A high-precision lens and its production and processing device

Through the automatic fixing and debris cleaning functions of the lens processing device, the fixing and flipping problems during the lens grinding process are solved, and the accuracy and stability of lens grinding are improved.

CN118951956BActive Publication Date: 2025-09-05TOP OPTICAL INSTR CO LTD
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Patent Information

Application Number
CN202411153820.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-09-05
Estimated Expiration
2044-08-21

AI Technical Summary

Technical Problem

In the prior art, it is difficult to achieve automatic fixation and glass debris cleaning when polishing the lens, and manual flipping can easily cause scratches on the lens, affecting the polishing accuracy and stability.

Method used

A production and processing device including a mirror grinding device, a grinding dust removal device, a lens adsorption and flip device and a controller is designed. The lens is automatically fixed through the controller, and the grinding device is driven to grind and clean the debris, and the lens is automatically flipped after one side is polished.

Benefits of technology

Automatic fixation of lenses and glass debris cleaning are achieved to ensure the integrity of the lens surface, and automatically flip it to the other side after grinding on one side, improving grinding accuracy and stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of lens processing technology, and specifically to a high-precision lens and a production and processing device thereof. The present invention sets a processing station on the ground, and a baffle is provided around the top surface of the processing station. A mirror polishing device is set above the processing station and connected to the top surface of the processing station. A polishing and dust removal device is set on the mirror polishing device and connected to the mirror polishing device. A lens adsorption and flipping device is set above the processing station, connected to the top of the processing station, and connected to the mirror polishing device. A controller is set on the side of the processing station and on the ground, and the controller is electrically connected to the mirror polishing device and the lens adsorption and flipping device. This achieves the technical effect that when the user polishes the lens, the device can automatically fix the lens and clean up the glass debris generated during polishing. At the same time, after the polishing of one side of the mirror of the lens is completed, the device can also automatically flip the lens to the other side.
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Description

Technical Field

[0001] The present invention relates to the technical field of lens processing, and in particular to a high-precision lens and a production and processing device thereof. Background Art

[0002] The optical sight forms an image through an optical lens, superimposing the target image and the aiming line on the same focal plane, allowing the shooter to clearly see the target and aim accurately. Even if the eye is slightly offset, it will not affect the aiming point, thereby improving the accuracy and stability of the shooting.

[0003] In the prior art, when polishing optical sight lenses, the lenses need to be firmly positioned and fixed. Furthermore, the glass produced during polishing can affect the polishing accuracy. Furthermore, after polishing one side of the lens, the lens must be manually flipped over, which can easily cause scratches on the lens surface. Therefore, we provide a high-precision lens and a production and processing device for the same. Summary of the Invention

[0004] The present invention aims to solve the technical problem of how the device can automatically fix the lens and clean the glass debris generated during grinding when the user is grinding the lens. At the same time, after one side of the lens is polished, the device can also automatically flip the lens to the other side. A high-precision lens and its production and processing device are provided.

[0005] The technical solution adopted by the present invention to solve its technical problem is: a production and processing device, including: a mirror polishing device, a polishing and dust removal device, a lens adsorption and flipping device, a processing station, and a controller.

[0006] The processing station is arranged on the ground, and a baffle is arranged around the top surface of the processing station.

[0007] The mirror polishing device is arranged above the processing station and connected to the top surface of the processing station.

[0008] The grinding and dust removal device is arranged on the mirror grinding device and is connected with the mirror grinding device.

[0009] The lens adsorption and flipping device is arranged above the processing station, connected to the top of the processing station, and connected to the mirror polishing device.

[0010] The controller is arranged on the side of the processing station and on the ground. The controller is electrically connected to the mirror polishing device and the lens adsorption and flipping device.

[0011] When the user wants to polish the lens, the user should first place the lens on the lens adsorption and flipping device, and then start the lens adsorption and flipping device through the controller. When the lens adsorption and flipping device is started, the lens adsorption and flipping device adsorbs and fixes the lens.

[0012] When the user begins polishing a lens, the user activates the mirror polishing device via the controller. Once activated, the user can operate the mirror polishing device to move it over the surface of the lens being held. This movement activates the lens reversing device, which completely secures the lens and prevents it from moving. Once the mirror polishing device is above the fixed lens, the user can operate the controller to lower it to polish the fixed lens. During polishing, the mirror polishing device activates the dust removal device, which removes glass debris generated during polishing and disposes it elsewhere, preventing it from scratching the lens surface. Once polishing is complete, the user can operate the mirror polishing device to raise it and move it away from the fixed lens. Once the mirror polishing device is above the lens, the lens reversing device releases its grip and flips the lens. After the flipping is completed, the user can start the lens grinding device again through the controller to grind the other side of the lens.

[0013] With this working setting, when the user is grinding the lens, the device can automatically fix the lens and clean the glass fragments generated during grinding. At the same time, after one side of the lens is polished, the device can also automatically flip the lens to the other side.

[0014] Furthermore, the mirror polishing device includes: a dual-axis motor, a grinding disc, a polishing shell, a rotating motor, an electric telescopic rod, and a connecting arm.

[0015] The rotating motor is arranged above the processing station and at the top of the processing station. The rotating motor is fixedly connected to the top surface of the processing station through a groove arranged on the top surface of the processing station. The rotating motor is electrically connected to the controller.

[0016] The electric telescopic rod is arranged inside the processing station and above the rotating motor. The base of the electric telescopic rod is fixedly connected to the rotating shaft of the rotating motor, and the axis coincides with the axis of the rotating shaft of the rotating motor. The electric telescopic rod is also electrically connected to the controller.

[0017] The connecting arm is a right-angle rod and is arranged inside the processing station and above the electric telescopic rod. The vertical rod of the connecting arm is fixedly connected to the extension rod of the electric telescopic rod, and the axis coincides with the axis of the rotating motor.

[0018] The grinding shell is arranged inside the processing station, above the top surface of the processing station and on the side of the connecting arm. The side of the grinding shell is fixedly connected to the cross bar end face of the connecting arm, and the inner side is connected to the grinding dust removal device.

[0019] The dual-axis motor is arranged inside the polishing shell, and one of the rotating shafts passes through the bottom of the polishing shell and extends to the bottom of the polishing shell, and the other rotating shaft is connected to the polishing dust removal device. The shell of the dual-axis motor is fixedly connected to the inner wall of the polishing shell and is electrically connected to the controller.

[0020] The grinding disc is arranged below a rotating shaft of the dual-axis motor extending to the bottom of the grinding shell. The top surface of the grinding disc is clamped and connected to the dual-axis motor and the rotating shaft extending to the bottom of the grinding shell, and the side surface is also connected to the grinding dust removal device.

[0021] When the user wants to polish the lens that has been adsorbed, the user can start the rotating motor through the controller. After the rotating motor is started, the rotation of the rotating motor can drive the electric telescopic rod to rotate, and drive the lens adsorption flip device to move. When the lens adsorption device is activated, it can fix the adsorbed lens.

[0022] When the electric telescopic rod rotates, the electric telescopic rod drives the connecting arm to rotate, the connecting arm drives the grinding shell to move, the grinding shell moves and drives the dual-axis motor and the grinding dust removal device to move, and the dual-axis motor drives the grinding disc to move until the grinding disc moves to the top of the fixed lens and then stops operating the rotating motor.

[0023] When the grinding disc moves to above the fixed lens, the user can start the electric telescopic rod through the controller. When the user starts the retraction of the electric telescopic rod through the controller, the electric telescopic rod will drive the connecting arm to move downward, and the downward movement of the connecting arm will drive the grinding shell to move downward. The downward movement of the grinding shell will drive the dual-axis motor, and the grinding dust removal device will move downward. The downward movement of the dual-axis motor will drive the grinding disc to move downward until the grinding disc moves to fully fit the fixed lens surface.

