in the bundling frame to complete the bundling process, making the entire device work in an assembly line and further improving the linkage effect and work consistency of the overall components.

[0019] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0020] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0021] The structures, proportions, sizes, etc., shown in the accompanying drawings of this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed in the specification, and are not intended to limit the conditions under which the present invention can be implemented. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and objectives that the present invention can produce, should still fall within the scope of the technical content disclosed in the present invention.

[0022] Figure 1 This is a schematic diagram of the overall external structure of the present invention;

[0023] Figure 2 This is a rear view of the external structure of the present invention;

[0024] Figure 3 This is a schematic diagram of the assembly of the conveyor platform and conveyor components of the present invention;

[0025] Figure 4 This is a schematic diagram of the external structure of the conveying component of the present invention;

[0026] Figure 5 This is a schematic diagram of the combination of the control component and the collection component of the present invention. Figure 1 ;

[0027] Figure 6 This is a schematic diagram of the combination of the control component and the collection component of the present invention. Figure 2 ;

[0028] Figure 7This is a schematic diagram of the combination of the control component, conversion component, and conveying component of the present invention;

[0029] Figure 8 The internal structure of the conversion component of this invention exploded. Figure 1 ;

[0030] Figure 9 The internal structure of the conversion component of this invention exploded. Figure 2 ;

[0031] Figure 10 This is a schematic diagram of the combination of the I-shaped part and the pressing assembly of the present invention;

[0032] Figure 11 This is an exploded view of the internal structure of the pressing component of the present invention;

[0033] Figure 12 This is a schematic diagram of the combination of the pressing component and the collecting component of the present invention;

[0034] Figure 13 This is a cross-sectional view of the internal structure of the present invention.

[0035] Illustrations: 1. Conveyor table; 2. Conveying assembly; 21. Conveyor roller; 22. Anti-slip ring; 23. Chain drive assembly; 24. Gear II; 3. Control assembly; 31. U-shaped frame; 32. Hydraulic cylinder; 33. I-shaped part; 34. Limit block; 35. Upper shearing blade; 36. Lower blade groove; 37. Lower shearing blade; 38. Limiting long groove; 39. Connecting part; 4. Conversion assembly; 41. Conversion rack; 42. Gear I; 43. Gear ring; 44. Mounting shaft; 45. Angle groove; 46. Mounting groove; 47. Steering seat; 48. Angle gear; 49. Support spring; 410. Protective cover; 5. Collection assembly; 51. Shift rack; 52. Steering shaft; 53. Collection frame; 54. Shift gear; 6. Pressing assembly; 61. Connecting seat; 62. Mounting cylinder; 63. Cross groove; 64. Return spring; 65. Cross block; 66. Pressing column; 67. Pressure plate; 68. Packing frame; 69. Lifting plate; 610. Placement groove. Detailed Implementation

[0036] To make the objectives, features, and advantages of this invention more apparent and understandable, the technical solutions of the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are only some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this invention.

[0037] In the description of this invention, it should be understood that the terms "upper," "lower," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or there may be a component positioned centrally in the connection.

[0038] The technical solution of the present invention will be further described below with reference to the accompanying drawings and specific embodiments.

[0039] Please see Figures 1-13 This invention provides an online crushing, conveying, and bundling device for copper foil slitting waste edges, including a conveying platform 1. A conveying component 2 for step-feeding copper foil waste edges is provided on the left side of the inner wall of the conveying platform 1. A control component 3 for controlling lifting and shearing is fixedly installed on the top wall of the conveying platform 1. A conversion component 4 for connecting the conveying component 2 and the control component 3 to achieve linked feeding is installed on the front wall of the conveying platform 1. A collection component 5 for receiving and tilting the sheared copper foil waste edges is rotatably installed on the inner wall of the conveying platform 1. A pressing component 6 for bundling and packaging the sheared and crushed copper foil waste edges is provided on the right side of the inner wall of the conveying platform 1.

[0040] In this implementation plan, the entire device is installed on the copper foil production line. When the copper foil slitting waste edge passes through the conveyor table 1, the control component 3 will continuously descend and shear and crush it, and will work in conjunction with the control conversion component 4 and the conveying component 2 to achieve the process of equidistant shearing and automatic step feeding.

