A high-performance copper strip surface treatment auxiliary device

CN224737931UActive Publication Date: 2026-09-11JIANGXI YUNUO ELECTRONIC MATERIALS CO LTD
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Patent Information

Application Number
CN202521898392.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-04
Publication Date
2026-09-11
Estimated Expiration
2035-09-04

AI Technical Summary

Technical Problem

[0003]然而,传统铜带表面处理装置存在适配性不足的问题,难以灵活调整以适应不同宽度规格的铜带,且部分装置清理部件运动方式单一,导致去毛刺、除杂效果不均匀,杂质收集不便也增加了后续处理难度,无法满足高性能铜带的精细化生产需求,为此我们提出了一种高性能铜带表面处理辅助装置

Benefits of technology

[0017]该高性能铜带表面处理辅助装置,具有良好的适配灵活性,其可调式去毛刺组件采用双向螺纹杆结构的调节杆,通过转动调节杆可同步驱动两个滑块沿滑槽同向或反向移动,精准调整底部磨筒的间距,能快速适配不同宽度规格的铜带,同时采用往复式的清理组件,大幅度提高对铜带的清理效果,提高成品清洁度与质量,本装置无需更换核心部件即可满足多样化生产需求,减少了设备更换时间和成本,提升了生产连续性,扩大了装置的适用范围,增强了在不同铜带加工场景中的实用性。

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Abstract

This utility model relates to the field of copper strip surface treatment technology and discloses a high-performance copper strip surface treatment auxiliary device, including a treatment box. The treatment box is a horizontally placed hollow cuboid structure with two opposite shaft ends and an opening at the top. The side wall of the treatment box is provided with a power chamber, including an adjustable deburring component, which is set at the top opening end of the treatment box. The four corners of the adjustable deburring component are connected to the top side of the treatment box through matching bolts. It also includes a cleaning component, which is set inside the treatment box. The cleaning component includes a first cleaning component, a second cleaning component, and a first motor. The first cleaning component and the second cleaning component have the same structure, and the first motor is correspondingly placed inside the power chamber. The output shaft end of the power chamber corresponds to the side wall of the first and second cleaning components. This copper strip surface treatment auxiliary device has good adaptability and flexibility, greatly improves the scope of application, and has a high-quality treatment effect.
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Description

Technical Field

[0001] This utility model relates to the field of copper strip surface treatment technology, specifically to a high-performance copper strip surface treatment auxiliary device. Background Technology

[0002] In the electronics, power, and communications industries, copper strips are widely used due to their excellent electrical conductivity, thermal conductivity, and machinability. The surface quality of copper strips directly affects their electrical conductivity, corrosion resistance, and subsequent processing accuracy. Therefore, surface treatment is a key step in copper strip production, requiring specialized auxiliary equipment to remove burrs, dust, and other impurities to ensure product quality.

[0003] However, traditional copper strip surface treatment devices have insufficient adaptability, making it difficult to flexibly adjust to adapt to copper strips of different widths and specifications. Furthermore, the movement mode of some cleaning components is singular, resulting in uneven deburring and impurity removal effects. The inconvenience of impurity collection also increases the difficulty of subsequent processing, failing to meet the fine production requirements of high-performance copper strips. Therefore, we propose a high-performance copper strip surface treatment auxiliary device. Utility Model Content

[0004] To address the shortcomings of existing technologies, this invention provides a high-performance copper strip surface treatment auxiliary device, which solves the aforementioned problems.

[0005] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a high-performance copper strip surface treatment auxiliary device, comprising:

[0006] The processing box is a horizontally placed hollow cuboid structure with two opposite axial ends and an opening at the top. The processing box has a power compartment on its side wall, which is a hollow rectangular frame structure with an opening on the side wall.

[0007] An adjustable deburring assembly is provided at the top opening of the processing box, and the four corners of the adjustable deburring assembly are connected to the top side of the processing box by adapter bolts.

[0008] A cleaning assembly is disposed inside the processing box. The cleaning assembly includes a first cleaning component, a second cleaning component, and a first motor. The first cleaning component and the second cleaning component have the same structure. The first cleaning component and the second cleaning component are axially symmetrically distributed inside the processing box. The first motor is correspondingly placed inside the power compartment. The output shaft end of the power compartment is correspondingly engaged with the side wall of the first cleaning component and the second cleaning component.