[0024] When the grinding disc is completely in contact with the fixed lens surface, the user can start the dual-axis motor through the controller. After the dual-axis motor is started, one of the rotating shafts will drive the grinding disc to rotate, and the other rotating shaft will drive the grinding and dust removal device to operate. When the grinding disc rotates, the grinding disc can grind the fixed lens surface, and when the grinding and dust removal device is activated, it can clean the glass debris generated during grinding to other places.

[0025] When the lens is polished, the user can start the electric telescopic rod to rise. When the electric telescopic rod rises, the electric telescopic rod will drive the connecting arm to move upward, and the upward movement of the connecting arm will drive the grinding shell to move upward. The upward movement of the grinding shell will drive the dual-axis motor, and the grinding dust removal device will move upward. The upward movement of the dual-axis motor will drive the grinding disc to move upward until the grinding disc moves away from the fixed lens surface.

[0026] When the grinding disc moves away from the fixed lens surface, the user can control the rotary motor to reverse through the controller. The rotary shaft of the rotary motor reverses and drives the electric telescopic rod to reverse, and drives the lens adsorption and flipping device to operate. When the lens adsorption device is activated, it can release the fixed lens and flip the lens.

[0027] When the electric telescopic rod flips, the rotation of the electric telescopic rod drives the connecting arm to reverse, which in turn drives the grinding shell to move in the opposite direction. The reverse movement of the grinding shell drives the dual-axis motor and the grinding dust removal device to move in the opposite direction. The reverse movement of the dual-axis motor drives the grinding disc to move in the opposite direction until the grinding disc moves to its original position. At this point, the lens is flipped over.

[0028] When the mirror surface is completely turned over, the user can repeat the lens polishing operation to polish the other side of the lens. After polishing is completed, the user can repeat the lens flipping operation, and then use the controller to stop the lens adsorption and flipping device from adsorbing the lens, and collect the lens to wait for the next process.

[0029] Furthermore, the grinding and dust removal device includes: a first bevel gear, a first gear, a cam, a transverse rotating rod, an air bag, and an air supply pipe.

[0030] The first gear is arranged inside the grinding shell, is sleeved on the other rotating shaft of the dual-axis motor, and is fixedly connected to the side surface of the other rotating shaft of the dual-axis motor.

[0031] The transverse rotating rod is arranged inside the grinding shell, above the dual-axis motor and on the side of the first gear. One end of the transverse rotating rod is rotatably connected to the inner wall of the grinding shell, and the rotation axis is perpendicular to the axis of the other rotating shaft of the dual-axis motor.

[0032] The first bevel gear is arranged inside the grinding shell and is sleeved on the side surface of one end of the horizontal rotating rod close to the first gear. The first bevel gear is meshed with the first gear and is fixedly connected to the side surface of the other end of the horizontal rotating rod.

[0033] The cam is arranged inside the grinding shell and sleeved on the middle part of the transverse rotating rod. The cam is fixedly connected to the side surface of the middle part of the transverse rotating rod.

[0034] The airbag is arranged inside the polishing shell and is located just above the cam. The airbag is fixedly connected to the inner top surface of the polishing shell. The input port of the airbag is connected to the outside through a pipeline penetrating the top of the polishing shell.

[0035] The air supply pipe is arranged on the side of the polishing shell, and one end passes through the side wall of the polishing shell and the side wall of the airbag to communicate with the inside of the airbag. The other end side of the air supply pipe is fixedly connected to the side of the grinding disc, and the port faces the lens area fixed by the lens adsorption and flipping device.

[0036] When the other rotating shaft of the dual-axis motor rotates, the other rotating shaft of the dual-axis motor will drive the first gear to rotate, the rotation of the first gear will drive the second bevel gear to rotate, the rotation of the second bevel gear will drive the horizontal rotating rod to rotate, and the rotation of the horizontal rotating rod will drive the cam to rotate. The rotation of the cam will continuously touch the airbag and apply pressure to the airbag. When pressure is applied to the airbag, the airbag contracts and delivers air through the air supply pipe to the surface of the lens fixed by the lens adsorption and flipping device, so as to blow glass fragments generated when grinding the lens surface away from the surface of the lens.

[0037] Furthermore, the lens adsorption and flipping device includes: a first clamping block, a second clamping block, a first clamping rod, a second clamping rod, a vacuum machine, a double-sided rack, a first slide groove, a second slide groove, a second gear, two clamping pads, and a flipping device.

[0038] The vacuum machine is arranged inside the processing station, fixedly connected to the inner bottom surface of the processing station, and electrically connected to the controller.

[0039] The first slide groove is arranged above the top surface of the processing station, on the side of the rotating motor, and is arranged in a direction perpendicular to the rotating axis direction of the rotating motor.

[0040] The double-sided rack is arranged above the processing station and on the side of the rotating motor. The double-sided rack is slidably connected to the inner wall of the first sliding groove through a sliding block, and the sliding direction is the setting direction of the first sliding groove.

[0041] The second gear is sleeved on the rotating shaft of the rotating motor, fixedly connected to the side surface of the rotating shaft of the rotating motor, and meshed with one side surface of the double-sided rack.

[0042] The second chute is arranged on the top surface of the processing station and is located on the side of the double-sided rack away from the rotating motor. The second chute is parallel to the first chute.

[0043] The first clamping rod is a right-angle rod, and the vertical rod is arranged above the top surface of the processing station and above the second slide groove. The first clamping rod is slidably connected to the second slide groove through a slider, and the sliding direction is parallel to the setting direction of the first slide groove. The first clamping rod is also fixedly connected to the other side of the double-sided rack through a connecting rod.

[0044] The second clamping rod is arranged horizontally above the top surface of the processing station and is on the same horizontal line as the horizontal rod of the first clamping rod. One end of the second clamping rod is rotatably connected to the inner side surface of the baffle of the processing station, and the rotation axis is parallel to the setting direction of the second sliding groove.

[0045] The first clamping block has a side surface that is an arc surface and is consistent with the curvature of the side surface of the lens being processed, and the other sides are all flat surfaces. The first clamping block is arranged above the top surface of the processing station, and a flat side surface of the first clamping block is fixedly connected to the end surface of the transverse rod of the first clamping rod.

[0046] The second clamping block has the same shape as the first clamping block and is arranged above the top surface of the processing station. A flat side surface of the second clamping tube is fixedly connected to the other end surface of the second clamping rod, and the arc side surface of the second clamping block and the arc side surface of the first clamping block can form a circle.

[0047] The two clamping pads are respectively arranged on the arc side surface of the first clamping block and the arc side surface of the second clamping block, and are respectively fixedly connected to the arc side surface of the first clamping block and the arc side surface of the second clamping block. The interior of the clamping pad arranged on the second clamping block is hollow, and a plurality of through holes are arranged on the surface, which are connected to the interior. The interior of the clamping pad arranged on the second clamping block is also connected to the exhaust port of the vacuum machine through a pipeline.

[0048] The turning device is arranged on the second clamping rod, connected to the second clamping rod, and connected to the other side surface of the double-sided rack.

[0049] Before polishing the lens, the user should first place the lens in the second clamping block and then activate the vacuum machine through the controller. After the vacuum machine is activated, it sucks away the air inside the second clamping block through the pipe and applies suction to the lens, completing the initial fixation of the lens.

