Efficient aluminum profile oxidation electrophoresis device
Through the servo motor driving the filter box movement and adjustment screw design, the integrated operation of aluminum profile electrophoretic coating and anodizing is realized, solving the problems of low efficiency of traditional devices and complex manual operations, and improving the working efficiency and workpiece accommodation.
Patent Information
- Application Number
- CN202422500658.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-16
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-10-16
AI Technical Summary
Electrophoretic coating and anodizing of existing aluminum profiles require split operation, resulting in low working efficiency, and traditional devices require manual adjustment of bolts to occupy space, increasing the workload of staff.
The filter box is driven by a servo motor to move along the support rotary plate, and automatically extends out to place the workpiece. The adjustment screw is arranged above the filter box, reducing manual operation and increasing the number of workpieces.
The integrated operation of electrophoretic coating and anodization is realized, which reduces the workload of staff, improves work efficiency, and increases the number of workpieces that can be accommodated in the filter box.
Smart Images

Figure CN223176246U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of electrophoretic oxidation equipment, in particular to an efficient aluminum profile oxidation and electrophoresis device. Background Art
[0002] Aluminum alloy profiles are widely used non-ferrous metal structural materials in industry. During the production process, pigments, resins and other particles suspended in the electrophoretic solution migrate and deposit on the surface of the aluminum profiles through electrophoretic coating. After electrophoresis of the aluminum profiles, anodic oxidation processing needs to be carried out separately to improve the surface hardness and wear resistance. Therefore, electrophoretic coating and anodic oxidation need to be operated separately, reducing the work efficiency.
[0003] According to an electrophoretic coating and anodic oxidation integrated processing device disclosed in the authorized publication number CN216891308U, which includes a workbench, an electrophoretic tank, an oxidation tank and a control panel are installed on the upper part of the workbench, a rotating top plate is installed above the electrophoretic tank and the oxidation tank, two groups of collection boxes are fixedly installed on the lower part of the workbench, a motor is fixedly installed on the lower part of the workbench, and the output end of the motor penetrates through the lower part of the workbench. The output end of the motor is fixedly installed with an electric telescopic rod, and one end of the electric telescopic rod is fixedly connected with the lower part of the rotating top plate. Two groups of threaded through holes are opened on the upper part of the rotating top plate, and adjusting bolts penetrate through the interiors of the two groups of threaded through holes. One end of each of the two groups of adjusting bolts is fixedly installed with a bottom plate, and filter screen pipes are fixedly installed on the upper parts of the two bottom plates. The control panel is electrically connected with the motor and the electric telescopic rod through wires, which can make the electrophoretic coating and anodic oxidation operate integrally and improve the work efficiency. Among them, the staff needs to manually rotate the adjusting bolts to move the bottom plate and the filter screen pipe downward so that there is a space between the filter screen pipe and the rotating top plate to place the workpiece. After the workpiece is placed, the staff manually rotates the adjusting bolts again to reset the bottom plate and the filter screen pipe, increasing the workload of the staff. Moreover, the adjusting bolts need to extend into the filter screen pipe and occupy the space inside the filter screen pipe, thereby reducing the number of workpieces that the bottom plate can accommodate. Content of the Utility Model
[0004] In order to solve the above technical problems, the driving motor of the efficient aluminum profile oxidation and electrophoresis device provided by the utility model can drive the filter screen box to move upward along the supporting rotating plate, and the filter screen box automatically extends out of the supporting rotating plate so that the staff can place the workpiece, reducing the workload of the staff. Moreover, the adjusting screw is arranged above the filter screen box and does not need to extend into the filter screen box to occupy space, thereby increasing the number of workpieces that the filter screen box can accommodate.
[0005] An efficient aluminum profile oxidation electrophoresis device, comprising a machine table, an electrophoresis tank, an oxidation tank, a servo motor and a lifting cylinder. The electrophoresis tank and the oxidation tank are arranged on the top surface of the machine table. A rotating seat is rotatably connected to the central position of the machine table. The servo motor is arranged on the bottom surface of the machine table, and the output end of the servo motor is connected to the rotating seat. The lifting cylinder is arranged on the rotating seat, and a supporting rotating plate is arranged at the output end of the lifting cylinder. Two adjusting screws are rotatably connected to the top surface of the supporting rotating plate. Two filter boxes are slidably connected to the supporting rotating plate, and the two filter boxes are correspondingly threadedly connected to the two adjusting screws. Two driving motors are arranged on the middle part of the top surface of the supporting rotating plate in opposite directions, and the output ends of the two driving motors are correspondingly connected to the two adjusting screws.
