Hardware machining and polishing device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANSHUI GUANZHONG MECHANICAL & ELECTRICAL CO LTD
- Filing Date
- 2024-10-23
- Publication Date
- 2026-08-07
AI Technical Summary
[0004]本实用新型的主要目的在于提供一种五金件加工打磨装置,本实用新型通过设置的往复组件、驱动板A、驱动板B、限位组件、轴承块、夹板A、夹板B、双向丝杆、伺服电机A和伺服电机B,解决了现有的五金件加工打磨装置在使用时,五金件的加工效率低下的问题
[0017]本实用新型所述的一种五金件加工打磨装置,当要对五金件加工打磨处理时,先将五金件放置到操作台中间,然后操作台外的伺服电机A受外部控制器作用带动双向丝杆转动,双向丝杆外的传动块A和传动块B受外部限位结构影响均在双向丝杆外的横向移动,然后传动块A带动驱动板A移动,使得驱动板A内侧伺服电机B上的夹板A与五金件一端接触,传动块B带动驱动板B移动,使得驱动板B内的轴承块上的夹板B与五金件另一端接触,然后夹板A和夹板B内部的限位组件将五金件进行夹持固定,然后电动推杆带动驱动电机上的打磨片与五金件表面接触,随后机架内的往复组件带动打磨片在五金件表面移动,同时驱动板A内的伺服电机A受外部控制器作用带动夹板A和夹板B转动,夹板B通过驱动板B上的轴承块转动,随后夹板A和夹板B内的五金件得到转动,使得打磨片对五金件不同位置打磨处理,提高五金件的加工效率。
Smart Images

Figure CN224601243U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hardware processing technology, specifically to a hardware processing and polishing device. Background Technology
[0002] Hardware components are widely used in modern society, including hardware tools, hardware parts, daily-use hardware, building hardware, and security products. The main materials for hardware components include copper, stainless steel, zinc alloy, steel, aluminum, or aluminum alloy. For example, copper and stainless steel are commonly used materials in locks, and these materials have different properties and applicable scenarios.
[0003] However, existing hardware processing and grinding equipment typically involves placing the hardware to be processed on an operating table, clamping it with a clamp on the table, and then using a motor to drive a grinding disc to grind the hardware. However, after one side of the hardware is ground, it needs to be unsecured, and then the operator needs to manually flip the hardware over and clamp it again. The operation is cumbersome and labor-intensive, which affects the processing efficiency of the hardware. Therefore, a hardware processing and grinding device is needed. Utility Model Content
[0004] The main purpose of this utility model is to provide a hardware processing and polishing device. This utility model solves the problem of low processing efficiency of hardware parts in existing hardware processing and polishing devices by setting up a reciprocating component, drive plate A, drive plate B, limit component, bearing block, clamping plate A, clamping plate B, bidirectional lead screw, servo motor A and servo motor B.
[0005] The technical solution adopted by this utility model to solve its technical problem is a hardware processing and grinding device, including an operating table and a frame. A reciprocating assembly is arranged inside the frame, and an electric telescopic rod for providing power is bolted to the bottom of the reciprocating assembly. A drive motor for providing power is screwed to the power output end of the electric telescopic rod, and a grinding disc for grinding the hardware is keyed to the power output end of the drive motor. A servo motor A for providing power is bolted to the outside of the operating table, and a bidirectional lead screw is keyed to the power output end of the servo motor A. A transmission block A and a transmission block B are threaded to the outside of the bidirectional lead screw, and the transmission block A is located to the left of the transmission block B. A drive plate A is welded to the outside of the transmission block A, and a servo motor B for providing power is bolted to one side of the drive plate A. A clamping plate A is keyed to the power output end of the servo motor B. A limiting assembly for fixing the hardware is arranged inside the clamping plate A. A drive plate B is bolted to the outside of the transmission block B, and a bearing block is screwed to the inside of the drive plate B. A clamping plate B for holding the hardware is arranged inside the bearing block.
