Aluminum Profile Oxidation Equipment and Its Usage Method

By designing aluminum profile oxidation equipment, using clamping components, blow-drying components and rotating components, the problem of cumbersome operation of aluminum profiles in the electrolytic tank and insufficient contact with the electrolyte is solved, and more efficient oxidation treatment and simplified operation process is achieved.

CN115305545BActive Publication Date: 2025-06-10ZHEJIANG SELF-STRONG ALUMINUM CO LTD
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Patent Information

Application Number
CN202210857366.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-07-20
Publication Date
2025-06-10
Estimated Expiration
2042-07-20

AI Technical Summary

Technical Problem

The access operation of aluminum profiles in the electrolytic cell is complicated and the contact with the electrolyte is insufficient, resulting in poor oxidation effect.

Method used

An aluminum profile oxidation device is designed, including an electrolytic cell, a clamping assembly, a blow drying assembly and a rotating assembly. The stability and efficiency of the oxidation process are improved by the automatic clamping limit of the clamping assembly, the jet drying of the blow-drying assembly and the full electrolyte contact of the rotating assembly.

Benefits of technology

The installation and disassembly of aluminum profiles is simplified, processing efficiency is improved, the oxidation effect of aluminum profiles is enhanced, the air-drying time is reduced, and the working efficiency is improved.

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Abstract

The present invention discloses an aluminum profile oxidation device and its usage method, belonging to the technical field of aluminum profile oxidation. It includes an electrolytic cell. A first rack is fixedly connected to the top of the electrolytic cell. A transmission gear is meshed with the top of the first rack. Both sides of the transmission gear are rotationally connected with connecting brackets through rotating shafts. A driving motor is fixedly arranged on one side of the connecting bracket. One end of the output shaft of the driving motor is fixedly connected to one end of the rotating shaft. In the present invention, by setting a clamping assembly, under the action of gravity, the aluminum profile drives the placement plate to move downward. The placement plate drives the second gear to rotate through a double-sided rack. The second gear drives the clamping block to clamp and limit the aluminum profile through a connecting rod, improving the stability during the oxidation process of the aluminum profile. The automatic clamping and limiting of the aluminum profile by the clamping block is realized through the gravity of the aluminum profile, simplifying the installation and removal processes during the oxidation process of the aluminum profile and improving the processing efficiency.
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Description

Technical Field

[0001] The present invention belongs to the technical field of aluminum profile oxidation, and particularly relates to an aluminum profile oxidation device and a using method thereof. Background Art

[0002] Aluminum profiles are a type of non-ferrous metal structural material widely used in industry. With the development of technology, aluminum profiles are widely used in different fields, such as aerospace, automobiles, and machinery manufacturing, etc., which leads to different requirements for aluminum alloy materials, such as high strength, good toughness, good machining performance, high temperature resistance, and corrosion resistance, etc. In order to improve the corrosion resistance, surface hardness, wear resistance and other properties of aluminum alloys, it is often necessary to oxidize the aluminum profiles to produce a dense oxide layer on their surfaces to improve the corrosion resistance.

[0003] However, in the actual processing process, the access operations of aluminum profiles in the electrolytic cell are rather cumbersome, which is likely to affect the processing efficiency. At the same time, the aluminum profiles are mostly stationary in the electrolytic cell, and the contact between the aluminum profiles and the electrolyte in the electrolytic cell is not sufficient, resulting in poor oxidation effect. Summary of the Invention

[0004] The purpose of the present invention is to propose an aluminum profile oxidation device and a using method thereof in order to solve the problems that the access operations of aluminum profiles in the electrolytic cell are rather cumbersome and the contact between the aluminum profiles and the electrolyte in the electrolytic cell is not sufficient.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] An aluminum profile oxidation device includes an electrolytic cell. A first rack is fixedly connected to the top of the electrolytic cell. A transmission gear is meshed with the top of the first rack. Both sides of the transmission gear are rotatably connected with connecting brackets through rotating shafts. A driving motor is fixedly provided on one side of the connecting bracket. One end of the output shaft of the driving motor is fixedly connected to one end of the rotating shaft. A top plate is fixedly connected to the bottom of the connecting bracket. Two grooves are formed in the top of the top plate. A limiting component is arranged in the grooves. Connecting plates are fixedly connected to both sides of the bottom of the top plate. A blowing component is arranged in the connecting plates. A bottom plate is fixedly connected between the bottoms of the connecting plates. A cleaning brush is fixedly connected to the bottom of the bottom plate. Two groups of clamping components are arranged on the top of the bottom plate. A rotating component is arranged at the bottom of the clamping component;