[0050] When the rotating motor rotates forward until it stops, the rotating motor drives the second gear to rotate forward, the second gear drives the double-sided rack to move forward, the double-sided rack moves forward and drives the first clamping rod to move forward and drives the flipping device to move forward. When the flipping device moves forward, the flipping device will not apply power to the second clamping rod.

[0051] When the first clamping rod moves forward, the forward movement of the first clamping rod drives the first clamping block to move forward, and the first clamping block moves forward and approaches the lens adsorbed by the second clamping block. After the first clamping block contacts the lens, it applies pressure to the lens until the rotating motor stops rotating forward, completing the fixation of the lens by the first clamping block and the second clamping block.

[0052] When the motor rotates in reverse until it stops, the motor drives the second gear in reverse, which in turn drives the double-sided rack in reverse. The reverse movement of the double-sided rack drives the first clamping rod in reverse, which in turn drives the flipping device in reverse. When the first clamping rod moves in reverse, the reverse movement of the first clamping rod drives the first clamping block in reverse, which moves away from the lens held by the second clamping block. The first clamping block moves away from the lens and stops applying pressure to the lens until the motor stops rotating in reverse.

[0053] When the flipping device moves in the reverse direction, the flipping device will drive the second clamping rod to rotate, and the rotation of the second clamping rod will drive the second clamping block to rotate, and the rotation of the second clamping block will drive the adsorbed lens to rotate until the drive motor reverses to stop, and the second clamping block completes the rotation and flipping of the lens.

[0054] Furthermore, the flipping device includes: a third gear, a vertical rotating rod, a second bevel gear, a fourth gear, and a one-way clutch.

[0055] The vertical rotating rod is arranged just below the middle of the second clamping rod, on the side of the double-sided rack away from the second gear. The bottom end of the vertical rotating rod is rotatably connected to the top surface of the processing station, and the rotating axis is parallel to the rotating shaft axis of the rotating motor.

[0056] The one-way clutch is sleeved on the lower end of the vertical rotating rod and is fixedly connected to the side surface of the vertical rotating rod.

[0057] The third gear is sleeved on the one-way clutch and fixedly connected to the side surface of the one-way clutch, and meshes with the side surface of the double-sided rack away from the second gear.

[0058] The fourth gear is sleeved on the vertical rotating rod and is located above the third gear. The fourth gear is fixedly connected to the side surface of the vertical rotating rod.

[0059] The second bevel gear is sleeved on the middle part of the second clamping rod, fixedly connected to the side surface of the second clamping rod, and meshed with the fourth gear.

[0060] When the double-sided rack moves in the forward direction, the forward movement of the double-sided rack drives the third gear to rotate in the forward direction, and the forward rotation of the third gear does not drive the one-way clutch to rotate.

[0061] When the double-sided rack moves in the opposite direction, the reverse movement of the double-sided rack drives the third gear to rotate in the opposite direction, the rotation of the third gear drives the one-way clutch to rotate in the opposite direction, the reverse rotation of the one-way clutch drives the vertical rotation rod to rotate in the opposite direction, the reverse rotation of the vertical rotation rod drives the fourth gear to rotate in the opposite direction, the reverse rotation of the fourth gear drives the second bevel gear to rotate in the opposite direction, the reverse rotation of the second bevel gear drives the second clamping rod to rotate in the opposite direction, the reverse rotation of the second clamping rod drives the second clamping block to rotate in the opposite direction, and the reverse rotation of the second clamping block drives the adsorbed lens to rotate in the opposite direction. This process continues until the double-sided rack stops moving, completing the rotation and flipping of the adsorbed lens.

[0062] Furthermore, it also includes: a lens cleaner: the lens cleaner is arranged on the side of the processing station and on the ground, and the lens cleaner is electrically connected to the controller.

[0063] The user can put the completely polished lens into the lens cleaner to clean the polished lens.

[0064] Furthermore, the mirror polishing device also includes a distance detector. The distance detector is arranged above the processing station and is located to the side of the grinding wheel. The distance detector is fixedly connected to the side of the grinding wheel, with a detection port facing the top surface of the processing station and electrically connected to the controller.

[0065] The user can use the controller to check the distance between the bottom surface of the grinding disc and the surface of the fixed lens detected by the distance detector to avoid direct impact with the fixed lens surface and causing damage to the lens.

[0066] Furthermore, it also includes: a dust suction device and a dust suction port.

[0067] The dust suction port is arranged on the top of the processing station and is located directly below the second clamping block. The dust suction port is communicated with the interior of the processing station.

[0068] The dust suction device is arranged inside the processing station and is located on the side of the vacuum machine. The dust suction device is fixedly connected to the bottom surface of the processing station, and the dust suction port of the dust suction device is connected to the dust suction port through a pipe. The dust suction device is a device with a water separator.

[0069] After the user starts the dual-axis motor through the controller, the controller will also start the dust suction device. After the dust suction device is started, it can suck in the debris generated when grinding the lens surface through the pipe and the dust suction port to prevent glass fragments from splashing and affecting surrounding users.

[0070] Furthermore, the clamping pad is made of rubber material.

[0071] By setting the clamping pad to be a rubber material, the side of the lens can be effectively protected to prevent the lens from being squeezed and broken by excessive pressure.

[0072] The utility model relates to a high-precision lens, characterized in that the high-precision lens adopts the lens of an optical sight.

[0073] Beneficial effects of the present invention:

[0074] 1. The present invention utilizes the mutual coordination and support between the mirror polishing device, polishing and dust removal device, lens adsorption and flipping device, processing station, and controller. The lens adsorption and flipping device can initially adsorb and fix the lens. When the user controls the mirror polishing device through the controller, the mirror polishing device drives the lens adsorption and flipping device to completely fix the lens. While polishing the fixed lens, the mirror polishing device also drives the polishing and dust removal device. After the polishing and dust removal device is activated, it can clean up the glass debris generated by the polished lens. After polishing one of the mirror surfaces, when the user controls the mirror polishing device to leave the fixed lens through the controller, the lens adsorption and flipping device can release the fixation of the lens and flip the lens over. After the lens is flipped over, the user can control the mirror polishing device through the controller to move to the fixed lens surface to polish the other mirror surface. With this function, when the user is polishing the lens, the device can automatically fix the lens and clean the glass fragments generated during polishing. At the same time, after one side of the lens is polished, the device can also automatically flip the lens to the other side. BRIEF DESCRIPTION OF THE DRAWINGS

[0075] Figure 1 is a side sectional view of the present invention;

[0076] Figure 2 is a top view of the present invention;

[0077] Figure 3 It is a cross-sectional view of the polished shell of the present invention.

[0078] Explanation of the accompanying drawings: 1. Processing station; 101. Dual-axis motor; 102. Grinding disc; 103. Grinding shell; 104. Rotating motor; 105. Electric telescopic rod; 106. Connecting arm; 201. First bevel gear; 202. First gear; 203. Cam; 204. Lateral rotating rod; 205. Airbag; 206. Air supply pipe; 301. First clamping block; 302. Second clamping block; 303. First clamping rod; 304. Second clamping rod; 305. Vacuum machine; 306. Double-sided rack; 307. First slide; 308. Second slide; 309. Second gear; 401. Third gear; 402. Vertical rotating rod; 403. Second bevel gear; 404. Fourth gear; 405. One-way clutch; 5. Distance detector; 6. Dust suction device; 7. Dust suction port. DETAILED DESCRIPTION

[0079] The following will clearly and completely describe the concept and technical effects of the present invention in conjunction with the embodiments so as to fully understand the purpose, characteristics and effects of the present invention.

[0080] See also Figure 1-3 : A production and processing device, including: a mirror polishing device, a polishing and dust removal device, a lens adsorption and flipping device, a processing station 1, and a controller.

