Stainless steel surface anticorrosion treatment device
Patent Information
- Application Number
- CN202521006640.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-05-21
AI Technical Summary
[0004]为了解决喷涂完成后,需要人工将板体进行翻面,对另一面进行喷涂处理的问题,本申请提供不锈钢表面防腐处理装置
[0022]1. This application uses a drive motor to drive an active helical gear to rotate. When the active helical gear rotates, it can drive a passive helical gear to rotate. The passive helical gear drives a rotating shaft to rotate. The rotating shaft drives a connecting plate and an adsorption component to rotate. The adsorption component drives the plate to rotate, causing the upper and lower surfaces of the plate to flip. Then, the dual-axis motor reverses to move the plate downward. When the plate moves downward, it falls onto a second conveyor belt. The other surface of the plate is then sprayed through a second spray pipe. The mechanical flipping improves the overall processing efficiency.
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Figure CN224657062U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of stainless steel processing, and in particular to apparatus for stainless steel surface anti-corrosion treatment. Background Technology
[0002] Stainless steel is widely used in steel, chemical, medical device, aerospace and other fields due to its good corrosion resistance, heat resistance and indentation resistance. After the initial processing of stainless steel, a stainless steel surface anti-corrosion treatment device is usually used to improve the corrosion resistance of stainless steel, so that the stainless steel surface is protected from corrosion and wear, extending its service life and making it more durable.
[0003] Currently, when performing anti-corrosion spraying on stainless steel, the stainless steel sheet is usually placed on a spraying table for spraying. After spraying, the sheet needs to be manually flipped over for spraying on the other side. This method is quite cumbersome. In addition, after the stainless steel sheet is placed on the spraying table for spraying, it still needs to be manually moved, which is not conducive to improving the overall processing efficiency. Utility Model Content
[0004] To address the issue of manually flipping the plate over after spraying and spraying the other side, this application provides a stainless steel surface anti-corrosion treatment device.
[0005] The stainless steel surface anti-corrosion treatment device provided in this application adopts the following technical solution:
[0006] The device includes a chassis, with a first conveyor belt and a second conveyor belt on the upper part of the chassis. A first spray pipe and a second spray pipe are installed on the sides of the first and second conveyor belts on the chassis. A fixing plate is installed in the middle of the inner side of the chassis. Limiting posts are installed at both ends of the fixing plate. A lifting plate is movably installed on the limiting posts. A rotating shaft is rotatably installed on the lifting plate. A connecting plate is installed on the rotating shaft. An adsorption component is installed on the connecting plate.
[0007] By adopting the above technical solution, the rotating shaft drives the connecting plate and the adsorption component to rotate, and the adsorption component drives the plate to rotate, causing the upper and lower surfaces of the plate to flip. Then, the dual-axis motor reverses to move the plate downward. When the plate moves downward, it falls onto the second conveyor belt, the adsorption component closes, and the other surface of the plate is sprayed through the second spray pipe to complete the anti-corrosion treatment of the upper and lower surfaces of the plate.
[0008] Preferably, a top plate is installed at the upper end of the limiting post, a passive sprocket is rotatably installed on the inner side of the top plate, limiting plates are installed at both ends of the fixed plate, and a rotating rod is rotatably installed on the inner side of the limiting plate.
[0009] By adopting the above technical solution, the rotating rod drives the drive sprockets at both ends to rotate, and the drive sprockets pass through the chain...
[0010] The bar drives the passive sprocket to rotate.
[0011] Preferably, a drive sprocket is installed at both ends of the rotating rod, and a chain is provided on the side of the drive sprocket for transmission. The drive sprocket is connected to the driven sprocket through the chain.
[0012] By adopting the above technical solution, the driving sprocket drives the passive sprocket to rotate through the chain. At this time, the lifting plate on the chain rises, and the lifting plate drives the rotating shaft and the connecting plate to move upward.
[0013] Preferably, a dual-axis motor is connected to the middle of the rotating rod, the output end of the dual-axis motor is connected to the middle of the rotating rod, and the dual-axis motor is connected to the fixed plate.
[0014] By adopting the above technical solution, a dual-axis motor drives a rotating rod to rotate, and the rotating rod drives the drive sprockets at both ends to rotate.
[0015] Preferably, the lifting plate is connected to the middle of the chain, and there are two adsorption elements located between the first and second conveyor belts.
[0016] By adopting the above technical solution, the rotating shaft drives the connecting plate and the adsorption component to rotate, and the adsorption component drives the plate to rotate, which facilitates the flipping of the upper and lower surfaces of the plate.
[0017] Preferably, a passive helical gear is installed at one end of the rotating shaft, and an active helical gear is rotatably installed on the lifting plate, with the active helical gear and the passive helical gear meshing together.
[0018] By adopting the above technical solution, the active helical gear can drive the passive helical gear to rotate when it rotates, and the passive helical gear drives the rotating shaft to rotate.
[0019] Preferably, a drive motor is connected to the middle of the active helical gear, the output end of the drive motor is connected to the active helical gear, and the drive motor is connected to the lifting plate.