[0007] The clamping component includes a fixed block. Two support plates are fixedly connected to both sides of the top of the fixed block. A second gear is rotatably connected between the two support plates through a rotating shaft. A connecting rod is clamped on the outer surface of the rotating shaft. A clamping block is fixedly connected to the top of the connecting rod. A double-sided rack is meshed with one side of the second gear. A placing block is fixedly connected to the top of the double-sided rack. A groove is formed in the top of the fixed block. The double-sided rack is slidably connected in the groove.

[0008] As a further description of the above technical solution:

[0009] A second telescopic rod is fixedly connected to the bottom of the double-sided rack, the bottom of the second telescopic rod is fixedly connected to the bottom of the inner wall of the groove, a second spring is sleeved on the outer surface of the second telescopic rod, and both ends of the second spring are fixedly connected to the bottom of the double-sided rack and the bottom of the inner wall of the groove respectively.

[0010] As a further description of the above technical solution:

[0011] The limiting component includes a plurality of sliding blocks, sliding grooves are formed in the four surrounding sides of the groove body, the sliding blocks are slidably connected in the sliding grooves, and balls are embedded at one end of the sliding blocks away from the bottom of the inner wall of the sliding grooves.

[0012] As a further description of the above technical solution:

[0013] One end of the sliding block away from the ball is fixedly connected to a first telescopic rod, the other end of the first telescopic rod away from the sliding block is fixedly connected to the bottom of the inner wall of the sliding groove, a first spring is sleeved on the outer surface of the first telescopic rod, and both ends of the first spring are fixedly connected to one end of the sliding block and the bottom of the inner wall of the sliding groove respectively.

[0014] As a further description of the above technical solution:

[0015] The rotating component includes a second connecting shaft, a first cavity is formed inside the bottom plate, the second connecting shaft is rotatably connected in the first cavity through a bearing, and the second connecting shaft extends to the outside of the first cavity and is fixedly connected to the fixed block. A worm gear is clamped on the outer surface of the second connecting shaft, a worm is meshed with one side of the worm gear, and the worm is rotatably connected in the first cavity through a first connecting shaft.

[0016] As a further description of the above technical solution:

[0017] Both ends of the first connecting shaft extend to the outside of the first cavity and are fixedly connected to a first gear, tooth grooves are formed on both sides of the inner wall of the electrolytic cell, and the first gear is rotatably connected in the tooth grooves.

[0018] As a further description of the above technical solution:

[0019] The air-drying component includes a cam, a second cavity is formed inside the connecting plate, the cam is rotatably connected in the second cavity through a rotating shaft, and the rotating shaft extends to the outside of the second cavity and is fixedly connected to a third gear. A rebound airbag is attached to the top of the cam, one end of the rebound airbag away from the cam is fixedly connected to one side of the inner wall of the second cavity, a connecting pipe is fixedly connected to one end of the rebound airbag, the connecting pipe is embedded in the connecting plate, and a plurality of spray pipes are fixedly connected to one side of the connecting pipe, and the spray pipes are embedded in the connecting plate.

[0020] As a further description of the above technical solution:

[0021] The bottom of the third gear meshes with a second rack, and the second rack is fixedly connected to both sides of the inner wall of the electrolytic cell.

[0022] As a further description of the above technical solution:

[0023] Support pads are fixedly connected to the four sides of the bottom of the electrolytic cell. The bottom of the inner wall of the electrolytic cell extends upward from the bottom, and an impurity inlet is provided at the bottom of the inner wall of the electrolytic cell. A collection box is slidably connected to one side of the electrolytic cell, and the collection box is located directly below the impurity inlet.

[0024] The usage method of aluminum profile oxidation specifically includes the following steps:

[0025] S1. The staff passes the aluminum profile through the tank body. The first spring and the telescopic rod drive the sliding block to slide in the chute. The sliding block drives the ball to fit with the aluminum profile and plays a certain limiting role on the aluminum profile.

[0026] S2. After the aluminum profile is safely inserted into the tank body, the aluminum profile drives the placement plate to move downward under the action of gravity. The placement plate drives the double-sided rack to move downward. The double-sided rack drives the second gear to rotate. The second gear drives the connecting rod to rotate around the rotating shaft. The connecting rod drives the clamping block to clamp and limit the aluminum profile.

