A surface treatment device for high-performance aluminum-based copper-clad plate

By designing a high-performance surface treatment device for aluminum-based copper-clad laminates, a turbulent effect is created by using a limiting rod to drive the mesh frame to move in an alkaline degreasing solution, thus solving the problem of insufficient cleaning solution penetration and achieving efficient cleaning and convenient operation.

CN224372259UActive Publication Date: 2026-06-19JIAOZUO HECCHUANGDA ELECTRONIC MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAOZUO HECCHUANGDA ELECTRONIC MATERIALS CO LTD
Filing Date
2025-04-16
Publication Date
2026-06-19

AI Technical Summary

Technical Problem

In the surface degreasing process of high-performance aluminum-based copper clad laminates, the excessively high stacking density and tight bonding between the boards result in insufficient penetration of the cleaning solution. This necessitates manual turning of the boards to ensure uniform cleaning, which prolongs the process time and increases labor intensity.

Method used

Design a surface treatment device for high-performance aluminum-based copper-clad laminates. A limiting rod drives the mesh frame to make periodic movements in an alkaline degreasing solution, forming a turbulent effect. The device also utilizes the friction between the brush plate and the board for cleaning, avoiding manual turning.

Benefits of technology

It improves cleaning efficiency, eliminates the need for manual plate flipping, enhances cleaning results, and facilitates the replacement and maintenance of brush plates, adapting to different types of boards.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model belongs to the field of aluminum-based copper clad laminate processing technology, specifically a surface treatment device for high-performance aluminum-based copper clad laminates, including a liquid storage box; a first connecting block and a second connecting block are respectively fixed to the side wall of the liquid storage box; a first limiting rod is slidably connected to the side wall of the first connecting block; a second limiting rod is slidably connected to the side wall of the second connecting block; a reciprocating component is provided on the side wall of the second limiting rod; a mesh frame is provided between the first limiting rod and the second limiting rod; multiple sets of brush plates are provided inside the mesh frame; the first limiting rod drives the mesh frame to make periodic movements, causing the board to generate relative motion speed in the alkaline degreasing liquid. This dynamic treatment method can create a turbulence effect, eliminating the need for manual board flipping. When the reciprocating motion reaches a certain speed, the resulting acceleration change will cause the board to generate relative displacement with the mesh frame due to inertia. In this way, the board will rub against the brush plates, and the brush plates will clean the surface of the board.
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Description

Technical Field

[0001] This utility model relates to the field of aluminum-based copper clad laminate processing technology, specifically a surface treatment device for high-performance aluminum-based copper clad laminates. Background Technology

[0002] High-performance aluminum-based copper clad laminate is a metal-based copper clad laminate with a special heat dissipation structure. The surface treatment of high-performance aluminum-based copper clad laminate requires the thorough removal of oil stains and impurities from the surface of the aluminum substrate, which is usually achieved by soaking in an alkaline degreasing solution.

[0003] In the surface degreasing process of high-performance aluminum-based copper clad laminates, when the substrates are stacked vertically or horizontally in an alkaline degreasing solution container, insufficient penetration of the cleaning solution in the contact area may occur due to the excessively high stacking density and tight contact between the boards. In order to ensure cleaning uniformity, operators have to manually turn the boards over, and the position of the boards needs to be adjusted intermittently for each batch, which prolongs the process time and increases labor intensity. Therefore, a surface treatment device for high-performance aluminum-based copper clad laminates is proposed to address the above problems. Utility Model Content

[0004] To overcome the shortcomings of existing technologies, in the surface degreasing process of high-performance aluminum-based copper clad laminates, when the substrates are stacked vertically or horizontally in an alkaline degreasing solution container, the high stacking density and tight fit between the boards can lead to insufficient penetration of the cleaning solution in the contact area. To ensure cleaning uniformity, operators have to manually turn the boards over, requiring intermittent adjustments to the board positions for each batch, which prolongs the process time and increases labor intensity. This invention proposes a surface treatment device for high-performance aluminum-based copper clad laminates.

