Aluminum support machining and grinding equipment

Through the cooperation of the driving component and the limit component, the aluminum bracket processing and polishing equipment realizes the automatic movement and polishing of the aluminum bracket, solves the problem of low efficiency of the existing equipment, and improves the processing efficiency.

CN223477256UActive Publication Date: 2025-10-28HUIZHOU LIHUA HARDWARE ELECTRONICS CO LTD
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Patent Information

Application Number
CN202423041938.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2025-10-28
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

When processing longer aluminum brackets, existing aluminum bracket processing and polishing equipment requires workers to manually move the unpolished areas, resulting in cumbersome operation steps and low efficiency.

Method used

The machine adopts structures such as driving components, fixing frames, limiting components, connecting frames and transmission plates, and realizes the automatic movement and grinding of the aluminum bracket through the coordinated action of driving cylinders and servo motors, thereby improving the grinding efficiency.

Benefits of technology

The automatic grinding of aluminum brackets is realized, which reduces the manual handling steps and improves the processing efficiency and grinding effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aluminum support machining, in particular to aluminum support machining and polishing equipment which comprises an operation table and a driving frame, a fixing frame for supporting an aluminum support is connected to the outer portion of the operation table through bolts, and a limiting assembly for fixing the aluminum support is arranged in the fixing frame. A driving assembly for driving the driving frame to move is arranged in the operation table, a driving air cylinder for providing power is in bolted connection with the interior of the driving frame, the power output end of the driving air cylinder is in key connection with a top frame, and a servo motor A for providing power is in bolted connection with the interior of the top frame; through the arrangement of the driving assembly, the fixing frame, the limiting assembly, the connecting frame, the transmission plate and the transmission air cylinder, the problems that when existing aluminum support machining and polishing equipment is used, the unpolished position of an aluminum support is inconvenient to move to an operation table, and the polishing efficiency of the aluminum support is low are solved.
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Description

Technical Field

[0001] This utility model relates to the field of aluminum bracket processing technology, specifically to an aluminum bracket processing and grinding equipment. Background Technology

[0002] Aluminum brackets are structural components used to support and fix aluminum or aluminum alloy products of various shapes. They are widely used in machinery, furniture, automobiles, construction and other fields. The main function of aluminum brackets is to provide stable support and ensure the safety and stability of various equipment and structures.

[0003] However, when using existing aluminum bracket processing and grinding equipment, the aluminum bracket is usually placed directly on the workbench and ground by a grinding machine. However, when the aluminum bracket is long, after the grinding of a part of the aluminum bracket is completed, the staff needs to move the aluminum bracket to the workbench so that the unground area of ​​the aluminum bracket can be moved. The operation steps are cumbersome and the workload is large, which has a certain impact on the processing and grinding efficiency of aluminum bracket. Therefore, an aluminum bracket processing and grinding equipment is designed. Utility Model Content

[0004] The main purpose of this utility model is to provide an aluminum bracket processing and grinding equipment. This utility model solves the problem of low grinding efficiency of existing aluminum bracket processing and grinding equipment by setting up a drive component, a fixed frame, a limiting component, a connecting frame, a transmission plate, and a transmission cylinder, which makes it inconvenient to move the un-grinded part of the aluminum bracket to the operating table during use.

[0005] The technical solution adopted by this utility model to solve its technical problem is an aluminum bracket processing and grinding equipment, including an operating table and a drive frame. The operating table is externally bolted to a fixed frame that supports the aluminum bracket. The fixed frame is internally provided with a limiting component that fixes the aluminum bracket. The operating table is internally provided with a drive component that drives the drive frame to move. The drive frame is internally bolted to a drive cylinder that provides power, and the power output end of the drive cylinder is keyed to a top frame. The top frame is internally bolted to a servo motor A that provides power, and the power output end of the servo motor A is keyed to a lead screw. The lead screw is externally threaded to a sleeve plate, and the bottom of the sleeve plate is bolted to a servo motor B that provides power. The power output end of the servo motor B is keyed to a grinding disc for grinding the aluminum bracket. The bottom is bolted to a base frame that supports the operating table. The base frame is internally bolted to a transmission cylinder that provides power, and the power output end of the transmission cylinder is bolted to a transversely moving transmission plate. One side of the transmission plate is bolted to a connecting frame that fixes the aluminum bracket.

