Non-destructive clamping device based on high refractive index optical glass and clamping method thereof

By designing a non-destructive clamping device that coordinates the support platform and components, the problems of rapid fixation, safe movement, and convenient cleaning of high-refractive-index optical glass were solved, improving processing efficiency and quality.

CN117428954BActive Publication Date: 2025-11-11NANTONG XIANGYANG OPTICAL ELEMENT
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Patent Information

Application Number
CN202311683407.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-12-09
Publication Date
2025-11-11
Estimated Expiration
2043-12-09

AI Technical Summary

Technical Problem

Existing optical glass clamping devices cannot quickly fix high-refractive-index optical glass, are unsafe to move, inconvenient to eject, and difficult to clean, affecting processing quality and efficiency.

Method used

A non-destructive clamping device was designed, comprising a support platform, a placement slot, a clamping assembly, a buffer assembly, an ejection assembly, and a dust removal assembly. The device utilizes components such as a motor, spring, sensor, and fan to achieve rapid fixing, buffering, ejection, and cleaning of optical glass.

Benefits of technology

It enables rapid fixation and safe movement of high-refractive-index optical glass, reduces manual labor, improves processing quality and efficiency, and ensures the safety and ease of cleaning during the processing.

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Abstract

This invention discloses a non-destructive clamping device and method for high-refractive-index optical glass. The invention relates to the field of optical glass processing technology and includes a support platform, a placement groove, and a control component. The placement groove is provided through the top of the support platform, and the control component is installed on the inner wall of the support platform. The control component is used for controlled clamping of the high-refractive-index optical glass. The invention utilizes a buffer block to provide movement buffer for the first support. The rotation of a first motor drives a collecting wheel, which in turn moves a pull rope. The pull rope moves the first support, which in turn moves a first sliding sleeve. The movement of the first sliding sleeve causes the first support to move a first spring, which in turn moves a pressure plate. This movement of the pressure plate then moves the high-refractive-index optical glass, quickly fixing it in place. This achieves the function of rapid fixing and convenient processing of the high-refractive-index optical glass.
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Description

Technical Field

[0001] This invention relates to the field of optical glass processing technology, specifically to a non-destructive clamping device and clamping method based on high refractive index optical glass. Background Technology

[0002] Optical glass is a type of glass that can alter the direction of light propagation and change the relative spectral distribution of ultraviolet, visible, or infrared light. In a narrow sense, optical glass refers to colorless optical glass. However, optical glass also includes colored optical glass, laser glass, quartz optical glass, and radiation-resistant glass. Optical glass is used to manufacture lenses, prisms, mirrors, and windows in optical instruments. For glass materials used in the manufacture of lenses, prisms, mirrors, and windows in optical instruments or mechanical systems, the clamping device is a crucial step in the processing. Existing non-destructive clamping devices for high-refractive-index optical glass cannot quickly fix high-refractive-index optical glass, making processing inconvenient.

[0003] The shortcomings of existing optical glass clamping devices are:

[0004] 1. Patent document JP2012198071A discloses an apparatus and method for inspecting optical glass, which includes "a light source 15 and an optical system 10 disposed on one side of a mounting portion 21; and a reflector 40 disposed on the other side of the mounting portion 21 and having a reflective surface inclined relative to the optical axis of the optical system. A clamp 30 having a clamp opening 31c extending between its top and bottom surfaces and a glass holding device 32 for holding the glass 35 in a region adjacent to the clamp opening 31c can be used. Therefore, it is possible to prevent the inspection area from intersecting with the light path of the light applied from the light source 15 to the inspection area through the reflected light from the glass 35, the clamp opening 31c and the mounting portion opening 21c, and then incident on the reflector 40 and reflected out." However, the high-refractive-index optical glass of the existing optical glass clamping device cannot be quickly fixed and is inconvenient to process.

[0005] 2. Patent document CN116572120B discloses an automatic clamping optical glass polishing device, which "ensures that during workpiece polishing, debris on the workpiece can be removed in time and the workpiece and polishing components can be cooled down. The invention can drive the rotating seat to change position according to actual needs through a shifting motor, so that the first polishing wheel can polish different positions of the workpiece. This ensures that even when the contact area between the first polishing wheel and the workpiece is small, the first polishing wheel can still complete the polishing work in one go, increasing work efficiency while ensuring polishing quality and stability." However, existing optical glass clamping devices cannot provide a buffer when high refractive index optical glass moves, making the processing process unsafe.

[0006] 3. Patent document CN112548765A discloses an adaptive clamping device for polishing optical glass sheets, "and a conductive metal ring is installed on the ring frame. In this adaptive clamping device for polishing optical glass sheets, the glass sheet to be processed is placed on the support plate, and the repulsive force between the same magnetic poles of the first magnet and the second magnet is used to push the crossbar to slide within the horizontal groove, which ultimately facilitates the crossbar to push the take-up reel to rotate, making it convenient to wind up the traction wire. At this time, the traction wire pulls the clamping rod, which makes it convenient for the clamping rod to clamp and fix the edge of the optical glass sheet." However, the existing optical glass clamping devices cannot quickly eject high-refractive-index optical glass, making it inconvenient to handle and increasing manual labor.

