Aluminum alloy template machining auxiliary equipment

The rotating support system with automated alignment mechanisms addresses the inefficiencies and errors in aluminum alloy panel welding by facilitating precise and efficient positioning of ribs on the panel, enhancing the welding process.

CN120306937AInactive Publication Date: 2025-07-15YONGZHOU WENFENG BUILDING MATERIALS TECH CO LTD
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Patent Information

Application Number
CN202510610236.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2025-07-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the welding process of existing aluminum alloy formwork, operators need to adjust the position around the periphery of the panel, which consumes physical strength and is prone to knock down the ribs. It is difficult to position the ribs equally when placed, resulting in welding errors.

Method used

An auxiliary equipment for processing aluminum alloy templates is designed, including rotating frames, electric sliders, cylinders, claws and other components. The rotating panel of the rotating frame is driven by a motor, and the automatic positioning and fixing of the ribs is achieved by using positioning slots, restricting plates and claws.

Benefits of technology

It reduces the physical energy consumption of operators, improves the positioning accuracy and welding efficiency of ribs, and reduces welding errors.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of aluminum alloy formworks, in particular to aluminum alloy formwork machining auxiliary equipment. Comprising a frame body used for supporting the whole, a rotating frame is arranged on the frame body, the rotating frame is connected with a motor, electric sliding blocks which are symmetrical left and right are arranged on the rotating frame, the electric sliding blocks are rotationally connected with the rotating frame, the electric sliding blocks are connected to the frame body in a sliding mode, and the supporting bottom plate is fixedly connected to the frame body. A plurality of positioning clamping grooves distributed at equal intervals are formed in the supporting bottom plate. The rotating frame can be controlled to rotate through the motor, so that the angle of the panel fixed to the rotating frame is freely adjusted, the position where the panel needs to be welded can be adjusted by rotating the angle of the panel, a user does not need to adjust the position of the user, and more convenience is achieved; after the rotating frame drives the panel to move downwards to be tightly attached to the rib plate, the middle plate body can drive the transmission assembly to rotate through the downward-moving force, and then the effect that the rib plate is clamped to the panel through rotation of the claw pieces is achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of aluminum alloy formwork, and particularly to an auxiliary device for processing aluminum alloy formwork. Background Art

[0002] Existing aluminum alloy formwork is usually welded by a panel and multiple rib plates. The rib plates strengthen the stiffness and strength of the formwork and are usually vertically connected to the panel to increase the overall stability.

[0003] When welding and processing aluminum alloy formwork, the panel is usually placed flat on a plane, and then the rib plates are vertically placed at equal intervals on the top surface of the panel. Subsequently, a welding gun is held by hand to weld the bottom plate and the side. Since the aluminum alloy formwork occupies a relatively large area, when people hold the welding gun to weld, they need to adjust their positions according to the welding positions and always work around the periphery of the panel. For those with relatively far welding positions, people need to stand on the panel to work, which is very labor-consuming as they need to walk back and forth. Moreover, when the operator operates on the panel, it is easy to knock down the un-welded rib plates, which is also very troublesome. In addition, when placing the rib plates on the top surface of the panel, people need to visually judge whether the rib plates are equidistant, which often results in errors. Therefore, an auxiliary device for processing aluminum alloy formwork is developed to overcome the above defects. Summary of the Invention

[0004] The technical implementation scheme of the present invention is as follows: An auxiliary device for processing aluminum alloy formwork includes a frame for supporting the whole. A rotating frame is provided on the frame. The rotating frame is connected to a motor. Electric sliders that are symmetric left and right are arranged on the rotating frame. The electric sliders are rotatably connected to the rotating frame and slidably connected to the frame.

[0005] Optionally, it further includes a supporting bottom plate fixedly connected to the frame. A plurality of positioning card slots evenly distributed are opened on the supporting bottom plate. Symmetric blocking plates are arranged at the bottom of the rotating frame, and the blocking plates are fixedly connected to the rotating frame.