[0041] The scrap copper foil strips after being cut and broken fall into the collection component 5 for unified collection. When the control component 3 returns to its original position to the non-cutting state, it will control the collection component 5 to pour the collected scrap copper foil strips into the pressing component 6 for pressing and bundling.

[0042] Specifically, the control component 3 includes two U-shaped frames 31 arranged horizontally and fixed to the top wall of the conveyor table 1. A connector 39 is fixedly installed between the U-shaped frames 31. A hydraulic cylinder 32 is fixedly installed on the top wall of the connector 39. The movable ends of the hydraulic cylinders 32 slide through the connector 39 and are fixedly installed with I-shaped parts 33. The right side of the bottom wall of the I-shaped part 33 is fixedly connected to the pressing component 6. The two sides of the I-shaped part 33 slide inside the U-shaped frame 31. Limiting blocks 34 are fixedly installed at the front and rear ends of both sides of the I-shaped part 33, and the limiting blocks 34 correspond to the U-shaped frame 31 respectively. Limiting grooves 38 are provided on the inner wall of the frame 31. The inner wall of the limiting groove 38 is slidably connected to the outer wall of the limiting block 34. The limiting block 34 at the front left is fixedly connected to the conversion component 4, and the limiting block 34 at the rear left is fixedly connected to the collection component 5. An upper shearing blade 35 is fixedly installed on the left side of the bottom wall of the I-shaped component 33. A lower blade groove 36 is provided on the inner wall of the U-shaped frame 31. A lower shearing blade 37 is fixedly installed on the inner wall of the lower blade groove 36. The blade positions of the lower shearing blade 37 and the upper shearing blade 35 are staggered to cut and segment the copper foil waste strips that pass through.

[0043] In this embodiment, the installed hydraulic cylinder 32 pushes the I-shaped part 33 to descend inside the U-shaped frame 31, thereby driving the limiting block 34 to move down along the inner wall of the corresponding limiting groove 38. This limits the descent path of the I-shaped part 33 to prevent deviation. Simultaneously, the upper shearing blade 35 and the lower shearing blade 37 work together to cut and segment the copper foil waste strips. At the same time, the limiting block 34 is linked to the conversion component 4 and the collection component 5 to work synchronously.

[0044] Specifically, the conversion assembly 4 includes a mounting shaft 44 rotatably mounted on the front wall of the conveyor table 1. A gear 42 that meshes with the conveyor assembly 2 is fixedly mounted at the front end of the mounting shaft 44. A steering seat 47 is fixedly mounted on the outer wall of the mounting shaft 44. A plurality of mounting grooves 46 are evenly provided on the outer wall of the steering seat 47. Angle teeth 48 are rotatably mounted on the inner wall of the plurality of mounting grooves 46. A support spring 49 fixed to the corresponding mounting groove 46 is provided on the bottom wall of each angle tooth 48. A toothed ring 43 is provided on the outer wall of the steering seat 47. A plurality of angle grooves 45 are evenly provided on the inner wall of the toothed ring 43. The inner wall of the angle grooves 45 abuts and is fixed to the corresponding angle teeth 48. Protective covers 410 are provided on the front and rear walls of the toothed ring 43 and rotatably sleeved on the outer wall of the mounting shaft 44. A conversion rack 41 that meshes with the toothed ring 43 is fixedly mounted on the front wall of the left front limit block 34.

[0045] In this embodiment, the main purpose of setting the conversion component 4 is to keep the conveying of the copper foil waste strips paused during the shearing process. After the upper shearing blade 35 and the lower shearing blade 37 are separated, the control conveying component 2 is started to convey the copper foil waste strips, completing the automatic feeding process, so that the entire shearing and crushing process achieves the effect of automatic shearing and feeding.

[0046] Specifically, when the conversion rack 41 descends, it drives the meshing gear ring 43 to rotate freely on the outer wall of the steering seat 47. The angle tooth 48 compresses the corresponding support spring 49 and enters the mounting groove 46, and rotates counterclockwise along the inner wall of the angle groove 45. When the conversion rack 41 rises, it drives the meshing gear ring 43 to mesh and rotate on the outer wall of the steering seat 47. Under the action of the support spring 49, the angle tooth 48 enters the inner wall of the angle groove 45 and rotates clockwise to control the rotation of the steering seat 47, the mounting shaft 44 and the gear 42, and meshes with the linkage conveying assembly 2 to step-feed the copper foil waste strips.

