An anodizing mechanism for processing aluminum oxide plate

By designing an anodizing mechanism for aluminum plate processing that adapts to fixing aluminum plates of different sizes and circulating electrolyte for cooling, the problem of existing equipment being unable to adapt to aluminum plates of different sizes and rapid electrolyte heating has been solved, achieving convenient fixing and efficient production.

CN224313689UActive Publication Date: 2026-06-02HENAN XINBA ALUMINUM CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HENAN XINBA ALUMINUM CO LTD
Filing Date
2025-06-12
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Existing anodizing equipment cannot adapt to aluminum plates of different sizes, is inconvenient to install and disassemble, and the electrolyte heats up quickly, reducing production efficiency.

Method used

An anodizing mechanism for processing alumina plates was designed, comprising a base plate, an electrolytic cell, a cathode plate, a hydraulic cylinder, a lifting plate, a fixing plate, an electric push rod, a conductive clamp, a power supply device, a sealing assembly, a lifting device, and a circulating cooling device. The lifting device and the electric push rod enable the fixing and disassembly of the aluminum plate, facilitating the adaptable fixing of aluminum plates of different sizes, and the circulating cooling device cools the electrolyte.

Benefits of technology

It enables convenient fixing and disassembly of aluminum plates of different sizes, improving production efficiency, and ensures stable electrolyte temperature through circulating cooling, thereby enhancing production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the technical field of alumina plate processing, and in particular to an anodizing mechanism for alumina plate processing. This device not only facilitates the fixing and disassembly of aluminum plates of different sizes, but also allows for the circulating cooling of the electrolyte in the electrolytic cell, ensuring production efficiency. It includes a base plate, an electrolytic cell, two sets of cathode plates, a first hydraulic cylinder, a lifting plate, multiple sets of fixing plates, multiple sets of electric push rods, multiple sets of conductive clamps, a power supply device, a sealing assembly, a lifting device, and a circulating cooling device. The electrolytic cell and power supply device are both installed on the top of the base plate. The two sets of cathode plates are installed on the front and rear sides of the bottom of the electrolytic cell, respectively. The two sets of cathode plates are connected to the negative terminal of the power supply device via wires. The lifting device is installed on the left and right ends of the electrolytic cell. The sealing assembly is connected to the lifting device. The positive terminal of the power supply device is connected to the multiple sets of conductive clamps via wires. The circulating cooling device is installed on the left end of the electrolytic cell.
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Description

Technical Field

[0001] This utility model relates to the technical field of alumina plate processing, and in particular to an anodizing mechanism for alumina plate processing. Background Technology

[0002] Anodized aluminum sheet is a type of sheet material made from aluminum as the base material, with an aluminum oxide film formed on its surface through a surface treatment process. This surface treatment not only enhances the aesthetics of the aluminum sheet but also greatly improves its physical properties and chemical stability.

[0003] Anodizing is an electrolytic process used to increase the thickness and hardness of the surface of aluminum and its alloys, forming a protective aluminum oxide film. This process not only improves the material's corrosion resistance and wear resistance but also gives it a decorative appearance.

[0004] However, existing anodizing equipment suffers from a single suspension structure, making it unable to adapt to aluminum plates of different sizes and specifications. Installation and disassembly are inconvenient, and the electrolyte heats up quickly during long-term operation, reducing production efficiency. Utility Model Content

[0005] To solve the above-mentioned technical problems, this utility model provides an anodizing mechanism for processing alumina plates, which not only facilitates the fixing and disassembly of aluminum plates of different sizes, but also allows for the circulation and cooling of the electrolyte in the electrolytic cell, thus ensuring production efficiency.

[0006] This utility model discloses an anodizing mechanism for processing alumina plates, comprising a base plate, an electrolytic cell, two sets of cathode plates, a first hydraulic cylinder, a lifting plate, multiple sets of fixed plates, multiple sets of electric push rods, multiple sets of conductive clamps, a power supply device, a sealing assembly, a lifting device, and a circulating cooling device. The electrolytic cell and power supply device are both mounted on the top of the base plate. The two sets of cathode plates are mounted on the front and rear sides of the bottom of the electrolytic cell, respectively, and are connected to the negative terminal of the power supply device via wires. The lifting device is mounted on the left and right ends of the electrolytic cell. The sealing assembly is connected to the lifting device and covers the top of the electrolytic cell. The first hydraulic cylinder is mounted on the top of the sealing assembly, and its output end passes through the sealing assembly and connects to the top of the lifting plate. Multiple sets of fixed plates are symmetrically mounted on the bottom of the lifting plate. Multiple sets of electric push rods are mounted on the outer ends of every two corresponding fixed plates, and their output ends pass through the fixed plates and connect to the conductive clamps. The positive terminal of the power supply device is connected to the conductive clamps via wires. The circulating cooling device is mounted on the left end of the electrolytic cell.