[0006] Optionally, it further includes symmetrically arranged moving frames arranged on the rotating frame. A cylinder is arranged on the top of the moving frame, and a middle plate body is connected to the telescopic rod of the cylinder.

[0007] Optionally, it further includes evenly distributed claw members rotatably connected to the moving frames. A moving plate body is arranged on the middle plate body, and the moving plate body is slidably connected to the middle plate body. A first spring is arranged between the top of the moving plate body and the middle plate body. The moving plate body is connected to a transmission component for driving the claw members to rotate.

[0008] Optionally, the transmission assembly includes a first rack, the first rack is fixedly connected to one side of the moving plate body away from each other, the first rack meshes with a first gear, the first gear is rotatably connected to the moving plate body, and the first gear meshes with a second gear.

[0009] Optionally, it further includes a pulling frame, the pulling frame is arranged on the central plate body, the pulling frame is slidably connected to the central plate body, symmetrically arranged wedge blocks are fixedly connected to the pulling frame, symmetrically arranged inclined surfaces are arranged on the moving plate body, and the inclined surfaces and the wedge blocks are in extrusion fit. A second spring is connected between the wedge block and the central plate body, and the second spring is wound around the pulling frame.

[0010] Optionally, it further includes a limiting plate, symmetrically arranged limiting plates are arranged on the positioning card slots, the limiting plates are rotatably connected to the supporting bottom plate, and a torsion spring is arranged between the limiting plates and the supporting bottom plate.

[0011] Optionally, it further includes symmetrically arranged plate members, the plate members are arranged on one side of the frame body close to the supporting bottom plate, equidistantly distributed grooves are formed in the plate members, the grooves are aligned with the positioning card slots, wedge-shaped members are arranged on the mutually remote sides of the grooves, the wedge-shaped members are slidably connected to the plate members, and a third spring is arranged between the wedge-shaped members and the plate members.

[0012] Optionally, it further includes an electric telescopic rod, the electric telescopic rod is arranged on the frame body, the electric telescopic rod and the electric slider are electrically connected through a control module, a guiding track is fixedly connected to the end of the electric telescopic rod, and the guiding track is slidably connected to the plate member.

[0013] Optionally, it further includes two first bidirectional threaded rods, the first bidirectional threaded rods are arranged between the plate members, the two first bidirectional threaded rods are connected through a transmission assembly, two second bidirectional threaded rods are arranged on the rotating frame, the second bidirectional threaded rods are rotatably connected to the rotating frame, the second bidirectional threaded rods are threadedly connected to the moving frame, the two second bidirectional threaded rods are connected through a transmission assembly, gear wheels three are respectively arranged at the end parts of the first bidirectional threaded rod and the second bidirectional threaded rod, the gear wheels three jointly mesh with a second rack, a guiding frame is arranged on the second rack, the guiding frame is slidably connected to the second rack, and the guiding frame is fixedly connected to the frame body.

[0014] Compared with the prior art, the present invention has the following advantages: 1. The present invention can control the rotation of the rotating frame through a motor, so that the angle of the panel fixed on the rotating frame can be freely adjusted. Therefore, by rotating the angle of the panel, the position to be welded can be adjusted, and the user does not need to adjust his own position, which is more convenient.

[0015] 2. After the rotating frame drives the panel to move downwards and be close to the rib plate, the present invention will drive the transmission assembly to rotate through the downward force of the central plate body, and then realize the effect that the claw members rotate to clamp the rib plate on the panel. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1Schematic diagram of the three-dimensional structure of the present invention.

[0017] Figure 2 Partial schematic diagram of the three-dimensional structure of the present invention.

[0018] Figure 3 Partial sectional view of the three-dimensional structure of the present invention.

[0019] Figure 4 For the present invention Figure 3 Schematic diagram of the three-dimensional structure at position A in the present invention.

[0020] Figure 5 Schematic diagram of the three-dimensional structure of components such as the plate member, wedge member, and limiting plate of the present invention.

[0021] Figure 6 For the present invention Figure 5 Schematic diagram of the three-dimensional structure at position B in the present invention.