[0005] The technical solution adopted by this utility model to solve its technical problem is as follows: A surface treatment device for high-performance aluminum-based copper-clad laminates, comprising a liquid storage box; a first connecting block and a second connecting block are respectively fixed to the side walls of the liquid storage box; a first limiting rod is slidably connected to the side wall of the first connecting block; a second limiting rod is slidably connected to the side wall of the second connecting block; a reciprocating component is provided on the side wall of the first limiting rod; a mesh frame is provided between the first limiting rod and the second limiting rod; multiple sets of brush plates are provided inside the mesh frame. The first limiting rod drives the mesh frame to make periodic movements, causing the board to generate relative motion speed in the alkaline degreasing liquid. This dynamic treatment method can create a turbulence effect, improve cleaning efficiency, and eliminate the need for manual board flipping. When the reciprocating motion reaches a specific speed, the resulting acceleration change will cause the board to undergo relative displacement with the mesh frame due to inertia. This causes friction between the board and the brush plates, which clean the surface of the board, improving the cleaning effect.

[0006] Preferably, the reciprocating component includes a motor; a slit-shaped frame is fixedly connected to the side wall of the first limiting rod; the motor is fixedly connected to the side wall of the liquid storage box via a fixing plate; a rotating shaft is fixedly connected to the output end of the motor; an arc-shaped block is fixedly connected to one end of the rotating shaft; a trigger block is fixedly connected to the side wall of the arc-shaped block, and the trigger block extends into the slit-shaped frame to achieve the effect of reciprocating movement of the mesh frame within the liquid storage box.

[0007] Preferably, the inner side walls of the mesh frame are provided with multiple sets of slots; the side walls of the brush plate are fixedly connected with blocks; the blocks match the slots to prevent the plates from sticking together, and the slots and blocks form a plug-in block structure, which can be quickly replaced on the mesh frame, providing convenience for the maintenance of the brush plate.

[0008] Preferably, a limiting block is fixedly connected to one adjacent end of the first limiting rod and the second limiting rod; the side wall of the limiting block is provided with a T-shaped groove; a T-shaped block is placed in the T-shaped groove; the T-shaped block is fixedly connected to the side wall of the mesh frame, which facilitates the mesh frame to be detached and installed in the liquid storage box, and makes it convenient for operators to install mesh frames of different specifications in the liquid storage box to process different types of plates.

[0009] Preferably, the inner bottom wall of the mesh frame is fixed with multiple sets of arc-shaped plates, which reduces the friction between the plate and the mesh frame and improves the plate's inertial drive within the reciprocating mesh frame.

[0010] Preferably, a pair of handles are fixed to the side wall of the mesh frame, allowing the operator to install and remove the mesh frame from the liquid storage box more stably.

[0011] The advantages of this utility model are:

[0012] 1. The first limiting rod drives the mesh frame to make periodic movements, causing the board to generate relative motion speed in the alkaline degreasing solution. This dynamic treatment method can create a turbulence effect, improve cleaning efficiency, and eliminate the need for manual board flipping. When the reciprocating motion reaches a certain speed, the resulting acceleration change will cause the board to move relative to the mesh frame due to inertia. This will cause the board to rub against the brush plate, and the brush plate will clean the surface of the board, improving the cleaning effect.

[0013] 2. To avoid the plates from sticking together, and to form a plug-in block structure between the slot and the block, the plates can be quickly replaced on the frame, providing convenience for the maintenance of the brush plate. It is easy to detach and install the frame in the liquid storage box, and it is convenient for operators to install different specifications of frame in the liquid storage box to process different types of plates. Attached Figure Description

[0014] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0015] Figure 1 This is a three-dimensional structural diagram of the utility model;

[0016] Figure 2 for Figure 1 Enlarged view of point A in the middle;

[0017] Figure 3 for Figure 1 Enlarged view at point B in the middle;

[0018] Figure 4 This is a partial sectional view of the utility model.

[0019] Figure 5 This is a partial structural diagram of the utility model.

[0020] In the diagram: 1. Liquid reservoir; 2. First connecting block; 3. Second connecting block; 4. First limiting rod; 5. Second limiting rod; 6. Mesh frame; 7. Brush plate; 8. Motor; 9. Orifice frame; 10. Rotating shaft; 11. Arc-shaped block; 12. Trigger block; 13. Slot; 14. Slot; 15. Limiting block; 16. T-slot; 17. T-shaped block; 18. Arc-shaped plate; 19. Handle. Detailed Implementation

[0021] 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 scope of protection of the present utility model.