[0009] Preferably, the bottom two opposite sidewalls inside the processing box are provided with inclined blocks, and there is a gap between the bottoms of the two inclined blocks. The power compartment inside the sidewall of the processing box is provided with a connecting plate, which is welded to the sidewall of the processing box. The inner wall of the power compartment is provided with four axially symmetrical sliding holes at the top of the connecting plate, which penetrate the processing box.

[0010] Preferably, the adjustable deburring assembly includes a support plate, sliders, and an adjusting rod. The main body of the adjustable deburring assembly is the support plate, and the top of the support plate is provided with an adjusting rod. The adjusting rod has a bidirectional threaded rod structure. The support plate has two sliders that are symmetrically distributed inside, and the two sliders are threadedly connected to the two sections of the adjusting rod.

[0011] Preferably, the main body of the support plate is a rectangular plate structure, and the four corners of the support plate are connected to the two opposite sides of the top of the processing box by adapter bolts. The two opposite sides of the top of the support plate are provided with two mating holes that are symmetrically distributed. The mating holes are rotatably connected to the two shaft ends of the adjusting rod. The end face of the support plate is provided with two sliding grooves that are symmetrically distributed between the two mating holes.

[0012] Preferably, the slider is slidably connected to the slide groove, and a bushing is provided inside the top of the slider. The bushing is threadedly connected to the adjusting rod. A second motor is provided at the bottom of the slider. The second motor is placed inside the processing box, and a grinding cylinder is provided at the bottom output shaft end of the second motor.

[0013] Preferably, the motor is positioned at the bottom of the connecting plate and is fixedly connected to the connecting plate by an adapter bolt. The top output shaft of the motor is provided with a cam that passes through the connecting plate and has a reverse stepped cam structure.

[0014] Preferably, the main body of the cleaning component is a rectangular plate, and the bottom of the cleaning component is provided with a brush. Two slide rods are provided on one side of the cleaning component in an axially symmetrical manner. The slide rods are slidably connected to the slide holes. The shaft end of the slide rod set is provided with a top plate. The side wall of the top plate is in contact with the cam line. Two springs are provided on the side of the top plate corresponding to the slide rods. The shaft ends of the two springs are welded with mating plates. The mating plates are in contact with the inner wall of the power compartment. Two slide rods are provided on one side wall of the cleaning component away from the slide rods. The slide rods are slidably connected to the slide holes on the side wall of the treatment box away from the power compartment.

[0015] Compared with the prior art, this utility model provides a high-performance copper strip surface treatment auxiliary device, which has the following features:

[0016] Beneficial effects:

[0017] This high-performance copper strip surface treatment auxiliary device boasts excellent adaptability and flexibility. Its adjustable deburring component employs a bidirectional threaded rod structure for the adjusting rod. By rotating the adjusting rod, two sliders can be simultaneously driven to move in the same or opposite directions along the slide groove, precisely adjusting the spacing of the bottom grinding cylinder. This allows for rapid adaptation to copper strips of different widths. Simultaneously, the reciprocating cleaning component significantly improves the cleaning effect on the copper strip, enhancing the cleanliness and quality of the finished product. This device can meet diverse production needs without replacing core components, reducing equipment replacement time and costs, improving production continuity, expanding the device's applicability, and enhancing its practicality in various copper strip processing scenarios. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of the high-performance copper strip surface treatment auxiliary device of this utility model;

[0019] Figure 2 This is a cross-sectional schematic diagram of the high-performance copper strip surface treatment auxiliary device of this utility model;

[0020] Figure 3 This is a cross-sectional schematic diagram of the processing box of this utility model;

[0021] Figure 4 This is a schematic diagram of the adjustable deburring component of this utility model;

[0022] Figure 5 This is a schematic diagram of the cleaning component of this utility model;

[0023] Figure 6 This is a schematic diagram of a cleaning component of this utility model.