[0006] Preferably, support partitions are arranged on the left and right sides of the rotating seat in the middle of the machine table, and a receiving partition is slidably connected to the support partition. A chute is arranged in the receiving partition. The support partition is inserted into the chute of the receiving partition, and the top surface of the support partition is connected to the top of the chute through a compression spring.
[0007] Preferably, a plurality of arc-shaped grooves are arranged on the top surface of the receiving partition, and support balls that can roll on the arc-shaped grooves are embedded in the arc-shaped grooves.
[0008] Preferably, a support slide rail is arranged on the bottom surface of the supporting rotating plate. The top surface of the filter box is an open structure. Sliding plates are arranged at the top of the front and rear sides of the filter box, and the filter box is slidably connected to the support slide rail through the sliding plates.
[0009] Preferably, support seats are arranged on the left and right sides of the top surface of the supporting rotating plate. One end of the adjusting screw is rotatably connected to the support seat, and the other end of the adjusting screw is connected to the output end of the driving motor.
[0010] Preferably, a through groove is arranged on the supporting rotating plate, and sliders passing through the through groove are arranged on the two sliding plates of the filter box. A cross plate is connected between the two sliders, and the cross plate is threadedly connected to the adjusting screw through a threaded through hole.
[0011] The beneficial effects of the present utility model are as follows: The efficient aluminum profile oxidation electrophoresis device cooperates with the machine table, the electrophoresis tank, the oxidation tank, the servo motor and the lifting cylinder, so that the driving motor can drive the filter box to move up and down on the supporting rotating plate, and the filter box can automatically extend from the supporting rotating plate for the staff to place workpieces, reducing the workload of the staff. Moreover, the adjusting screw is arranged above the filter box and does not need to penetrate into the filter box to occupy space, thereby increasing the number of workpieces that the filter box can accommodate. Description of the Drawings
[0012] Appendix [[ID=2,4]] Figure 1Structural schematic diagram of the present utility model;
[0013] Appendix Figure 2 Side view of the present utility model;
[0014] Appendix Figure 3 Top view of the present utility model;
[0015] Appendix Figure 4 Is Figure 1 Partial enlarged view of A in
[0016] In the figure: 1 machine table, 2 electrophoresis tank, 3 oxidation tank, 4 servo motor, 5 lifting cylinder, 6 rotating seat, 7 supporting rotating plate, 8 adjusting screw, 9 filter box, 10 driving motor, 11 supporting partition, 12 receiving partition, 13 sliding groove, 14 compression spring, 15 supporting ball, 16 supporting slide rail, 17 sliding plate, 18 supporting seat, 19 through groove, 20 slider, 21 cross plate. Specific implementation manner
[0017] The following combines the attached drawings and specific embodiments to further describe the present utility model, so as to more clearly understand the technical idea claimed by the present utility model.
[0018] As Figures 1 to 4 Shown, a high-efficiency aluminum profile oxidation electrophoresis device includes a machine table 1, an electrophoresis tank 2, an oxidation tank 3, a servo motor 4 and a lifting cylinder 5. The electrophoresis tank 2 and the oxidation tank 3 are arranged on the top surface of the machine table 1. A rotating seat 6 is rotatably connected to the center position of the machine table 1. The servo motor 4 is arranged on the bottom surface of the machine table 1, and the output end of the servo motor 4 is connected to the rotating seat 6. The lifting cylinder 5 is arranged on the rotating seat 6, and a supporting rotating plate 7 is arranged at the output end of the lifting cylinder 5. Two adjusting screws 8 are rotatably connected to the top surface of the supporting rotating plate 7. Two filter boxes 9 are slidably connected to the supporting rotating plate 7, and the two filter boxes 9 are correspondingly threadedly connected to the two adjusting screws 8. Two driving motors 10 are arranged on the middle part of the top surface of the supporting rotating plate 7 in opposite directions, and the output ends of the two driving motors 10 are correspondingly connected to the two adjusting screws 8.