[0047] In this embodiment, when the conversion rack 41 is rising and falling, the cooperation of the angle teeth 48 and the angle groove 45 achieves the effect of idling or coupled transmission, which prompts the completion of the process of stopping feeding during shearing and automatically loading after shearing is completed.

[0048] Specifically, the conveying assembly 2 includes several conveying rollers 21 rotatably mounted on the inner wall of the conveying platform 1. Several anti-slip rings 22 are evenly installed on the outer wall of the conveying rollers 21 to increase the contact friction with the copper foil waste edge, improve the conveying efficiency and reduce slippage. The roller shafts of several conveying rollers 21 pass through the conveying platform 1 through bearings and are mounted on the same sprocket drive group 23. The front end of the rightmost conveying roller 21 passes through the conveying platform 1 through bearings and is fixedly mounted with a gear 24 that meshes with gear 42.

[0049] In this embodiment, the conveyor roller 21 drives the anti-slip ring 22 to rotate, and performs step-by-step conveying of the copper foil waste strips passing between the conveyor table 1 and the anti-slip ring 22. When the gear 1 42 rotates, it controls the gear 2 24 to mesh and rotate, and then the conveyor roller 21 is driven by the sprocket transmission group 23 to drive in the same direction and at the same speed.

[0050] Specifically, gear 24 controls one of the conveyor rollers 21 to rotate under the meshing transmission of gear 42, and drives several conveyor rollers 21 to rotate in the same direction under the transmission control of the sprocket transmission group 23 to step-feed the copper foil waste strips passing through the bottom of the conveyor table 1 and the anti-slip ring 22.

[0051] In this implementation scheme, the copper foil waste strips passing through the bottom of the anti-slip ring 22 of the conveyor table 1 can be stably fed, preventing uneven lengths during shearing and improving the processing effect of waste materials.

[0052] Specifically, the collection assembly 5 includes a shift rack 51 fixedly installed on the left rear limit block 34, a steering shaft 52 rotatably installed on the inner wall of the conveyor table 1 and on the side of the lower shear blade 37, a shift gear 54 that meshes with the shift rack 51 is fixedly installed at the rear end of the steering shaft 52 through the conveyor table 1 via a bearing, and a collection frame 53 that receives the copper foil waste strips that slide off from the lower shear blade 37 is fixedly installed on the outer wall of the steering shaft 52.

[0053] In this embodiment, after the left rear limit block 34 drives the shift rack 51 to descend, it will drive the shift gear 54 to mesh and rotate, thereby driving the steering shaft 52 and the collection frame 53 to approach the side wall of the lower shearing blade 37. After the copper foil waste is cut, it slides into the collection frame 53 and is collected in a unified manner.

[0054] Specifically, the shift rack 51 descends, causing the shift gear 54 and the steering shaft 52 to rotate, controlling the collection frame 53 to be close to the lower shearing blade 37 to receive the copper foil waste strips. The shift rack 51 rises, causing the shift gear 54 and the steering shaft 52 to rotate, controlling the collection frame 53 to move away from the lower shearing blade 37 and pour the copper foil waste strips into the pressing assembly 6.

[0055] In this embodiment, when the shift rack 51 rises, it controls the collection frame 53 to move away from the lower shear blade 37 and dumps the copper foil waste into the packing frame 68 to wait for subsequent processing. This method uses a layer-by-layer pressing and bundling method, which can make the copper foil waste be pressed more tightly to form a high-density block bundle, while also avoiding direct guide sliding to the top position of the pressure plate 67 and causing accumulation.

[0056] Specifically, the pressing assembly 6 includes a connecting seat 61 fixedly installed on the right side of the I-shaped part 33. Several mounting cylinders 62 are evenly installed on the bottom wall of the connecting seat 61. A cross groove 63 is opened on the inner wall of the mounting cylinder 62. A return spring 64 is fixedly installed on the inner wall of the mounting cylinder 62. A cross block 65 that slides and connects with the inner wall of the mounting cylinder 62 is fixedly installed at the bottom end of each return spring 64. The protruding parts of the cross block 65 are slidably connected with the inner wall of the corresponding cross groove 63. A pressing column 66 is fixedly installed on the bottom wall of the cross block 65. A pressure plate 67 for pressing and packaging copper foil waste strips is fixedly installed at the bottom end of each pressing column 66.