[0007] 4. Patent document CN217757633U discloses an optical glass clamping device, which "can solve the problem of inconvenient operation of optical glass due to clamping blocks at the current stage; at the same time, it uses clamping blocks and L-shaped clamping plates for limiting, and uses a drive motor to drive the clamping blocks to make relative movements, so as to finally fix the optical glass on the vacuum suction cup, which can reduce the limitation of coating; and uses rubber rollers in combination with springs and limiting plates for buffering, and uses infrared sensors for monitoring, so as to solve the problem that the surface of optical glass is easily worn and broken." However, the filter plate of the existing optical glass clamping device cannot be moved out quickly, which is inconvenient for cleaning and reduces the quality of high refractive index optical glass processing. Summary of the Invention

[0008] The purpose of this invention is to provide a non-destructive clamping device and clamping method based on high refractive index optical glass, so as to solve the technical problems mentioned in the background art and the unsafe processing when the optical glass clamping device cannot buffer the movement of high refractive index optical glass.

[0009] To achieve the above objectives, the present invention provides the following technical solution: a non-destructive clamping device based on high refractive index optical glass, comprising a support platform, a placement groove, and a control component. The placement groove is provided through the top of the support platform, and the control component is installed on the inner wall of the support platform. The control component is used for the controlled clamping of the high refractive index optical glass, and a pressing component is provided on the top of the support platform for pressing the high refractive index optical glass.

[0010] The clamping assembly includes a first support box mounted on the top of a support platform. A first support rod is mounted on the inner wall of the first support box, and a first sliding sleeve is mounted on the outer wall of the first support rod. The outer wall of the first support box has a first opening, and a first bracket is installed through the inner wall of the first opening. One end of the first bracket is connected to the outer wall of the first sliding sleeve. A first spring is mounted on the outer wall of the first bracket, and one end of the first spring is connected to the inner wall of the first support box. A buffer block is mounted on the inner wall of the first support box. A first motor is mounted on the outer wall of the first support rod. A collecting wheel is mounted on the output end of the first motor. A pull rope is mounted on the outer wall of the collecting wheel, and one end of the pull rope is connected to the outer wall of the first bracket. A pressure plate is mounted on one end of the first bracket.

[0011] Preferably, the outer wall of the placement slot is equipped with a buffer assembly for buffering the high refractive index optical glass during placement, the inner wall of the support platform is equipped with an ejection assembly for rapid ejection of the high refractive index optical glass after processing, and the top of the support platform is equipped with a dust removal assembly for adsorbing fly ash around the clamping device.

[0012] Preferably, the buffer assembly includes a support block installed on the outer wall of the placement groove. The top of the support block has a second opening, and a buffer cotton is installed through the inner wall of the second opening. A damping block is installed on the inner wall of the support block. A first pressure sensor is installed at one end of the damping block, and one end of the first pressure sensor contacts the bottom of the buffer cotton. A third spring is installed on the inner wall of the support block, and one end of the third spring is connected to the bottom of the buffer cotton. A first slide is installed on the inner wall of the support block, and a first pulley is installed on the inner wall of the first slide, and one end of the first pulley is connected to the outer wall of the buffer cotton.

[0013] Preferably, the inner wall of the support block is equipped with a second slide rail, the inner wall of the second slide rail is equipped with a second pulley, one end of the second pulley is equipped with a third support rod, and one end of the third support rod is connected to the outer wall of the damping block, so that the second pulley can move on the inner wall of the second slide rail.

[0014] Preferably, the ejection assembly includes a fourth support rod installed on the inner wall of the support platform, a second sleeve installed on the outer wall of the fourth support rod, a third opening on the outer wall of the placement slot, a top plate installed through the inner wall of the third opening, a protective block installed on the top of the top plate, a second motor installed on the inner wall of the support platform, a threaded rod installed at the output end of the second motor, a threaded sleeve installed on the outer wall of the threaded rod, and both the second sleeve and the threaded sleeve are connected to the outer wall of the top plate. A fifth support rod is installed on the outer wall of the threaded sleeve, a fourth sleeve is installed on the outer wall of the fifth support rod, a fifth spring is installed on the inner wall of the fourth sleeve, a pressure rod is installed through the inner wall of the fourth sleeve, and one end of the pressure rod is connected to one end of the fifth spring. A second pressure sensor is installed on the outer wall of the fifth support rod.

[0015] Preferably, a processor is installed on the inner wall of the support platform, and the processor is connected to a second pressure sensor via a wire. The control component is also connected to the processor via a wire.

[0016] Preferably, the dust removal assembly includes a third support box mounted on the top of the support platform, the outer wall of the third support box having a sixth opening and a seventh opening, a sixth support rod mounted on the inner wall of the third support box, a fan mounted on the outer wall of the sixth support rod, a limit plate mounted on the inner wall of the third support box, a filter plate installed through the top of the third support box, a pull plate mounted on the outer wall of the filter plate, a seventh support rod mounted on the inner wall of the third support box, an eighth opening on the top of the third support box, a seventh sleeve mounted on the outer wall of the seventh support rod, a locking rod mounted on the outer wall of the seventh sleeve, a locking slot on the outer wall of the filter plate, a seventh spring mounted on the outer wall of the locking rod, and the outer wall of the seventh spring connected to the inner wall of the third support box.

[0017] Preferably, a support column is installed at the bottom of the support platform, and a button is installed on the outer wall of the support platform.

[0018] Preferably, the operating steps of the clamping device are as follows:

[0019] S1. The function of the buffer block is to provide movement buffer for the first support. The rotation of the first motor drives the collecting wheel to rotate, the rotation of the collecting wheel drives the pull rope to move, the movement of the pull rope drives the first support to move, the movement of the first support drives the first sliding sleeve to move, the movement of the first sliding sleeve causes the first support to drive the first spring to move, the movement of the first spring causes the first support to drive the pressure plate to move, the pressure plate to move, and the movement of the high refractive index optical glass causes the high refractive index optical glass to move quickly and be fixed, thus realizing the function of quick fixing of high refractive index optical glass for easy processing.

