Quantum calculation optimized high-precision machining equipment for mechanical parts

By introducing support, protection, and shielding structures into mechanical parts processing equipment, the problem of vibration in shaft-type workpieces was solved, achieving high-precision grinding and safe processing results.

CN120862372AInactive Publication Date: 2025-10-31WUHAN FENGZHUO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511315879.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-16
Publication Date
2025-10-31
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In existing technologies, shaft-type workpieces cannot be supported during grinding and polishing, resulting in vibration, which affects accuracy and practicality.

Method used

A quantum computing-optimized high-precision machining equipment for mechanical parts was designed. It adopts a support structure that supports the workpiece with rollers, a protective structure that limits the distribution of debris, and a shielding structure that prevents gears and racks from colliding, thus ensuring the stability and safety of the workpiece.

Benefits of technology

It effectively reduces workpiece vibration, improves grinding and polishing accuracy, ensures operator safety, and enhances the cleanliness of the processing environment and equipment efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of machining equipment, in particular to quantum computing optimized mechanical part high-precision machining equipment which comprises a workbench, a support is fixedly assembled on the upper surface of the workbench, a clamp and a lead screw are rotationally connected into the support, and a workpiece is connected to the inner wall of the clamp in a clamped mode. A driving motor and a servo motor are fixedly assembled on the side wall of the support, the output end of the driving motor is fixedly connected with a clamp, the output end of the servo motor is fixedly connected with a lead screw, the circumferential face of the lead screw is in threaded connection with a movable frame, and a cutter and a grinding piece are detachably installed on the surface of the movable frame. And a quantum computing simulator is fixedly assembled on the side wall of the workbench. According to the grinding and polishing device, by arranging the supporting structure, when a workpiece is ground and polished, shaking can be effectively reduced through the supporting effect of the roller, the stability of the workpiece in the machining process is guaranteed, and therefore the grinding and polishing precision is improved.
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Description

Technical Field

[0001] This invention relates to the field of processing equipment technology, and in particular to a high-precision processing equipment for mechanical parts optimized by quantum computing. Background Technology

[0002] Machine tools are equipment used to change the shape, size, and properties of workpieces through cutting, grinding, stamping, etc. They are the basic equipment of industrial manufacturing. Among them, there is a type of machine tool that utilizes the superposition, entanglement, and parallel characteristics of quantum algorithms to explore multiple combinations of processing parameters, such as cutting speed, feed rate, and depth of cut, to quickly find the optimal solution in order to improve processing accuracy and efficiency.

[0003] A patent document with publication number CN212918679U discloses a CNC machining turning and grinding integrated machine, including a frame. A crossbar is fixedly connected to the middle of the upper end of the frame, and a sliding groove is formed in the middle of the upper end of the crossbar. A first hydraulic cylinder is fixedly connected to the left end of the upper end of the crossbar, and a connecting rod is fixedly connected to the driving end of the first hydraulic cylinder. A turning device is fixedly connected to the right end of the connecting rod. A shock-absorbing clamping device is fixedly inserted and connected to the middle of the left end of the frame. A second hydraulic cylinder is fixedly connected to the middle of the right end of the frame, and a pressing telescopic rod is fixedly connected to the driving end of the second hydraulic cylinder. The left end of the pressing telescopic rod passes through the right end of the frame and is fixedly connected to a center pin. A device groove is formed in the middle of the lower inner wall of the frame, and a grinding device is slidably connected within the device groove. This CNC machining turning and grinding integrated machine, by setting up a turning device and a grinding device, can perform turning and grinding of parts simultaneously, improving processing efficiency.

[0004] The above-mentioned and existing technologies have the following drawbacks: during the grinding and polishing process of shaft-type workpieces, the lack of support for the shaft-type workpieces causes them to easily vibrate during rotation, thereby affecting the grinding and polishing accuracy and reducing the accuracy and practicality of the machine tool.

[0005] Therefore, a high-precision machining equipment for mechanical parts optimized by quantum computing is proposed. Summary of the Invention

[0006] The purpose of this invention is to solve the problem that the shaft workpiece is prone to shaking during rotation due to the inability to support it, which affects the accuracy of grinding and polishing. Therefore, this invention proposes a quantum computing-optimized high-precision machining equipment for mechanical parts.