[0027] S3. After the aluminum profile is limited, the staff starts the driving motor. The driving motor drives the transmission gear to rotate. The transmission gear moves along the first rack. The first gear moves in the tooth groove and limits the connecting plate. During this process, the first gear rotates driven by the tooth groove. The first gear drives the first connecting shaft to rotate. The first connecting shaft drives the worm to rotate. The worm drives the worm wheel to rotate. The worm wheel drives the second connecting shaft to rotate. The second connecting shaft drives the fixed block to rotate. The fixed block drives the aluminum profile to rotate through the clamping block, and the ball assists the aluminum profile to rotate.

[0028] S4. When the connecting plate moves to one side, the third gear meshes with the second rack. The third gear rotates driven by the second rack. The third gear drives the rotating shaft to rotate. The rotating shaft drives the cam to rotate. The cam cooperates with the rebound airbag to realize the reciprocating movement of the rebound airbag, so that the gas in the rebound airbag is blown out through the connecting pipe and the spray pipe. During this process, the aluminum profile rotates driven by the rotating assembly, and cooperating with the sprayed gas, it can accelerate the drying effect of the aluminum profile.

[0029] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:

[0030] 1. In the present invention, by setting the clamping assembly, under the action of gravity, the aluminum profile drives the placement plate to move downward. The placement plate drives the second gear to rotate through the double-sided rack, and the second gear drives the clamping block to clamp and limit the aluminum profile through the connecting rod, improving the stability during the oxidation process of the aluminum profile. The automatic clamping and limiting of the aluminum profile by the clamping block are realized through the gravity of the aluminum profile, simplifying the installation and removal processes during the oxidation process of the aluminum profile and improving the processing efficiency.

[0031] 2. In the present invention, by setting the air-drying assembly, when the second rack meshes with the third gear, the third gear rotates driven by the second rack, the third gear drives the cam to rotate, and the cam cooperates with the rebound airbag to realize the reciprocating movement of the rebound airbag, so that the gas in the rebound airbag is blown out through the connecting pipe and the nozzle. During this process, the aluminum profile rotates driven by the rotating assembly, and cooperating with the gas ejected by the rebound airbag, it can improve the air-drying effect of the aluminum profile, reduce the air-drying time of the aluminum profile, and improve the working efficiency.

[0032] 3. In the present invention, by setting the rotating assembly, the driving motor drives the bottom plate to move through the transmission gear. During this process, the first gear rotates driven by the tooth groove, the first gear drives the worm to rotate through the first connecting shaft, the worm drives the second connecting shaft to rotate through the worm gear, the second connecting shaft drives the fixing block to rotate, and the fixing block drives the aluminum profile to rotate through the clamping block. At the same time, the ball assists the rotation of the aluminum profile, making the aluminum profile contact the electrolyte more fully in the electrolytic cell, thereby improving the electrolysis effect and thus improving the oxidation effect of the aluminum profile. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 is a three-dimensional structural schematic diagram of the aluminum profile oxidation equipment proposed by the present invention;

[0034] Figure 2 is a front cross-sectional structural schematic diagram of the aluminum profile oxidation equipment proposed by the present invention;

[0035] Figure 3 is a partially enlarged structural schematic diagram of part A of the aluminum profile oxidation equipment proposed by the present invention;

[0036] Figure 4 is a partially enlarged structural schematic diagram of part B of the aluminum profile oxidation equipment proposed by the present invention;

[0037] Figure 5 is a side cross-sectional structural schematic diagram of the air-drying assembly of the aluminum profile oxidation equipment proposed by the present invention;

[0038] Figure 6 is a top cross-sectional structural schematic diagram of the rotating assembly of the aluminum profile oxidation equipment proposed by the present invention.