[0022] Figure 7 Schematic diagram of the three-dimensional structure of components such as the electric telescopic rod, guiding track, and bidirectional threaded rod one of the present invention.

[0023] The markings of each component in the drawings are as follows: 1: frame body, 2: rotating frame, 3: electric slider, 4: blocking plate, 5: supporting bottom plate, 6: positioning card slot, 7: moving frame, 8: centering plate body, 81: air cylinder, 9: claw member, 10: moving plate body, 11: first spring, 12: first rack, 13: first gear, 14: second gear, 15: pulling frame, 16: second spring, 17: wedge block, 18: inclined surface, 19: limiting plate, 20: torsion spring, 21: plate member, 22: groove, 23: wedge member, 24: third spring, 25: electric telescopic rod, 26: guiding track, 27: first bidirectional threaded rod, 28: second bidirectional threaded rod, 29: third gear, 30: second rack, 31: guiding frame. Detailed implementation manners

[0024] 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.

[0025] An auxiliary device for processing aluminum alloy templates. As described in the background technology, the panel is usually placed flat on a plane, and then the rib plates are vertically placed on the top surface of the panel at equal intervals. Subsequently, the user holds a welding gun for welding. Since the aluminum alloy template occupies a relatively large area, it may not be possible for the hand to weld to relatively far positions. Therefore, it is necessary to adjust the position according to the welding position and always work around the periphery of the panel. This back-and-forth movement is rather troublesome. Thus, as Figure 1 shown, in this solution, a frame body 1 is provided. The frame body 1 is used to support the whole, and the frame body 1 raises the height of the panel. And a rotating frame 2 is provided on the frame body 1. The rotating frame 2 can rotate. The rotating frame 2 is used to support the panel. Usually, the panel is fixed on the rotating frame 2. Then, a motor is fixed at one end of the rotating frame 2. The rotating frame 2 can be driven to rotate by the motor. When the rotating frame 2 rotates, it can drive the panel to rotate. If the user welds in front of this device, by rotating the panel, the welding position can be brought closer to the user, facilitating the user to weld. The user does not need to adjust their own position, overcoming the defects existing in the background technology.

[0026] After the panel is fixed on the rotating frame 2, the user needs to vertically place the rib plates on the top surface of the panel at equal intervals. The user needs to visually judge whether the intervals between the rib plates are equal, which often results in errors. For this reason, in this embodiment, a support base plate 5 is provided for the rib plates. The support base plate 5 is fixedly connected to the frame body 1. For the convenience of the user to place the materials, the support base plate 5 is set at a lower position, so the support base plate 5 is located below the rotating frame 2. A plurality of equally spaced positioning slots 6 are opened on the support base plate 5. The positioning slots 6 are used to position the positions of the rib plates. Thus, the user only needs to vertically place the rib plates on the positioning slots 6 respectively. Subsequently, when the rib plates need to be vertically placed on the panel, the panel at a higher position needs to be lowered to be in close contact with the rib plates. Therefore, when the panel is fixed on the rotating frame 2, the panel needs to be inverted on the rotating frame 2. So, a square hole for inverting the panel is opened on the rotating frame 2. And symmetrically arranged blocking plates 4 are provided at the bottom of the rotating frame 2. The blocking plates 4 are fixedly connected to the rotating frame 2. The blocking plates 4 are used to block the panel to prevent the panel from directly falling from the square hole. Then, when it is necessary to drive the rotating frame 2 to drive the panel to descend and contact the rib plates, an electric slider 3 is provided on the rotating frame 2. The electric slider 3 is rotatably connected to the rotating frame 2 and slidably connected to the frame body 1. By controlling the electric slider 3 to descend, the rotating frame 2 and the panel are driven to descend, so that the panel is in close contact with the rib plates.

[0027] It should be noted that: after the panel is placed in the square hole of the rotating frame 2, since the user places it manually, it may not be possible to center the panel, which will affect the close contact between the panel and the rib plate. Therefore, a moving frame 7 is symmetrically arranged before and after on the rotating frame 2. A cylinder 81 is arranged on the top of the moving frame 7, and a centering plate body 8 is connected to the telescopic rod of the cylinder 81. The centering plate body 8 is of a right-angle structure. By extending the telescopic rod of the cylinder 81, the centering plate body 8 is driven to move towards the side where they approach each other, and the centering plate body 8 centers the panel.