[0057] In this embodiment, when the I-shaped component 33 descends, it will cause the connecting seat 61 and the mounting cylinder 62 to fall, thereby controlling the cross block 65, the pressing column 66 and the pressure plate 67 to perform step-by-step cold pressing of the copper foil waste that progressively enters the packaging frame 68.

[0058] Specifically, a packing frame 68 is provided on the inner wall of the conveyor table 1, and lifting plates 69 are fixedly installed on the front and rear walls of the packing frame 68. Placement slots 610 are provided on the front and rear walls of the conveyor table 1 at positions corresponding to the lifting plates 69, and the inner walls of the placement slots 610 are respectively attached to the outer walls of the lifting plates 69.

[0059] In this embodiment, the packaging frame 68 is placed inside the placement slot 610 by the lifting plate 69, which enables quick placement and removal, thereby enabling continuous application in assembly line processing.

[0060] The working principle of this device is as follows: The hydraulic cylinder 32 is electrically connected to the external power supply and controller. This device is installed on the copper foil production line. When the copper foil waste strip is transported by the production line to the position of the conveyor table 1 near the conveyor assembly 2, the hydraulic cylinder 32 is activated to push the I-shaped part 33 down inside the U-shaped frame 31. While the I-shaped part 33 is down, it drives the limiting block 34 to slide down along the inner wall of the corresponding limiting groove 38. This can limit the travel path of the I-shaped part 33 to prevent deviation. When the limiting block 34 located at the front left side is down, it controls the conversion rack 41 to drive the meshing toothed ring 43 to rotate on the outer wall of the mounting shaft 44 and the steering seat 47. At the same time, when the toothed ring 43 rotates circumferentially, it will drive the angle tooth 48 to compress the support spring 49 and enter the mounting groove 46. The angle tooth 48 moves along the inner wall of the angle groove 45.

[0061] The left rear limit block 34 drives the shift rack 51 to descend, causing the shift gear 54 to mesh and rotate. At the same time, it controls the steering shaft 52 to rotate inside the conveyor table 1 and drives the collection frame 53 to approach and fit the position of the lower shear blade 37.

[0062] The I-shaped component 33 drives the upper shearing blade 35 to descend and approach the lower shearing blade 37 to shear the copper foil waste strips. After shearing, the copper foil waste strips slide down through the lower shearing blade 37 into the collection frame 53 for unified collection.

[0063] After the shearing is completed, the movable end of the hydraulic cylinder 32 retracts, causing the workpiece 33 to rise. At this time, the conversion rack 41 on the left front drives the gear ring 43 to rotate. Under the lifting action of the support spring 49, the angle tooth 48 is pushed to turn in the inner wall of the mounting groove 46, so that the angle tooth 48 abuts and is fixed with the inner wall of the angle groove 45. Thus, when the gear ring 43 rotates, it will drive the steering seat 47, mounting shaft 44 and protective cover 410 to rotate. When the mounting shaft 44 rotates, it drives the gear 1 42 and gear 2 24 to mesh and rotate. When the gear 2 24 rotates, it controls the rotation of the conveyor roller 21 and anti-slip ring 22 through the transmission of the roller shaft. And through the transmission of the sprocket transmission group 23, multiple conveyor rollers 21 and anti-slip ring 22 rotate at the same speed and in the same direction, and the copper foil waste strip passing through the bottom of the anti-slip ring 22 is conveyed in a step-by-step manner.

[0064] At the same time, after the left rear limit block 34 rises, it drives the shift rack 51 and shift gear 54 to mesh and rotate, which in turn drives the steering shaft 52 and the collection frame 53 to reverse, so that the copper foil waste strips collected in the collection frame 53 are put into the packaging frame 68 for collection, waiting to be compressed and packaged.

[0065] Continue to process the copper foil waste strips by shearing as described above.