[0006] By adopting the above technical solution, when processing and polishing hardware parts, the hardware parts are first placed in the middle of the operating table. Then, the servo motor A outside the operating table is driven by an external controller to rotate the bidirectional lead screw. The transmission blocks A and B outside the bidirectional lead screw are both moved laterally outside the bidirectional lead screw due to the influence of the external limiting structure. Then, the transmission block A drives the drive plate A to move, so that the clamping plate A on the servo motor B inside the drive plate A contacts one end of the hardware part. The transmission block B drives the drive plate B to move, so that the clamping plate B on the bearing block inside the drive plate B contacts the hardware part. The other end contacts the metal part, and then the limiting components inside clamping plates A and B clamp the metal part. Then, the electric push rod drives the grinding disc on the drive motor to contact the surface of the metal part. Subsequently, the reciprocating component in the frame drives the grinding disc to move on the surface of the metal part. At the same time, the servo motor A in drive plate A is driven by the external controller to rotate clamping plates A and B. Clamping plate B rotates through the bearing block on drive plate B. Subsequently, the metal part in clamping plates A and B rotates, so that the grinding disc grinds different positions of the metal part, improving the processing efficiency of the metal part.
[0007] Specifically, the reciprocating assembly includes a servo motor C, a one-way lead screw, a drive block, a drive frame, an electric push rod, a slide rod, a fixed rod, a fixed block, and a fixed sleeve. The servo motor C, which provides power, is bolted inside the frame, and the power output end of the servo motor C is keyed to the one-way lead screw. The one-way lead screw is threaded to the drive block, and the drive frame is welded to the bottom of the drive block. The electric push rod is screwed inside the drive frame, and the power output end of the electric push rod is screwed to a fixed block connected to the electric telescopic rod.
[0008] By adopting the above technical solution, when the position of the grinding disc needs to be adjusted, the servo motor C inside the frame converts the received electrical energy into mechanical energy under the action of the external controller. The servo motor C drives the one-way lead screw to rotate, and the drive block outside the one-way lead screw is driven by the external limiting structure to move the drive frame laterally. At the same time, the electric push rod inside the drive frame is driven by the external controller to move the fixed block, so that the fixed block drives the drive motor on the electric telescopic rod to move, so that the grinding disc on the drive motor moves to different positions on the hardware, thereby improving the processing efficiency of the hardware.
[0009] Specifically, the limiting assembly includes a handle, a support sleeve A, a support sleeve B, a threaded rod, a limiting block A, and a limiting block B. A handle is inserted into the outer side of the clamping plate A, and a threaded rod is welded to one side of the handle. The support sleeve A and the support sleeve B are externally threaded to the threaded rod. A limiting block A for fixing the hardware is welded to the outer side of the support sleeve A, and a limiting block B for fixing the hardware is welded to the outer side of the support sleeve B.
[0010] By adopting the above technical solution, when one end of the hardware is placed inside the clamping plate A, the handle outside the clamping plate A is rotated, and then the handle drives the threaded rod to rotate. The threaded rod is a double-threaded rod. Subsequently, the support sleeves A and B outside the threaded rod move laterally outside the threaded rod under the action of the external limiting structure. Then, the support sleeve A drives the limiting block A to move, and the support sleeve B drives the limiting block B to move, so that the limiting block A and the limiting block B fix the hardware inside the clamping plate A. At the same time, the internal structure of the clamping plate B is the same as the internal structure of the clamping plate A. When the other end of the hardware is placed inside the clamping plate B, the limiting component inside the clamping plate B fixes the other end of the hardware inside the clamping plate B, thereby facilitating the clamping and fixing of the hardware that needs to be processed and polished.
[0011] Specifically, a sliding rod is slidably connected to the inner side of the fixed block, a fixed sleeve is sleeved on the outside of the drive frame, and a fixed rod is slidably connected to the inner side of the fixed sleeve.
[0012] By adopting the above technical solution, when the drive frame moves inside the frame, the fixed sleeve outside the drive frame slides on the fixed rod, thereby improving the stability of the drive frame movement.
[0013] When the fixed block moves within the drive frame, it slides outside the slide rod welded inside the drive frame, improving the stability of the fixed block's movement.