[0024] In the diagram: 1. Processing box; 2. Support plate; 3. Slider; 4. Adjusting rod; 5. Cleaning component one; 6. Cleaning component two; 7. Motor one; 8. Power chamber; 9. Connecting plate; 10. Sliding hole; 11. Inclined block; 12. Sliding groove; 13. Bushing; 14. Motor two; 15. Grinding cylinder; 16. Cam; 17. Brush; 18. Sliding rod one; 19. Top plate; 20. Spring; 21. Mating plate; 22. Sliding rod two; 23. Mating hole. Detailed Implementation

[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0026] Please see Figure 1-6 This utility model provides a technical solution;

[0027] A high-performance copper strip surface treatment auxiliary device, comprising:

[0028] The processing box 1 is a horizontally placed hollow cuboid structure with two opposite axial ends and an opening at the top. The processing box 1 is provided with a power compartment 8 on its side wall. The power compartment 8 is a hollow rectangular frame structure with an opening on the side wall.

[0029] An adjustable deburring assembly is located at the top opening of the processing box 1. The four corners of the adjustable deburring assembly are connected to the top side of the processing box 1 by adapter bolts.

[0030] The cleaning assembly is located inside the processing box 1. The cleaning assembly includes cleaning component 5, cleaning component 6, and motor 7. Cleaning component 5 and cleaning component 6 have the same structure and are symmetrically distributed inside the processing box 1. Motor 7 is located inside the power chamber 8. The output shaft end of the power chamber 8 is engaged with the side wall of cleaning component 5 and cleaning component 6.

[0031] Furthermore, the bottom of the processing box 1 is provided with two opposite side walls with inclined blocks 11. There is a gap between the bottom of the two inclined blocks 11. The power chamber 8 on the side wall of the processing box 1 is provided with a connecting plate 9. The connecting plate 9 is welded to the side wall of the processing box 1. The inner wall of the power chamber 8 is provided with four axially symmetrical sliding holes 10 at the top of the connecting plate 9. The sliding holes 10 penetrate the processing box 1. The copper strip to be processed passes through the interior of the processing box 1. Specifically, the copper strip to be processed is tightened and moved by the external winding equipment. The copper strip first passes through the adjustable deburring component and then through the cleaning component. The burrs and dust generated by deburring and cleaning are collected and stored in the gap between the two inclined blocks 11 at the bottom of the processing box for subsequent unified processing.

[0032] Furthermore, the adjustable deburring assembly includes a support plate 2, sliders 3, and an adjusting rod 4. The main body of the adjustable deburring assembly is the support plate 2, and the top of the support plate 2 is provided with an adjusting rod 4, which is a bidirectional threaded rod structure. Inside the support plate 2, there are two sliders 3 that are symmetrically distributed. The two sliders 3 are threadedly connected to the two sections of the adjusting rod 4. By rotating the adjusting rod 4, the two sliders 3 can be adjusted synchronously to move in the same or opposite directions. Therefore, the distance between the two grinding cylinders 15 at the bottom of the two sliders 3 can be adjusted to adapt to copper strip materials of different widths. It is flexible, reliable, and has a wide range of applications.

[0033] Furthermore, the main body of the support plate 2 is a rectangular plate structure, and the four corners of the support plate 2 are connected to the two opposite sides of the top of the processing box 1 by matching bolts. The two opposite sides of the top of the support plate 2 are provided with two symmetrically distributed mating holes 23, which are rotatably connected to the two shaft ends of the adjusting rod 4. The end face of the support plate 2 is provided with two symmetrically distributed sliding grooves 12 between the two mating holes 23. The support plate 2 plays a supporting role, the mating holes 23 prevent the adjusting rod 4 from moving axially, and the sliding grooves 12 ensure the smooth movement of the slider 3.

[0034] Furthermore, the slider 3 is slidably connected to the slide groove 12, and the top of the slider 3 is provided with a bushing 13, which is threadedly connected to the adjusting rod 4. The bottom of the slider 3 is provided with a second motor 14, which is placed inside the processing box 1. The bottom output shaft of the second motor 14 is provided with a grinding cylinder 15. The bushing 13 plays a transmission role, converting the rotation of the adjusting rod 4 into the axial movement of the slider 3. The grinding cylinder 15 performs deburring work on the side of the copper strip.

[0035] Furthermore, motor 7 is positioned at the bottom of connecting plate 9 and is fixedly connected to connecting plate 9 by adapter bolts. A cam 16 is provided at the top output shaft end of motor 7. Cam 16 passes through connecting plate 9 and has a reverse stepped cam structure. After cam 16 at the top of motor 7 rotates, its reverse stepped cam structure pushes cleaning component 5 and cleaning component 6 to move horizontally back and forth along sliding hole 10, thereby improving the dust removal and impurity removal effect of brush 17 on copper strip.