[0020] S2. The movement of the high-refractive-index optical glass causes the buffer cotton to move, which in turn causes the first pulley to move. The movement of the first pulley causes the buffer cotton to move the third spring, which in turn causes the buffer cotton to move the first pressure sensor. The movement of the first pressure sensor causes the damping block to move, which in turn buffers the movement of the high-refractive-index optical glass. When the pressure on the first pressure sensor reaches a set value, the processor controls the first motor to shut down, thus achieving the function of buffering the movement of the high-refractive-index optical glass and improving processing safety.

[0021] S3. After processing, the processor controls the first motor to reverse, and at the same time, the first pressure sensor detects whether there is a pressure value. If there is pressure, the first motor continues to move. If there is no pressure, the second motor rotates simultaneously. The rotation of the second motor drives the threaded rod to rotate, the rotation of the threaded rod drives the threaded sleeve to move, the movement of the threaded sleeve drives the top plate to move, the movement of the top plate drives the second sleeve to move, the movement of the second sleeve causes the top plate to drive the protective block to move, the movement of the protective block pushes out the high refractive index optical glass. During its movement, it drives the pressure rod to move, the movement of the pressure rod drives the fifth spring to move, the movement of the fifth spring causes the pressure rod to contact the second pressure sensor, and after the second pressure sensor receives pressure, the second motor and the first motor stop simultaneously. This realizes the function of quickly pushing out the high refractive index optical glass, making it easy to handle and reducing manual labor.

[0022] The function of S4 and the seventh support rod is to provide moving support for the seventh sleeve. The function of the sixth support rod is to provide support for the fan. The function of the limiting plate is to provide support for the filter plate. When the fan rotates, air is drawn into the third support box through the sixth opening. The fly ash in the air is adsorbed by the filter plate, and the excess air is discharged through the seventh opening. Pulling the clamping rod causes it to move through the eighth opening, which in turn moves the seventh sleeve. The movement of the seventh sleeve causes the clamping rod to move the seventh spring. The movement of the seventh spring causes the clamping rod to move out of the clamping slot. At this time, pulling the pull plate moves the filter plate, which moves the filter plate to be quickly removed for cleaning. This achieves the goal of moving the filter plate to be quickly removed for cleaning, thus improving the quality of high refractive index optical glass processing.

[0023] Preferably, step S1 further includes the following steps:

[0024] S11. The first bracket moves through the first opening, and the first sliding sleeve moves with the support of the first support rod.

[0025] Step S2 also includes the following steps:

[0026] S21. The first pulley moves under the support of the first slide rail, and the cushioning cotton moves through the second opening.

[0027] Compared with the prior art, the beneficial effects of the present invention are:

[0028] 1. The present invention uses a buffer block to provide a moving buffer for the first support. The rotation of the first motor drives the collecting wheel to rotate, the rotation of the collecting wheel drives the pull rope to move, the movement of the pull rope drives the first support to move, the movement of the first support drives the first sliding sleeve to move, the movement of the first sliding sleeve causes the first support to drive the first spring to move, the movement of the first spring causes the first support to drive the pressure plate to move, the pressure plate moves, and the movement of the high refractive index optical glass causes it to move quickly and be fixed, thus realizing the function of quick fixing of high refractive index optical glass for convenient processing.

[0029] 2. This invention utilizes a high-refractive-index optical glass to move a buffer cotton, which in turn moves a first pulley. The first pulley then moves a third spring, which in turn moves a first pressure sensor. The first pressure sensor then moves a damping block, which in turn buffers the movement of the high-refractive-index optical glass. Once the pressure on the first pressure sensor reaches a set value, the processor controls the first motor to shut down, thus achieving the function of buffering the movement of the high-refractive-index optical glass and improving processing safety.

[0030] 3. This invention uses a processor installed after processing to control the first motor to reverse, while a first pressure sensor detects whether there is pressure. If there is pressure, the first motor continues to move; if there is no pressure, the second motor rotates simultaneously. The rotation of the second motor drives the threaded rod to rotate, which in turn drives the threaded sleeve to move. The movement of the threaded sleeve drives the top plate to move, which in turn drives the second sleeve to move. The movement of the second sleeve causes the top plate to move the protective block, which in turn pushes out the high-refractive-index optical glass. During its movement, the protective block moves the pressure rod, which in turn moves the fifth spring. The movement of the fifth spring causes the pressure rod to contact the second pressure sensor. When the second pressure sensor receives pressure, both the second and first motors stop simultaneously. This invention achieves the function of quickly pushing out the high-refractive-index optical glass, making it easy to handle and reducing manual labor.

[0031] 4. This invention utilizes a seventh support rod to provide movable support for the seventh sleeve, a sixth support rod to support the fan, and a limiting plate to support the filter plate. The fan's rotation draws air into the third support box through the sixth opening, where fly ash is adsorbed by the filter plate. Excess air is discharged through the seventh opening. Pulling the lever causes it to move through the eighth opening, moving the seventh sleeve. The movement of the seventh sleeve causes the lever to move the seventh spring, which in turn moves the lever out of the latch. At this point, pulling the pull plate moves the filter plate, allowing it to be quickly removed for cleaning. This rapid removal of the filter plate for cleaning improves the quality of high-refractive-index optical glass processing. Attached Figure Description

[0032] Figure 1 This is a front view structural diagram of the present invention;

[0033] Figure 2 This is a front view of the present invention.