[0039] Legend: 1. Support pad; 2. Electrolytic cell; 3. Driving motor; 4. Transmission gear; 5. Connecting bracket; 6. Rotating assembly; 601. First gear; 602. First cavity; 603. Worm; 604. Worm gear; 605. First connecting shaft; 606. Second connecting shaft; 607. Tooth groove; 7. Limiting assembly; 701. First telescopic rod; 702. Chute; 703. First spring; 704. Sliding block; 705. Ball; 8. Clamping assembly; 801. Placing block; 802. Support plate; 803. Link rod; 804. Fixed block; 805. Second telescopic rod; 806. Second spring; 807. Groove; 808. Second gear; 809. Double-sided rack; 810. Clamping block; 9. Drying component; 901. Nozzle; 902. Connecting pipe; 903. Rebound airbag; 904. Third gear; 905. Cam; 906. Second cavity; 907. Second rack; 10. Top plate; 11. First rack; 12. Connecting plate; 13. Cleaning brush; 14. Collection box; 15. Impurity inlet; 16. Tank body; 17. Bottom plate. Detailed implementation manners

[0040] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0041] Please refer to Figure 1-6 , the present invention provides a technical solution:

[0042] An aluminum profile oxidation device includes an electrolytic cell 2. A first rack 11 is fixedly connected to the top of the electrolytic cell 2. A transmission gear 4 is engaged with the top of the first rack 11. Both sides of the transmission gear 4 are rotatably connected to a connecting bracket 5 through a rotating shaft. A driving motor 3 is fixedly provided on one side of the connecting bracket 5. One end of the output shaft of the driving motor 3 is fixedly connected to one end of the rotating shaft. A top plate 10 is fixedly connected to the bottom of the connecting bracket 5. Two tank bodies 16 are opened on the top of the top plate 10. A limiting assembly 7 is arranged in the tank body 16. Connecting plates 12 are fixedly connected to both sides of the bottom of the top plate 10. A drying component 9 is arranged in the connecting plates 12. And a bottom plate 17 is fixedly connected between the bottoms of the connecting plates 12. A cleaning brush 13 is fixedly connected to the bottom of the bottom plate 17. Two groups of clamping assemblies 8 are arranged on the top of the bottom plate 17. A rotating assembly 6 is arranged at the bottom of the clamping assembly 8. Support pads 1 are fixedly connected to the four surrounding sides of the bottom of the electrolytic cell 2. The bottom of the inner wall of the electrolytic cell 2 extends upward, and an impurity inlet 15 is opened at the bottom of the inner wall of the electrolytic cell 2. A collection box 14 is slidably connected to one side of the electrolytic cell 2. The collection box 14 is located directly below the impurity inlet 15.

[0043] The clamping assembly 8 includes a fixed block 804. On both sides of the top of the fixed block 804, there are fixedly connected support plates 802. A second gear 808 is rotatably connected between the two support plates 802 through a rotating shaft. A connecting rod 803 is clamped on the outer surface of the rotating shaft. The top of the connecting rod 803 is fixedly connected with a clamping block 810. One side of the second gear 808 meshes with a double-sided rack 809. The top of the double-sided rack 809 is fixedly connected with a placement block 801. A groove 807 is opened at the top of the fixed block 804. The double-sided rack 809 is slidably connected in the groove 807. The bottom of the double-sided rack 809 is fixedly connected with a second telescopic rod 805. The bottom of the second telescopic rod 805 is fixedly connected with the bottom of the inner wall of the groove 807. A second spring 806 is sleeved on the outer surface of the second telescopic rod 805. Both ends of the second spring 806 are fixedly connected with the bottom of the double-sided rack 809 and the bottom of the inner wall of the groove 807 respectively.

[0044] The specific implementation method is as follows: By setting the clamping assembly 8, under the action of gravity, the aluminum profile drives the placement plate to move downward. The placement plate drives the second gear 808 to rotate through the double-sided rack 809. The second gear 808 drives the clamping block 810 to clamp and limit the aluminum profile through the connecting rod 803, improving the stability of the aluminum profile during the oxidation process. The clamping block 810 automatically clamps and limits the aluminum profile through the gravity of the aluminum profile. By setting the cleaning brush 13, the bottom plate 17 moves driven by the driving motor 3. The bottom plate 17 drives the cleaning plate to clean the bottom of the electrolytic cell 2, and pushes the cleaned sundries to the impurity inlet 15, and the sundries fall into the collection box 14 from the impurity inlet 15, realizing the cleaning of the electrolytic cell 2.