[0028] In addition, since the panel is inverted during the process of pressing the panel and the rib plate tightly together, and when welding is required, the panel and the rib plate need to be turned over. When turning over, the back of the panel will directly disengage from the square hole without any component support. Therefore, the right-angle structure of the centering plate body 8 can support the ground of the panel.

[0029] After the panel and the rib plate are pressed tightly together, the rib plate needs to be fixed to the panel and then lifted together. Therefore, as Figure 2 shown, in this embodiment, a claw member 9 is provided. The claw member 9 is rotatably connected to the moving frame 7. The claw member 9 is composed of a plurality of fixed claws, and the fixed claws are evenly distributed on the moving frame 7. After the panel and the rib plate are pressed tightly together, the rib plate is pressed and fixed to the panel by the claw member 9.

[0030] The above description states that after the panel and the rib plate are pressed tightly together, the rib plate needs to be fixed to the panel. Therefore, in this embodiment, the force of pressing the panel and the rib plate tightly together is used to automatically drive the claw member 9 to rotate and press the rib plate. The specific solution is as follows:

[0031] As Figure 2 shown, a moving plate body 10 is arranged on the centering plate body 8. The moving plate body 10 is slidably connected to the centering plate body 8. The structural shape of the moving plate body 10 is the same as that of the centering plate body 8, and the moving plate body 10 replaces the function of the centering plate body 8. A first spring 11 is arranged between the top of the moving plate body 10 and the centering plate body 8. The first spring 11 is used to drive the moving plate body 10 to maintain a downward movement state, and the moving plate body 10 is connected to a transmission component.

[0032] When the center plate body 8 moves inward, it drives the moving plate body 10 to move inward as well. The moving plate body 10 is used to center and align the panel and press against the back of the panel. After the panel descends and contacts the rib plate, the panel stops moving. Since the moving plate body 10 presses against the back of the panel, the moving plate body 10 also stops moving. Therefore, the rotating frame 2 continues to drive the center plate body 8 to descend. At this time, the first spring 11 is compressed. When the moving plate body 10 stops moving and the center plate body 8, the moving frame 7, and the claw member 9 continue to move, the claw member 9 will be rotated by the transmission component to clamp the rib plate on the panel. The transmission component includes a first rack 12, which is fixedly connected to the mutually remote sides of the moving plate body 10. The first rack 12 meshes with a first gear 13, and the first gear 13 is rotatably connected to the moving plate body 10. The first gear 13 meshes with a second gear 14, and the second gear 14 is fixedly connected to the claw member 9. Therefore, when the moving plate body 10 stops moving and the center plate body 8, the moving frame 7, and the claw member 9 continue to move, it will drive the first gear 13 and the second gear 14 to continue to move downward. At this time, since the first rack 12 is fixedly connected to the moving plate body 10, the first rack 12 is also in a stationary state. Also, because the first gear 13 meshes with the first rack 12, the first gear 13 will rotate to drive the second gear 14 to rotate, and the second gear 14 will drive the claw member 9 to rotate to clamp the rib plate on the panel.