[0034] Figure 3 This is a schematic diagram of the pressure plate structure of the present invention;

[0035] Figure 4 This is a schematic diagram of the cushioning cotton structure of the present invention;

[0036] Figure 5 This is a schematic diagram of the third support rod structure of the present invention;

[0037] Figure 6 This is a schematic diagram of the protective block structure of the present invention;

[0038] Figure 7 This is a schematic diagram of the pressure bar structure of the present invention;

[0039] Figure 8 This is a schematic diagram of the fan structure of the present invention;

[0040] Figure 9 For the present invention Figure 8 A schematic diagram of structure A;

[0041] Figure 10 This is a schematic diagram of the control flow of the present invention.

[0042] In the diagram: 1. Support platform; 2. Support column; 3. Button; 4. Placement slot; 5. First support box; 6. First support rod; 7. First sliding sleeve; 8. First motor; 9. Collecting wheel; 10. Pull rope; 11. First opening; 12. First spring; 13. Buffer block; 14. First bracket; 15. Pressure plate; 16. Support block; 17. Damping block; 18. First pressure sensor; 19. Second opening; 20. Buffer cotton; 21. First slide rail; 22. First pulley; 24. Third spring; 25. Second slide rail; 26. Second pulley; 27. Third support rod; 28. Fourth... 29. Support rod; 30. Second sleeve; 31. Top plate; 32. Protective block; 33. Second motor; 34. Threaded sleeve; 35. Threaded rod; 36. Fifth support rod; 37. Third opening; 38. Fourth sleeve; 39. Fifth spring; 40. Pressure rod; 41. Second pressure sensor; 42. Third support box; 43. Sixth opening; 44. Seventh opening; 45. Sixth support rod; 46. Fan; 47. Limiting plate; 48. Filter plate; 49. Pull plate; 50. Bayonet; 51. Eighth opening; 52. Seventh support rod; 53. Seventh sleeve; 54. Locking rod; 55. Seventh spring. Detailed Implementation

[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0044] In the description of this invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and for simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0045] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installed," "equipped with," "connected," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be a connection within two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0046] Example 1: Please refer to Figure 1 , Figure 2 , Figure 3 and Figure 10This invention provides an embodiment of a non-destructive clamping device based on high-refractive-index optical glass, comprising a support platform 1, a placement groove 4, and a control component. The placement groove 4 is provided through the top of the support platform 1. The control component is installed on the inner wall of the support platform 1 for controlling and clamping the high-refractive-index optical glass. A clamping component is provided on the top of the support platform 1 for clamping the high-refractive-index optical glass. A buffer component is installed on the outer wall of the placement groove 4 for buffering the high-refractive-index optical glass during placement. A top... The ejection assembly is used for the rapid ejection of high-refractive-index optical glass after processing. A dust removal assembly is installed on the top of the support platform 1 to adsorb fly ash around the clamping device. A support column 2 is installed at the bottom of the support platform 1, and a button 3 is installed on the outer wall of the support platform 1. The clamping assembly includes a first support box 5 installed on the top of the support platform 1. A first support rod 6 is installed on the inner wall of the first support box 5, and a first sliding sleeve 7 is installed on the outer wall of the first support rod 6. A first opening 11 is provided on the outer wall of the first support box 5, and a first bracket 14 is installed through the inner wall of the first opening 11. One end of the first support 14 is connected to the outer wall of the first sliding sleeve 7. A first spring 12 is installed on the outer wall of the first support 14, and one end of the first spring 12 is connected to the inner wall of the first support box 5. A buffer block 13 is installed on the inner wall of the first support box 5. A first motor 8 is installed on the outer wall of the first support rod 6. A collecting wheel 9 is installed at the output end of the first motor 8. A pull rope 10 is installed on the outer wall of the collecting wheel 9, and one end of the pull rope 10 is connected to the outer wall of the first support 14. A pressure plate 15 is installed at one end of the first support 14. The function of the buffer block 13 is to support the first support 14. The system provides a moving buffer. The rotation of the first motor 8 drives the rotation of the collecting wheel 9, which in turn drives the pull rope 10 to move. The movement of the pull rope 10 drives the first bracket 14 to move, which in turn drives the first sliding sleeve 7 to move. The movement of the first sliding sleeve 7 causes the first bracket 14 to drive the first spring 12 to move, which in turn causes the first bracket 14 to drive the pressure plate 15 to move. The movement of the pressure plate 15 causes the high-refractive-index optical glass to move, and the high-refractive-index optical glass is quickly fixed after it moves, thus realizing the function of quickly fixing the high-refractive-index optical glass for easy processing.

[0047] Example 2: Please refer to Figure 2 , Figure 4 and Figure 10One embodiment of the present invention provides: a buffer assembly includes a support block 16 mounted on the outer wall of a placement groove 4. The top of the support block 16 has a second opening 19, and a buffer cotton 20 is installed through the inner wall of the second opening 19. A damping block 17 is installed on the inner wall of the support block 16, and a first pressure sensor 18 is installed at one end of the damping block 17, with one end of the first pressure sensor 18 contacting the bottom of the buffer cotton 20. A third spring 24 is installed on the inner wall of the support block 16, with one end of the third spring 24 connected to the bottom of the buffer cotton 20. A first slide rail 21 is installed on the inner wall of the support block 16, and a first pulley 22 is installed on the inner wall of the first slide rail 21. One end of wheel 22 is connected to the outer wall of buffer cotton 20. The movement of high refractive index optical glass drives the buffer cotton 20 to move, which in turn drives the first pulley 22 to move. The movement of the first pulley 22 causes the buffer cotton 20 to drive the third spring 24 to move, which in turn causes the buffer cotton 20 to drive the first pressure sensor 18 to move. The movement of the first pressure sensor 18 drives the damping block 17 to move, which in turn buffers the movement of the high refractive index optical glass. When the pressure on the first pressure sensor 18 reaches a set value, the processor controls the first motor 8 to shut down, thus achieving the function of buffering the movement of the high refractive index optical glass and improving processing safety.

