A lens cleaning device

CN224700648UActive Publication Date: 2026-09-01GINO OPTICAL (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202522153750.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-11
Publication Date
2026-09-01
Estimated Expiration
2035-10-11

AI Technical Summary

Technical Problem

[0004]为了改善清洗时镜片容易接触,和不能够全面的对镜片进行清洗的问题,本申请提供一种眼镜镜片清洗装置

Benefits of technology

[0024] 1. The lens is secured between several locking posts, which are flexible and can be adjusted according to the diameter of the lens. In addition, the outer surface of the locking posts is fixed with rubber protrusions, which form a mechanical engagement with the edge of the lens to prevent the lens from slipping off.

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Abstract

This application discloses a spectacle lens cleaning device, relating to the field of cleaning device technology. It includes a worktable, with a support platform fixedly connected inside. A conveying device for transporting lenses is provided on the outer surface of the support platform. Several clamping posts for adaptively holding the lenses are fixedly connected to the outer surface of the conveying device. A cleaning mechanism for cleaning spectacle lenses is provided inside the worktable. The cleaning mechanism includes a first cleaning roller and a second cleaning roller for cleaning the top and bottom surfaces of the lenses. A nozzle for spraying cleaning fluid onto the lenses is provided inside the worktable. This application utilizes the synchronous rotation of the first and second cleaning rollers to clean both the top and bottom surfaces of the lenses. Compared to traditional single-sided cleaning, the cleaning efficiency is significantly improved. Furthermore, during cleaning, the reciprocating oscillation of the nozzle achieves a fan-shaped coverage of the cleaning fluid on the lens surface, increasing the diameter of the dynamically sprayed coverage area and ensuring that no cleaning fluid residue remains on the edges and corners of the lenses.
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Description

Technical Field

[0001] This application relates to the field of cleaning apparatus technology, and in particular to an eyeglass lens cleaning apparatus. Background Technology

[0002] Eyeglasses are a combination of lenses and frames, used to improve vision, protect the eyes, or for decorative purposes. Eyeglasses can correct various vision problems, including myopia, hyperopia, astigmatism, presbyopia, strabismus, or amblyopia. Eyeglasses consist of lenses and frames, providing various forms of protection for the eyes. Modern eyeglasses usually have nose pads in the middle of the lenses and soft pads on the left and right arms where they rest on the ears. During the production of eyeglasses, cleaning equipment is used to clean the lenses.

[0003] Current cleaning devices are unable to perform automatic batch cleaning of lenses simultaneously. During cleaning, lenses tend to come into contact with each other, which can scratch the lens surface and cause damage. In addition, it is difficult to wipe both sides of the lens at the same time, and the lens cannot be cleaned thoroughly. It is easy for one side of a lens to be left uncleaned. Utility Model Content

[0004] To address the issues of easy contact with lenses during cleaning and the inability to thoroughly clean them, this application provides an eyeglass lens cleaning device.

[0005] The eyeglass lens cleaning device provided in this application adopts the following technical solution:

[0006] A spectacle lens cleaning device includes a workbench, a support platform fixedly connected inside the workbench, a conveying device for transporting lenses provided on the outer surface of the support platform, and a plurality of clamping posts for adaptively holding lenses fixedly connected to the outer surface of the conveying device.

[0007] The workbench is equipped with a cleaning mechanism for cleaning eyeglass lenses. The cleaning mechanism includes a first cleaning roller and a second cleaning roller for cleaning the top and bottom surfaces of the lenses. The workbench is also equipped with a nozzle for spraying cleaning fluid onto the lenses.

[0008] By adopting the above technical solution, the workbench serves as the main support platform of the device, integrating all functional modules. The support platform provides the installation benchmark for the conveying device, which is used to continuously transport the core components of the lenses, realizing assembly line operation. The clamping column is used to adaptively clamp lenses of different sizes to avoid displacement during transportation. The cleaning mechanism is used to clean the eyeglass lenses. Cleaning roller one and cleaning roller two are upper and lower opposing roller brushes to simultaneously complete double-sided cleaning of the lenses. The spray nozzle swings to spray cleaning liquid, covering the entire surface of the lens.