[0006] When using the aluminum bracket, the aluminum bracket is first placed into the fixed frame and connecting frame. The internal structure of the connecting frame is the same as that of the fixed frame. The limiting components in the fixed frame and connecting frame clamp and fix the aluminum bracket. Then, the drive cylinder in the drive frame is driven by the external controller to move the top frame, so that the grinding disc contacts the surface of the aluminum bracket. Then, the servo motors B and A are driven by the external controller. Servo motor B drives the grinding disc to rotate and grind the surface of the aluminum bracket. Servo motor A drives the lead screw to rotate. The sleeve plate outside the lead screw is limited by the external structure and drives the grinding disc on servo motor B to move. Then, the drive component in the operating table drives the drive frame to move. Then the drive frame drives the top frame to move. The grinding disc under the top frame operates at different positions on the surface of the aluminum bracket, thereby improving the processing and grinding efficiency of the aluminum bracket.

[0007] After the aluminum bracket is ground on the worktable, the limiting components in the fixed frame release the aluminum bracket. Then, the transmission cylinder in the base frame, driven by the external controller, moves the transmission plate. Subsequently, the transmission plate moves the aluminum bracket fixed in the connecting frame, causing the aluminum bracket to move on the worktable. Then, the limiting components in the fixed frame fix the aluminum bracket. Then, the limiting components in the connecting frame release the aluminum bracket. Then, the transmission cylinder moves the connecting frame on one side of the transmission plate to its original position. Then, the limiting components in the connecting frame fix the aluminum bracket again, thus facilitating the movement of the unground portion of the aluminum bracket to the worktable and improving the processing efficiency of the aluminum bracket.

[0008] Specifically, the limiting assembly includes a double-headed cylinder, support rod A, support rod B, limiting block A, limiting block B, a support block, and a connecting groove. The double-headed cylinder, which provides power, is bolted inside the fixing frame, and support rod A and support rod B are symmetrically fixed to the power output end of the double-headed cylinder with screws. A limiting block A for fixing the aluminum bracket is welded to one side of support rod A, and a limiting block B for fixing the aluminum bracket is welded to the outside of support rod B.

[0009] By adopting the above technical solution, when the aluminum bracket is placed on the fixed frame, the double-headed cylinder inside the fixed frame is driven by the external controller to move the support rod A and support rod B laterally towards each other. Then, support rod A drives the limit block A to move, and support rod B drives the limit block B to move. Subsequently, limit block A and limit block B contact the surface of the aluminum bracket, thereby facilitating the fixing of the aluminum bracket that needs to be processed and polished, and preventing the aluminum bracket from shaking or shifting.

[0010] Specifically, the drive assembly includes a threaded rod, a bushing, a connecting sleeve, gear A, gear B, a fixed rod, and a stepper motor. The stepper motor, which provides power, is bolted inside the operating console, and the power output end of the stepper motor is keyed to the fixed rod. The fixed rod is sleeved with a transmission gear B, and gear A is meshed with the outside of gear B. The threaded rod is engaged with the transmission threaded rod inside the gear A, and the threaded rod is threaded with a connecting sleeve that drives the drive frame to move.

[0011] By adopting the above technical solution, when the drive frame needs to be moved, the stepper motor in the operating table converts the received electrical energy into mechanical energy under the action of the external controller. The stepper motor drives the gear B outside the fixed rod to rotate, and then the gear B drives the threaded rod inside the gear A to rotate. The connecting sleeve outside the threaded rod is limited by the top structure to move laterally, and then the connecting sleeve drives the drive frame to move, thereby facilitating the lateral movement of the drive frame outside the operating table.

[0012] Specifically, a bushing that stabilizes the rotation of the threaded rod is fixed to the inner side of the operating table with screws.

[0013] By adopting the above technical solution, when the threaded rod rotates, it rotates within the bushing inside the operating table, thereby improving the stability of the threaded rod's rotation.

[0014] Specifically, both support rod A and support rod B have support blocks welded to their bottoms, and the bottom of the fixing frame has symmetrical connecting grooves that allow the support blocks to slide.

[0015] By adopting the above technical solution, when support rod A and support rod B move within the fixed frame, the support blocks welded to the bottom of support rod A and support rod B slide within the symmetrically opened connecting grooves within the fixed frame, thereby improving the stability of the movement of support rod A and support rod B.

[0016] Specifically, the input terminals of the dual-head cylinder, transmission cylinder, servo motor A, and servo motor B are all electrically connected to the power supply terminal of an external power source.