[0007] Preferably, the sealing assembly is configured as a sealing cover and an exhaust assembly. The sealing cover is connected to the lifting device. The sealing cover is installed on the top of the electrolytic cell. The first hydraulic cylinder is installed on the top of the sealing cover. The output end of the first hydraulic cylinder passes through the sealing cover and is connected to the top of the lifting plate. The exhaust assembly is installed on the sealing cover.

[0008] Preferably, the circulating cooling device includes a pump, a condenser, a liquid guide bend, and a filter. The filter is installed on the lower left side of the electrolytic cell and is connected to the electrolytic cell. The pump and condenser are installed on the left side of the electrolytic cell. The pump input is connected to the filter, the pump output is connected to the condenser input, the condenser output is connected to the liquid guide bend input, and the liquid guide bend output passes through the upper left side of the electrolytic cell and is connected to the electrolytic cell.

[0009] Preferably, the lifting device includes four sets of support plates, four sets of second hydraulic cylinders, and four sets of connecting plates. The four sets of support plates are respectively installed on the upper front and upper rear sides of the left and right ends of the electrolytic cell. The four sets of second hydraulic cylinders are respectively installed on the top of the four sets of support plates. The four sets of connecting plates are respectively installed on the upper front and rear sides of the left and right ends of the sealing cover. The output ends of the four sets of second hydraulic cylinders are connected to the four sets of connecting plates.

[0010] Preferably, the exhaust assembly consists of an exhaust pipe and an exhaust valve. The exhaust pipe is connected to a sealing cover, the exhaust valve is installed on the exhaust pipe, and the exhaust pipe output end is connected to the exhaust gas treatment system.

[0011] Preferably, it also includes four sets of casters, which are respectively installed at the four corners of the bottom of the base plate.

[0012] Preferably, the electrolytic cell is made of corrosion-resistant material and has an anti-corrosion coating inside.

[0013] Preferably, the filtration device consists of a filter box, a filter screen, and a liquid guide pipe. The filter box is installed on the lower left side of the electrolytic cell. The pump input end is connected to the top of the filter box. The filter screen is installed inside the filter box. The output end of the liquid guide pipe passes through the left end of the electrolytic cell and is connected to the right end of the filter box. The input end of the liquid guide pipe is connected to the electrolytic cell.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: by setting up this device, it is not only convenient to fix aluminum plates of different sizes and easy to disassemble and assemble, but also to circulate and cool the electrolyte in the electrolytic cell, thus ensuring its production efficiency. Attached Figure Description

[0015] Figure 1 This is a first-view structural schematic diagram of the present invention;

[0016] Figure 2 This is a second-view structural schematic diagram of the present invention;

[0017] Figure 3 yes Figure 1 A magnified structural diagram of A in the middle;

[0018] Figure 4 yes Figure 1 A magnified structural diagram of B in the diagram;

[0019] The following are labels in the attached diagram: 1. Base plate; 2. Electrolytic cell; 3. Cathode plate; 4. First hydraulic cylinder; 5. Lifting plate; 6. Fixing plate; 7. Electric push rod; 8. Conductive clamp; 9. Sealing cover; 10. Pump; 11. Condenser; 12. Liquid guide bend; 13. Support plate; 14. Second hydraulic cylinder; 15. Connecting plate; 16. Exhaust pipe; 17. Exhaust valve; 18. Caster wheel; 19. Power supply unit; 20. Filter box; 21. Filter screen; 22. Liquid guide pipe. Detailed Implementation