[0033] Since the claw member 9 rotates to clamp the rib plate due to the downward movement force of the rotating frame 2, if the rotating frame 2 moves upward, then the claw member 9 will rotate and reset. For this reason, this embodiment proposes a scheme to lock the moving plate body 10. Locking the moving plate body 10 is equivalent to locking the position of the claw member 9. Therefore, as Figures 3 - 4 shown, a pulling frame 15 is provided on the center plate body 8. The pulling frame 15 is slidably connected to the center plate body 8. Symmetrically arranged wedge blocks 17 are fixedly connected to the pulling frame 15. Symmetrically arranged inclined surfaces 18 are provided on the moving plate body 10. The inclined surfaces 18 and the wedge blocks 17 are in extrusion fit. A second spring 16 is connected between the wedge blocks 17 and the center plate body 8. The second spring 16 is wound around the pulling frame 15. The second spring 16 keeps the wedge blocks 17 in a state of moving inward. When the center plate body 8 moves downward, it will drive the pulling frame 15 and the wedge blocks 17 to move downward. After the wedge blocks 17 move downward and contact the inclined surfaces 18, the inclined surfaces 18 will push the wedge blocks 17 and the pulling frame 15 to move away from each other, and the second spring 16 is compressed. When the wedge blocks 17 are separated from the inclined surfaces 18, the second spring 16 will drive the wedge blocks 17 and the pulling frame 15 to move closer to each other and reset. At this time, the wedge blocks 17 are inserted into the moving plate body 10 to restrict the moving plate body 10. In this way, even if the panel moves upward, the claw member 9 will still maintain the state of fixing the rib plate.

[0034] After welding is completed, the welded aluminum alloy template needs to be loosened. The user manually moves the pulling frame 15 to the side away from each other. The pulling frame 15 drives the wedge block 17 to move to the side away from the inclined surface 18. The wedge block 17 loosens the moving plate body 10, and the first spring 11 drives the moving plate body 10 to reset, thereby causing the claw member 9 to rotate and loosen the aluminum alloy template.

[0035] As mentioned above, the user needs to place the rib plate into the positioning slot 6 for positioning. However, the positioning slot 6 cannot restrict the rib plate, and the rib plate may tilt left and right. In this way, when the rib plate is pressed against the panel subsequently, the rib plate may not be able to maintain a vertical state, which will affect the subsequent welding operation. Therefore, this embodiment proposes a solution for restricting the rib plate: as Figure 5 and Figure 6 shown, it includes a limiting plate 19. The symmetrically arranged limiting plates 19 are arranged on the positioning slot 6. The limiting plate 19 is rotatably connected to the support bottom plate 5. A torsion spring 20 is provided between the limiting plate 19 and the support bottom plate 5. Under the torque action of the torsion spring 20, the limiting plate 19 is kept pressing against the lower position of the rib plate. When the rib plate is clamped and moved upward, the rib plate will push the limiting plate 19 upward, causing the limiting plate 19 to rotate upward, and the torsion spring 20 is twisted. After the rib plate and the limiting plate 19 are separated, the torsion spring 20 drives the limiting plate 19 to rotate and reset.

[0036] When the user places the rib plate on the positioning slot 6, the rib plate needs to be placed in the middle. The extended parts on the front and rear sides of the rib plate need to be equal so that the rib plate can be pressed tightly against the panel. When placing it manually, people need to observe and adjust the position with the naked eye, and there will always be a situation of not being centered. Therefore, the plate members 21 are symmetrically arranged front and rear. The plate members 21 are arranged on the side of the frame body 1 close to the support bottom plate 5. The plate members 21 are provided with equally spaced grooves 22. The grooves 22 are aligned with the positioning slot 6. Wedge members 23 are arranged on the sides away from each other of the grooves 22. The wedge members 23 are slidably connected to the plate members 21. A third spring 24 is provided between the wedge members 23 and the plate members 21.

[0037] When the user places the rib plate into the positioning slot 6, the user moves the rib plate from the front side to the rear side of the groove 22. The rib plate will first contact the wedge surface of the wedge member 23, causing the wedge member 23 to move downward, and the third spring 24 is compressed. When the rear part of the rib plate contacts the flat surface of the rear wedge member 23, it means that the rib plate is already in the centered position, and the front of the rib plate is separated from the front wedge member 23. The third spring 24 drives the wedge member 23 to move upward and reset. In this way, the symmetrically arranged wedge members 23 can restrict the front and rear sides of the rib plate.