[0017] By adopting the above technical solution and connecting to an external power source, the electrical equipment can operate normally.

[0018] The beneficial effects of this utility model are:

[0019] (1) The aluminum bracket processing and grinding equipment of this utility model, when processing and grinding the aluminum bracket, firstly, the aluminum bracket is placed in the fixed frame and the connecting frame. The internal structure of the connecting frame is the same as that of the fixed frame. The limiting components in the fixed frame and the connecting frame clamp and fix the aluminum bracket. Then, the driving cylinder in the driving frame is driven by the external controller to move the top frame, so that the grinding disc contacts the surface of the aluminum bracket. Then, the servo motor B and the servo motor A are driven by the external controller. The servo motor B drives the grinding disc to rotate and grind the surface of the aluminum bracket. The servo motor A drives the lead screw to rotate. The sleeve plate outside the lead screw is limited by the external structure and drives the grinding disc on the servo motor B to move. Then, the driving component in the operating table drives the driving frame to move. Then, the driving frame drives the top frame to move. The grinding disc under the top frame operates at different positions on the surface of the aluminum bracket, thereby improving the processing and grinding efficiency of the aluminum bracket.

[0020] (2) The aluminum bracket processing and grinding equipment of this utility model, after the aluminum bracket is ground on the operating table, the limiting component in the fixed frame is released from the aluminum bracket. Then the transmission cylinder in the base frame is driven by the external controller to move the transmission plate. Subsequently, the transmission plate drives the aluminum bracket fixed in the connecting frame to move, so that the aluminum bracket moves on the operating table. Then the limiting component in the fixed frame is fixed to the aluminum bracket. Subsequently, the limiting component in the connecting frame is released from the aluminum bracket. Then the transmission cylinder drives the connecting frame on one side of the transmission plate to move to the original position. Subsequently, the limiting component in the connecting frame is fixed to the aluminum bracket again, so as to facilitate the movement of the unground part of the aluminum bracket to the operating table and improve the processing efficiency of the aluminum bracket. Attached Figure Description

[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0022] Figure 1 This is a schematic diagram of the overall structure of an aluminum bracket processing and grinding equipment according to the present invention;

[0023] Figure 2 This is a schematic diagram of the internal limiting component structure of the fixing frame of an aluminum bracket processing and grinding equipment according to the present invention;

[0024] Figure 3 This is a schematic diagram of the internal drive assembly structure of the operating table of an aluminum bracket processing and grinding equipment according to this utility model;

[0025] Figure 4 This is a schematic diagram of the internal structure of the base frame of an aluminum bracket processing and grinding equipment according to this utility model;

[0026] In the diagram: 1. Operating table; 2. Fixed frame; 3. Top frame; 4. Drive cylinder; 5. Transmission plate; 6. Drive frame; 7. Base frame; 8. Limit block A; 9. Support rod A; 10. Servo motor A; 11. Lead screw; 12. Sleeve plate; 13. Servo motor B; 14. Grinding disc; 15. Drive frame; 16. Limit assembly; 17. Double-headed cylinder; 18. Limit block B; 19. Support rod B; 20. Support block; 21. Connecting groove; 22. Drive assembly; 23. Threaded rod; 24. Bushing; 25. Connecting sleeve; 26. Gear A; 27. Gear B; 28. Fixed rod; 29. ​​Stepper motor; 30. Transmission cylinder. Detailed Implementation

[0027] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0028] To improve the processing efficiency of aluminum brackets, as one embodiment of this utility model, such as Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the aluminum bracket processing and grinding equipment of this utility model includes an operating table 1 and a drive frame 6. The operating table 1 is externally bolted to a fixing frame 2 that supports the aluminum bracket. The fixing frame 2 contains a limiting component 16 for fixing the aluminum bracket. The operating table 1 contains a drive component 22 that moves the drive frame 6. The drive frame 6 contains a drive cylinder 4 that provides power, bolted to its internal drive cylinder. The power output end of the drive cylinder 4 is keyed to a top frame 3. The top frame 3 contains a servo motor A10 that provides power, bolted to its internal drive frame. The power output end is keyed to a lead screw 11, the lead screw 11 is externally threaded to a sleeve plate 12, and the bottom of the sleeve plate 12 is bolted to a servo motor B13 that provides power. The power output end of the servo motor B13 is keyed to a grinding disc 14 for grinding the aluminum bracket. The bottom is bolted to a base frame 7 that supports the operating table 1. The base frame 7 is internally bolted to a transmission cylinder 30 that provides power. The power output end of the transmission cylinder 30 is bolted to a transversely moving transmission plate 5. One side of the transmission plate 5 is bolted to a connecting bracket 15 that fixes the aluminum bracket.