[0048] Example 3: Please refer to Figure 2 , Figure 4 , Figure 5 and Figure 10 In one embodiment of the present invention: a second slide rail 25 is installed on the inner wall of the support block 16, a second pulley 26 is installed on the inner wall of the second slide rail 25, a third support rod 27 is installed at one end of the second pulley 26, and one end of the third support rod 27 is connected to the outer wall of the damping block 17. The second pulley 26 can move on the inner wall of the second slide rail 25. The movement of the first pressure sensor 18 drives the damping block 17 to move, the movement of the damping block 17 drives the third support rod 27 to move, the movement of the third support rod 27 drives the second pulley 26 to move, and the movement of the second pulley 26 makes the movement of the damping block 17 more stable.

[0049] Example 4: Please refer to Figure 1 , Figure 2 , Figure 6 , Figure 7 and Figure 10One embodiment of the present invention provides: the ejection assembly includes a fourth support rod 28 installed on the inner wall of the support platform 1, a second sleeve 29 installed on the outer wall of the fourth support rod 28, a third opening 36 on the outer wall of the placement groove 4, a top plate 30 installed through the inner wall of the third opening 36, a protective block 31 installed on the top of the top plate 30, a second motor 32 installed on the inner wall of the support platform 1, a threaded rod 34 installed at the output end of the second motor 32, a threaded sleeve 33 installed on the outer wall of the threaded rod 34, and the second sleeve 29... Both the threaded sleeve 33 and the threaded sleeve 34 are connected to the outer wall of the top plate 30. A fifth support rod 35 is installed on the outer wall of the threaded sleeve 33. A fourth sleeve 37 is installed on the outer wall of the fifth support rod 35. A fifth spring 38 is installed on the inner wall of the fourth sleeve 37. A pressure rod 39 is installed through the inner wall of the fourth sleeve 37, and one end of the pressure rod 39 is connected to one end of the fifth spring 38. A second pressure sensor 40 is installed on the outer wall of the fifth support rod 35. A processor is installed on the inner wall of the support platform 1. The processor is connected to the second pressure sensor 40 via a wire. The processor is connected to the second pressure sensor 40 via a wire, and the control component is connected to the processor via a wire. After processing, the processor controls the first motor 8 to reverse, while the first pressure sensor 18 detects whether there is a pressure value. If there is pressure, the first motor 8 continues to move. If there is no pressure, the second motor 32 rotates simultaneously. The rotation of the second motor 32 drives the threaded rod 34 to rotate, which in turn drives the threaded sleeve 33 to move. The movement of the threaded sleeve 33 drives the top plate 30 to move, which in turn drives the second sleeve 29 to move. The movement of the second sleeve 29 causes the top plate 30 to move the protective block 31, which pushes out the high-refractive-index optical glass. During its movement, the protective block 31 moves the pressure rod 39, which in turn moves the fifth spring 38. The movement of the fifth spring 38 causes the pressure rod 39 to contact the second pressure sensor 40. When the second pressure sensor 40 is subjected to pressure, the second motor 32 and the first motor 8 stop simultaneously. This achieves the function of quickly pushing out the high-refractive-index optical glass, making it easy to handle and reducing manual labor.

[0050] Example 5: Please refer to Figure 1 , Figure 2 , Figure 8 and Figure 9An embodiment of the present invention provides: a dust removal assembly includes a third support box 41 mounted on the top of a support platform 1. The outer wall of the third support box 41 has a sixth opening 42 and a seventh opening 43. A sixth support rod 44 is mounted on the inner wall of the third support box 41. A fan 45 is mounted on the outer wall of the sixth support rod 44. A limit plate 46 is mounted on the inner wall of the third support box 41. A filter plate 47 is installed through the top of the third support box 41. A pull plate 48 is mounted on the outer wall of the filter plate 47. A seventh support rod 51 is mounted on the inner wall of the third support box 41. An eighth opening 50 is provided on the top of the third support box 41. A seventh sleeve 52 is mounted on the outer wall of the seventh support rod 51. A locking rod 53 is mounted on the outer wall of the seventh sleeve 52. A locking slot 49 is provided on the outer wall of the filter plate 47. A seventh spring 54 is mounted on the outer wall of the locking rod 53. The wall is connected to the inner wall of the third support box 41. The function of the seventh support rod 51 is to provide moving support for the seventh sleeve 52. The function of the sixth support rod 44 is to provide support for the fan 45. The function of the limiting plate 46 is to provide support for the filter plate 47. The fan 45 rotates and draws air into the third support box 41 through the sixth opening 42. The fly ash in the air is adsorbed by the filter plate 47. The excess air is discharged through the seventh opening 43. Pulling the clamp rod 53 causes it to move through the eighth opening 50 and drive the seventh sleeve 52 to move. The movement of the seventh sleeve 52 causes the clamp rod 53 to drive the seventh spring 54 to move. The movement of the seventh spring 54 causes the clamp rod 53 to move out of the clamping slot 49. At this time, pulling the pull plate 48 drives the filter plate 47 to move. The movement of the filter plate 47 allows it to be quickly removed for cleaning, which realizes the movement of the filter plate 47 to be quickly removed for cleaning and improves the quality of high refractive index optical glass processing.