[0081] The processing station 1 is set on the ground, and a baffle is set around the top surface of the processing station 1.

[0082] The mirror polishing device is arranged above the processing station 1 and connected to the top surface of the processing station 1 .

[0083] The grinding and dust removal device is arranged on the mirror grinding device and is connected with the mirror grinding device.

[0084] The lens adsorption and flipping device is arranged above the processing station 1, connected to the top of the processing station 1, and connected to the mirror polishing device.

[0085] The controller is arranged on the side of the processing station 1 and on the ground. The controller is electrically connected to the mirror polishing device and the lens adsorption and flipping device.

[0086] When the user wants to polish the lens, the user should first place the lens on the lens adsorption and flipping device, and then start the lens adsorption and flipping device through the controller. When the lens adsorption and flipping device is started, the lens adsorption and flipping device adsorbs and fixes the lens.

[0087] When the user begins polishing a lens, the user activates the mirror polishing device via the controller. Once activated, the user can operate the mirror polishing device to move it over the surface of the lens being held. This movement activates the lens reversing device, which completely secures the lens and prevents it from moving. Once the mirror polishing device is above the fixed lens, the user can operate the controller to lower it to polish the fixed lens. During polishing, the mirror polishing device activates the dust removal device, which removes glass debris generated during polishing and disposes it elsewhere, preventing it from scratching the lens surface. Once polishing is complete, the user can operate the mirror polishing device to raise it and move it away from the fixed lens. Once the mirror polishing device is above the lens, the lens reversing device releases its grip and flips the lens. After the flipping is completed, the user can start the lens grinding device again through the controller to grind the other side of the lens.

[0088] With this working setting, when the user is grinding the lens, the device can automatically fix the lens and clean the glass fragments generated during grinding. At the same time, after one side of the lens is polished, the device can also automatically flip the lens to the other side.

[0089] The mirror polishing device includes: a dual-axis motor 101, a grinding disc 102, a polishing shell 103, a rotating motor 104, an electric telescopic rod 105, and a connecting arm 106.

[0090] The rotating motor 104 is arranged above the processing station 1 and is located at the top of the processing station 1. The rotating motor 104 is fixedly connected to the top surface of the processing station 1 through a groove arranged on the top surface of the processing station 1. The rotating motor 104 is electrically connected to the controller.

[0091] The electric telescopic rod 105 is arranged inside the processing station 1 and above the rotating motor 104. The base of the electric telescopic rod 105 is fixedly connected to the rotating shaft of the rotating motor 104, and the axis coincides with the axis of the rotating shaft of the rotating motor 104. The electric telescopic rod 105 is also electrically connected to the controller.

[0092] The connecting arm 106 is a right-angle rod and is arranged inside the processing station 1 and above the electric telescopic rod 105. The vertical rod of the connecting arm 106 is fixedly connected to the extension rod of the electric telescopic rod 105, and the axis coincides with the axis of the rotating motor 104.

[0093] The grinding shell 103 is arranged inside the processing station 1, and is located above the top surface of the processing station 1 and on the side of the connecting arm 106. The side surface of the grinding shell 103 is fixedly connected to the cross bar end surface of the connecting arm 106, and the inner side surface is connected to the grinding dust removal device.

[0094] The dual-axis motor 101 is arranged inside the polishing shell 103, and one of the rotating shafts passes through the bottom of the polishing shell 103 and extends to the bottom of the polishing shell 103, and the other rotating shaft is connected to the polishing dust removal device. The shell of the dual-axis motor 101 is fixedly connected to the inner wall of the polishing shell 103 and is electrically connected to the controller.

[0095] The grinding disc 102 is arranged below a rotating shaft extending from the dual-axis motor 101 to the bottom of the grinding shell 103. The top surface of the grinding disc 102 is clamped and connected to the dual-axis motor 101 and a rotating shaft extending to the bottom of the grinding shell 103, and the side surface is also connected to the grinding dust removal device.

[0096] When the user wants to polish the lens that has been adsorbed, the user can start the rotating motor 104 through the controller. After the rotating motor 104 is started, the rotation of the rotating motor 104 can drive the electric telescopic rod 105 to rotate, and drive the lens adsorption and flipping device to operate. When the lens adsorption device is in operation, it can fix the adsorbed lens.

[0097] When the electric telescopic rod 105 rotates, the electric telescopic rod 105 drives the connecting arm 106 to rotate, and the connecting arm 106 drives the grinding shell 103 to move. The movement of the grinding shell 103 drives the dual-axis motor 101 and the grinding dust removal device to move. The movement of the dual-axis motor 101 drives the grinding disc 102 to move. After the grinding disc 102 moves to above the fixed lens, the rotating motor 104 stops operating.

[0098] When the grinding disc 102 moves to above the fixed lens, the user can start the electric telescopic rod through the controller. When the user starts the electric telescopic rod to retract through the controller, the electric telescopic rod will drive the connecting arm 106 to move downward. The connecting arm 106 moves downward to drive the grinding shell 103 to move downward. The grinding shell 103 moves downward to drive the dual-axis motor 101, and the grinding dust removal device moves downward. The dual-axis motor 101 moves downward to drive the grinding disc 102 to move downward until the grinding disc 102 moves to be able to completely fit the fixed lens surface.

[0099] When the grinding disc 102 is completely in contact with the fixed lens surface, the user can start the dual-axis motor 101 through the controller. After the dual-axis motor 101 is started, one of the rotating shafts will drive the grinding disc 102 to rotate, and the other rotating shaft will drive the grinding and dust removal device to operate. When the grinding disc 102 rotates, the grinding disc 102 can grind the fixed lens surface, and when the grinding and dust removal device is activated, it can clean up the glass debris generated during grinding to other places.

[0100] When the lens is polished, the user can start the electric telescopic rod to rise. When the electric telescopic rod rises, the electric telescopic rod drives the connecting arm 106 to move upward, and the upward movement of the connecting arm 106 drives the polishing housing 103 to move upward. The upward movement of the polishing housing 103 drives the dual-axis motor 101, and the polishing dust removal device moves upward. The upward movement of the dual-axis motor 101 drives the grinding disc 102 to move upward until the grinding disc 102 moves away from the fixed lens surface.

[0101] When the grinding disc 102 moves away from the fixed lens surface, the user can control the rotary motor 104 to reverse through the controller. The reverse rotation of the rotating shaft of the rotary motor 104 drives the electric telescopic rod 105 to reverse, and drives the lens adsorption and flipping device to operate. When the lens adsorption device is activated, it can release the fixed lens and flip the lens.

[0102] When the electric telescopic rod 105 is flipped, the electric telescopic rod 105 rotates and drives the connecting arm 106 to rotate in the opposite direction. The connecting arm 106 flips and drives the grinding housing 103 to move in the opposite direction. The reverse movement of the grinding housing 103 drives the dual-axis motor 101 and the grinding dust removal device to move in the opposite direction. The reverse movement of the dual-axis motor 101 drives the grinding disc 102 to move in the opposite direction until the grinding disc 102 moves to its original position. At this point, the lens is flipped over.

[0103] When the mirror surface is completely turned over, the user can repeat the lens polishing operation to polish the other side of the lens. After polishing is completed, the user can repeat the lens flipping operation, and then use the controller to stop the lens adsorption and flipping device from adsorbing the lens, and collect the lens to wait for the next process.

[0104] The grinding and dust removal device includes: a first bevel gear 201 , a first gear 202 , a cam 203 , a transverse rotating rod 204 , an air bag 205 , and an air supply pipe 206 .