[0036] Furthermore, the main body of the cleaning component 5 is a rectangular plate, and the bottom of the cleaning component 5 is provided with a brush 17. The side of the cleaning component 5 is provided with two slide rods 18 distributed symmetrically on the axis. The slide rods 18 are slidably connected to the slide holes 10. The shaft end of the slide rods 18 is provided with a top plate 19. The side wall of the top plate 19 is in line contact with the cam 16. The top plate 19 is provided with two springs 20 on the side of the slide rods 18, and the shaft end of the two springs 20 is welded with a mating plate 21. The mating plate 21 is in contact with the inner wall of the power chamber 8. The side wall of the cleaning component 5 away from the slide rods 18 is provided with two slide rods 22. The slide rods 22 are slidably connected to the slide holes 10 on the side wall of the treatment box 1 away from the power chamber 8. The springs 20 are always in a compressed state, so that the cleaning component 5 has a reset effect, ensuring that the top plate 19 is always in contact with the cam 16.

[0037] Structural Description:

[0038] Processing box 1: Processing box 1 is the main load-bearing structure of the device. It is a horizontally placed hollow cuboid with openings at two opposite axial ends and the top. The interior contains the cleaning components, the side wall is equipped with a power chamber, and the gap between the inclined blocks at the bottom can be used to centrally store impurities.

[0039] Support plate 2: Support plate 2 is a rectangular plate and is the main body of the adjustable deburring component. The four corners are connected to the top of the processing box by bolts. It has mating holes and grooves, which serve to support and ensure the stable operation of the component.

[0040] Slider 3: Slider 3 slides in the groove of the support plate, the top bushing is threaded to the adjusting rod, and the bottom is equipped with motor 2, which can rotate and move with the adjusting rod to drive the grinding cylinder to adjust its position to adapt to different copper strips;

[0041] Adjusting rod 4: Adjusting rod 4 is a two-way threaded rod structure, installed in the mating hole of the support plate. When rotated, the two sliders move in the same or opposite directions through the threaded transmission, so as to adjust the gap between the grinding cylinders to adapt to copper strips of different widths.

[0042] Cleaning Part 1 5: Cleaning Part 1 5 is a rectangular plate with a brush at the bottom and slide rod 1 and slide rod 2 on the side. It is pushed by the cam to move back and forth along the slide hole, and the spring makes it return to its original position to clean the surface of the copper strip.

[0043] Cleaning component 2 6: Cleaning component 2 6 has the same structure as cleaning component 1 and is axially symmetrically distributed. The side slide rod cooperates with the slide hole and moves back and forth under the action of cam push and spring reset, which works with cleaning component 1 to improve the cleaning effect;

[0044] Motor 7: Motor 7 is fixed to the bottom of the power compartment connecting plate. The output shaft end is equipped with a cam. When working, the cam is driven to rotate. The cam contacts the top plate and pushes the cleaning part to move back and forth, providing power for cleaning.

[0045] Power compartment 8: Power compartment 8 is a hollow rectangular frame with an opening on the side wall. It is located on the side wall of the processing box and houses components such as motor 1 and connecting plate. It has sliding holes for the cleaning component slide rod to pass through, providing installation space for the components.

[0046] Connecting plate 9: Connecting plate 9 is welded inside the power compartment of the processing box to fix motor one. The top is for the cam to pass through, which supports motor one and ensures its stable operation, so that the cam can effectively transmit power.

[0047] Sliding holes 10: There are four sliding holes 10 distributed axially symmetrically on the inner wall of the power chamber, penetrating the processing box, and respectively slidingly engaging with the sliding rod one and sliding rod two of the cleaning part to ensure the smooth reciprocating movement of the cleaning part;

[0048] Inclined blocks 11: Inclined blocks 11 are located on both sides of the bottom of the processing box. A gap is left at the bottom of the two inclined blocks to guide the impurities generated during deburring and cleaning to the gap, which is convenient for subsequent unified collection and processing.

[0049] Slide groove 12: The slide groove 12 is symmetrically distributed between the two mating holes of the support plate and is slidably connected with the slider to restrict the movement direction of the slider and ensure that the slider moves smoothly and does not deviate under the drive of the adjusting rod.