[0014] Specifically, the input terminals of the servo motor C, electric push rod, electric telescopic rod, drive motor, servo motor A, servo motor B, and servo motor C are all electrically connected to the power supply terminal of an external power source.
[0015] By adopting the above technical solution and connecting to an external power source, the electrical equipment can operate normally.
[0016] The beneficial effects of this utility model are:
[0017] The hardware processing and polishing device of this utility model, when processing and polishing hardware parts, first places the hardware parts in the middle of the operating table. Then, the servo motor A outside the operating table is driven by an external controller to rotate the bidirectional lead screw. The transmission block A and transmission block B outside the bidirectional lead screw are both moved laterally outside the bidirectional lead screw due to the influence of the external limiting structure. Then, the transmission block A drives the drive plate A to move, so that the clamping plate A on the servo motor B inside the drive plate A contacts one end of the hardware part. The transmission block B drives the drive plate B to move, so that the clamping plate B on the bearing block inside the drive plate B... The other end of the hardware part comes into contact with the limiting components inside clamping plates A and B, which then clamp and fix the hardware part. The electric push rod drives the grinding disc on the drive motor to contact the surface of the hardware part. Subsequently, the reciprocating component inside the frame drives the grinding disc to move on the surface of the hardware part. At the same time, the servo motor A inside drive plate A is driven by the external controller to rotate clamping plates A and B. Clamping plate B rotates through the bearing block on drive plate B. Subsequently, the hardware part inside clamping plates A and B rotates, so that the grinding disc grinds different positions of the hardware part, improving the processing efficiency of the hardware part. Attached Figure Description
[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0019] Figure 1 This is a schematic diagram of the overall structure of a hardware processing and polishing device according to the present invention;
[0020] Figure 2 This is a schematic diagram of the reciprocating component structure of a hardware processing and polishing device according to the present invention;
[0021] Figure 3 This is a schematic diagram of the limiting component structure of a hardware processing and polishing device according to the present invention;
[0022] In the diagram: 1. Frame; 2. Servo motor A; 3. Transmission block A; 4. Drive plate A; 5. Servo motor B; 6. Clamping plate A; 7. Operating table; 8. Reciprocating assembly; 9. Servo motor C; 10. One-way lead screw; 12. Electric telescopic rod; 13. Drive motor; 14. Grinding disc; 15. Two-way lead screw; 16. Transmission block B; 17. Clamping plate B; 18. Bearing block; 19. Drive plate B; 20. Drive block; 21. Drive frame; 22. Fixing sleeve; 23. Fixing block; 24. Slide rod; 25. Electric push rod; 26. Fixing rod; 27. Limiting block A; 28. Support sleeve A; 29. Handle; 30. Limiting assembly; 31. Limiting block B; 32. Support sleeve B; 33. Threaded rod. Detailed Implementation
[0023] 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.
[0024] To improve the processing efficiency of hardware parts, as one embodiment of this utility model, such as Figure 1 , Figure 2 and Figure 3 As shown, the hardware processing and polishing device of this utility model includes an operating table 7 and a frame 1. A reciprocating assembly 8 is arranged inside the frame 1, and an electric telescopic rod 12 providing power is bolted to the bottom of the reciprocating assembly 8. A drive motor 13 providing power is screwed to the power output end of the electric telescopic rod 12, and a polishing disc 14 for polishing hardware is keyed to the power output end of the drive motor 13. A servo motor A2 providing power is bolted to the outside of the operating table 7, and a bidirectional lead screw 15 is keyed to the power output end of the servo motor A2. Transmission block A3 and transmission block B16 are externally threaded, with transmission block A3 located to the left of transmission block B16. A drive plate A4 is welded to the outside of transmission block A3, and a servo motor B5 providing power is bolted to one side of drive plate A4. A clamping plate A6 is keyed to the power output end of servo motor B5. A limiting component 30 for fixing hardware is provided inside clamping plate A6. A drive plate B19 is bolted to the outside of transmission block B16, and a bearing block 18 is screwed to the inside of drive plate B19. A clamping plate B17 for holding hardware is provided inside bearing block 18.