[0105] The first gear 202 is disposed inside the grinding housing 103 , is sleeved on the other rotating shaft of the dual-axis motor 101 , and is fixedly connected to the side surface of the other rotating shaft of the dual-axis motor 101 .

[0106] The transverse rotating rod 204 is arranged inside the grinding shell 103, above the dual-axis motor 101 and to the side of the first gear 202. One end of the transverse rotating rod 204 is rotatably connected to the inner wall of the grinding shell 103, and the rotation axis is perpendicular to the axis of the other rotation axis of the dual-axis motor 101.

[0107] The first bevel gear 201 is arranged inside the grinding housing 103 and is sleeved on the side surface of one end of the horizontal rotating rod 204 close to the first gear 202. The first bevel gear 201 is meshed with the first gear 202 and is fixedly connected to the side surface of the other end of the horizontal rotating rod 204.

[0108] The cam 203 is disposed inside the grinding housing 103 and sleeved on the middle portion of the transverse rotating rod 204 . The cam 203 is fixedly connected to the side surface of the middle portion of the transverse rotating rod 204 .

[0109] The airbag 205 is arranged inside the polishing shell 103, just above the cam 203, and is fixedly connected to the inner top surface of the polishing shell 103. The input port of the airbag 205 is connected to the outside through a pipe passing through the top of the polishing shell 103.

[0110] The air supply pipe 206 is arranged on the side of the polishing shell 103, and one end passes through the side wall of the polishing shell 103, and passes through the side wall of the airbag 205 to communicate with the inside of the airbag 205. The other end side of the air supply pipe 206 is fixedly connected to the side of the grinding disc 102, and the port faces the lens area fixed by the lens adsorption and flipping device.

[0111] When the other rotating shaft of the dual-axis motor 101 rotates, the other rotating shaft of the dual-axis motor 101 will drive the first gear 202 to rotate, the rotation of the first gear 202 will drive the second bevel gear 403 to rotate, the rotation of the second bevel gear 403 will drive the horizontal rotating rod 204 to rotate, the rotation of the horizontal rotating rod 204 will drive the cam 203 to rotate, the rotation of the cam 203 will continuously touch the airbag 205 and apply pressure to the airbag 205. When pressure is applied to the airbag 205, the airbag 205 contracts and delivers air through the air supply pipe 206 to the surface of the lens fixed by the lens adsorption and flipping device, so as to blow glass fragments generated when grinding the lens surface away from the surface of the lens.

[0112] The lens adsorption and flipping device includes: a first clamping block 301, a second clamping block 302, a first clamping rod 303, a second clamping rod 304, a vacuum machine 305, a double-sided rack 306, a first slide 307, a second slide 308, a second gear 309, two clamping pads, and a flipping device.

[0113] The vacuum machine 305 is disposed inside the processing station 1 and is fixedly connected to the inner bottom surface of the processing station 1 and is electrically connected to the controller.

[0114] The first slide groove 307 is arranged above the top surface of the processing station 1, on the side of the rotating motor 104, and is arranged in a direction perpendicular to the rotating axis direction of the rotating motor 104.

[0115] The double-sided rack 306 is arranged above the processing station 1 and is located on the side of the rotating motor 104. The double-sided rack 306 is slidably connected to the inner wall of the first sliding groove 307 through a sliding block, and the sliding direction is the setting direction of the first sliding groove.

[0116] The second gear 309 is sleeved on the rotating shaft of the rotating motor 104 , fixedly connected to the side surface of the rotating shaft of the rotating motor 104 , and meshed with one side surface of the double-sided rack 306 .

[0117] The second chute 308 is disposed on the top surface of the processing station 1 and is located on the side of the double-sided rack 306 away from the rotating motor 104 . The second chute 308 and the first chute 307 are parallel to each other.

[0118] The first clamping rod 303 is a right-angle rod, and the vertical rod is arranged above the top surface of the processing station 1 and is above the second slide groove 308. The first clamping rod 303 is slidingly connected to the second slide groove 308 through a slider, and the sliding direction is parallel to the setting direction of the first slide groove 307. The first clamping rod 303 is also fixedly connected to the other side of the double-sided rack 306 through a connecting rod.

[0119] The second clamping rod 304 is horizontally arranged above the top surface of the processing station 1 and is on the same horizontal line as the horizontal rod of the first clamping rod 303. One end of the second clamping rod 304 is rotatably connected to the inner side surface of the baffle of the processing station 1, and the rotation axis is parallel to the setting direction of the second sliding groove.

[0120] The first clamping block 301 has a side surface that is an arc surface, and the curvature is consistent with the side surface of the lens being processed, and the other sides are flat. The first clamping block 301 is arranged above the top surface of the processing station 1, and a flat side surface of the first clamping block 301 is fixedly connected to the end face of the transverse rod of the first clamping rod 303.

[0121] The second clamping block 302 has the same shape as the first clamping block 301 and is arranged above the top surface of the processing station 1. A flat side surface of the second clamping tube is fixedly connected to the other end surface of the second clamping rod 304, and the arc side surface of the second clamping block 302 and the arc side surface of the first clamping block 301 can form a circle.

[0122] The two clamping pads are respectively arranged on the arc side of the first clamping block 301 and the arc side of the second clamping block 302, and are respectively fixedly connected to the arc side of the first clamping block 301 and the arc side of the second clamping block 302. The interior of the clamping pad arranged on the second clamping block 302 is hollow, and a plurality of through holes are arranged on the surface, which are connected to the interior. The interior of the clamping pad arranged on the second clamping block 302 is also connected to the exhaust port of the vacuum machine 305 through a pipeline.

[0123] The flipping device is disposed on the second clamping rod 304 and connected to the second clamping rod 304 , and is also connected to the other side surface of the double-sided rack 306 .

[0124] Before polishing the lens, the user should first place the lens in the second clamping block 302 and then activate the vacuum machine 305 through the controller. After activation, the vacuum machine 305 sucks away the air inside the second clamping block 302 through the pipe and applies suction to the lens, completing the initial fixation of the lens.

[0125] When the rotating motor 104 rotates forward until it stops, the rotating motor 104 drives the second gear 309 to rotate forward, and the second gear 309 drives the double-sided rack 306 to move forward. The double-sided rack 306 moves forward and drives the first clamping rod 303 to move forward and drives the flipping device to move forward. When the flipping device moves forward, the flipping device will not apply power to the second clamping rod 304.

[0126] When the first clamping rod 303 moves forward, the forward movement of the first clamping rod 303 drives the first clamping block 301 to move forward, and the first clamping block 301 moves forward and approaches the lens adsorbed by the second clamping block 302. After the first clamping block 301 contacts the lens, it applies pressure to the lens until the rotating motor 104 stops rotating forward, completing the fixation of the lens by the first clamping block 301 and the second clamping block 302.

[0127] When the rotary motor 104 rotates in reverse until it stops, the reverse rotation of the rotary motor 104 drives the second gear 309 in reverse, which in turn drives the double-sided rack 306 in reverse. The reverse rotation of the double-sided rack 306 drives the first clamping rod 303 in reverse, which in turn drives the flipping device in reverse. When the first clamping rod 303 moves in reverse, it drives the first clamping block 301 in reverse, which moves the first clamping block 301 in reverse, away from the lens held by the second clamping block 302. The first clamping block 301 moves away from the lens and stops applying pressure to the lens until the rotary motor 104 stops in reverse rotation.

[0128] When the flipping device moves in the reverse direction, the flipping device will drive the second clamping rod 304 to rotate, and the rotation of the second clamping rod 304 will drive the second clamping block 302 to rotate, and the rotation of the second clamping block 302 will drive the adsorbed lens to rotate until the driving motor reverses to stop, and the second clamping block 302 completes the rotation and flipping of the lens.