[0066] At this time, the I-shaped component 33 drives the connecting seat 61 and the mounting cylinder 62 to descend, and controls the pusher cross block 65, pressing column 66 and pressure plate 67 to enter the packaging frame 68. The cut copper foil waste strips are compressed and formed. When there are few copper foil waste strips in the packaging frame 68, after the pressure plate 67 enters the packaging frame 68, the pressing column 66 will drive the cross block 65 to slide in the mounting cylinder 62 and cross groove 63 and compress the return spring 64 with elastic pressure. As the cutting work continues, more copper foil waste strips are put into the packaging frame 68. At this time, after the pressure plate 67 compresses the copper foil waste strips, it will drive the pressing column 66 and cross block 65 into the mounting cylinder 62, so that the cross block 65 is fixed to the position of the top wall of the cross groove 63. Thus, the original elastic pressure is changed to stable pressure, and the copper foil waste strips in the packaging frame 68 are stably compressed and formed into high-density block copper foil waste strips.

[0067] The handle on the active packaging frame 68 pulls the packaging frame 68 and the copper foil waste strips that have been compressed and packaged out, so that the lifting plate 69 gradually separates from the placement slot 610. After replacing the new packaging frame 68, the copper foil waste strips are processed.

[0068] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A copper foil slitting waste edge online crushing, conveying, and bundling device, comprising a conveyor table (1), characterized in that: The conveying platform (1) has a conveying component (2) for step-by-step conveying of copper foil waste strips on the left side of its inner wall. The top wall of the conveying platform (1) is fixedly equipped with a control component (3) that can control lifting and shearing and crushing. The front wall of the conveying platform (1) is equipped with a conversion component (4) for connecting the conveying component (2) and the control component (3) to achieve linkage feeding. The inner wall of the conveying platform (1) is rotatably equipped with a collection component (5) for receiving and tilting the sheared copper foil waste strips. The inner wall of the conveying platform (1) has a pressing component (6) for pressing and bundling the sheared and crushed copper foil waste strips on the right side of its inner wall.

2. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The control component (3) includes two U-shaped frames (31) arranged left and right and fixed to the top wall of the conveyor table (1). A connector (39) is fixedly installed between the U-shaped frames (31). A hydraulic cylinder (32) is fixedly installed on the top wall of the connector (39). The movable ends of the hydraulic cylinders (32) slide through the connector (39) and are fixedly installed with I-shaped parts (33). The bottom right side of the I-shaped part (33) is fixedly connected to the pressing component (6). The two sides of the I-shaped part (33) slide inside the U-shaped frame (31). Limiting blocks (34) are fixedly installed at the front and rear ends of both sides of the I-shaped part (33). The limiting blocks (34) correspond to the U-shaped frame (31) respectively. Limiting grooves (38) are provided on the inner wall of the frame (31). The inner wall of the limiting groove (38) is slidably connected to the outer wall of the limiting block (34). The limiting block (34) at the front left is fixedly connected to the conversion component (4). The limiting block (34) at the rear left is fixedly connected to the collection component (5). An upper shearing blade (35) is fixedly installed on the left side of the bottom wall of the I-shaped component (33). A lower blade groove (36) is provided on the inner wall of the U-shaped frame (31). A lower shearing blade (37) is fixedly installed on the inner wall of the lower blade groove (36). The blades of the lower shearing blade (37) and the upper shearing blade (35) are staggered to cut and segment the copper foil waste strips that pass through.

3. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The conversion assembly (4) includes a mounting shaft (44) rotatably mounted on the front wall of the conveyor table (1). A gear (42) meshing with the conveyor assembly (2) is fixedly mounted at the front end of the mounting shaft (44). A steering seat (47) is fixedly mounted on the outer wall of the mounting shaft (44). A plurality of mounting grooves (46) are evenly provided on the outer wall of the steering seat (47). Angle teeth (48) are rotatably mounted on the inner wall of a plurality of mounting grooves (46). The bottom wall of each angle tooth (48) is provided with a corresponding... The mounting slot (46) is fixed to the support spring (49). The outer wall of the steering seat (47) is provided with a toothed ring (43). The inner wall of the toothed ring (43) is evenly provided with several corner grooves (45). The inner wall of the corner groove (45) is respectively abutted and fixed with the corresponding corner teeth (48). The front and rear walls of the toothed ring (43) are rotatably sleeved on the outer wall of the mounting shaft (44) and have protective covers (410). The front wall of the limiting block (34) on the left side is fixedly installed with a conversion rack (41) that meshes with the toothed ring (43).

4. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 3, characterized in that: When the conversion rack (41) descends, it drives the meshing gear ring (43) to rotate freely on the outer wall of the steering seat (47). The angle tooth (48) compresses the corresponding support spring (49) and enters the mounting groove (46) and rotates counterclockwise along the inner wall of the angle groove (45). When the conversion rack (41) rises, it drives the meshing gear ring (43) to mesh and rotate on the outer wall of the steering seat (47). Under the push-out action of the support spring (49), the angle tooth (48) enters the inner wall of the angle groove (45) and rotates clockwise to control the steering seat (47), mounting shaft (44) and gear 1 (42) to rotate, and meshes with the linkage conveying assembly (2) to rotate and step-feed the copper foil waste strip.

5. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The conveying assembly (2) includes several conveying rollers (21) rotatably mounted on the inner wall of the conveying platform (1). Several anti-slip rings (22) are evenly installed on the outer wall of the conveying rollers (21) to increase the contact friction with the copper foil waste edge, improve the conveying efficiency and reduce slippage. The roller shafts of several conveying rollers (21) are connected to the same sprocket drive group (23) through the bearings of the conveying platform (1). The front end of the rightmost conveying roller (21) is fixedly installed with a gear two (24) that meshes with gear one (42) through the bearings of the conveying platform (1).

6. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 5, characterized in that: The gear two (24) controls one of the conveyor rollers (21) to rotate under the meshing transmission of the gear one (42), and drives several conveyor rollers (21) to rotate in the same direction under the transmission control of the sprocket transmission group (23) to step-transport the copper foil waste strips passing through the bottom of the conveyor table (1) and the anti-slip ring (22).

7. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The collection assembly (5) includes a shift rack (51) fixedly installed on the left rear limit block (34). A steering shaft (52) is rotatably installed on the inner wall of the conveyor table (1) and on the side of the lower shearing blade (37). The rear end of the steering shaft (52) is fixedly installed through the conveyor table (1) via a bearing and a shift gear (54) that meshes with the shift rack (51). A collection frame (53) is fixedly installed on the outer wall of the steering shaft (52) to receive the copper foil waste strips that slide off from the lower shearing blade (37).

8. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 7, characterized in that: The shift rack (51) descends, driving the shift gear (54) and the steering shaft (52) to rotate, controlling the collection frame (53) to be close to the lower shearing blade (37) to receive the copper foil waste strips. The shift rack (51) rises, driving the shift gear (54) and the steering shaft (52) to rotate, controlling the collection frame (53) to be away from the lower shearing blade (37) and pouring the copper foil waste strips into the pressing assembly (6).

9. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The pressing assembly (6) includes a connecting seat (61) fixedly installed on the right side of the I-shaped part (33). Several mounting cylinders (62) are evenly installed on the bottom wall of the connecting seat (61). A cross groove (63) is opened on the inner wall of the mounting cylinder (62). A reset spring (64) is fixedly installed on the inner wall of the mounting cylinder (62). A cross block (65) that slides and connects with the inner wall of the mounting cylinder (62) is fixedly installed at the bottom end of the reset spring (64). The protruding positions of the cross blocks (65) are all slidably connected to the inner wall of the corresponding cross groove (63). A pressing column (66) is fixedly installed on the bottom wall of the cross block (65). A pressure plate (67) for pressing and packaging copper foil waste strips is fixedly installed at the bottom end of the pressing column (66).

10. The online crushing, conveying, and bundling device for copper foil slitting waste edges according to claim 1, characterized in that: The inner wall of the conveyor (1) is provided with a packing frame (68), and the front and back walls of the packing frame (68) are fixedly installed with lifting plates (69). The front and back walls of the conveyor (1) and the positions corresponding to the lifting plates (69) are provided with placement grooves (610), and the inner wall of the placement grooves (610) is respectively attached to the outer wall of the lifting plates (69).