[0022] Please see Figure 1-5As shown, a surface treatment device for high-performance aluminum-based copper-clad laminates includes a liquid storage box 1; a first connecting block 2 and a second connecting block 3 are respectively fixed to the side walls of the liquid storage box 1; a first limiting rod 4 is slidably connected to the side wall of the first connecting block 2; a second limiting rod 5 is slidably connected to the side wall of the second connecting block 3; a reciprocating component is provided on the side wall of the first limiting rod 4; a mesh frame 6 is provided between the first limiting rod 4 and the second limiting rod 5; multiple sets of brush plates 7 are provided inside the mesh frame 6; during operation, the operator vertically places the board into the mesh frame 6, positioning the board between the brush plates 7, and then pours alkaline degreasing solution into the liquid storage box 1, which is then reciprocated by the reciprocating component. The function of the copy is to cause the first limiting rod 4 to reciprocate on the first connecting block 2, thereby driving the mesh frame 6 to move. In turn, the mesh frame 6 drives the plate to be immersed in the alkaline degreasing solution. The periodic movement of the mesh frame 6 driven by the first limiting rod 4 causes the plate to generate relative motion speed in the alkaline degreasing solution. This dynamic treatment method can create a turbulence effect, improve cleaning efficiency, and eliminate the need for manual plate flipping. When the reciprocating motion reaches a certain speed, the resulting acceleration change will cause the plate to generate relative displacement with the mesh frame 6 due to inertia. In this way, the plate will rub against the brush plate 7, and the brush plate 7 will clean the surface of the plate, improving the cleaning effect.

[0023] The reciprocating component includes a motor 8; a spherical frame 9 is fixedly connected to the side wall of the first limiting rod 4; the motor 8 is fixedly connected to the side wall of the liquid storage box 1 via a fixing plate; a rotating shaft 10 is fixedly connected to the output end of the motor 8; an arc-shaped block 11 is fixedly connected to one end of the rotating shaft 10; a trigger block 12 is fixedly connected to the side wall of the arc-shaped block 11, and the trigger block 12 extends into the spherical frame 9; during operation, the rotation of the output end of the motor 8 drives the rotating shaft 10 to rotate, thereby driving the arc-shaped block 11 to rotate. At this time, the trigger block 12 on the arc-shaped block 11 will drive the spherical frame 9 to move. Every time the arc-shaped block 11 drives the trigger block 12 to rotate one revolution, it will drive the spherical frame 9 to reciprocate once, thereby driving the components on the first limiting rod 4 to reciprocate, realizing the effect of the mesh frame 6 reciprocating within the liquid storage box 1.

[0024] Multiple sets of slots 13 are provided on both sides of the inner sidewall of the mesh frame 6; and slots 14 are fixedly connected to both sides of the brush plate 7; the slots 14 match the slots 13; during operation, the slots 14 on the brush plate 7 are located in the slots 13 of the mesh frame 6, allowing the operator to flexibly arrange the brush plates 7 in the mesh frame 6, avoiding the plates from sticking together. The slots 13 and the slots 14 form a plug-in slot structure, which can be quickly replaced on the mesh frame 6, providing convenience for the maintenance of the brush plates 7.

[0025] Each of the first limiting rod 4 and the second limiting rod 5 has a limiting block 15 fixedly attached to one of its adjacent ends; the side wall of the limiting block 15 is provided with a T-shaped groove 16; a T-shaped block 17 is placed in the T-shaped groove 16; the T-shaped block 17 is fixedly attached to the side wall of the mesh frame 6; during operation, the mesh frame 6 moves up and down in the liquid storage box 1, which allows the T-shaped block 17 on the mesh frame 6 to be installed and removed in the T-shaped groove 16 of the limiting block 15, making it convenient for the mesh frame 6 to be detached and installed in the liquid storage box 1, and making it convenient for operators to install mesh frames 6 of different specifications in the liquid storage box 1 to process different types of plates.

[0026] The inner bottom wall of the mesh frame 6 is fixed with multiple sets of arc plates 18. During operation, the arc plates 18 at the bottom of the mesh frame 6 can reduce the contact area between the plate and the bottom of the mesh frame 6, thereby reducing the friction between the plate and the mesh frame 6 and improving the plate's inertial drive within the reciprocating mesh frame 6.

[0027] A pair of handles 19 are fixed to the side wall of the mesh frame 6; during operation, the operator can more stably install and remove the mesh frame 6 from the liquid storage box 1 by using the handles 19 on the mesh frame 6.