[0020] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0021] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0022] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0023] like Figures 1 to 4As shown, the present invention discloses an anodizing mechanism for processing alumina plates, comprising a base plate 1, an electrolytic cell 2, two sets of cathode plates 3, a first hydraulic cylinder 4, a lifting plate 5, multiple sets of fixed plates 6, multiple sets of electric push rods 7, multiple sets of conductive clamps 8, a power supply device 19, a sealing assembly, a lifting device, and a circulating cooling device. The electrolytic cell 2 and the power supply device 19 are both mounted on the top of the base plate 1. The two sets of cathode plates 3 are mounted on the front and rear sides of the bottom end of the electrolytic cell 2, respectively. The two sets of cathode plates 3 are connected to the negative terminal of the power supply device 19 via wires. The lifting device is mounted on the left and right ends of the electrolytic cell 2. The sealing assembly is connected to the lifting device. The sealing assembly is installed on the top of the electrolytic cell 2. The first hydraulic cylinder 4 is installed on the top of the sealing assembly. The output end of the first hydraulic cylinder 4 passes through the sealing assembly and is connected to the top of the lifting plate 5. Multiple sets of fixed plates 6 are symmetrically installed at the bottom of the lifting plate 5. Multiple sets of electric push rods 7 are installed on the outer ends of each pair of corresponding fixed plates 6. The output ends of the multiple sets of electric push rods 7 pass through the multiple sets of fixed plates 6 and are connected to the multiple sets of conductive clamps 8. The positive terminal of the power supply device 19 is connected to the multiple sets of conductive clamps 8 through a wire. The circulating cooling device is installed at the left end of the electrolytic cell 2.

[0024] The sealing assembly is raised by a lifting device, and then multiple sets of aluminum plates are placed between each pair of conductive clamps 8. Multiple sets of electric push rods 7 are then activated, causing the conductive clamps 8 to clamp and fix the aluminum plates. The lifting device is then activated, causing the sealing assembly to be installed on top of the electrolytic cell 2. The aluminum plates are then immersed in the electrolyte within the electrolytic cell 2. The power supply device 19 is then activated, and through the action of the conductive clamps 8 and two cathode plates 3, an oxide film is formed on the aluminum plates. The circulating cooling device is then activated, circulating and cooling the electrolyte within the electrolytic cell 2. This equipment not only facilitates the fixing and disassembly of aluminum plates of different sizes but also allows for the circulating cooling of the electrolyte within the electrolytic cell 2, ensuring production efficiency.

[0025] As a preferred embodiment of the above, the sealing assembly is configured as a sealing cover 9 and an exhaust assembly. The sealing cover 9 is connected to the lifting device. The sealing cover 9 is installed on the top of the electrolytic cell 2. The first hydraulic cylinder 4 is installed on the top of the sealing cover 9. The output end of the first hydraulic cylinder 4 passes through the sealing cover 9 and is connected to the top of the lifting plate 5. The exhaust assembly is installed on the sealing cover 9.

[0026] By setting the sealing cover 9 and the exhaust assembly, the electrolytic cell 2 can be sealed, effectively preventing acid mist leakage and ensuring the safety of operators.

[0027] As a preferred embodiment of the above, the circulating cooling device includes a pump 10, a condenser 11, a liquid guide bend 12, and a filter device. The filter device is installed on the lower left side of the electrolytic cell 2 and is connected to the electrolytic cell 2. The pump 10 and the condenser 11 are installed on the left side of the electrolytic cell 2. The input end of the pump 10 is connected to the filter device, the output end of the pump 10 is connected to the input end of the condenser 11, the output end of the condenser 11 is connected to the input end of the liquid guide bend 12, and the output end of the liquid guide bend 12 passes through the upper left side of the electrolytic cell 2 and is connected to the electrolytic cell 2.

[0028] By setting up a pump 10, a condenser 11, a liquid guide bend 12, and a filter device, the electrolyte in the electrolytic cell 2 is filtered by the filter device and then pumped into the condenser 11 for cooling. The cooled electrolyte is then guided back into the electrolytic cell 2 through the liquid guide bend 12, thereby circulating and cooling the electrolyte in the electrolytic cell 2 and ensuring the anodizing efficiency of the aluminum plate.

[0029] As a preferred embodiment of the above, the lifting device includes four sets of support plates 13, four sets of second hydraulic cylinders 14, and four sets of connecting plates 15. The four sets of support plates 13 are respectively installed on the upper front side and upper rear side of the left and right ends of the electrolytic cell 2. The four sets of second hydraulic cylinders 14 are respectively installed on the top of the four sets of support plates 13. The four sets of connecting plates 15 are respectively installed on the upper front side and lower rear side of the left and right ends of the sealing cover 9. The output ends of the four sets of second hydraulic cylinders 14 are connected to the four sets of connecting plates 15.