[0007] To achieve the above objectives, the present invention adopts the following technical solution: a high-precision machining equipment for mechanical parts optimized by quantum computing, comprising a worktable, a support fixedly mounted on the upper surface of the worktable, a clamp and a lead screw rotatably connected inside the support, a workpiece being engaged with the inner wall of the clamp, a drive motor and a servo motor fixedly mounted on the side wall of the support, the output end of the drive motor being fixedly connected to the clamp, the output end of the servo motor being fixedly connected to the lead screw, a movable frame being threadedly connected to the circumferential surface of the lead screw, a cutting tool and a grinding disc being detachably mounted on the surface of the movable frame, a quantum computing simulator fixedly mounted on the side wall of the worktable, and a fixing rod penetrating the movable frame being fixedly mounted on the surface of the support, and further comprising;

[0008] A support structure disposed on the upper surface of the worktable for supporting the workpiece, the support structure including a first electric push rod fixedly installed on the upper surface of the worktable and a roller for supporting the workpiece;

[0009] A protective structure disposed on the surface of the bracket to prevent debris from splashing, the protective structure including a rotating shaft rotatably mounted in the bracket, a protective plate for limiting the distribution range of debris, and a rack and gear for adjusting the position of the protective plate;

[0010] A shielding structure is provided on the side wall of the bracket to ensure the normal operation of the rack and gear. The shielding structure includes a slot on the upper surface of the bracket and a shielding cover for shielding the rack and gear.

[0011] The effects achieved by the above components are as follows: By setting up a support structure, the supporting effect of the roller can effectively reduce vibration during the grinding and polishing process, ensuring the stability of the workpiece during processing, thereby improving the precision of grinding and polishing. By setting up a protective structure, after the protective plate rotates to a suitable position during processing, it can effectively limit the distribution range of debris during processing, prevent debris from flying, and ensure the safety of operators and the cleanliness of the working environment. By setting up a shielding structure, the shield will shield components such as gears and racks, preventing workers from hitting gears and racks during the rotation of the protective plate, thus preventing injury to workers.

[0012] Preferably, a support plate is fixedly mounted on the output end of the first electric push rod, the roller is rotatably connected to the support plate, the workpiece abuts against the circumferential surface of the roller, a clamping plate is fixedly mounted on the lower surface of the support plate, an adjusting plate slides through the clamping plate, a second electric push rod is fixedly mounted on the surface of the adjusting plate, a pressure plate is fixedly mounted on the output end of the second electric push rod, a clamping hole is opened on the surface of the adjusting plate, and a bolt adapted to the clamping hole is threaded into the clamping plate.

[0013] The effects achieved by the above components are as follows: the workpiece is placed on the roller, and then the first electric actuator is activated. Its output end pushes the support plate upward, the support plate drives the roller to move upward, and the roller will drive the workpiece to move until the workpiece is aligned with the fixture. Then, the second electric actuator drives the pressure plate to move, and the balls on the pressure plate press against one end of the workpiece. After that, the workpiece will be pushed into the fixture. The supporting effect of the roller can effectively reduce vibration and ensure the stability of the workpiece during processing, thereby improving the accuracy of grinding and polishing. The pressure plate can further restrict the position of the workpiece and ensure the stability of the workpiece when rotating.

[0014] Preferably, a telescopic rod is fixedly mounted on the upper surface of the workbench, and the free end of the telescopic rod is fixedly connected to the support plate.

[0015] The effect achieved by the above components is that the telescopic rod can restrict the movement path of the support plate.

[0016] Preferably, a guide rod slides through the adjusting plate, and the guide rod is fixedly connected to the pressure plate.

[0017] The effect achieved by the above components is that the transmission rod will directly transmit the force generated by the rotation of the workpiece to the adjustment plate, thus avoiding damage to the output end of the second electric push rod.

[0018] Preferably, a plurality of ball bearings are rotatably connected inside the pressure plate, and the ball bearings abut against one end of the workpiece.

[0019] The effect achieved by the above components is that the ball bearings can reduce the friction between the workpiece and the pressure plate, and prevent the pressure plate from interfering with the rotation of the workpiece.

[0020] Preferably, the number of the card holes is several.

[0021] The effect achieved by the above-mentioned components is that by setting several locking holes, the adjustment plate can be restricted to different positions, thus improving the flexibility of use.

[0022] Preferably, the protective plate is fixedly installed on the circumferential surface of the rotating shaft, the gear is fixedly assembled at one end of the rotating shaft, a third electric actuator is fixedly assembled on the side wall of the bracket, and a rack is fixedly assembled at the output end of the third electric actuator, the rack meshing with the gear.