[0020] By adopting the above technical solution, the drive motor drives the active helical gear to rotate, and the rotation of the active helical gear can drive the passive helical gear to rotate.
[0021] In summary, this application includes at least one of the following beneficial technical effects:
[0022] 1. This application uses a drive motor to drive an active helical gear to rotate. When the active helical gear rotates, it can drive a passive helical gear to rotate. The passive helical gear drives a rotating shaft to rotate. The rotating shaft drives a connecting plate and an adsorption component to rotate. The adsorption component drives the plate to rotate, causing the upper and lower surfaces of the plate to flip. Then, the dual-axis motor reverses to move the plate downward. When the plate moves downward, it falls onto a second conveyor belt. The other surface of the plate is then sprayed through a second spray pipe. The mechanical flipping improves the overall processing efficiency.
[0023] 2. In this application, the upper surface of the board is sprayed through the first spray pipe at the top. After the spraying is completed, the first conveyor belt moves the board and the board gradually moves to the adsorption member between the first and second conveyor belts. The lower surface of the board is adsorbed by the adsorption member, which can fix the board and facilitate adjustment. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of the stainless steel surface anti-corrosion treatment device according to an embodiment of this application;
[0025] Figure 2 This is a schematic diagram illustrating the internal assembly structure of the embodiments of this application;
[0026] Figure 3 This is a schematic diagram illustrating the upper assembly structure of the fixing plate, which is the main feature of this application embodiment;
[0027] Figure 4 This is a schematic diagram illustrating the enlarged structure of part A, which is the main embodiment of this application.
[0028] Reference numerals: 1. Chassis; 2. First conveyor belt; 3. Second conveyor belt; 4. First spray pipe;
[0029] 5. Second spray pipe; 6. Fixing plate; 7. Limiting post; 8. Top plate; 9. Limiting plate; 10. Rotating rod; 11. Driving sprocket; 12. Chain; 13. Passive sprocket; 14. Lifting plate; 15. Rotating shaft; 16. Passive helical gear; 17. Driving helical gear; 18. Drive motor; 19. Connecting plate; 20. Adsorption component; 21. Dual-axis motor. Detailed Implementation
[0030] The following is in conjunction with the appendix Figures 1-4 This application will be described in further detail.
[0031] This application discloses a stainless steel surface anti-corrosion treatment device, including a housing 1. A first conveyor belt 2 and a second conveyor belt 3 are arranged on the upper part of the housing 1. A first spray pipe 4 and a second spray pipe 5 are installed on the sides of the first conveyor belt 2 and the second conveyor belt 3 on the housing 1. A fixing plate 6 is installed in the middle of the inner side of the housing 1. Limiting posts 7 are installed at both ends of the fixing plate 6. A lifting plate 14 is movably installed on the limiting posts 7. A rotating shaft 15 is rotatably installed on the lifting plate 14. A connecting plate 19 is installed on the rotating shaft 15. An adsorption component 20 is installed on the connecting plate 19. The rotating shaft 15 drives the connecting plate 19 and the adsorption component 20 to rotate. The adsorption component 20 drives the plate to rotate, causing the upper and lower surfaces of the plate to flip. Then, the dual-axis motor 21 reverses, causing the plate to move down. When the plate moves down, it falls onto the second conveyor belt 3. The adsorption component 20 closes, and the other surface of the plate is sprayed through the second spray pipe 5.
[0032] Please refer to Figures 1 to 3 A top plate 8 is installed on the upper end of the limiting post 7. A passive sprocket 13 is rotatably installed on the inner side of the top plate 8. Limiting plates 9 are installed at both ends of the fixed plate 6. A rotating rod 10 is rotatably installed on the inner side of the limiting plate 9. The rotating rod 10 is driven to rotate by the dual-shaft motor 21. The rotating rod 10 drives the driving sprockets 11 at both ends to rotate. The driving sprockets 11 drive the passive sprockets 13 to rotate through the chain 12.
[0033] Please refer to Figure 2 and Figure 3 The rotating rod 10 has drive sprockets 11 installed at both ends, and a chain 12 is provided on the side of the drive sprockets 11 for transmission. The drive sprockets 11 are connected to the driven sprockets 13 through the chain 12. A dual-axis motor 21 is connected to the middle of the rotating rod 10, and the output end of the dual-axis motor 21 is connected to the middle of the rotating rod 10 for transmission.
[0034] The dual-axis motor 21 is connected to the fixed plate 21, and the lifting plate 14 is connected to the middle of the chain 12. There are two suction components 20, which are located between the first transmission belt 2 and the second transmission belt 3. The rotating rod 10 drives the driving sprockets 11 at both ends to rotate. The driving sprockets 11 drive the driven sprockets 13 to rotate through the chain 12. At this time, the lifting plate 14 on the chain 12 rises, and the lifting plate 14 drives the rotating shaft 15 and the connecting plate 19 to move upward.
[0035] The connecting plate 19 moves the adsorption component 20 upward, and at this time the adsorption component 20 moves the plate upward.