[0019] The working principle of the high-efficiency aluminum profile oxidation electrophoresis device of the present utility model is realized by the mutual cooperation of the machine table 1, the electrophoresis tank 2, the oxidation tank 3, the servo motor 4 and the lifting cylinder 5. As Figures 1 to 4As shown in the figure, a driving motor 10 drives the adjusting screw rod 8 to rotate. The filter screen box 9 is threadedly connected to the adjusting screw rod 8, and the filter screen box 9 is slidably connected to the supporting rotating plate 7. Therefore, the adjusting screw rod 8 can drive the corresponding filter screen box 9 to move upward along the supporting rotating plate 7, and the filter screen box 9 automatically extends out from the supporting rotating plate 7. In this way, the staff can place the workpiece in a filter screen box 9. Subsequently, the driving motor drives the adjusting screw rod 8 to reverse, and the filter screen box 9 moves along the supporting rotating plate 7 to reset. Then, the lifting cylinder 5 drives the supporting rotating plate 7 to move downward, and the supporting rotating plate 7 drives the two filter screen boxes 9 to move downward. The filter screen box 9 containing the workpiece enters the electrophoresis tank 2 for electrophoresis processing. After the workpiece is processed, the lifting cylinder 5 drives the supporting rotating plate 7 to move upward to reset, and the filter screen box 9 and the workpiece leave the electrophoresis tank 2. And after the electrophoresis solution on the surface of the workpiece is drained, the servo motor 4 has the functions of metering and precise positioning. The servo motor 4 drives the lifting cylinder 5 and the supporting rotating plate 7 to rotate 180° through the rotating seat 6. The workpiece after electrophoresis processing moves above the oxidation tank 3. Another driving motor 10 drives the adjusting screw rod 8 to rotate, and the adjusting screw rod 8 drives another filter screen box 9 to extend out from the supporting rotating plate 7. The staff can place the workpiece again, and another driving motor 10 drives another filter screen box 9 to reset through the adjusting screw rod 8. The lifting cylinder 5 drives the two filter screen boxes 9 to move downward again. In this way, the workpiece after electrophoresis can be subjected to oxidation processing, so as to realize the integrated operation of electrophoretic coating and anodic oxidation. Compared with the traditional electrophoretic oxidation device, this high-efficiency aluminum profile oxidation electrophoretic device can reduce the workload of the staff, and the adjusting screw rod 8 is arranged above the filter screen box 9, without occupying space by penetrating into the filter screen box 9, thereby increasing the number of workpieces that the filter screen box 9 can accommodate.
[0020] Specifically, support partitions 11 are arranged on both the left and right sides of the rotating seat 6 in the middle of the machine table 1, and a receiving partition 12 is slidably connected to the support partitions 11. A chute 13 is arranged in the receiving partition 12. The support partition 11 is inserted into the chute 13 of the receiving partition 12, and the top surface of the support partition 11 is connected to the top of the chute 13 through a compression spring 14. Among them, a plurality of arc-shaped grooves are arranged on the top surface of the receiving partition 12, and support balls 15 that can roll on the arc-shaped grooves are embedded in the arc-shaped grooves. As Figures 1 to 4As shown, when the lifting cylinder 5 drives the supporting rotating plate 7 to move downward, the supporting rotating plate 7 can drive the storage partition plate 12 to compress the compression spring 14, and make the storage partition plate 12 move downward with the supporting rotating plate 7. The supporting partition plate 11 extends into the storage partition plate 12. It should be noted that the height of the supporting partition plate 12 is greater than the heights of both the electrophoresis pool 2 and the oxidation pool 3, so as to enable the driving motor 10 to contact the liquids in both the electrophoresis pool 2 and the oxidation pool 3. The supporting partition plate 11 and the storage partition plate 12 cooperate to block the liquids splashed by both the swimming pool 2 and the oxidation pool 3. When the lifting cylinder 5 drives the supporting rotating plate 7 to move upward, the storage partition plate 12 moves upward under the action of the compression spring 14 and remains in contact with the supporting rotating plate 7. When the servo motor 4 drives the supporting rotating plate 7 to rotate, the supporting balls 15 on the supporting partition plate 11 abut against the supporting rotating plate 7, which can reduce the friction between the supporting partition plate 11 and the supporting rotating plate 7.