[0023] The effect achieved by the above components is as follows: when the third electric actuator is activated, its output end pushes the rack to move. Since the rack meshes with the gear, the gear will rotate accordingly, which in turn drives the protective plate fixed on the circumference of the rotating shaft to rotate. After the protective plate rotates to the appropriate position, it can effectively limit the distribution range of the chips during the processing, prevent chips from flying, and ensure the safety of the operators and the cleanliness of the working environment.

[0024] Preferably, a limiting plate is fixedly mounted on the side wall of the bracket, and the rack is slidably sleeved on the surface of the limiting plate.

[0025] The effect achieved by the above components is that the limiting plate can limit the movement of the rack, ensuring the stability and accuracy of the rack during movement, thereby ensuring that the protective plate can stably perform its protective function.

[0026] Preferably, the inner wall of the slot is slidably connected to an insert plate, the protective cover is fixedly connected to the insert plate, and the gear and rack are both located inside the insert plate.

[0027] The aforementioned components achieve the following effect: the shield will cover the gears and racks, preventing workers from being injured by contact with them during the rotation of the protective plate.

[0028] Preferably, the insert plate has a magnetic block embedded in it, the magnetic block abuts against the inner wall of the slot, and the bracket is made of steel.

[0029] The effect achieved by the above components is that, since the bracket is made of steel, the magnet can stably fix the insert plate in the slot, thereby ensuring the normal operation of the shield.

[0030] Compared with the prior art, the advantages and positive effects of the present invention are as follows:

[0031] 1. In this invention, by setting a support structure, the supporting effect of the roller can effectively reduce vibration when the workpiece is being ground and polished, ensuring the stability of the workpiece during the processing, thereby improving the precision of grinding and polishing.

[0032] 2. In this invention, by setting up a protective structure, the protective plate can effectively limit the distribution range of debris during processing after rotating to a suitable position, preventing debris from splashing and ensuring the safety of operators and the cleanliness of the working environment.

[0033] 3. In this invention, by setting up a shielding structure, the shield will shield the gears and racks and other components, preventing workers from hitting the gears and racks during the rotation of the protective plate and causing injury to the workers. Attached Figure Description

[0034] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0035] Figure 2 This is a schematic diagram of the disassembled structure of the bracket in this invention;

[0036] Figure 3 This is a schematic diagram of the split structure at another angle of the bracket of the present invention;

[0037] Figure 4 This is a schematic diagram of the supporting structure of the present invention;

[0038] Figure 5 This is a schematic diagram of the supporting structure of the present invention from another angle;

[0039] Figure 6 This is a schematic diagram of the structure at the third electric actuator of the present invention;

[0040] Figure 7 This is a structural schematic diagram of the third electric actuator at another angle of the present invention;

[0041] Figure 8 This is a schematic diagram of the structure of the shielding cover of the present invention.

[0042] Legend: 1. Workbench; 2. Support; 3. Fixture; 4. Workpiece; 5. Drive motor; 6. Support structure; 601. First electric actuator; 602. Support plate; 603. Roller; 604. Clamping plate; 605. Adjusting plate; 606. Second electric actuator; 607. Pressure plate; 608. Bolt; 609. Clamping hole; 610. Telescopic rod; 611. Conducting rod; 612. Ball bearing; 7. Protective structure; 71. Rotating shaft; 72. Protective plate; 73. Gear; 74. Third electric actuator; 75. Rack; 76. Limiting plate; 8. Shielding structure; 81. Slot; 82. Insert plate; 83. Shielding cover; 84. Magnetic block; 9. Lead screw; 10. Moving frame; 11. Tool; 12. Grinding disc; 13. Servo motor; 14. Fixed rod; 15. Quantum computing simulator. Detailed Implementation

[0043] To better understand the above-mentioned objectives, features, and advantages of the present invention, the present invention will be further described below in conjunction with the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0044] Numerous specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways than those described herein, and therefore the invention is not limited to the specific embodiments disclosed in the following specification.