[0038] When the rotating frame 2 descends to drive the claw member 9 to descend, when the panel and the rib plate are in close contact, the claw member 9 will collide with the plate member 21. In order to avoid the collision between the claw member 9 and the plate member 21, it is necessary to move the plate member 21 away before the claw member 9 descends to avoid affecting subsequent operations. Therefore, an electric telescopic rod 25 is provided below the frame body 1. The electric telescopic rod 25 and the electric slider 3 are electrically connected through a control module. The end of the electric telescopic rod 25 is fixedly connected to a guiding track 26, and the guiding track 26 is slidably connected to the plate member 21. Its working principle is as follows:

[0039] As Figure 7 shown, when the electric slider 3 starts to work and descend, the electric telescopic rod 25 contracts simultaneously. The electric telescopic rod 25 drives the guiding track 26, the plate member 21 and the components thereon to descend. The plate member 21 will move to the lower part inside the frame body 1 to be hidden. Then, when the claw member 9 descends, it will not collide with the plate member 21. When the electric slider 3 starts to rise, the electric telescopic rod 25 extends simultaneously, driving the guiding track 26, the plate member 21 and the components thereon to move upward and reset.

[0040] Since the widths of aluminum alloy templates may be different, for this reason, this embodiment proposes how to adjust the clamping position of the panel and the centering position of the rib plate according to the different widths of the aluminum alloy templates. Therefore, the following solutions are adopted: Two bidirectional threaded rods 27 are arranged between the plate members 21. The bidirectional threaded rods 27 are threadedly connected to the plate members 21. The two bidirectional threaded rods 27 are connected through a transmission component. By rotating one of the bidirectional threaded rods 27, the plate members 21 can be driven to adjust their positions inward or outward. When the plate members 21 move outward to adjust, rib plates with longer widths can be placed. When the plate members 21 move inward, rib plates with shorter widths can be placed. Two bidirectional threaded rods 28 are arranged on the rotating frame 2. The bidirectional threaded rods 28 are rotatably connected to the rotating frame 2. The bidirectional threaded rods 28 are threadedly connected to the moving frame 7. The two bidirectional threaded rods 28 are connected through a transmission component. By rotating one of the bidirectional threaded rods 28, the moving frame 7 can be driven to adjust its position inward or outward. When the moving frame 7 moves outward to adjust, panels with longer widths can be placed. When the moving frame 7 moves inward to adjust, panels with shorter widths can be placed.

[0041] As Figure 1 shown, gear wheels 29 are respectively arranged at the ends of the bidirectional threaded rods 27 and the bidirectional threaded rods 28. The gear wheels 29 jointly mesh with a rack 30. A handle is arranged on the right part of the rack 30. A guiding frame 31 is arranged on the rack 30. The guiding frame 31 is slidably connected to the rack 30. The guiding frame 31 is fixedly connected to the frame body 1. The user can move the rack 30 up and down by holding the handle. The up and down movement of the rack 30 will drive the gear wheels 29 to rotate forward and backward, thereby driving the bidirectional threaded rods 27 and the bidirectional threaded rods 28 to rotate and adjust.

[0042] The above embodiments are only preferred embodiments of the present invention and are not intended to limit the scope of implementation of the present invention. Therefore, all equivalent changes made according to the content described in the claims of the present invention shall be included within the scope of the claims of the present invention.

Claims

1. An auxiliary device for processing aluminum alloy templates, characterized in that, It includes a frame body (1) for supporting the whole. A rotating frame (2) is provided on the frame body (1). The rotating frame (2) is connected to a motor. Electric sliders (3) that are symmetric left and right are arranged on the rotating frame (2). The electric sliders (3) are rotatably connected to the rotating frame (2) and slidably connected to the frame body (1).

2. An auxiliary device for processing aluminum alloy templates according to claim 1, characterized in that, It further includes a supporting bottom plate (5). The supporting bottom plate (5) is fixedly connected to the frame body (1). A plurality of positioning card slots (6) evenly distributed at equal intervals are formed on the supporting bottom plate (5). Symmetric blocking plates (4) are arranged at the bottom of the rotating frame (2). The blocking plates (4) are fixedly connected to the rotating frame (2).