[0129] The turning device includes: a third gear 401 , a vertical rotating rod 402 , a second bevel gear 403 , a fourth gear 404 , and a one-way clutch 405 .

[0130] The vertical rotating rod 402 is arranged directly below the middle of the second clamping rod 304, on the side of the double-sided rack 306 away from the second gear 309. The bottom end of the vertical rotating rod 402 is rotatably connected to the top surface of the processing station 1, and the rotation axis is parallel to the rotation axis of the rotating motor 104.

[0131] The one-way clutch 405 is sleeved on the lower end of the vertical rotating rod 402 and fixedly connected to the side surface of the vertical rotating rod 402 .

[0132] The third gear 401 is sleeved on the one-way clutch 405 and fixedly connected to the side of the one-way clutch 405 , and meshes with the side of the double-sided rack 306 away from the second gear 309 .

[0133] The fourth gear 404 is sleeved on the vertical rotating rod 402 and is located above the third gear 401 . The fourth gear 404 is fixedly connected to the side surface of the vertical rotating rod 402 .

[0134] The second bevel gear 403 is sleeved on the middle portion of the second clamping rod 304 , fixedly connected to the side surface of the second clamping rod 304 , and meshed with the fourth gear 404 .

[0135] When the double-sided rack 306 moves forward, the forward movement of the double-sided rack 306 drives the third gear 401 to rotate forward, and the forward rotation of the third gear 401 does not drive the one-way clutch 405 to rotate.

[0136] When the double-sided rack 306 moves in the opposite direction, the reverse movement of the double-sided rack 306 drives the third gear 401 to rotate in the opposite direction. The rotation of the third gear 401 drives the one-way clutch 405 to rotate in the opposite direction. The reverse rotation of the one-way clutch 405 drives the vertical rotation rod 402 to rotate in the opposite direction. The reverse rotation of the vertical rotation rod 402 drives the fourth gear 404 to rotate in the opposite direction. The reverse rotation of the fourth gear 404 drives the second bevel gear 403 to rotate in the opposite direction. The reverse rotation of the second bevel gear 403 drives the second clamping rod 304 to rotate in the opposite direction. The reverse rotation of the second clamping rod 304 drives the second clamping block 302 to rotate in the opposite direction. The reverse rotation of the second clamping block 302 drives the attracted lens in the opposite direction. The process continues until the double-sided rack 306 stops moving, completing the rotation and flipping of the attracted lens.

[0137] It also includes: a lens cleaner: the lens cleaner is arranged on the side of the processing station 1 and on the ground, and the lens cleaner is electrically connected to the controller.

[0138] The user can put the completely polished lens into the lens cleaner to clean the polished lens.

[0139] The mirror polishing device also includes a distance detector 5. The distance detector 5 is arranged above the processing station 1 and is located to the side of the grinding disc 102. The distance detector 5 is fixedly connected to the side of the grinding disc 102, with the detection port facing the top surface of the processing station 1 and electrically connected to the controller.

[0140] The user can use the controller to check the distance between the bottom surface of the grinding disc 102 and the surface of the fixed lens detected by the distance detector 5 to avoid direct impact with the fixed lens surface to cause damage to the lens.

[0141] It also includes: a dust suction device 6 and a dust suction port 7.

[0142] The dust suction port 7 is arranged at the top of the processing station 1 and is located directly below the second clamping block 302 . The dust suction port 7 is communicated with the interior of the processing station 1 .

[0143] The dust suction device 6 is arranged inside the processing station 1 and is located on the side of the vacuum machine 305. The dust suction device 6 is fixedly connected to the bottom surface of the processing station 1, and the dust suction port 7 of the dust suction device 6 is connected to the dust suction port 7 through a pipe. The dust suction device 6 is a device with a water separator.

[0144] After the user starts the dual-axis motor 101 through the controller, the controller will simultaneously start the dust suction device 6. After the dust suction device 6 is started, it can suck in the debris generated when grinding the lens surface through the pipe and the dust suction port 7 to prevent glass fragments from splashing and affecting surrounding users.

[0145] The clamping pad is made of rubber material.

[0146] By setting the clamping pad to be a rubber material, the side of the lens can be effectively protected to prevent the lens from being squeezed and broken by excessive pressure.

[0147] The utility model relates to a high-precision lens, characterized in that the high-precision lens adopts the lens of an optical sight.

[0148] Working process:

[0149] Before polishing the lens, the user should first place the lens in the second clamping block 302, then activate the vacuum machine 305 through the controller. After activation, the vacuum machine 305 sucks away the air inside the second clamping block 302 through the pipe and applies suction to the lens, completing the initial adsorption and fixation of the lens.

[0150] When the user wants to polish the lens that has been adsorbed, the user can start the rotary motor 104 through the controller. After the rotary motor 104 is started, the forward rotation of the rotary motor 104 can drive the electric telescopic rod 105 to rotate, and the second gear 309 to rotate forward. When the electric telescopic rod 105 rotates, the electric telescopic rod 105 rotates, which drives the connecting arm 106 to rotate. The rotation of the connecting arm 106 drives the grinding housing 103 to move. The movement of the grinding housing 103 drives the dual-axis motor 101, the first bevel gear 201, the first gear 202, the cam 203, the transverse rotating rod 204, the airbag 205, and the air supply tube 206 to move. The movement of the dual-axis motor 101 drives the grinding disc 102 to move. After the grinding disc 102 moves to the top of the fixed lens, the rotary motor 104 is stopped.

[0151] When the second gear 309 rotates forward, it drives the double-sided rack 306 in forward motion. This forward motion of the double-sided rack 306 drives the first clamping rod 303 in forward motion and drives the third gear 401 in forward rotation. When the third gear 401 rotates forward, this forward rotation does not drive the one-way clutch 405 in forward rotation. When the first clamping rod 303 moves forward, this forward motion drives the first clamping block 301 in forward motion. The first clamping block 301 moves forward, approaching the lens held by the second clamping block 302. Once the first clamping block 301 contacts the lens, it applies pressure until the motor 104 stops rotating forward, completing the joint securing of the lens by the first clamping block 301 and the second clamping block 302.

[0152] When the rotating motor 104 stops and the grinding disc 102 moves to above the fixed lens, the user can start the electric telescopic rod through the controller. When the user starts the electric telescopic rod to retract through the controller, the electric telescopic rod will drive the connecting arm 106 to move downward. The connecting arm 106 moves downward, driving the grinding shell 103 to move downward. The grinding shell 103 moves downward, driving the dual-axis motor 101, the first bevel gear 201, the first gear 202, the cam 203, the transverse rotating rod 204, the airbag 205, and the air supply pipe 206 to move downward. The dual-axis motor 101 moves downward, driving the grinding disc 102 to move downward until the grinding disc 102 moves to fully fit the fixed lens surface.

[0153] When the grinding disc 102 is completely in contact with the fixed lens surface, the user can activate the dual-axis motor 101 through the controller. After the dual-axis motor 101 is activated, one of the rotating shafts drives the grinding disc 102 to rotate, and the other rotating shaft drives the first gear 202 to rotate. When the grinding disc 102 rotates, it can grind the fixed lens surface.

[0154] When the first gear 202 rotates, the other rotating shaft of the dual-axis motor 101 will drive the first gear 202 to rotate, and the rotation of the first gear 202 will drive the second bevel gear 403 to rotate, and the rotation of the second bevel gear 403 will drive the horizontal rotating rod 204 to rotate, and the rotation of the horizontal rotating rod 204 will drive the cam 203 to rotate. The rotation of the cam 203 will continuously touch the airbag 205 and apply pressure to the airbag 205. When pressure is applied to the airbag 205, the airbag 205 contracts and delivers air to the fixed lens surface through the air supply pipe 206, so as to blow glass fragments generated when grinding the lens surface away from the lens surface.