[0029] When using the aluminum bracket, the aluminum bracket is first placed into the fixed frame 2 and the connecting frame 15. The internal structure of the connecting frame 15 is the same as that of the fixed frame 2. The limiting component 16 in the fixed frame 2 and the connecting frame 15 clamps and fixes the aluminum bracket. Then, the driving cylinder 4 in the drive frame 6 is driven by the external controller to move the top frame 3, so that the grinding disc 14 contacts the surface of the aluminum bracket. Then, the servo motors B13 and A10 are driven by the external controller. The servo motor B13 drives the grinding disc 14 to rotate and grind the surface of the aluminum bracket. The servo motor A10 drives the lead screw 11 to rotate. The sleeve plate 12 outside the lead screw 11 is limited by the external structure and drives the grinding disc 14 on the servo motor B13 to move. Then, the driving component 22 in the operating table 1 drives the drive frame 6 to move. Then, the drive frame 6 drives the top frame 3 to move. The grinding disc 14 under the top frame 3 operates at different positions on the surface of the aluminum bracket, thereby improving the processing and grinding efficiency of the aluminum bracket.

[0030] After the aluminum bracket is polished on the workbench 1, the limiting component 16 in the fixing frame 2 releases the aluminum bracket from its fixation. Then, the transmission cylinder 30 in the base frame 7 is driven by the external controller to move the transmission plate 5. Subsequently, the transmission plate 5 drives the aluminum bracket fixed in the connecting frame 15 to move, so that the aluminum bracket moves on the workbench 1. Then, the limiting component 16 in the fixing frame 2 fixes the aluminum bracket. Then, the limiting component 16 in the connecting frame 15 releases the aluminum bracket from its fixation. Then, the transmission cylinder 30 drives the connecting frame 15 on one side of the transmission plate 5 to move to its original position. Then, the limiting component 16 in the connecting frame 15 fixes the aluminum bracket again, which makes it easier to move the unpolished part of the aluminum bracket to the workbench 1 and improve the processing efficiency of the aluminum bracket.

[0031] To secure the aluminum bracket that needs to be processed and polished, for example, such as... Figure 1 , Figure 2 As shown, this utility model also includes the limiting component 16, which includes a double-headed cylinder 17, a support rod A9, a support rod B19, a limiting block A8, a limiting block B18, a support block 20, and a connecting groove 21. The double-headed cylinder 17, which provides power, is bolted inside the fixing frame 2. The power output end of the double-headed cylinder 17 is symmetrically screwed to the support rod A9 and the support rod B19. A limiting block A8, which fixes the aluminum bracket, is welded to one side of the support rod A9. A limiting block B18, which fixes the aluminum bracket, is welded to the outside of the support rod B19.

[0032] When in use, when the aluminum bracket is placed on the fixed frame 2, the double-headed cylinder 17 inside the fixed frame 2 is driven by the external controller to move the support rods A9 and B19 laterally towards each other. Then, the support rod A9 drives the limit block A8 to move, and the support rod B19 drives the limit block B18 to move. Subsequently, the limit blocks A8 and B18 contact the surface of the aluminum bracket, which facilitates the fixing of the aluminum bracket that needs to be processed and polished, and prevents the aluminum bracket from shaking or shifting.

[0033] To enable the drive frame 6 to move laterally outside the control panel 1, for example, such as Figure 1 , Figure 3 As shown, this utility model also includes the following: the drive assembly 22 includes a threaded rod 23, a bushing 24, a connecting sleeve 25, a gear A26, a gear B27, a fixed rod 28, and a stepper motor 29. The stepper motor 29, which provides power, is bolted inside the operating table 1, and the power output end of the stepper motor 29 is keyed to the fixed rod 28. The gear B27, which provides transmission, is sleeved on the outside of the fixed rod 28, and the gear A26 is meshed with the outside of the gear B27. The threaded rod 23, which provides transmission, is snapped into the inside of the gear A26. The connecting sleeve 25, which drives the drive frame 6 to move, is threadedly connected to the outside of the threaded rod 23.