[0009] Preferably, the cleaning mechanism further includes a protective frame 1 fixedly connected to one side of the baffle. The protective frame 1 is rotatably connected to a synchronous gear 1 fixedly connected to a cleaning roller 1 and rotatably connected through the baffle. The outer surface of the synchronous gear 1 is meshed with a synchronous belt 1. The synchronous belt 1 is meshed with a synchronous gear 2 fixedly connected to a cleaning roller 2 and rotatably connected through the baffle.

[0010] By adopting the above technical solution, the protective frame is used to seal and protect the transmission components, preventing dust and liquid splashes. The synchronous gear is connected to the cleaning roller to transmit driving force. The synchronous belt is used to link the synchronous gear and the synchronous gear. The synchronous gear is used to realize the reverse synchronous rotation of the upper and lower rollers, ensuring uniform pressure on both sides.

[0011] Preferably, a cylinder is fixedly connected inside the workbench, and a liquid injection pipe that penetrates and is fixedly connected to the outer surface of the cylinder is fixedly connected to and communicates with the cylinder. A protective frame that contacts the cylinder is fixedly connected inside the workbench, and a support plate is fixedly connected to the side of the cylinder away from the workbench.

[0012] By adopting the above technical solution, the cylinder is a sealed container for storing cleaning fluid, the injection pipe is a channel for replenishing external cleaning fluid, the second protective frame is used to protect the cylinder and internal moving parts, and the support plate is used as the base for fixing the worm gear and the linkage mechanism.

[0013] Preferably, an auxiliary frame is fixedly connected to one side of the support plate, and a motor is fixedly connected inside the auxiliary frame. The output shaft of the motor is fixedly connected to a worm gear that is rotatably connected through the support plate.

[0014] By adopting the above technical solution, the auxiliary frame is used to encapsulate motor one and provide a stable operating environment. Motor one is the core power source, and the output shaft drives the worm gear. The worm gear is used to convert the rotational motion of the motor into the torque of the worm wheel.

[0015] Preferably, a first connecting frame is fixedly connected to the side of the support plate away from the cylinder. A worm wheel that meshes with the worm gear is rotatably connected inside the first connecting frame. A second connecting frame, which is fixedly connected to the worm wheel shaft and the nozzle, is rotatably connected to the outer surface of the first connecting frame. A connecting pipe that is fixedly connected to the bottom surface of the cylinder is fixedly connected through the outer surface of the nozzle.

[0016] By adopting the above technical solution, the first connecting frame is a rotating base that supports the worm gear. The worm gear is used to convert vertical rotation into horizontal oscillation. The second connecting frame is used to connect the worm gear shaft and the nozzle and transmit the oscillation motion. The connecting pipe is used to deliver the cleaning liquid in the cylinder to the nozzle.

[0017] Preferably, a rotating shaft is fixedly connected to the side of the worm gear away from the motor, and is rotatably connected inside the protective frame. A synchronous gear is fixedly connected to the side of the rotating shaft away from the worm gear, and a synchronous belt is meshed with the outer surface of the synchronous gear.

[0018] By adopting the above technical solution, shaft one is used to transmit the power of the worm gear to synchronous gear four, synchronous gear four is used to drive the synchronous belt two, and synchronous belt two is used to transmit the power to synchronous gear three.

[0019] Preferably, a synchronous gear three is internally meshed on the side of the synchronous belt two away from the synchronous gear four, and a rotating shaft two is fixedly connected inside the synchronous gear three, which is rotatably connected through the protective frame two and the cylinder. A bevel gear set is fixedly connected on the side of the rotating shaft two away from the synchronous gear three.

[0020] By adopting the above technical solution, the third synchronous gear is used to receive the power of the second synchronous belt, the second rotating shaft is used to transmit torque to the bevel gear set, the bevel gear set is used to convert horizontal rotation into vertical rotation, and drive the threaded column.