[0025] In use, when processing and polishing hardware parts, first place the hardware parts in the middle of the operating table 7. Then, the servo motor A2 outside the operating table 7 is driven by the external controller to rotate the bidirectional lead screw 15. The transmission block A3 and transmission block B16 outside the bidirectional lead screw 15 move laterally outside the bidirectional lead screw 15 due to the influence of the external limiting structure. Then, the transmission block A3 drives the drive plate A4 to move, so that the clamping plate A6 on the servo motor B5 inside the drive plate A4 contacts one end of the hardware part. The transmission block B16 drives the drive plate B19 to move, so that the clamping plate B17 on the bearing block 18 inside the drive plate B19 contacts the other end of the hardware part. Then, the limiting components 30 inside clamping plates A6 and B17 clamp and fix the hardware. Then, the electric push rod 25 drives the grinding disc 14 on the drive motor 13 to contact the surface of the hardware. Subsequently, the reciprocating component 8 in the frame 1 drives the grinding disc 14 to move on the surface of the hardware. At the same time, the servo motor A2 in the drive plate A4 is driven by the external controller to rotate clamping plates A6 and B17. Clamping plate B17 rotates through the bearing block 18 on the drive plate B19. Subsequently, the hardware in clamping plates A6 and B17 rotates, so that the grinding disc 14 grinds different positions of the hardware, improving the processing efficiency of the hardware.
[0026] To improve the processing efficiency of hardware parts, for example, such as Figure 2As shown, this utility model also includes the reciprocating assembly 8, which includes a servo motor C9, a one-way lead screw 10, a drive block 20, a drive frame 21, an electric push rod 25, a slide rod 24, a fixing rod 26, a fixing block 23, and a fixing sleeve 22. The servo motor C9, which provides power, is bolted inside the frame 1, and the one-way lead screw 10 is keyed to the power output end of the servo motor C9. The drive block 20 is threaded to the outside of the one-way lead screw 10, and the drive frame 21 is welded to the bottom of the drive block 20. The electric push rod 25 is screwed inside the drive frame 21, and the fixing block 23, which is connected to the electric telescopic rod 12, is screwed to the power output end of the electric push rod 25.
[0027] When the position of the grinding disc 14 needs to be adjusted, the servo motor C9 inside the frame 1 converts the received electrical energy into mechanical energy under the action of the external controller. The servo motor C9 drives the one-way lead screw 10 to rotate. The drive block 20 outside the one-way lead screw 10 is driven by the external limiting structure to move the drive frame 21 laterally. At the same time, the electric push rod 25 inside the drive frame 21 is driven by the external controller to move the fixed block 23, so that the fixed block 23 drives the drive motor 13 on the electric telescopic rod 12 to move, so that the grinding disc 14 on the drive motor 13 moves to different positions on the hardware, thereby improving the processing efficiency of the hardware.
[0028] To clamp and fix the hardware parts that need to be processed and polished, for example, such as Figure 3 As shown, the present invention also includes the limiting component 30, which includes a handle 29, a support sleeve A28, a support sleeve B32, a threaded rod 33, a limiting block A27, and a limiting block B31. The handle 29 is inserted into the outer side of the clamping plate A6, and a threaded rod 33 is welded to one side of the handle 29. The support sleeve A28 and the support sleeve B32 are externally threaded to the threaded rod 33. A limiting block A27 for fixing the hardware is welded to the outer side of the support sleeve A28, and a limiting block B31 for fixing the hardware is welded to the outer side of the support sleeve B32.
[0029] In use, when one end of the hardware is placed inside the clamping plate A6, the handle 29 outside the clamping plate A6 is rotated. The handle 29 then drives the threaded rod 33 to rotate. The threaded rod 33 is a double-threaded rod 33. Subsequently, the support sleeves A28 and B32 outside the threaded rod 33 move laterally outside the threaded rod 33 under the action of the external limiting structure. Then, the support sleeve A28 drives the limiting block A27 to move, and the support sleeve B32 drives the limiting block B31 to move, so that the limiting blocks A27 and B31 fix the hardware inside the clamping plate A6. At the same time, the internal structure of the clamping plate B17 is the same as that of the clamping plate A6. When the other end of the hardware is placed inside the clamping plate B17, the limiting component 30 inside the clamping plate B17 fixes the other end of the hardware inside the clamping plate B17, thereby facilitating the clamping and fixing of the hardware that needs to be processed and polished.