[0030] By setting up a support plate 13, a second hydraulic cylinder 14, and a connecting plate 15, and by opening four sets of second hydraulic cylinders 14, the four sets of second hydraulic cylinders 14 drive the sealing cover 9 to rise and fall through four sets of connecting plates 15, which facilitates the disassembly and assembly of the aluminum plate.

[0031] As a preferred embodiment of the above, the exhaust assembly is configured as an exhaust pipe 16 and an exhaust valve 17. The exhaust pipe 16 is connected to the sealing cover 9, the exhaust valve 17 is installed on the exhaust pipe 16, and the output end of the exhaust pipe 16 is connected to the exhaust gas treatment system.

[0032] Acid mist is generated during the anodizing of aluminum plates. By setting up an exhaust pipe 16 and an exhaust valve 17, the acid mist can be easily treated.

[0033] As a preferred embodiment of the above embodiment, it also includes four sets of universal wheels 18, which are respectively installed at the four corners of the bottom end of the base plate 1;

[0034] By setting up casters 18, the base plate 1 can be moved as a whole, improving its flexibility.

[0035] As a preferred embodiment of the above, the electrolytic cell 2 is made of a corrosion-resistant material and has an anti-corrosion coating inside;

[0036] This can extend the service life of electrolytic cell 2.

[0037] As a preferred embodiment of the above, the filtration device is configured as a filter box 20, a filter screen 21 and a liquid guide pipe 22. The filter box 20 is installed on the lower left side of the electrolytic cell 2. The input end of the pump 10 is connected to the top of the filter box 20. The filter screen 21 is installed inside the filter box 20. The output end of the liquid guide pipe 22 passes through the left end of the electrolytic cell 2 and is connected to the right end of the filter box 20. The input end of the liquid guide pipe 22 is connected to the electrolytic cell 2.

[0038] By setting up a filter box 20, a filter screen 21, and a liquid guide pipe 22, the electrolyte is introduced into the filter box 20 through the liquid guide pipe 22, filtered by the filter screen 21, and then introduced into the condenser 11 for cooling by the pump 10. After that, it is guided back into the electrolytic cell 2 through the liquid guide bend pipe 12, which facilitates the filtration of impurities in the electrolyte.

[0039] This utility model discloses an anodizing mechanism for processing alumina plates. During operation, firstly, four sets of second hydraulic cylinders 14 are opened. These cylinders, via four sets of connecting plates 15, cause the sealing cover 9 to rise. Then, multiple aluminum plates are placed between each pair of conductive clamping plates 8. Next, multiple sets of electric push rods 7 are opened, causing the conductive clamping plates 8 to clamp and fix the aluminum plates. Finally, the four sets of second hydraulic cylinders 14 are opened again, causing the sealing cover 9 to be installed on the conductive clamping plates 8 via the four connecting plates 15. At the top of the electrolytic cell 2, multiple aluminum plates are immersed in the electrolyte inside the electrolytic cell 2. Then, the power supply device 19 is turned on. The power supply device 19 forms an oxide film on the aluminum plates through the action of multiple sets of conductive clamps 8 and two sets of cathode plates 3. The pump 10 is turned on, and the electrolyte in the electrolytic cell 2 is introduced into the filter box 20 through the liquid guide pipe 22. After being filtered by the filter screen 21, it is introduced into the condenser 11 through the pump 10 for cooling. The cooled electrolyte is then guided back into the electrolytic cell 2 through the liquid guide bend pipe 12, thereby circulating and cooling the electrolyte in the electrolytic cell 2.

[0040] The anodizing mechanism for processing alumina plates of this utility model has common mechanical installation, connection and setting methods, and can be implemented as long as it can achieve its beneficial effect. The cathode plate 3, first hydraulic cylinder 4, electric push rod 7, pump 10, condenser 11, second hydraulic cylinder 14 and power supply device 19 of the anodizing mechanism for processing alumina plates of this utility model are purchased from the market. Technical personnel in this industry only need to install and operate it according to the accompanying instruction manual.