[0045] like Figures 1-8As shown, this invention provides a high-precision machining equipment for mechanical parts optimized by quantum computing, including a worktable 1. A support 2 is fixedly mounted on the upper surface of the worktable 1. A clamp 3 and a lead screw 9 are rotatably connected inside the support 2. A workpiece 4 is engaged with the inner wall of the clamp 3. A drive motor 5 and a servo motor 13 are fixedly mounted on the side wall of the support 2. The output end of the drive motor 5 is fixedly connected to the clamp 3, and the output end of the servo motor 13 is fixedly connected to the lead screw 9. A movable frame 10 is threadedly connected to the circumferential surface of the lead screw 9. A cutting tool 11 and a grinding disc 12 are detachably mounted on the surface of the movable frame 10. A quantum computing simulator 15 is fixedly mounted on the side wall of the worktable 1. A fixing rod 14 penetrating the movable frame 10 is fixedly mounted on the surface of the support 2. The system includes: a support structure 6 disposed on the upper surface of the worktable 1 for supporting the workpiece 4, the support structure 6 including a first electric actuator 601 fixedly installed on the upper surface of the worktable 1 and a roller 603 for supporting the workpiece 4; a protective structure 7 disposed on the surface of the bracket 2 for preventing debris from splashing, the protective structure 7 including a rotating shaft 71 rotatably installed in the bracket 2, a protective plate 72 for limiting the distribution range of debris, and a rack 75 and a gear 73 for adjusting the position of the protective plate 72; and a shielding structure 8 disposed on the side wall of the bracket 2 for ensuring the normal operation of the rack 75 and the gear 73, the shielding structure 8 including a slot 81 opened on the upper surface of the bracket 2 and a shielding cover 83 for shielding the rack 75 and the gear 73.

[0046] A support plate 602 is fixedly mounted on the output end of the first electric push rod. A roller 603 is rotatably connected to the support plate 602. The workpiece 4 abuts against the circumferential surface of the roller 603. A clamping plate 604 is fixedly mounted on the lower surface of the support plate 602. An adjusting plate 605 slides through the clamping plate 604. A second electric push rod 606 is fixedly mounted on the surface of the adjusting plate 605. A pressure plate 607 is fixedly mounted on the output end of the second electric push rod 606. A clamping hole 609 is formed on the surface of the adjusting plate 605. The clamping plate 604 is internally threaded to the clamping hole 609. Using the matching bolt 608, the workpiece 4 is placed on the roller 603. Then, the first electric actuator 601 is activated, and its output end pushes the support plate 602 upward. The support plate 602 drives the roller 603 to move upward, and the roller 603 moves the workpiece 4 until the workpiece 4 is aligned with the fixture 3. Then, the second electric actuator 606 drives the pressure plate 607 to move. The ball bearings 612 on the pressure plate 607 abut against one end of the workpiece 4, and then the workpiece 4 is pushed into the fixture 3. The supporting effect of the roller 603 can effectively reduce vibration. The pressure plate 607 further restricts the position of the workpiece 4, ensuring its stability during processing and thus improving the precision of grinding and polishing. A telescopic rod 610 is fixedly mounted on the upper surface of the worktable 1, with its free end fixedly connected to the support plate 602. The telescopic rod 610 restricts the movement path of the support plate 602. A transmission rod slides through the adjusting plate 605 and is fixedly connected to the pressure plate 607. The transmission rod directly transmits the force generated by the rotation of the workpiece 4 to the adjusting plate 605, preventing damage to the output end of the second electric push rod 606. Several ball bearings 612 are rotatably connected inside the pressure plate 607, pressing against one end of the workpiece 4. The ball bearings 612 reduce the friction between the workpiece 4 and the pressure plate 607, preventing the pressure plate 607 from interfering with the rotation of the workpiece 4. Several locking holes 609 are provided, allowing the adjusting plate 605 to be restricted to different positions, improving its flexibility during use.

[0047] The protective plate 72 is fixedly installed on the circumferential surface of the rotating shaft 71. The gear 73 is fixedly assembled at one end of the rotating shaft 71. A third electric push rod 74 is fixedly assembled on the side wall of the bracket 2. A rack 75 is fixedly assembled at the output end of the third electric push rod 74. The rack 75 meshes with the gear 73. When the third electric push rod 74 is activated, its output end pushes the rack 75 to move. Since the rack 75 meshes with the gear 73, the gear 73 will rotate accordingly, thereby driving the protective plate 72 fixed on the circumferential surface of the rotating shaft 71 to rotate. After the protective plate 72 rotates to a suitable position, it can effectively limit the distribution range of debris during processing, prevent debris from splashing, and ensure the safety of operators and the cleanliness of the working environment. A limit plate 76 is fixedly assembled on the side wall of the bracket 2. The rack 75 is slidably sleeved on the surface of the limit plate 76. The limit plate 76 can limit the movement of the rack 75, ensuring the stability and accuracy of the rack 75 during movement, thereby ensuring that the protective plate 72 can stably play its protective role.