[0045] The limiting assembly 7 includes a plurality of sliding blocks 704. Sliding grooves 702 are opened on the inner periphery of the tank body 16. The sliding blocks 704 are slidably connected in the sliding grooves 702. A ball 705 is embedded at one end of the sliding block 704 away from the bottom of the inner wall of the sliding groove 702. One end of the sliding block 704 away from the ball 705 is fixedly connected with a first telescopic rod 701. The end of the first telescopic rod 701 away from the sliding block 704 is fixedly connected with the bottom of the inner wall of the sliding groove 702. A first spring 703 is sleeved on the outer surface of the first telescopic rod 701. Both ends of the first spring 703 are fixedly connected with one end of the sliding block 704 and the bottom of the inner wall of the sliding groove 702 respectively.

[0046] The rotating assembly 6 includes a second connecting shaft 606. A first cavity 602 is formed inside the bottom plate 17. The second connecting shaft 606 is rotatably connected to the first cavity 602 through a bearing, and the second connecting shaft 606 extends outside the first cavity 602 and is fixedly connected to the fixed block 804. A worm gear 604 is clamped on the outer surface of the second connecting shaft 606. A worm 603 is engaged with one side of the worm gear 604. The worm 603 is rotatably connected to the first cavity 602 through a first connecting shaft 605. Both ends of the first connecting shaft 605 extend outside the first cavity 602 and are fixedly connected with a first gear 601. Tooth grooves 607 are formed on both sides of the inner wall of the electrolytic cell 2. The first gear 601 is rotatably connected to the tooth grooves 607.

[0047] The specific implementation method is as follows: By setting the rotating assembly 6, the driving motor 3 drives the bottom plate 17 to move through the transmission gear 4. During this process, the first gear 601 rotates driven by the tooth grooves 607. The first gear 601 drives the worm 603 to rotate through the first connecting shaft 605. The worm 603 drives the second connecting shaft 606 to rotate through the worm gear 604. The second connecting shaft 606 drives the fixed block 804 to rotate. The fixed block 804 drives the aluminum profile to rotate through the clamping block 810. At the same time, the ball 705 assists the rotation of the aluminum profile, making the aluminum profile come into contact with the electrolyte in the electrolytic cell 2 more fully.

[0048] The air drying assembly 9 includes a cam 905. A second cavity 906 is formed inside the connecting plate 12. The cam 905 is rotatably connected to the second cavity 906 through a rotating shaft, and the rotating shaft extends outside the second cavity 906 and is fixedly connected with a third gear 904. The top of the cam 905 is in contact with a rebound airbag 903. One end of the rebound airbag 903 away from the cam 905 is fixedly connected to one side of the inner wall of the second cavity 906. One end of the rebound airbag 903 is fixedly connected with a connecting pipe 902. The connecting pipe 902 is embedded in the connecting plate 12. A plurality of spray pipes 901 are fixedly connected to one side of the connecting pipe 902. The spray pipes 901 are embedded in the connecting plate 12. The bottom of the third gear 904 is engaged with a second rack 907. The second rack 907 is fixedly connected to both sides of the inner wall of the electrolytic cell 2.

[0049] The specific implementation method is as follows: By setting the air drying assembly 9, when the second rack 907 is engaged with the third gear 904, the third gear 904 rotates driven by the second rack 907. The third gear 904 drives the cam 905 to rotate. The cam 905 cooperates with the rebound airbag 903 to realize the reciprocating motion of the rebound airbag 903, so that the gas in the rebound airbag 903 is blown out through the connecting pipe 902 and the spray pipes 901. During this process, the aluminum profile rotates driven by the rotating assembly 6. Cooperating with the gas ejected by the rebound airbag 903 can improve the air drying effect of the aluminum profile.

[0050] Working principle:

[0051] S1. The staff passes the aluminum profile through the trough body 16. The first spring 703 and the telescopic rod drive the sliding block 704 to slide in the chute 702. The sliding block 704 drives the ball 705 to fit with the aluminum profile and plays a certain limiting role on the aluminum profile.

[0052] S2. After the aluminum profile is safely inserted into the trough body 16, the aluminum profile drives the placement plate to move downward under the action of gravity. The placement plate drives the double-sided rack 809 to move downward. The double-sided rack 809 drives the second gear 808 to rotate. The second gear 808 drives the connecting rod 803 to rotate around the rotating shaft. The connecting rod 803 drives the clamping block 810 to clamp and limit the aluminum profile.