[0041] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. An anodizing mechanism for processing alumina plates, characterized in that, The system includes a base plate (1), an electrolytic cell (2), two sets of cathode plates (3), a first hydraulic cylinder (4), a lifting plate (5), multiple sets of fixed plates (6), multiple sets of electric push rods (7), multiple sets of conductive clamps (8), a power supply device (19), a sealing assembly, a lifting device, and a circulating cooling device. The electrolytic cell (2) and the power supply device (19) are both installed at the top of the base plate (1). The two sets of cathode plates (3) are installed on the front and rear sides of the bottom end of the electrolytic cell (2). The two sets of cathode plates (3) are connected to the negative terminal of the power supply device (19) through wires. The lifting device is installed at the left and right ends of the electrolytic cell (2). The sealing assembly is connected to the lifting device. The sealing assembly is installed on the top of the electrolytic cell (2). The first hydraulic cylinder (4) is installed on the top of the sealing assembly. The output end of the first hydraulic cylinder (4) passes through the sealing assembly and is connected to the top of the lifting plate (5). Multiple sets of fixed plates (6) are symmetrically installed at the bottom of the lifting plate (5). Multiple sets of electric push rods (7) are installed on the outer ends of each pair of corresponding fixed plates (6). The output ends of the multiple sets of electric push rods (7) pass through the multiple sets of fixed plates (6) and are connected to the multiple sets of conductive clamps (8). The positive terminal of the power supply device (19) is connected to the multiple sets of conductive clamps (8) through a wire. The circulating cooling device is installed on the left end of the electrolytic cell (2).

2. The anodizing mechanism for processing alumina plates as described in claim 1, characterized in that, The sealing assembly is configured as a sealing cover (9) and an exhaust assembly. The sealing cover (9) is connected to the lifting device. The sealing cover (9) is installed on the top of the electrolytic cell (2). The first hydraulic cylinder (4) is installed on the top of the sealing cover (9). The output end of the first hydraulic cylinder (4) passes through the sealing cover (9) and is connected to the top of the lifting plate (5). The exhaust assembly is installed on the sealing cover (9).

3. The anodizing mechanism for processing alumina plates as described in claim 1, characterized in that, The circulating cooling device includes a pump (10), a condenser (11), a liquid guide bend (12), and a filter. The filter is installed on the lower left side of the electrolytic cell (2) and is connected to the electrolytic cell (2). The pump (10) and the condenser (11) are installed on the left side of the electrolytic cell (2). The input end of the pump (10) is connected to the filter, the output end of the pump (10) is connected to the input end of the condenser (11), the output end of the condenser (11) is connected to the input end of the liquid guide bend (12), and the output end of the liquid guide bend (12) passes through the upper left side of the electrolytic cell (2) and is connected to the electrolytic cell (2).

4. The anodizing mechanism for processing alumina plates as described in claim 1, characterized in that, The lifting device includes four sets of support plates (13), four sets of second hydraulic cylinders (14) and four sets of connecting plates (15). The four sets of support plates (13) are respectively installed on the upper front and upper rear sides of the left and right ends of the electrolytic cell (2). The four sets of second hydraulic cylinders (14) are respectively installed on the top of the four sets of support plates (13). The four sets of connecting plates (15) are respectively installed on the upper front and lower rear sides of the left and right ends of the sealing cover (9). The output ends of the four sets of second hydraulic cylinders (14) are connected to the four sets of connecting plates (15).

5. The anodizing mechanism for processing alumina plates as described in claim 2, characterized in that, The exhaust assembly consists of an exhaust pipe (16) and an exhaust valve (17). The exhaust pipe (16) is connected to the sealing cover (9), and the exhaust valve (17) is installed on the exhaust pipe (16). The output end of the exhaust pipe (16) is connected to the exhaust gas treatment system.

6. The anodizing mechanism for processing alumina plates as described in claim 1, characterized in that, It also includes four sets of casters (18), which are installed at the four corners of the bottom of the base plate (1).

7. The anodizing mechanism for processing alumina plates as described in claim 1, characterized in that, The electrolytic cell (2) is made of corrosion-resistant material and has an anti-corrosion coating inside.

8. The anodizing mechanism for processing alumina plates as described in claim 3, characterized in that, The filtration device consists of a filter box (20), a filter screen (21), and a liquid guide pipe (22). The filter box (20) is installed on the lower left side of the electrolytic cell (2). The input end of the pump (10) is connected to the top of the filter box (20). The filter screen (21) is installed inside the filter box (20). The output end of the liquid guide pipe (22) passes through the left end of the electrolytic cell (2) and is connected to the right end of the filter box (20). The input end of the liquid guide pipe (22) is connected to the electrolytic cell (2).