[0036] Please refer to Figure 3 and Figure 4A passive helical gear 16 is installed at one end of the rotating shaft 15, and an active helical gear 17 is rotatably installed on the lifting plate 14. The active helical gear 17 and the passive helical gear 16 are meshed together. A drive motor 18 is connected to the middle of the active helical gear 17. The output end of the drive motor 18 is connected to the active helical gear 17. The drive motor 18 is connected to the lifting plate 14. The drive motor 18 drives the active helical gear 17 to rotate. When the active helical gear 17 rotates, it can drive the passive helical gear 16 to rotate. The passive helical gear 16 drives the rotating shaft 15 to rotate. The rotating shaft 15 drives the connecting plate 19 and the adsorption component 20 to rotate. The adsorption component 20 drives the plate to rotate, causing the upper and lower surfaces of the plate to flip.
[0037] The implementation principle of the stainless steel surface anti-corrosion treatment device in this application embodiment is as follows: First, the plate is placed on the first conveyor belt 2, and the upper surface of the plate is sprayed through the first spray pipe 4 at the top. After the spraying is completed, the first conveyor belt 2 moves the plate, and the plate gradually moves to the adsorption member 20 between the first conveyor belt 2 and the second conveyor belt 3. The adsorption member 20 adsorbs the lower surface of the plate. This adsorption device is existing technology and will not be described in detail here. Then, the dual-axis motor 21 is started, which drives the rotating rod 10 to rotate. The rotating rod 10 drives the active sprockets 11 at both ends to rotate. The active sprockets 11 drive the passive sprockets 13 to rotate through the chain 12. At this time, the lifting plate 14 on the chain 12 rises, and the lifting plate 14 drives the rotating shaft 15 and The connecting plate 19 moves upward, causing the adsorption component 20 to move upward as well. At this time, the adsorption component 20 moves the plate upward. When the plate reaches the top, the upward movement stops, and the drive motor 18 is started. The drive motor 18 drives the active helical gear 17 to rotate. When the active helical gear 17 rotates, it drives the passive helical gear 16 to rotate. The passive helical gear 16 drives the rotating shaft 15 to rotate. The rotating shaft 15 drives the connecting plate 19 and the adsorption component 20 to rotate. The adsorption component 20 drives the plate to rotate, causing the upper and lower surfaces of the plate to flip. Then, the dual-axis motor 21 reverses, causing the plate to move downward. When the plate moves downward, it falls onto the second conveyor belt 3. The adsorption component 20 closes, and the other surface of the plate is sprayed through the second spray pipe 5. After the spraying is completed, the plate is removed through the second conveyor belt 3.
[0038] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A stainless steel surface anti-corrosion treatment device, characterized in that: Includes a chassis (1), the upper part of which is provided with a first conveyor belt (2) and a second conveyor belt (3). A first spray pipe (4) and a second spray pipe (5) are installed on the sides of the first conveyor belt (2) and the second conveyor belt (3) on the chassis (1). A fixing plate (6) is installed in the middle of the inner side of the chassis (1). Limiting posts (7) are installed at both ends of the fixing plate (6). A lifting plate (14) is movably installed on the limiting posts (7). A rotating shaft (15) is rotatably installed on the lifting plate (14). A connecting plate (19) is installed on the rotating shaft (15). An adsorption component (20) is installed on the connecting plate (19).
2. The stainless steel surface anti-corrosion treatment device according to claim 1, characterized in that: The upper end of the limiting post (7) is equipped with a top plate (8), and a passive sprocket (13) is rotatably installed on the inner side of the top plate (8). Limiting plates (9) are installed at both ends of the fixed plate (6), and a rotating rod (10) is rotatably installed on the inner side of the limiting plate (9).
3. The stainless steel surface anti-corrosion treatment device according to claim 2, characterized in that: The rotating rod (10) is equipped with a drive sprocket (11) at both ends. The drive sprocket (11) is connected to the side of the drive sprocket (12) by a chain (12). The drive sprocket (11) is connected to the driven sprocket (13) by the chain (12).
4. The stainless steel surface anti-corrosion treatment device according to claim 3, characterized in that: A dual-axis motor (21) is connected to the middle of the rotating rod (10). The output end of the dual-axis motor (21) is connected to the middle of the rotating rod (10) for transmission. The dual-axis motor (21) is connected to the fixed plate (6).
5. The stainless steel surface anti-corrosion treatment device according to claim 4, characterized in that: The lifting plate (14) is connected to the middle of the chain (12), and there are two adsorption elements (20), which are located between the first conveyor belt (2) and the second conveyor belt (3).
6. The stainless steel surface anti-corrosion treatment device according to claim 1, characterized in that: A passive helical gear (16) is installed at one end of the rotating shaft (15), and an active helical gear (17) is rotatably installed on the lifting plate (14). The active helical gear (17) and the passive helical gear (16) are meshed together.
7. The stainless steel surface anti-corrosion treatment device according to claim 6, characterized in that: The drive motor (18) is connected to the middle of the active helical gear (17). The output end of the drive motor (18) is connected to the active helical gear (17) in a transmission connection. The drive motor (18) is connected to the lifting plate (14).