[0034] When in use, when the drive frame 6 needs to be moved, the stepper motor 29 inside the operating table 1 converts the received electrical energy into mechanical energy under the action of the external controller. The stepper motor 29 drives the gear B27 outside the fixed rod 28 to rotate. Then, the gear B27 drives the threaded rod 23 inside the gear A26 to rotate. The connecting sleeve 25 outside the threaded rod 23 is limited by the top structure to move laterally. Then, the connecting sleeve 25 drives the drive frame 6 to move, thereby facilitating the lateral movement of the drive frame 6 outside the operating table 1.

[0035] To improve the rotational stability of the threaded rod 23, for example, such as Figure 3 As shown, the present invention also includes a bushing 24 that is screwed on the inner side of the operating table 1 to stabilize the rotation of the threaded rod 23.

[0036] When in use, as the threaded rod 23 rotates, it rotates within the bushing 24 inside the operating table 1, thereby improving the stability of the rotation of the threaded rod 23.

[0037] To improve the stability of the movement of support rods A9 and B19, for example, such as Figure 2 As shown, the present invention also includes that the bottom of both the support rod A9 and the support rod B19 are welded with support blocks 20, and the bottom of the fixed frame 2 is symmetrically provided with connecting grooves 21 for sliding the support blocks 20.

[0038] When in use, as support rods A9 and B19 move within the fixed frame 2, the support blocks 20 welded to the bottom of support rods A9 and B19 slide within the symmetrically opened connecting grooves 21 within the fixed frame 2, thereby improving the stability of the movement of support rods A9 and B19.

[0039] For electrical equipment to function properly, for example, such as Figure 1 , Figure 2 and Figure 4As shown, this utility model also includes the input terminals of the double-headed cylinder 17, the transmission cylinder 30, the servo motor A10, and the servo motor B13, which are all electrically connected to the power supply terminal of an external power source.

[0040] When in use, the electrical equipment works normally by connecting to an external power source.

[0041] When using this utility model, when processing and polishing the aluminum bracket, the aluminum bracket is first placed in the fixed frame 2 and the connecting frame 15. The internal structure of the connecting frame 15 is the same as that of the fixed frame 2. The limiting component 16 in the fixed frame 2 and the connecting frame 15 clamps and fixes the aluminum bracket. Then, the driving cylinder 4 in the driving frame 6 is driven by the external controller to move the top frame 3, so that the grinding disc 14 contacts the surface of the aluminum bracket. Then, the servo motor B13 and the servo motor A10 are driven by the external controller. The servo motor B13 drives the grinding disc 14 to rotate and polish the surface of the aluminum bracket. The servo motor A10 drives the lead screw 11 to rotate. The sleeve plate 12 outside the lead screw 11 is limited by the external structure and drives the grinding disc 14 on the servo motor B13 to move. Then, the driving component 22 in the operating table 1 drives the driving frame 6 to move. Then, the driving frame 6 drives the top frame 3 to move. The grinding disc 14 under the top frame 3 operates at different positions on the surface of the aluminum bracket, thereby improving the processing and polishing efficiency of the aluminum bracket.

[0042] After the aluminum bracket is polished on the workbench 1, the limiting component 16 in the fixed frame 2 releases the aluminum bracket from the fixed position. Then, the transmission cylinder 30 in the base frame 7 is driven by the external controller to move the transmission plate 5. Subsequently, the transmission plate 5 drives the aluminum bracket fixed in the connecting frame 15 to move, so that the aluminum bracket moves on the workbench 1. Then, the limiting component 16 in the fixed frame 2 fixes the aluminum bracket. Subsequently, the limiting component 16 in the connecting frame 15 releases the aluminum bracket from the fixed position. Then, the transmission cylinder 30 drives the connecting frame 15 on one side of the transmission plate 5 to move to the original position. Subsequently, the limiting component 16 in the connecting frame 15 fixes the aluminum bracket again, which makes it easier to move the unpolished part of the aluminum bracket to the workbench 1 and improve the processing efficiency of the aluminum bracket.

[0043] When the aluminum bracket is placed on the fixed frame 2, the double-headed cylinder 17 inside the fixed frame 2 is driven by the external controller to move the support rods A9 and B19 laterally towards each other. Then, the support rod A9 drives the limit block A8 to move, and the support rod B19 drives the limit block B18 to move. Subsequently, the limit block A8 and the limit block B18 contact the surface of the aluminum bracket, which makes it easier to fix the aluminum bracket that needs to be processed and polished, and prevents the aluminum bracket from shaking or shifting.