[0051] The working steps of this clamping device are as follows:

[0052] The function of S1 and buffer block 13 is to provide movement buffer for the first support 14. The rotation of the first motor 8 drives the collection wheel 9 to rotate, the rotation of the collection wheel 9 drives the pull rope 10 to move, the movement of the pull rope 10 drives the first support 14 to move, the movement of the first support 14 drives the first sliding sleeve 7 to move, the movement of the first sliding sleeve 7 causes the first support 14 to drive the first spring 12 to move, the movement of the first spring 12 causes the first support 14 to drive the pressure plate 15 to move, the movement of the pressure plate 15 causes the high refractive index optical glass to move, and the high refractive index optical glass is quickly fixed after it moves, realizing the function of quick fixing of high refractive index optical glass for easy processing.

[0053] S2. The movement of the high-refractive-index optical glass causes the buffer cotton 20 to move, which in turn causes the first pulley 22 to move. The movement of the first pulley 22 causes the buffer cotton 20 to move the third spring 24, which in turn causes the buffer cotton 20 to move the first pressure sensor 18. The movement of the first pressure sensor 18 causes the damping block 17 to move, which in turn buffers the movement of the high-refractive-index optical glass. When the pressure on the first pressure sensor 18 reaches a set value, the processor controls the first motor 8 to shut down, thus achieving the function of buffering the movement of the high-refractive-index optical glass and improving processing safety.

[0054] S3. After processing, the processor controls the first motor 8 to reverse, and at the same time, the first pressure sensor 18 detects whether there is a pressure value. If there is pressure, the first motor 8 continues to move. If there is no pressure, the second motor 32 rotates. The rotation of the second motor 32 drives the threaded rod 34 to rotate. The rotation of the threaded rod 34 drives the threaded sleeve 33 to move. The movement of the threaded sleeve 33 drives the top plate 30 to move. The movement of the top plate 30 drives the second sleeve 29 to move. The movement of the second sleeve 29 causes the top plate 30 to drive the protective block 31 to move. The movement of the protective block 31 pushes out the high refractive index optical glass. During its movement, it drives the pressure rod 39 to move. The movement of the pressure rod 39 drives the fifth spring 38 to move. The movement of the fifth spring 38 causes the pressure rod 39 to contact the second pressure sensor 40. After the second pressure sensor 40 is subjected to pressure, the second motor 32 and the first motor 8 stop at the same time. This realizes the function of quickly pushing out the high refractive index optical glass, making it easy to pick up and reducing manual labor.

[0055] The function of S4 and the seventh support rod 51 is to provide moving support for the seventh sleeve 52. The function of the sixth support rod 44 is to provide support for the fan 45. The function of the limiting plate 46 is to provide support for the filter plate 47. The fan 45 rotates and draws air into the third support box 41 through the sixth opening 42. The fly ash in the air is adsorbed by the filter plate 47, and the excess air is discharged through the seventh opening 43. Pulling the clamp rod 53 causes it to move through the eighth opening 50 and drive the seventh sleeve 52 to move. The movement of the seventh sleeve 52 causes the clamp rod 53 to drive the seventh spring 54 to move. The movement of the seventh spring 54 causes the clamp rod 53 to move out of the clamping slot 49. At this time, pulling the pull plate 48 drives the filter plate 47 to move. The movement of the filter plate 47 allows it to be quickly removed for cleaning, which realizes the rapid removal and cleaning of the filter plate 47 and improves the quality of high refractive index optical glass processing.

[0056] Step S1 also includes the following steps:

[0057] S11, the first bracket 14 moves through the first opening 11, and the first sliding sleeve 7 moves with the support of the first support rod 6;

[0058] Step S2 also includes the following steps:

[0059] S21, the first pulley 22 moves under the support of the first slide rail 21, and the cushioning cotton 20 moves through the second opening 19.