[0155] When the user wants to polish the other side of the fixed lens, the user can start the electric telescopic rod to rise. When the electric telescopic rod rises, the electric telescopic rod will drive the connecting arm 106 to move upward. The connecting arm 106 moves upward, driving the polishing shell 103 to move upward. The polishing shell 103 moves upward, driving the dual-axis motor 101, the first bevel gear 201, the first gear 202, the cam 203, the transverse rotating rod 204, the airbag 205, and the air supply pipe 206 to move upward. The dual-axis motor 101 moves upward, driving the grinding disc 102 to move upward until the grinding disc 102 moves away from the fixed lens surface.

[0156] When the grinding disc 102 moves away from the fixed lens surface, the user can control the rotary motor 104 to reverse through the controller. The rotary shaft of the rotary motor 104 reverses, driving the electric telescopic rod 105 to reverse. The reverse rotation of the rotary motor 104 can drive the electric telescopic rod 105 to reverse, and also drive the second gear 309 to reverse. When the electric telescopic rod 105 reverses, the reverse rotation of the electric telescopic rod 105 drives the connecting arm 106 to reverse, which drives the grinding housing 103 to move in the opposite direction. The reverse movement of the grinding housing 103 drives the dual-axis motor 101, the first bevel gear 201, the first gear 202, the cam 203, the transverse rotating rod 204, the airbag 205, and the air supply tube 206 to move in the opposite direction. The movement of the dual-axis motor 101 drives the grinding disc 102 to move in the opposite direction until the grinding disc 102 moves to its original position.

[0157] When the second gear 309 rotates reversely, it drives the double-sided rack 306 in the opposite direction. The reverse movement of the double-sided rack 306 drives the first clamping rod 303 in the opposite direction, which in turn drives the third gear 401 in the opposite direction. The reverse movement of the first clamping rod 303 drives the first clamping block 301 in the opposite direction. The first clamping block 301 moves in the opposite direction, away from the lens held by the second clamping block 302. The first clamping block 301 stops applying pressure to the lens until the motor 104 stops rotating in the opposite direction, causing the first clamping block 301 and the second clamping block 302 to release their grip on the lens.

[0158] When the third gear 401 rotates in reverse, the rotation of the third gear 401 drives the one-way clutch 405 in the opposite direction. The reverse rotation of the one-way clutch 405 drives the vertical rotation rod 402 in the opposite direction. The reverse rotation of the vertical rotation rod 402 drives the fourth gear 404 in the opposite direction. The reverse rotation of the fourth gear 404 drives the second bevel gear 403 in the opposite direction. The reverse rotation of the second bevel gear 403 drives the second clamping rod 304 in the opposite direction. The reverse rotation of the second clamping rod 304 drives the second clamping block 302 in the opposite direction. The reverse rotation of the second clamping block 302 drives the adsorbed lens in the opposite direction. This continues until the double-sided rack 306 stops moving, completing the rotation and flipping of the adsorbed lens. The user can then repeatedly control the rotation motor 104, the electrically controlled telescopic rod, and the dual-axis motor 101 through the controller to complete the fixing and polishing of the reversed lens.

[0159] The user can put the completely polished lens into the lens cleaner to clean the polished lens.

[0160] When the user starts the dual-axis motor 101 through the controller, the controller will simultaneously start the dust suction device 6. After the dust suction device 6 is started, it can suck in the debris generated when grinding the lens surface through the pipe and the dust suction port 7 to prevent glass fragments from splashing and affecting surrounding users.

[0161] The user can use the controller to check the distance between the bottom surface of the grinding disc 102 and the surface of the fixed lens, as detected by the distance detector 5, to avoid direct impact with the fixed lens surface and damage to the lens. The above embodiments are only part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, other embodiments obtained by those skilled in the art without inventive effort are all within the scope of protection of the present invention.

Claims

1. A production and processing device, characterized in that: include: Mirror polishing device, polishing dust removal device, lens adsorption and flipping device, processing station (1), controller; The processing station (1) is arranged on the ground, and a baffle is arranged around the top surface of the processing station (1); The mirror polishing device is arranged above the processing station (1) and is connected to the top surface of the processing station (1); The polishing and dust removal device is arranged on the mirror polishing device and is connected to the mirror polishing device; The lens adsorption and flipping device is arranged above the processing station (1), connected to the top of the processing station (1), and connected to the mirror polishing device; The controller is arranged on the side of the processing station (1) and on the ground, and the controller is electrically connected to the mirror polishing device and the lens adsorption and flipping device; The lens adsorption and flipping device comprises: a first clamping block (301), a second clamping block (302), a first clamping rod (303), a second clamping rod (304), a vacuum machine (305), a double-sided rack (306), a first slide groove (307), a second slide groove (308), a second gear (309), two clamping pads and a flipping device; The flipping device is arranged on the second clamping rod (304), connected to the second clamping rod (304), and connected to the other side surface of the double-sided rack (306); When the second clamping rod (304) rotates in the reverse direction, it drives the second clamping block (302) to rotate in the reverse direction, and the reverse rotation of the second clamping block (302) drives the adsorbed lens to rotate in the reverse direction until the double-sided rack (306) stops moving, thus completing the rotation and flipping of the adsorbed lens; The turning device comprises: a third gear (401), a vertical rotation rod (402), a second bevel gear (403), a fourth gear (404) and a one-way clutch (405); The vertical rotating rod (402) is located on the side of the double-sided rack (306) away from the second gear (309), and the bottom end of the vertical rotating rod (402) is rotatably connected to the top surface of the processing station (1). The one-way clutch (405) is sleeved on the lower end of the vertical rotating rod (402) and fixedly connected to the side of the vertical rotating rod (402); The third gear (401) is sleeved on the one-way clutch (405), fixedly connected to the side of the one-way clutch (405), and meshed with the side of the double-sided rack (306) away from the second gear (309); The fourth gear (404) is sleeved on the vertical rotating rod (402) and is located above the third gear (401). The fourth gear (404) is fixedly connected to the side surface of the vertical rotating rod (402); The second bevel gear (403) is sleeved on the middle portion of the second clamping rod (304), fixedly connected to the side surface of the second clamping rod (304), and meshed with the fourth gear (404); When the second gear (309) rotates in reverse, the second gear (309) rotates in reverse and drives the double-sided rack (306) to move in the reverse direction, thereby driving the first clamping rod (303) to move in the reverse direction and driving the third gear (401) to rotate in reverse. The reverse movement of the first clamping rod (303) also drives the first clamping block (301) to move in the reverse direction. The first clamping block (301) moves in the reverse direction away from the lens adsorbed by the second clamping block (302). The first clamping block (301) stops applying pressure to the lens until the rotating motor (104) stops rotating in reverse direction, so that the first clamping block (301) and the second clamping block (302) release their fixation on the lens.