[0044] When the drive frame 6 is to be moved, the stepper motor 29 inside the operating table 1 converts the received electrical energy into mechanical energy under the action of the external controller. The stepper motor 29 drives the gear B27 outside the fixed rod 28 to rotate. Then the gear B27 drives the threaded rod 23 inside the gear A26 to rotate. The connecting sleeve 25 outside the threaded rod 23 moves laterally due to the limitation of the top structure. Then the connecting sleeve 25 drives the drive frame 6 to move, thereby facilitating the lateral movement of the drive frame 6 outside the operating table 1.

[0045] When the threaded rod 23 rotates, it rotates within the bushing 24 inside the operating table 1, thereby improving the stability of the rotation of the threaded rod 23.

[0046] When support rods A9 and B19 move within the fixed frame 2, the support blocks 20 welded to the bottom of support rods A9 and B19 slide within the symmetrically opened connecting grooves 21 within the fixed frame 2, thereby improving the stability of the movement of support rods A9 and B19.

[0047] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.

Claims

1. An aluminum bracket processing and grinding equipment, characterized in that, The system includes an operating platform (1) and a drive frame (6). The operating platform (1) is externally bolted to a fixing frame (2) supporting an aluminum bracket. The fixing frame (2) contains a limiting component (16) for fixing the aluminum bracket. The operating platform (1) contains a drive assembly (22) that moves the drive frame (6). The drive frame (6) contains a drive cylinder (4) that provides power, bolted to its internal power output end. A top frame (3) is keyed to the top frame (3). A servo motor A (10) that provides power is bolted to the internal power output end of the servo motor A (10). A lead screw (11) is externally threaded to a sleeve plate (12), and a servo motor B (13) providing power is bolted to the bottom of the sleeve plate (12). A grinding disc (14) for grinding the aluminum bracket is keyed to the power output end of the servo motor B (13). A base frame (7) supporting the operating table (1) is bolted to the bottom. A transmission cylinder (30) providing power is bolted to the inside of the base frame (7), and a transmission plate (5) for lateral movement is bolted to the power output end of the transmission cylinder (30). A connecting bracket (15) for fixing the aluminum bracket is bolted to one side of the transmission plate (5).

2. The aluminum bracket processing and grinding equipment according to claim 1, characterized in that, The limiting assembly (16) includes a double-headed cylinder (17), a support rod A (9), a support rod B (19), a limiting block A (8), a limiting block B (18), a support block (20), and a connecting groove (21). The double-headed cylinder (17) that provides power is bolted inside the fixing frame (2), and the support rod A (9) and the support rod B (19) are symmetrically fixed with screws at the power output end of the double-headed cylinder (17). A limiting block A (8) that fixes the aluminum bracket is welded to one side of the support rod A (9), and a limiting block B (18) that fixes the aluminum bracket is welded to the outside of the support rod B (19).

3. The aluminum bracket processing and grinding equipment according to claim 1, characterized in that, The drive assembly (22) includes a threaded rod (23), a bushing (24), a connecting sleeve (25), a gear A (26), a gear B (27), a fixed rod (28), and a stepper motor (29). The stepper motor (29) providing power is bolted inside the operating table (1), and the power output end of the stepper motor (29) is keyed to the fixed rod (28). The fixed rod (28) is sleeved with a transmission gear B (27), and the gear B (27) is meshed with a gear A (26). The gear A (26) is snapped into the inner side of the gear A (26), and the threaded rod (23) driving the drive frame (6) is threadedly connected to the outside of the threaded rod (23).

4. The aluminum bracket processing and grinding equipment according to claim 3, characterized in that, The inner side of the operating table (1) is screwed with a bushing (24) that stabilizes the rotation of the threaded rod (23).

5. The aluminum bracket processing and grinding equipment according to claim 2, characterized in that, Both support rod A (9) and support rod B (19) have support blocks (20) welded to their bottoms. The bottom of the fixed frame (2) is symmetrically provided with connecting grooves (21) that allow the support blocks (20) to slide.

6. The aluminum bracket processing and grinding equipment according to claim 2, characterized in that, The input terminals of the double-headed cylinder (17), transmission cylinder (30), servo motor A (10), and servo motor B (13) are all electrically connected to the power supply terminal of an external power source.