[0060] Working principle: The buffer block 13 provides movement buffer for the first support 14. The rotation of the first motor 8 drives the collecting wheel 9 to rotate, which in turn drives the pull rope 10 to move. The movement of the pull rope 10 drives the first support 14 to move, which in turn drives the first sliding sleeve 7 to move. The movement of the first sliding sleeve 7 causes the first support 14 to drive the first spring 12 to move, which in turn causes the first support 14 to drive the pressure plate 15 to move. The movement of the pressure plate 15 causes the high-refractive-index optical glass to move, which then quickly fixes the high-refractive-index optical glass, achieving the function of quick fixation and convenient processing. The movement of the high-refractive-index optical glass also drives the buffer cotton 20 to move, which in turn drives the first pulley 22 to move. The movement of the first pulley 22 causes the buffer cotton 20 to move, which in turn moves the third spring 24. The movement of the third spring 24 then causes the buffer cotton 20 to move, which in turn moves the first pressure sensor 18. The movement of the first pressure sensor 18 then moves the damping block 17, thus buffering the movement of the high-refractive-index optical glass. Once the pressure on the first pressure sensor 18 reaches a set value, the processor controls the first motor 8 to shut off. This achieves the function of buffering the movement of the high-refractive-index optical glass and improving processing safety. After processing is completed, the processor controls the first motor 8 to reverse. Simultaneously, the first pressure sensor 18 detects whether there is pressure. If there is pressure, the first motor 8 continues to move; if there is no pressure, the second motor 32 rotates simultaneously. The rotation of the second motor 32 drives... The threaded rod 34 rotates, causing the threaded sleeve 33 to move. The movement of the threaded sleeve 33 causes the top plate 30 to move, which in turn causes the second sleeve 29 to move. The movement of the second sleeve 29 causes the top plate 30 to move the protective block 31, which then pushes out the high-refractive-index optical glass. During this movement, the pressure rod 39 moves, which in turn causes the fifth spring 38 to move. The fifth spring 38 then causes the pressure rod 39 to contact the second pressure sensor 40. When the second pressure sensor 40 receives pressure, it simultaneously stops the second motor 32 and the first motor 8. This achieves the function of quickly pushing out the high-refractive-index optical glass for easy handling and reducing manual labor. The function of the seventh support rod 51 is to provide movement for the seventh sleeve 52. The sixth support rod 44 provides support for the fan 45, and the limiting plate 46 provides support for the filter plate 47. When the fan 45 rotates, air is drawn into the third support box 41 through the sixth opening 42. The fly ash in the air is adsorbed by the filter plate 47, and the excess air is discharged through the seventh opening 43. Pulling the clamp rod 53 causes it to move through the eighth opening 50, which in turn moves the seventh sleeve 52. The movement of the seventh sleeve 52 causes the clamp rod 53 to move, which in turn moves the seventh spring 54. The movement of the seventh spring 54 causes the clamp rod 53 to move out of the clamping slot 49. At this time, pulling the pull plate 48 moves the filter plate 47, which moves the filter plate 47 quickly out for cleaning. This achieves the goal of moving the filter plate 47 quickly out for cleaning, thus improving the quality of high refractive index optical glass processing.

[0061] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A non-destructive clamping device based on high-refractive-index optical glass, characterized in that: It includes a support platform (1), a placement slot (4) and a control component. The top of the support platform (1) is provided with a placement slot (4). The inner wall of the support platform (1) is equipped with a control component for controlling and clamping high refractive index optical glass. The top of the support platform (1) is provided with a clamping component for clamping high refractive index optical glass. The clamping assembly includes a first support box (5) installed on the top of the support platform (1), a first support rod (6) installed on the inner wall of the first support box (5), a first sliding sleeve (7) installed on the outer wall of the first support rod (6), a first opening (11) provided on the outer wall of the first support box (5), a first bracket (14) installed through the inner wall of the first opening (11), and one end of the first bracket (14) connected to the outer wall of the first sliding sleeve (7), a first spring (12) installed on the outer wall of the first bracket (14), and one end of the first spring (12) connected to the inner wall of the first support box (5), a buffer block (13) installed on the inner wall of the first support box (5), a first motor (8) installed on the outer wall of the first support rod (6), a collecting wheel (9) installed at the output end of the first motor (8), a pull rope (10) installed on the outer wall of the collecting wheel (9), and one end of the pull rope (10) connected to the outer wall of the first bracket (14), and a pressure plate (15) installed at one end of the first bracket (14). The outer wall of the placement slot (4) is equipped with a buffer assembly, which is used for buffering when placing high refractive index optical glass. The inner wall of the support platform (1) is equipped with an ejection assembly, which is used for the rapid ejection of high refractive index optical glass after processing. The top of the support platform (1) is equipped with a dust removal assembly, which is used for adsorbing fly ash around the clamping device. The ejection assembly includes a fourth support rod (28) installed on the inner wall of the support platform (1), a second sleeve (29) installed on the outer wall of the fourth support rod (28), a third opening (36) provided on the outer wall of the placement groove (4), a top plate (30) installed through the inner wall of the third opening (36), a protective block (31) installed on the top of the top plate (30), a second motor (32) installed on the inner wall of the support platform (1), a threaded rod (34) installed at the output end of the second motor (32), and a threaded sleeve installed on the outer wall of the threaded rod (34). 33), and the second sleeve (29) and the threaded sleeve (33) are both connected to the outer wall of the top plate (30). The outer wall of the threaded sleeve (33) is equipped with a fifth support rod (35), the outer wall of the fifth support rod (35) is equipped with a fourth sleeve (37), the inner wall of the fourth sleeve (37) is equipped with a fifth spring (38), the inner wall of the fourth sleeve (37) is through-installed with a pressure rod (39), and one end of the pressure rod (39) is connected to one end of the fifth spring (38). The outer wall of the fifth support rod (35) is equipped with a second pressure sensor (40). The inner wall of the support platform (1) is equipped with a processor, which is connected to the second pressure sensor (40) via a wire. The control component is connected to the processor via a wire.

2. The non-destructive clamping device based on high-refractive-index optical glass according to claim 1, characterized in that: The buffer assembly includes a support block (16) installed on the outer wall of the placement slot (4). The top of the support block (16) is provided with a second opening (19). The inner wall of the second opening (19) is through which a buffer cotton (20) is installed. The inner wall of the support block (16) is equipped with a damping block (17). One end of the damping block (17) is equipped with a first pressure sensor (18), and one end of the first pressure sensor (18) is in contact with the bottom of the buffer cotton (20). The inner wall of the support block (16) is equipped with a third spring (24), and one end of the third spring (24) is connected to the bottom of the buffer cotton (20). The inner wall of the support block (16) is equipped with a first slide rail (21), and the inner wall of the first slide rail (21) is equipped with a first pulley (22), and one end of the first pulley (22) is connected to the outer wall of the buffer cotton (20).