[0050] Bushing 13: Bushing 13 is located inside the top of the slider and is threadedly connected to the adjusting rod. It converts the rotation of the adjusting rod into the axial movement of the slider, thus playing a transmission role and ensuring that the slider moves synchronously with the adjusting rod.

[0051] Motor 2 14: Motor 2 14 is installed at the bottom of the slider and placed in the processing box. The output shaft is connected to the grinding cylinder. When working, it drives the grinding cylinder to rotate and deburr the side of the copper strip, providing power for deburring.

[0052] Grinding cylinder 15: Grinding cylinder 15 is located at the bottom output shaft end of motor 2. It deburrs the side of the copper strip as motor 2 rotates. Its position is adjusted as the slider moves. The distance between the two grinding cylinders can be adjusted to accommodate copper strips of different widths.

[0053] Cam 16: Cam 16 is in the shape of a reverse stepped cam, installed on the output shaft end of the motor and passing through the connecting plate. When it rotates, it contacts the top plate of the cleaning part and pushes it to move. With the help of the spring, the cleaning part can achieve reciprocating motion.

[0054] Brush 17: Brush 17 is located at the bottom of cleaning component one and cleaning component two. As the cleaning components move back and forth, it contacts the surface of the copper strip and removes dust and impurities from the surface of the copper strip through friction, thereby improving the cleanliness of the copper strip surface.

[0055] Slide rod 18: Slide rod 18 is symmetrically arranged on one side of the cleaning part, and slides in conjunction with the sliding hole of the power chamber. One end is connected to the top plate and slides in the sliding hole as the cleaning part moves to ensure that the cleaning part moves smoothly.

[0056] Top plate 19: Top plate 19 is located at one end of the slide rod shaft. Its side wall is in contact with the cam line. It is driven by the rotation of the cam to move the slide rod, thereby moving the cleaning part. It is a key component for cam power transmission.

[0057] Spring 20: Spring 20 is located between the top plate and the mating plate and is always in a compressed state. When the cam rotates away from the top plate, the spring force pushes the top plate to reset, so that the cleaning part returns to the initial position to realize reciprocating motion.

[0058] Mating plate 21: Mating plate 21 is welded to the end of the spring shaft and fits against the inner wall of the power compartment, providing a support point for the spring so that the spring can generate a restoring force when compressed, ensuring that the top plate is always in contact with the cam.

[0059] Slide rod 22: Slide rod 22 is located on the side of the cleaning part away from the slide rod, and slides in cooperation with the sliding hole on the other side of the processing box. Together with slide rod 1, it enhances the stability of the cleaning part when it moves back and forth.

[0060] Fitting hole 23: Fitting holes 23 are provided on both sides of the top of the support plate and are symmetrically distributed. They are rotatably connected to the two shaft ends of the adjusting rod, restricting the axial movement of the adjusting rod and ensuring stable rotation of the adjusting rod to achieve transmission.

[0061] Working Principle: The high-performance copper strip surface treatment auxiliary device is correctly installed according to the diagram. Through the coordinated operation of its components, the copper strip surface is treated. The external winding equipment tightens and moves the copper strip to be treated, allowing it to first pass through the adjustable deburring assembly and then enter the cleaning assembly inside the treatment box 1. In the adjustable deburring assembly, the support plate 2 provides support. The rotating adjusting rod 4 is a two-way threaded rod structure, which converts rotation into movement of the slider 3 along the slide groove 12 via the bushing 13. Simultaneously, the distance between the grinding cylinders 15 driven by the second motor 14 at the bottom of the two sliders 3 is adjusted to accommodate copper strips of different widths. The second motor 14 drives the grinding... The cylinder 15 deburrs the side of the copper strip. Then, the motor 7 in the power chamber 8 drives the cam 16 to rotate. Because the cam 16 has a reverse stepped cam structure, it pushes the top plate 19 of the cleaning component 5 and the cleaning component 6, causing the slide rod 18 to move horizontally back and forth along the sliding hole 10. The brush 17 at the bottom of the cleaning component 5 and the cleaning component 6 removes dust and impurities from the surface of the copper strip. After the spring 20 is compressed, it returns to its original position to ensure that the top plate 19 is always in contact with the cam 16. The slide rod 22 enhances the stability of the cleaning component. The burrs and dust generated during the process are collected and stored in the gap between the inclined blocks 11 at the bottom of the processing box 1 for easy subsequent unified processing.