[0048] A plate 82 is slidably connected to the inner wall of slot 81. A protective cover is fixedly connected to the plate 82. Gear 73 and rack 75 are both located inside the plate 82. The shield 83 shields the gear 73 and rack 75 to prevent workers from hitting them during the rotation of the protective plate 72, thus preventing injury. A magnet 84 is embedded in the plate 82 and rests against the inner wall of slot 81. The bracket 2 is made of steel. Because the bracket 2 is made of steel, the magnet 84 can stably fix the plate 82 inside the slot 81, thereby ensuring the normal operation of the shield 83.

[0049] The overall working principle is as follows: When workpiece 4 needs to be ground and polished, workpiece 4 is placed on roller 603. Then, the first electric push rod 601 is activated, and its output end pushes the support plate 602 upward. The support plate 602 drives the roller 603 to move upward and stretches the telescopic rod 610. The telescopic rod 610 can restrict the movement path of the support plate 602. The roller 603 will drive the workpiece 4 to move until the workpiece 4 is aligned with the fixture 3. Then, the second electric push rod 606 drives the pressure plate 607 to move. The ball bearings 612 on the pressure plate 607 abut against one end of the workpiece 4. Then, the workpiece 4 is pushed into the fixture 3 and fixed with the help of the fixture 3. Then, the drive motor 5 is turned on. The output end of the drive motor 5 will drive the fixture 3 to rotate, which in turn drives the workpiece 4 to rotate. At this time, the supporting effect of the roller 603 can effectively reduce vibration and ensure the stability of the workpiece 4 during the processing, thereby improving the accuracy of grinding and polishing. The pressure plate 607 can... The ball bearings 612 further restrict the position of workpiece 4, ensuring the stability of workpiece 4 during rotation. The ball bearings 612 reduce the friction between workpiece 4 and pressure plate 607, preventing pressure plate 607 from interfering with the rotation of workpiece 4. The transmission rod directly transmits the force generated by the rotation of workpiece 4 to adjustment plate 605, preventing damage to the output end of the second electric actuator 606. When processing workpieces 4 of different sizes, the bolt 608 is turned out of the locking hole 609, and then the adjustment plate 605 is slid along the locking plate 604 to adjust the position of pressure plate 607. After adjustment, the bolt 608 is turned into the locking hole 609 to restrict the position of adjustment plate 605. By changing the position of adjustment plate 605, the stroke of the second electric actuator 606 can be reduced, facilitating rapid movement and limiting of workpiece 4. By setting several locking holes 609, adjustment plate 605 can be restricted to different positions, improving the flexibility of use.

[0050] During the machining process, the servo motor 13 drives the lead screw 9 to rotate. The lead screw 9 is threadedly connected to the moving frame 10, allowing the moving frame 10 to move along the axial direction of the lead screw 9. The cutting tool 11 and grinding disc 12, which are detachably mounted on the surface of the moving frame 10, can be replaced according to different machining requirements to realize various machining operations such as cutting and grinding of the workpiece 4. At the same time, the quantum computing simulator 15 utilizes the superposition, entanglement, and parallel characteristics of quantum algorithms to explore the combination of multiple machining parameters such as cutting speed, feed rate, and cutting depth simultaneously, quickly find the optimal solution, and feed the parameter information back to the control system of the equipment, thereby optimizing the machining process and further improving machining accuracy and efficiency.

[0051] When the equipment starts processing, the third electric actuator 74 is activated, and its output end pushes the rack 75 to move. Since the rack 75 meshes with the gear 73, the gear 73 will rotate accordingly, thereby driving the protective plate 72 fixed on the circumferential surface of the rotating shaft 71 to rotate. After the protective plate 72 rotates to the appropriate position, it can effectively limit the distribution range of debris during processing, prevent debris from splashing, and ensure the safety of operators and the cleanliness of the working environment. The limit plate 76 can limit the movement of the rack 75, ensuring the stability and accuracy of the rack 75 during movement, thereby ensuring that the protective plate 72 can stably play its protective role. The shield 83 will shield the gear 73 and rack 75 and other components, preventing the operator from hitting the gear 73 and rack 75 during the rotation of the protective plate 72, which could lead to injury. Since the bracket 2 is made of steel, the magnetic block 84 can stably fix the insert plate 82 in the slot 81, thereby ensuring the normal operation of the shield 83.