3. The non-destructive clamping device based on high-refractive-index optical glass according to claim 2, characterized in that: The inner wall of the support block (16) is equipped with a second slide rail (25), the inner wall of the second slide rail (25) is equipped with a second pulley (26), one end of the second pulley (26) is equipped with a third support rod (27), and one end of the third support rod (27) is connected to the outer wall of the damping block (17). The second pulley (26) can move on the inner wall of the second slide rail (25).

4. The non-destructive clamping device based on high-refractive-index optical glass according to claim 2, characterized in that: The dust removal assembly includes a third support box (41) installed on the top of the support platform (1). The outer wall of the third support box (41) has a sixth opening (42) and a seventh opening (43). The inner wall of the third support box (41) is equipped with a sixth support rod (44). The outer wall of the sixth support rod (44) is equipped with a fan (45). The inner wall of the third support box (41) is equipped with a limit plate (46). The top of the third support box (41) is equipped with a filter plate (47). The outer wall of the filter plate (47) is fitted with a pull plate (48), the inner wall of the third support box (41) is fitted with a seventh support rod (51), the top of the third support box (41) is provided with an eighth opening (50), the outer wall of the seventh support rod (51) is fitted with a seventh sleeve (52), the outer wall of the seventh sleeve (52) is fitted with a clamping rod (53), the outer wall of the filter plate (47) is provided with a clamping slot (49), the outer wall of the clamping rod (53) is fitted with a seventh spring (54), and the outer wall of the seventh spring (54) is connected to the inner wall of the third support box (41).

5. The non-destructive clamping device based on high-refractive-index optical glass according to claim 1, characterized in that: The bottom of the support platform (1) is equipped with a support column (2), and the outer wall of the support platform (1) is equipped with a button (3).

6. A method of using a non-destructive clamping device based on high-refractive-index optical glass according to any one of claims 1-5, characterized in that, The working steps of this clamping device are as follows: S1. The function of the buffer block (13) is to provide a moving buffer for the first support (14). The first motor (8) rotates and drives the collecting wheel (9) to rotate. The collecting wheel (9) rotates and drives the pull rope (10) to move. The pull rope (10) moves and drives the first support (14) to move. The first support (14) moves and drives the first sliding sleeve (7) to move. The first sliding sleeve (7) moves and causes the first support (14) to drive the first spring (12) to move. The first spring (12) moves and causes the first support (14) to drive the pressure plate (15) to move. The pressure plate (15) moves and causes the high refractive index optical glass to move. After the high refractive index optical glass moves, it is quickly fixed, realizing the function of quick fixing and convenient processing of high refractive index optical glass. S2. The movement of the high refractive index optical glass causes the buffer cotton (20) to move, the movement of the buffer cotton (20) causes the first pulley (22) to move, the movement of the first pulley (22) causes the buffer cotton (20) to move the third spring (24), the movement of the third spring (24) causes the buffer cotton (20) to move the first pressure sensor (18), the movement of the first pressure sensor (18) causes the damping block (17) to move, the movement of the damping block (17) causes the high refractive index optical glass to move and be buffered. After the pressure on the first pressure sensor (18) reaches the set value, the processor controls the first motor (8) to shut down, thus realizing the function of buffering the movement of the high refractive index optical glass and improving processing safety. S3. After processing, the processor controls the first motor (8) to reverse, and at the same time, the first pressure sensor (18) detects whether there is a pressure value. If there is pressure, the first motor (8) continues to move. After there is no pressure, the second motor (32) rotates. The rotation of the second motor (32) drives the threaded rod (34) to rotate. The rotation of the threaded rod (34) drives the threaded sleeve (33) to move. The movement of the threaded sleeve (33) drives the top plate (30) to move. The movement of the top plate (30) drives the second sleeve (29) to move. The movement of the second sleeve (29) causes the top plate (30) to move. The plate (30) drives the protective block (31) to move. The movement of the protective block (31) pushes out the high refractive index optical glass. During its movement, it drives the pressure rod (39) to move. The movement of the pressure rod (39) drives the fifth spring (38) to move. The movement of the fifth spring (38) makes the pressure rod (39) contact the second pressure sensor (40). After the second pressure sensor (40) is subjected to pressure, it causes the second motor (32) and the first motor (8) to stop at the same time. This realizes the function of quickly pushing out the high refractive index optical glass, making it easy to pick up and reducing manual labor. S4, the function of the seventh support rod (51) is to provide moving support for the seventh sleeve (52), the function of the sixth support rod (44) is to provide support for the fan (45), the function of the limiting plate (46) is to provide support for the filter plate (47), the fan (45) rotates to draw air into the third support box (41) through the sixth opening (42), the fly ash in the air is adsorbed by the filter plate (47), and the excess air is discharged through the seventh opening (43). Pull the clamp rod (53) to make it move through the eighth opening (50) to drive the seventh sleeve (52) to move. The movement of the seventh sleeve (52) makes the clamp rod (53) drive the seventh spring (54) to move. The movement of the seventh spring (54) makes the clamp rod (53) move out of the clamp (49). At this time, pull the pull plate (48) to drive the filter plate (47) to move. The movement of the filter plate (47) makes it move out quickly for cleaning, thus realizing the improvement of the quality of high refractive index optical glass processing by moving the filter plate (47) to move out quickly for cleaning.

7. The method of using the non-destructive clamping device based on high refractive index optical glass according to claim 6, characterized in that, Step S1 also includes the following steps: S11, the first bracket (14) moves through the first opening (11), and the first sliding sleeve (7) moves through the support of the first support rod (6); Step S2 also includes the following steps: S21, the first pulley (22) moves by the support of the first slide (21), and the cushioning cotton (20) moves by the second opening (19).

Citation Information

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