[0030] To improve the stability of the movement of the drive frame 21 and the fixed block 23, for example, such as Figure 2 As shown, the present invention also includes a sliding rod 24 slidably connected to the inner side of the fixing block 23, a fixing sleeve 22 sleeved on the outside of the drive frame 21, and a fixing rod 26 slidably connected to the inner side of the fixing sleeve 22.
[0031] When in use, when the drive frame 21 moves within the frame 1, the fixed sleeve 22 outside the drive frame 21 slides on the fixed rod 26, improving the stability of the drive frame 21's movement.
[0032] When the fixed block 23 moves within the drive frame 21, the fixed block 23 slides outside the slide rod 24 welded inside the drive frame 21, thereby improving the stability of the movement of the fixed block 23.
[0033] For electrical equipment to function properly, for example, such as Figure 1 , Figure 2 and Figure 3 As shown, this utility model also includes the fact that the input terminals of the servo motor C9, electric push rod 25, electric telescopic rod 12, drive motor 13, servo motor A2, servo motor B5 and servo motor C9 are all electrically connected to the power supply terminal of an external power source.
[0034] When in use, the electrical equipment works normally by connecting to an external power source.
[0035] In use, when processing and polishing hardware parts, the hardware parts are first placed in the middle of the operating table 7. Then, the servo motor A2 outside the operating table 7 is driven by the external controller to rotate the bidirectional lead screw 15. The transmission block A3 and transmission block B16 outside the bidirectional lead screw 15 move laterally outside the bidirectional lead screw 15 due to the influence of the external limiting structure. Then, the transmission block A3 drives the drive plate A4 to move, so that the clamping plate A6 on the servo motor B5 inside the drive plate A4 contacts one end of the hardware part. The transmission block B16 drives the drive plate B19 to move, so that the clamping plate B17 on the bearing block 18 inside the drive plate B19 contacts the other end of the hardware part. The hardware parts are clamped and fixed by the limiting components 30 inside the clamping plates A6 and B17. Then, the electric push rod 25 drives the grinding disc 14 on the drive motor 13 to contact the surface of the hardware parts. Subsequently, the reciprocating component 8 in the frame 1 drives the grinding disc 14 to move on the surface of the hardware parts. At the same time, the servo motor A2 in the drive plate A4 is driven by the external controller to rotate the clamping plates A6 and B17. The clamping plate B17 rotates through the bearing block 18 on the drive plate B19. Subsequently, the hardware parts in the clamping plates A6 and B17 are rotated, so that the grinding disc 14 grinds different positions of the hardware parts, improving the processing efficiency of the hardware parts.
[0036] When the position of the grinding disc 14 needs to be adjusted, the servo motor C9 inside the frame 1 converts the received electrical energy into mechanical energy under the action of the external controller. The servo motor C9 drives the one-way lead screw 10 to rotate. The drive block 20 outside the one-way lead screw 10 is driven by the external limiting structure to move the drive frame 21 laterally. At the same time, the electric push rod 25 inside the drive frame 21 is driven by the external controller to move the fixed block 23, so that the fixed block 23 drives the drive motor 13 on the electric telescopic rod 12 to move, so that the grinding disc 14 on the drive motor 13 moves to different positions on the hardware, thereby improving the processing efficiency of the hardware.
[0037] When one end of the hardware is placed inside the clamping plate A6, the handle 29 outside the clamping plate A6 is rotated. Then the handle 29 drives the threaded rod 33 to rotate. The threaded rod 33 is a double-threaded rod 33. Subsequently, the support sleeve A28 and support sleeve B32 outside the threaded rod 33 move laterally outside the threaded rod 33 under the action of the external limiting structure. Then the support sleeve A28 drives the limiting block A27 to move, and the support sleeve B32 drives the limiting block B31 to move, so that the limiting block A27 and the limiting block B31 fix the hardware inside the clamping plate A6. At the same time, the internal structure of the clamping plate B17 is the same as the internal structure of the clamping plate A6. When the other end of the hardware is placed inside the clamping plate B17, the limiting component 30 inside the clamping plate B17 fixes the other end of the hardware inside the clamping plate B17, which makes it easy to clamp and fix the hardware that needs to be processed and polished.