[0053] S3. After the limiting of the aluminum profile is completed, the staff starts the driving motor 3. The driving motor 3 drives the transmission gear 4 to rotate. The transmission gear 4 moves along the first rack 11. The first gear 601 moves in the tooth groove 607 and limits the connecting plate 12. During this process, the first gear 601 rotates driven by the tooth groove 607. The first gear 601 drives the first connecting shaft 605 to rotate. The first connecting shaft 605 drives the worm 603 to rotate. The worm 603 drives the worm gear 604 to rotate. The worm gear 604 drives the second connecting shaft 606 to rotate. The second connecting shaft 606 drives the fixed block 804 to rotate. The fixed block 804 drives the aluminum profile to rotate through the clamping block 810. The ball 705 assists the rotation of the aluminum profile.

[0054] S4. When the connecting plate 12 moves to one side, the third gear 904 meshes with the second rack 907. The third gear 904 rotates driven by the second rack 907. The third gear 904 drives the rotating shaft to rotate. The rotating shaft drives the cam 905 to rotate. The cam 905 cooperates with the rebound airbag 903 to realize the reciprocating motion of the rebound airbag 903. The gas in the rebound airbag 903 is blown out through the connecting pipe 902 and the nozzle 901. During this process, the aluminum profile rotates driven by the rotating assembly 6. Cooperating with the ejected gas, the drying effect of the aluminum profile can be accelerated.

[0055] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. An aluminum profile oxidation device, including an electrolytic cell (2), characterized in that, a first rack (11) is fixedly connected to the top of the electrolytic cell (2), a transmission gear (4) is engaged with the top of the first rack (11), both sides of the transmission gear (4) are rotatably connected to a connecting bracket (5) through a rotating shaft, a driving motor (3) is fixedly arranged on one side of the connecting bracket (5), one end of the output shaft of the driving motor (3) is fixedly connected to one end of the rotating shaft, a top plate (10) is fixedly connected to the bottom of the connecting bracket (5), two grooves (16) are formed in the top of the top plate (10), a limiting component (7) is arranged in the groove (16), connecting plates (12) are fixedly connected to both sides of the bottom of the top plate (10), a blowing component (9) is arranged in the connecting plate (12), and a bottom plate (17) is fixedly connected between the bottoms of the connecting plates (12), a cleaning brush (13) is fixedly connected to the bottom of the bottom plate (17), two groups of clamping components (8) are arranged on the top of the bottom plate (17), and a rotating component (6) is arranged at the bottom of the clamping component (8); The blowing component (9) includes a cam (905), a second cavity (906) is formed in the connecting plate (12), the cam (905) is rotatably connected to the second cavity (906) through a rotating shaft, and the rotating shaft extends to the outside of the second cavity (906) and is fixedly connected to a third gear (904), a rebound airbag (903) is attached to the top of the cam (905), one end of the rebound airbag (903) away from the cam (905) is fixedly connected to one side of the inner wall of the second cavity (906), one end of the rebound airbag (903) is fixedly connected to a connecting pipe (902), the connecting pipe (902) is embedded in the connecting plate (12), a plurality of spray pipes (901) are fixedly connected to one side of the connecting pipe (902), the spray pipes (901) are embedded in the connecting plate (12), a second rack (907) is engaged with the bottom of the third gear (904), and the second rack (907) is fixedly connected to both sides of the inner wall of the electrolytic cell (2); The clamping component (8) includes a fixed block (804), support plates (802) are fixedly connected to both sides of the top of the fixed block (804), a second gear (808) is rotatably connected between the two support plates (802) through a rotating shaft, a connecting rod (803) is clamped on the outer surface of the rotating shaft, a clamping block (810) is fixedly connected to the top of the connecting rod (803), a double-sided rack (809) is engaged with one side of the second gear (808), a placing block (801) is fixedly connected to the top of the double-sided rack (809), a groove (807) is formed in the top of the fixed block (804), and the double-sided rack (809) is slidably connected to the groove (807).

2. The aluminum profile oxidation device according to claim 1, characterized in that, The bottom of the double-sided rack (809) is fixedly connected to a second telescopic rod (805). The bottom of the second telescopic rod (805) is fixedly connected to the bottom inner wall of the groove (807). A second spring (806) is sleeved on the outer surface of the second telescopic rod (805). Both ends of the second spring (806) are fixedly connected to the bottom of the double-sided rack (809) and the bottom inner wall of the groove (807) respectively.