[0028] Working principle: The reciprocating component includes a motor 8; a U-shaped frame 9 is fixedly connected to the side wall of the first limiting rod 4; the motor 8 is fixedly connected to the side wall of the liquid storage box 1 via a fixing plate; a rotating shaft 10 is fixedly connected to the output end of the motor 8; an arc-shaped block 11 is fixedly connected to one end of the rotating shaft 10; a trigger block 12 is fixedly connected to the side wall of the arc-shaped block 11, and the trigger block 12 extends into the U-shaped frame 9; during operation, the rotation of the output end of the motor 8 drives the rotating shaft 10 to rotate, thereby driving the arc-shaped block 11 to rotate, and at this time the trigger block on the arc-shaped block 11... The trigger block 12 will move the orifice frame 9. Each time the arc block 11 rotates the trigger block 12 once, it will cause the orifice frame 9 to reciprocate once. Thus, the orifice frame 9 will cause the components on the first limit rod 4 to reciprocate, achieving the effect of the mesh frame 6 reciprocating within the liquid storage box 1. The rotation of the output end of the motor 8 drives the rotating shaft 10 to rotate, which in turn drives the arc block 11 to rotate. At this time, the trigger block 12 on the arc block 11 will move the orifice frame 9. Each time the arc block 11 rotates the trigger block 12 once, it will cause the orifice frame 9 to reciprocate once. The reciprocating motion causes the orifice frame 9 to reciprocate, driving the components on the first limit rod 4 to move back and forth, thus achieving the effect of the mesh frame 6 reciprocating within the liquid storage box 1. Because the locking block 14 on the brush plate 7 is positioned within the locking groove 13 of the mesh frame 6, the operator can flexibly arrange the brush plates 7 within the mesh frame 6, preventing the plates from sticking together. Furthermore, the locking groove 13 and the locking block 14 form a pluggable locking block structure, allowing for quick replacement on the mesh frame 6, providing convenience for the maintenance of the brush plates 7. The up-and-down movement of the mesh frame 6 within the liquid storage box 1 causes the T-shaped blocks on the mesh frame 6 to... 17. The wire mesh frame 6 is installed and removed within the T-groove 16 of the limiting block 15, facilitating its detachment and installation within the liquid storage box 1. This allows operators to install wire mesh frames 6 of different specifications within the liquid storage box 1 to process different types of materials. The curved plate 18 at the bottom of the wire mesh frame 6 reduces the contact area between the material and the bottom of the wire mesh frame 6, thereby reducing friction and improving the material's inertial drive within the reciprocating wire mesh frame 6. The handle 19 on the wire mesh frame 6 allows operators to more stably install and remove the wire mesh frame 6 from the liquid storage box 1.

[0029] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0030] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.

Claims

1. A surface treatment device for high-performance aluminum-based copper-clad laminates, characterized in that: The system includes a liquid storage box (1); a first connecting block (2) and a second connecting block (3) are fixedly connected to the side walls of the liquid storage box (1); a first limiting rod (4) is slidably connected to the side wall of the first connecting block (2); a second limiting rod (5) is slidably connected to the side wall of the second connecting block (3); a reciprocating component is provided on the side wall of the first limiting rod (4); a mesh frame (6) is provided between the first limiting rod (4) and the second limiting rod (5); multiple sets of brush plates (7) are provided inside the mesh frame (6). The reciprocating component includes a motor (8); a mouth-shaped frame (9) is fixedly connected to the side wall of the first limiting rod (4); the motor (8) is fixedly connected to the side wall of the liquid storage box (1) through a fixing plate; a rotating shaft (10) is fixedly connected to the output end of the motor (8); an arc-shaped block (11) is fixedly connected to one end of the rotating shaft (10); a trigger block (12) is fixedly connected to the side wall of the arc-shaped block (11), and the trigger block (12) extends into the mouth-shaped frame (9); The inner side walls of the wire frame (6) are provided with multiple sets of slots (13); the side walls of the brush plate (7) are fixed with blocks (14); the blocks (14) match the slots (13).

2. The surface treatment device for high-performance aluminum-based copper-clad laminates according to claim 1, characterized in that: The first limiting rod (4) and the second limiting rod (5) are each fixedly connected to a limiting block (15); the side wall of the limiting block (15) is provided with a T-shaped groove (16); a T-shaped block (17) is placed in the T-shaped groove (16); the T-shaped block (17) is fixedly connected to the side wall of the wire frame (6).

3. The surface treatment device for high-performance aluminum-based copper-clad laminates according to claim 2, characterized in that: The inner bottom wall of the wire frame (6) is fixed with multiple sets of arc plates (18).

4. The surface treatment device for high-performance aluminum-based copper-clad laminates according to claim 3, characterized in that: A pair of handles (19) are fixed to the side wall of the frame (6).