2. A production and processing device according to claim 1, characterized in that: The mirror polishing device comprises: a dual-axis motor (101), a grinding disc (102), a polishing housing (103), a rotating motor (104), an electric telescopic rod (105), and a connecting arm (106); The rotating motor (104) is arranged above the processing station (1) and is located at the top of the processing station (1). The rotating motor (104) is fixedly connected to the top surface of the processing station (1) through a groove provided on the top surface of the processing station (1), and the rotating shaft is also connected to the lens adsorption and flipping device. The rotating motor (104) is electrically connected to the controller; The electric telescopic rod (105) is arranged inside the processing station (1) and above the rotating motor (104); the base of the electric telescopic rod (105) is fixedly connected to the rotating shaft of the rotating motor (104), and the axis thereof coincides with the axis of the rotating shaft of the rotating motor (104); the electric telescopic rod (105) is also electrically connected to the controller; The connecting arm (106) is a right-angled rod and is arranged inside the processing station (1) and above the electric telescopic rod (105). The vertical rod of the connecting arm (106) is fixedly connected to the extension rod of the electric telescopic rod (105), and the axis thereof coincides with the axis of the rotating motor (104). The grinding shell (103) is arranged inside the processing station (1) and is located above the top surface of the processing station (1) and to the side of the connecting arm (106); the side surface of the grinding shell (103) is fixedly connected to the end surface of the cross bar of the connecting arm (106), and the inner side surface is connected to the grinding dust removal device; The dual-axis motor (101) is arranged inside the polishing housing (103), and one of the rotating shafts passes through the bottom of the polishing housing (103) and extends to the bottom of the polishing housing (103), and the other rotating shaft is connected to the polishing dust removal device. The housing of the dual-axis motor (101) is fixedly connected to the inner wall of the polishing housing (103) and is electrically connected to the controller; The grinding disc (102) is arranged below a rotating shaft of the dual-axis motor (101) extending below the grinding housing (103); the top surface of the grinding disc (102) is connected to the dual-axis motor (101) and the rotating shaft extending below the grinding housing (103) by snap-fitting, and the side surface is also connected to a grinding dust removal device.

3. A production and processing device according to claim 2, characterized in that: The grinding and dust removal device comprises: a first bevel gear (201), a first gear (202), a cam (203), a transverse rotating rod (204), an air bag (205), and an air supply pipe (206); The first gear (202) is arranged inside the grinding housing (103), is sleeved on the other rotating shaft of the dual-axis motor (101), and is fixedly connected to the side surface of the other rotating shaft of the dual-axis motor (101); The transverse rotating rod (204) is arranged inside the grinding housing (103), above the dual-axis motor (101) and to the side of the first gear (202), one end of the transverse rotating rod (204) is rotatably connected to the inner wall of the grinding housing (103), and the rotation axis is perpendicular to the axis of the other rotation axis of the dual-axis motor (101); The first bevel gear (201) is arranged inside the grinding housing (103) and is sleeved on the side surface of one end of the transverse rotating rod (204) close to the first gear (202). The first bevel gear (201) and the first gear (202) are meshed with each other and are fixedly connected to the side surface of the other end of the transverse rotating rod (204); The cam (203) is arranged inside the grinding housing (103) and is sleeved on the middle portion of the transverse rotating rod (204); the cam (203) is fixedly connected to the side surface of the middle portion of the transverse rotating rod (204); The airbag (205) is arranged inside the polishing shell (103) and is located directly above the cam (203). The airbag (205) is fixedly connected to the inner top surface of the polishing shell (103). The input port of the airbag (205) is connected to the outside world through a pipe penetrating the top of the polishing shell (103); The air supply pipe (206) is arranged on the side of the grinding shell (103), and one end thereof passes through the side wall of the grinding shell (103), and passes through the side wall of the air bag (205) to communicate with the interior of the air bag (205). The side surface of the other end of the air supply pipe (206) is fixedly connected to the side surface of the grinding disc (102), and the port faces the lens area fixed by the lens adsorption and flipping device.

4. A production and processing device according to claim 3, characterized in that: The vacuum machine (305) is arranged inside the processing station (1), fixedly connected to the inner bottom surface of the processing station (1), and electrically connected to the controller; The first chute (307) is arranged above the top surface of the processing station (1), on the side of the rotating motor (104), and is arranged in a direction perpendicular to the rotation axis direction of the rotating motor (104); The double-sided rack (306) is arranged above the processing station (1) and on the side of the rotating motor (104). The double-sided rack (306) is slidably connected to the inner wall of the first slide groove (307) through a sliding block. The sliding direction of the double-sided rack (306) is the setting direction of the first slide groove; The second gear (309) is sleeved on the rotating shaft of the rotating motor (104), fixedly connected to the side surface of the rotating shaft of the rotating motor (104), and meshed with one side surface of the double-sided rack (306); The second chute (308) is arranged on the top surface of the processing station (1) and is located on the side of the double-sided rack (306) away from the rotating motor (104), and the second chute (308) and the first chute (307) are parallel to each other; The first clamping rod (303) is a right-angle rod, and the vertical rod is arranged above the top surface of the processing station (1) and is located above the second slide groove (308). The first clamping rod (303) is slidably connected to the second slide groove (308) through a slider, and the sliding direction is parallel to the setting direction of the first slide groove (307). The first clamping rod (303) is also fixedly connected to the other side of the double-sided rack (306) through a connecting rod; The second clamping rod (304) is arranged horizontally above the top surface of the processing station (1) and is on the same horizontal line as the horizontal rod of the first clamping rod (303). One end of the second clamping rod (304) is rotatably connected to the inner side surface of the baffle of the processing station (1). The rotation axis of the second clamping rod (304) is parallel to the setting direction of the second slide groove. The first clamping block (301) has a side surface that is an arc surface and is consistent with the curvature of the side surface of the lens being processed, and the other side surfaces are all flat surfaces. The first clamping block (301) is arranged above the top surface of the processing station (1), and a flat side surface of the first clamping block (301) is fixedly connected to the end surface of the transverse rod of the first clamping rod (303); The second clamping block (302) has the same shape as the first clamping block (301) and is arranged above the top surface of the processing station (1); a flat side surface of the second clamping block is fixedly connected to the other end surface of the second clamping rod (304); and the arc side surface of the second clamping block (302) and the arc side surface of the first clamping block (301) can form a circle; The two clamping pads are respectively arranged on the arc side surface of the first clamping block (301) and the arc side surface of the second clamping block (302), and are respectively fixedly connected to the arc side surface of the first clamping block (301) and the arc side surface of the second clamping block (302). The interior of the clamping pad arranged on the second clamping block (302) is hollow, and a plurality of through holes are arranged on the surface to communicate with the interior. The interior of the clamping pad is also connected to the exhaust port of the vacuum machine (305) through a pipeline.

5. A production and processing device according to claim 4, characterized in that: The vertical rotating rod (402) is arranged directly below the middle of the second clamping rod (304), and its rotation axis is parallel to the rotation axis of the rotating motor (104).

6. A production and processing device according to claim 5, characterized in that: Also includes: Lens cleaner: The lens cleaner is arranged on the side of the processing station (1) and on the ground, and the lens cleaner is electrically connected to the controller.

7. A production and processing device according to claim 6, characterized in that: The mirror polishing device further comprises: a distance detector (5); The distance detector (5) is arranged above the processing station (1) and is located on the side of the grinding disc (102). The distance detector (5) is fixedly connected to the side of the grinding disc (102), and the detection port faces the top surface of the processing station (1) and is electrically connected to the controller.

8. A production and processing device according to claim 7, characterized in that: Also includes: Dust suction device (6), dust suction port (7); The dust suction port (7) is arranged at the top of the processing station (1) and is located directly below the second clamping block (302), and the dust suction port (7) is communicated with the interior of the processing station (1); The dust suction device (6) is arranged inside the processing station (1) and is located on the side of the vacuum machine (305). The dust suction device (6) is fixedly connected to the bottom surface of the processing station (1), and the dust suction port (7) of the dust suction device (6) is connected to the dust suction port (7) through a pipe. The dust suction device (6) is a device with a water separator.

9. A production and processing device according to claim 8, characterized in that: The clamping pad is made of rubber material.

Citation Information

Patent Citations

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