3. The aluminum profile oxidation device according to claim 1, characterized in that the limiting component (7) includes a plurality of sliding blocks (704). Sliding grooves (702) are formed in the four circumferences of the groove body (16). The sliding blocks (704) are slidably connected in the sliding grooves (702). A ball (705) is embedded at one end of the sliding block (704) away from the bottom of the inner wall of the sliding groove (702).

4. The aluminum profile oxidation device according to claim 3, characterized in that one end of the sliding block (704) away from the ball (705) is fixedly connected to a first telescopic rod (701). One end of the first telescopic rod (701) away from the sliding block (704) is fixedly connected to the bottom of the inner wall of the sliding groove (702). A first spring (703) is sleeved on the outer surface of the first telescopic rod (701). Both ends of the first spring (703) are fixedly connected to one end of the sliding block (704) and the bottom of the inner wall of the sliding groove (702) respectively.

5. The aluminum profile oxidation device according to claim 1, characterized in that the rotating component (6) includes a second connecting shaft (606). A first cavity (602) is formed inside the bottom plate (17). The second connecting shaft (606) is rotatably connected to the first cavity (602) through a bearing, and the second connecting shaft (606) extends to the outside of the first cavity (602) and is fixedly connected to the fixed block (804). A worm gear (604) is clamped on the outer surface of the second connecting shaft (606). A worm (603) is engaged on one side of the worm gear (604). The worm (603) is rotatably connected to the first cavity (602) through a first connecting shaft (605).

6. The aluminum profile oxidation device according to claim 5, characterized in that both ends of the first connecting shaft (605) extend to the outside of the first cavity (602) and are fixedly connected to a first gear (601). Tooth grooves (607) are formed on both sides of the inner wall of the electrolytic cell (2). The first gear (601) is rotatably connected in the tooth grooves (607).

7. The aluminum profile oxidation device according to claim 1, characterized in that support pads (1) are fixedly connected to the four circumferences of the bottom of the electrolytic cell (2). The bottom inner wall of the electrolytic cell (2) extends upward from the bottom, and an impurity inlet (15) is formed on the bottom inner wall of the electrolytic cell (2). A collection box (14) is slidably connected to one side of the electrolytic cell (2). The collection box (14) is located directly below the impurity inlet (15).

8. The method for using an aluminum profile oxidation device, characterized in that applied to the aluminum profile oxidation device according to claims 1-7, specifically including the following steps: S1. The staff passes the aluminum profile through the trough body (16). The first spring (703) and the telescopic rod drive the sliding block (704) to slide in the chute (702). The sliding block (704) drives the ball (705) to fit with the aluminum profile and plays a certain limiting role on the aluminum profile; S2. After the aluminum profile is safely inserted into the trough body (16), the aluminum profile drives the placement plate to move downward under the action of gravity. The placement plate drives the double-sided rack (809) to move downward. The double-sided rack (809) drives the second gear (808) to rotate. The second gear (808) drives the connecting rod (803) to rotate around the rotating shaft. The connecting rod (803) drives the clamping block (810) to clamp and limit the aluminum profile; S3. After the limiting of the aluminum profile is completed, the staff starts the driving motor (3). The driving motor (3) drives the transmission gear (4) to rotate. The transmission gear (4) moves along the first rack (11). The first gear (601) moves in the tooth groove (607) and limits the connecting plate (12). During this process, the first gear (601) rotates driven by the tooth groove (607). The first gear (601) drives the first connecting shaft (605) to rotate. The first connecting shaft (605) drives the worm (603) to rotate. The worm (603) drives the worm gear (604) to rotate. The worm gear (604) drives the second connecting shaft (606) to rotate. The second connecting shaft (606) drives the fixed block (804) to rotate. The fixed block (804) drives the aluminum profile to rotate through the clamping block (810). The ball (705) assists the rotation of the aluminum profile; S4. When the connecting plate (12) moves to one side, the third gear (904) meshes with the second rack (907). The third gear (904) rotates driven by the second rack (907). The third gear (904) drives the rotating shaft to rotate. The rotating shaft drives the cam (905) to rotate. The cam (905) cooperates with the rebound airbag (903) to realize the reciprocating motion of the rebound airbag (903). The gas in the rebound airbag (903) is blown out through the connecting pipe (902) and the nozzle (901). During this process, the aluminum profile rotates driven by the rotating assembly (6). Cooperating with the ejected gas, the drying effect of the aluminum profile can be accelerated.

Citation Information

Patent Citations

  • Feeding clamp for aluminum profile anodic oxidation

    CN107723772A