[0062] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A high-performance copper strip surface treatment auxiliary device, characterized in that, include: The processing box (1) is a horizontally placed hollow cuboid structure with two opposite axial ends and a top opening, and the processing box (1) is provided with a power compartment (8) on the side wall, which is a hollow rectangular frame structure with an opening on the side wall. An adjustable deburring assembly is provided at the top opening of the processing box (1), and the four corners of the adjustable deburring assembly are connected to the top side of the processing box (1) by adapter bolts. A cleaning assembly is disposed inside the processing box (1). The cleaning assembly includes a first cleaning component (5), a second cleaning component (6), and a first motor (7). The first cleaning component (5) and the second cleaning component (6) have the same structure. The first cleaning component (5) and the second cleaning component (6) are symmetrically distributed inside the processing box (1), and the first motor (7) is correspondingly placed inside the power chamber (8). The output shaft end of the power chamber (8) is correspondingly engaged with the side wall of the first cleaning component (5) and the second cleaning component (6). The motor (7) is positioned at the bottom of the connecting plate (9), and the motor (7) is fixedly connected to the connecting plate (9) by an adapter bolt. The top output shaft of the motor (7) is provided with a cam (16), which passes through the connecting plate (9) and has a reverse stepped cam structure.

2. The high-performance copper strip surface treatment auxiliary device according to claim 1, characterized in that, The processing box (1) has two opposite side walls at the bottom inside, with an inclined block (11) between the bottom of the two inclined blocks (11). The processing box (1) has a connecting plate (9) inside the power compartment (8) on the side wall. The connecting plate (9) is welded to the side wall of the processing box (1). The inner wall of the power compartment (8) has four axially symmetrical sliding holes (10) on the top of the connecting plate (9). The sliding holes (10) penetrate the processing box (1).

3. The high-performance copper strip surface treatment auxiliary device according to claim 1, characterized in that, The adjustable deburring assembly includes a support plate (2), a slider (3) and an adjusting rod (4). The main body of the adjustable deburring assembly is the support plate (2). The top of the support plate (2) is provided with an adjusting rod (4), and the adjusting rod (4) is a bidirectional threaded rod structure. The support plate (2) has two sliders (3) that are symmetrically distributed inside. The two sliders (3) are threadedly connected to the two sections of the adjusting rod (4).

4. The high-performance copper strip surface treatment auxiliary device according to claim 3, characterized in that, The main body of the support plate (2) is a rectangular plate structure, and the four corners of the support plate (2) are connected to the two opposite sides of the top of the processing box (1) by adapter bolts. The two opposite sides of the top of the support plate (2) are provided with two matching holes (23) that are symmetrically distributed. The matching holes (23) are connected to the two shaft ends of the adjusting rod (4) in a rotatable fit. The end face of the support plate (2) is provided with two sliding grooves (12) that are symmetrically distributed between the two matching holes (23).

5. The high-performance copper strip surface treatment auxiliary device according to claim 3, characterized in that, The slider (3) is slidably connected to the slide groove (12), and the top of the slider (3) is provided with a bushing (13), which is threadedly connected to the adjusting rod (4). The bottom of the slider (3) is provided with a second motor (14), which is placed inside the processing box (1). The bottom output shaft of the second motor (14) is provided with a grinding cylinder (15).

6. The high-performance copper strip surface treatment auxiliary device according to claim 1, characterized in that, The main body of the cleaning component 1 (5) is a rectangular plate, and the bottom of the cleaning component 1 (5) is provided with a brush (17). The side of the cleaning component 1 (5) is provided with two slide rods 1 (18) distributed symmetrically on the axis. The slide rods 1 (18) are slidably connected to the slide holes (10). The shaft ends of the two slide rods 1 (18) are provided with top plates (19). The side wall of the top plate (19) is in line contact with the cam (16). The top plate (19) is provided with two springs (20) on the side of the slide rods 1 (18). The shaft ends of the two springs (20) are welded with mating plates (21). The mating plates (21) are in contact with the inner wall of the power chamber (8). The side wall of the cleaning component 1 (5) away from the slide rods 1 (18) is provided with two slide rods 2 (22). The slide rods 2 (22) are slidably connected to the slide holes (10) on the side wall of the processing box (1) away from the power chamber (8).