3. An auxiliary equipment for processing aluminum alloy templates according to claim 2, characterized in that, It further includes symmetrically arranged moving frames (7). The symmetrically arranged moving frames (7) are arranged on the rotating frame (2). A cylinder (81) is arranged at the top of the moving frame (7). A middle plate body (8) is connected to the telescopic rod of the cylinder (81).

4. An auxiliary device for processing aluminum alloy templates according to claim 3, characterized in that, It further includes claw members (9) evenly distributed at equal intervals. The claw members (9) are rotatably connected to the moving frame (7). A moving plate body (10) is arranged on the middle plate body (8). The moving plate body (10) is slidably connected to the middle plate body (8). A first spring (11) is arranged between the top of the moving plate body (10) and the middle plate body (8). The moving plate body (10) is connected to a transmission component for driving the claw members (9) to rotate.

5. An auxiliary device for processing aluminum alloy templates according to claim 4, characterized in that, The transmission component includes a first rack (12). The first rack (12) is fixedly connected to the mutually remote sides of the moving plate body (10). The first rack (12) meshes with a first gear (13). The first gear (13) is rotatably connected to the moving plate body (10). The first gear (13) meshes with a second gear (14).

6. An auxiliary equipment for processing aluminum alloy templates according to claim 5, characterized in that, It further includes a pulling frame (15). The pulling frame (15) is arranged on the middle plate body (8). The pulling frame (15) is slidably connected to the middle plate body (8). Symmetrically arranged wedge-shaped blocks (17) are fixedly connected to the pulling frame (15). Slopes (18) are arranged on the moving plate body (10). The slopes (18) and the wedge-shaped blocks (17) are in extrusion fit. A second spring (16) is connected between the wedge-shaped blocks (17) and the middle plate body (8). The second spring (16) is wound around the pulling frame (15).

7. An auxiliary equipment for processing aluminum alloy templates according to claim 6, characterized in that, It further includes a limiting plate (19). The symmetrically arranged limiting plates (19) are arranged on the positioning card slots (6). The limiting plates (19) are rotatably connected to the supporting bottom plate (5). A torsion spring (20) is arranged between the limiting plates (19) and the supporting bottom plate (5).

8. An auxiliary device for processing aluminum alloy templates according to claim 7, characterized in that, It further includes symmetrically arranged plate members (21). The plate members (21) are arranged on one side of the frame body (1) close to the supporting bottom plate (5). A plurality of grooves (22) evenly distributed at equal intervals are formed on the plate members (21). The grooves (22) are aligned with the positioning card slots (6). Wedge-shaped members (23) are arranged on the mutually remote sides of the grooves (22). The wedge-shaped members (23) are slidably connected to the plate members (21). A third spring (24) is arranged between the wedge-shaped members (23) and the plate members (21).

9. An auxiliary device for processing aluminum alloy templates according to claim 8, characterized in that, It further includes an electric telescopic rod (25). The electric telescopic rod (25) is arranged on the frame body (1). The electric telescopic rod (25) and the electric slider (3) are electrically connected through a control module. The end of the electric telescopic rod (25) is fixedly connected to a guide rail (26), and the guide rail (26) is slidably connected to the plate member (21).

10. An auxiliary device for processing aluminum alloy templates according to claim 9, characterized in that, It further includes two first bidirectional threaded rods (27). The first bidirectional threaded rods (27) are arranged between the plate members (21). The two first bidirectional threaded rods (27) are connected through a transmission assembly. Two second bidirectional threaded rods (28) are arranged on the rotary frame (2). The second bidirectional threaded rods (28) are rotatably connected to the rotary frame (2). The second bidirectional threaded rods (28) are threadedly connected to the moving frame (7). The two second bidirectional threaded rods (28) are connected through a transmission assembly. Gear wheels three (29) are respectively arranged at the end parts of the first bidirectional threaded rod (27) and the second bidirectional threaded rod (28). The gear wheels three (29) jointly engage with a second rack (30). A guide frame (31) is arranged on the second rack (30). The guide frame (31) is slidably connected to the second rack (30). The guide frame (31) is fixedly connected to the frame body (1).