[0052] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.

Claims

1. A quantum computing-optimized high-precision machining equipment for mechanical parts, comprising a worktable (1), characterized in that: The upper surface of the workbench (1) is fixedly equipped with a bracket (2), and a clamp (3) and a lead screw (9) are rotatably connected inside the bracket (2). The inner wall of the clamp (3) is engaged with a workpiece (4). The side wall of the bracket (2) is fixedly equipped with a drive motor (5) and a servo motor (13). The output end of the drive motor (5) is fixedly connected to the clamp (3), and the output end of the servo motor (13) is fixedly connected to the lead screw (9). The circumferential surface of the lead screw (9) is threaded with a moving frame (10). The surface of the moving frame (10) is detachably equipped with a tool (11) and a grinding disc (12). The side wall of the workbench (1) is fixedly equipped with a quantum computing simulator (15). The surface of the bracket (2) is fixedly equipped with a fixing rod (14) that penetrates the moving frame (10). A support structure (6) is provided on the upper surface of the workbench (1) for supporting the workpiece (4). The support structure (6) includes a first electric push rod (601) fixedly installed on the upper surface of the workbench (1) and a roller (603) for supporting the workpiece (4). A protective structure (7) is provided on the surface of the bracket (2) to prevent debris from splashing. The protective structure (7) includes a rotating shaft (71) rotatably installed in the bracket (2), a protective plate (72) for limiting the distribution range of debris, and a rack (75) and gear (73) for adjusting the position of the protective plate (72). A shielding structure (8) is provided on the side wall of the bracket (2) to ensure the normal operation of the rack (75) and gear (73). The shielding structure (8) includes a slot (81) opened on the upper surface of the bracket (2) and a shielding cover (83) for shielding the rack (75) and gear (73).

2. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 1, characterized in that: The output end of the first electric push rod is fixedly fitted with a support plate (602). The roller (603) is rotatably connected to the support plate (602). The workpiece (4) abuts against the circumferential surface of the roller (603). The lower surface of the support plate (602) is fixedly fitted with a clamping plate (604). An adjusting plate (605) slides through the clamping plate (604). The surface of the adjusting plate (605) is fixedly fitted with a second electric push rod (606). The output end of the second electric push rod (606) is fixedly fitted with a pressure plate (607). The surface of the adjusting plate (605) is provided with a clamping hole (609). The clamping plate (604) is threaded with a bolt (608) that matches the clamping hole (609).

3. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 2, characterized in that: The upper surface of the workbench (1) is fixedly fitted with a telescopic rod (610), and the free end of the telescopic rod (610) is fixedly connected to the support plate (602).

4. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 2, characterized in that: A guide rod slides through the adjusting plate (605), and the guide rod is fixedly connected to the pressure plate (607).

5. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 2, characterized in that: The pressure plate (607) is rotatably connected to a number of balls (612), which abut against one end of the workpiece (4).

6. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 2, characterized in that: The number of the card slots (609) is several.

7. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 1, characterized in that: The protective plate (72) is fixedly installed on the circumferential surface of the rotating shaft (71), the gear (73) is fixedly assembled on one end of the rotating shaft (71), the side wall of the bracket (2) is fixedly assembled with a third electric push rod (74), the output end of the third electric push rod (74) is fixedly assembled with a rack (75), and the rack (75) meshes with the gear (73).

8. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 7, characterized in that: The side wall of the bracket (2) is fixedly fitted with a limiting plate (76), and the rack (75) is slidably sleeved on the surface of the limiting plate (76).

9. The quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 7, characterized in that: The inner wall of the slot (81) is slidably connected to the insert plate (82), the protective cover is fixedly connected to the insert plate (82), and the gear (73) and rack (75) are both located inside the insert plate (82).

10. A quantum computing-optimized high-precision machining equipment for mechanical parts according to claim 9, characterized in that: The insert plate (82) has a magnetic block (84) embedded in it. The magnetic block (84) abuts against the inner wall of the slot (81). The bracket (2) is made of steel.

Citation Information

Patent Citations

  • Turning and polishing integrated machine for numerical control machining

    CN212918679U