[0038] When the drive frame 21 moves within the frame 1, the fixed sleeve 22 outside the drive frame 21 slides on the fixed rod 26, improving the stability of the drive frame 21's movement.
[0039] When the fixed block 23 moves within the drive frame 21, the fixed block 23 slides outside the slide rod 24 welded inside the drive frame 21, thereby improving the stability of the movement of the fixed block 23.
[0040] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A hardware parts processing and polishing device, characterized in that, The system includes an operating table (7) and a frame (1). A reciprocating assembly (8) is provided inside the frame (1), and an electric telescopic rod (12) for providing power is bolted to the bottom of the reciprocating assembly (8). A drive motor (13) for providing power is screwed to the power output end of the electric telescopic rod (12), and a grinding disc (14) for grinding hardware is keyed to the power output end of the drive motor (13). A servo motor A (2) for providing power is bolted to the outside of the operating table (7), and a bidirectional lead screw (15) is keyed to the power output end of the servo motor A (2). A transmission block A (3) is threaded to the outside of the bidirectional lead screw (15). The transmission block B (16) and the transmission block A (3) are located on the left side of the transmission block B (16). The transmission block A (3) is welded to the outside of the transmission block A (4). The servo motor B (5) that provides power is bolted to one side of the drive plate A (4). The power output end of the servo motor B (5) is keyed to the clamping plate A (6). The clamping plate A (6) is provided with a limiting component (30) for fixing the hardware. The transmission block B (16) is bolted to the outside of the drive plate B (19). The bearing block B (19) is screwed to the inside of the drive plate B (19). The clamping plate B (17) that clamps the hardware is provided inside the bearing block (18).
2. The hardware processing and polishing device according to claim 1, characterized in that, The reciprocating assembly (8) includes a servo motor C (9), a one-way lead screw (10), a drive block (20), a drive frame (21), an electric push rod (25), a slide rod (24), a fixing rod (26), a fixing block (23), and a fixing sleeve (22). The servo motor C (9) providing power is bolted inside the frame (1), and the one-way lead screw (10) is keyed to the power output end of the servo motor C (9). The drive block (20) is threaded to the outside of the one-way lead screw (10), and the drive frame (21) is welded to the bottom of the drive block (20). The electric push rod (25) is fixed inside the drive frame (21) with screws, and the fixing block (23) connected to the electric telescopic rod (12) is fixed to the power output end of the electric push rod (25) with screws.
3. The hardware processing and polishing device according to claim 1, characterized in that, The limiting component (30) includes a handle (29), a support sleeve A (28), a support sleeve B (32), a threaded rod (33), a limiting block A (27), and a limiting block B (31). The handle (29) is inserted into the outside of the clamping plate A (6), and a threaded rod (33) is welded to one side of the handle (29). The support sleeve A (28) and the support sleeve B (32) are threadedly connected to the outside of the threaded rod (33). A limiting block A (27) for fixing the hardware is welded to the outside of the support sleeve A (28), and a limiting block B (31) for fixing the hardware is welded to the outside of the support sleeve B (32).
4. The hardware processing and polishing device according to claim 2, characterized in that, The fixed block (23) is slidably connected to the inner side of the sliding rod (24), the drive frame (21) is sleeved with a fixed sleeve (22), and the fixed sleeve (22) is slidably connected to the inner side of the fixed rod (26).
5. The hardware processing and polishing device according to claim 2, characterized in that, The input terminals of the servo motor C (9), electric push rod (25), electric telescopic rod (12), drive motor (13), servo motor A (2), servo motor B (5) and servo motor C (9) are all electrically connected to the power supply terminal of the external power source.