[0021] Further, a supporting slide rail 16 is provided on the bottom surface of the supporting rotating plate 7. The top surface of the filter box 9 is an open structure. Sliding plates 17 are provided at the tops of the front and rear sides of the filter box 9, and the filter box 9 is slidably connected to the supporting slide rail 16 through the sliding plates 17. Among them, supporting seats 18 are provided on the left and right sides of the top surface of the supporting rotating plate 7. One end of the adjusting screw rod 8 is rotatably connected to the supporting seat 18, and the other end of the adjusting screw rod 8 is connected to the output end of the driving motor 10. Even further, a through groove 19 is provided on the supporting rotating plate 7, and sliding blocks 20 passing through the through groove 19 are provided on the two sliding plates 17 of the filter box 9. The two sliding blocks 20 are connected by a cross plate 21, and the cross plate 21 is threadedly connected to the adjusting screw rod 8 through a threaded through hole. As Figures 1 to 4 shown, when the driving motor 10 drives the adjusting screw rod 8 to rotate, the cross plate 21 moves along the adjusting screw rod 8. The cross plate 21 drives the two sliding blocks 20 to move along the through groove 19, and the two sliding blocks 20 drive the two sliding plates 17 to move along the supporting slide rail 16, so that the filter box 9 extends out along the supporting rotating plate 7, facilitating the staff to take and place workpieces.
[0022] The above are only specific embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. An efficient aluminum profile oxidation and electrophoresis device, characterized in that: It includes a machine platform, an electrophoresis tank, an oxidation tank, a servo motor and a lifting cylinder. The electrophoresis tank and the oxidation tank are arranged on the top surface of the machine platform. A rotating seat is rotatably connected to the central position of the machine platform. The servo motor is arranged on the bottom surface of the machine platform, and the output end of the servo motor is connected to the rotating seat. The lifting cylinder is arranged on the rotating seat, and a supporting rotating plate is arranged at the output end of the lifting cylinder. Two adjusting screws are rotatably connected to the top surface of the supporting rotating plate. Two filter screen boxes are slidably connected to the supporting rotating plate, and the two filter screen boxes are correspondingly threadedly connected to the two adjusting screws. Two driving motors are arranged on the middle part of the top surface of the supporting rotating plate in opposite directions, and the output ends of the two driving motors are correspondingly connected to the two adjusting screws.
2. The high-efficiency aluminum profile oxidation and electrophoresis device according to claim 1, characterized in that: Support partition plates are arranged on the left and right sides of the rotating seat in the middle part of the machine platform, and a receiving partition plate is slidably connected to the support partition plates. A chute is arranged in the receiving partition plate. The support partition plate is inserted into the chute of the receiving partition plate, and the top surface of the support partition plate is connected to the top of the chute through a compression spring.
3. An efficient aluminum profile anodic electrophoresis device according to claim 2, characterized in that: A plurality of arc-shaped grooves are arranged on the top surface of the receiving partition plate, and support balls that can roll on the arc-shaped grooves are embedded in the arc-shaped grooves.
4. An efficient aluminum profile anodic electrophoresis device according to claim 3, characterized in that: A support slide rail is arranged on the bottom surface of the supporting rotating plate. The top surface of the filter screen box is an open structure. Sliding plates are arranged at the top of the front and rear sides of the filter screen box, and the filter screen box is slidably connected to the support slide rail through the sliding plates.
5. An efficient aluminum profile anodic electrophoresis device according to claim 4, characterized in that: Support seats are arranged on the left and right sides of the top surface of the supporting rotating plate. One end of the adjusting screw is rotatably connected to the support seat, and the other end of the adjusting screw is connected to the output end of the driving motor.
6. The high-efficiency aluminum profile oxidation and electrophoresis device according to claim 5, wherein: A through groove is arranged on the supporting rotating plate, and sliding blocks passing through the through groove are arranged on the two sliding plates of the filter screen box. A cross plate is connected between the two sliding blocks, and the cross plate is threadedly connected to the adjusting screw through a threaded through hole.