[0021] Preferably, a threaded column rotatably connected inside the cylinder is fixedly connected to the side of the bevel gear set away from the second rotating shaft. A nut is threaded onto the outer surface of the threaded column. A connecting rod is fixedly connected to the side of the nut away from the bevel gear set. A piston plate slidably connected inside the cylinder is fixedly connected to the side of the connecting rod away from the nut.

[0022] By adopting the above technical solution, the threaded column is used to convert rotational motion into linear motion, the nut is used to move along the axial direction of the threaded column and push the connecting rod, the connecting rod is used to connect the piston plate and the nut, the piston plate slides inside the cylinder and pushes the cleaning fluid inside the cylinder into the connecting pipe.

[0023] In summary, this application includes at least one of the following beneficial technical effects:

[0024] 1. The lens is secured between several locking posts, which are flexible and can be adjusted according to the diameter of the lens. In addition, the outer surface of the locking posts is fixed with rubber protrusions, which form a mechanical engagement with the edge of the lens to prevent the lens from slipping off.

[0025] 2. By using cleaning roller one and cleaning roller two to rotate synchronously, both the top and bottom surfaces of the lens are cleaned. Compared with traditional single-sided cleaning, the cleaning efficiency is significantly improved. During cleaning, the piston plate moves up and down inside the cylinder, pushing the cleaning fluid into the nozzle. When cleaning roller one and cleaning roller two start cleaning the lens, the piston plate pushes the cleaning fluid synchronously, ensuring that the cleaning fluid arrives accurately when needed, avoiding a decrease in cleaning effect caused by premature or delayed injection. While the piston plate moves up and down, it drives the worm gear to rotate, which in turn drives the worm wheel connected to the worm gear to rotate. The rotation of the worm wheel drives the nozzle to swing back and forth, achieving a fan-shaped coverage of the cleaning fluid on the lens surface. Compared with fixed spraying of cleaning fluid, the diameter of the dynamic spray coverage area is increased, ensuring that there is no cleaning fluid residue on the edges and corners of the lens. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the overall structure of this application;

[0027] Figure 2 This is a schematic diagram of the internal structure of the baffle in this application;

[0028] Figure 3 This is a schematic diagram of the internal structure of the protection frame of this application;

[0029] Figure 4 For the purposes of this application Figure 3 Enlarged schematic diagram of the structure at point A in the middle;

[0030] Figure 5 This is a schematic diagram of the cylindrical connecting pipe structure of this application;

[0031] Figure 6 This is a schematic diagram of the internal structure of the cylinder in this application.

[0032] Reference numerals: 1. Workbench; 2. Baffle; 3. Support platform; 4. Conveying device; 5. Snap-fit ​​post; 61. Cleaning roller one; 62. Protective frame one; 63. Synchronous gear one; 64. Synchronous belt one; 65. Synchronous gear two; 66. Cleaning roller two; 67. Cylinder; 68. Protective frame two;

[0033] 69. Synchronous gear three; 610. Synchronous belt two; 611. Synchronous gear four; 612. Rotating shaft one; 613. Worm gear; 614. Auxiliary frame; 615. Motor one; 616. Support plate; 617. Connecting frame one; 618. Worm wheel;

[0034] 619. Connecting frame two; 620. Nozzle; 621. Connecting pipe; 622. Injection pipe; 623. Rotating shaft two; 624. Bevel gear set; 625. Threaded column; 626. Nut; 627. Connecting rod; 628. Piston plate. Detailed Implementation

[0035] The following is in conjunction with the appendix Figures 1-6 This application will be described in further detail.

[0036] This application discloses an eyeglass lens cleaning device.

[0037] Reference Figures 1-4 A spectacle lens cleaning device includes a worktable 1, with a support platform 3 fixedly connected inside the worktable 1. The support platform 3 is made of transparent material to shield the liquid splashed during lens cleaning by the cleaning mechanism, and the user can directly observe the cleaning status of the lens through the transparent support platform 3. In addition, a water tank is provided at the bottom of the support platform 3 to collect cleaning liquid for recycling. The bottom surface of the inner wall of the worktable 1 is fixedly connected to the support platform 3, and the outer surface of the support platform 3 is drivenly connected to a conveying device 4 for transporting the lens. The conveying device 4 has a strip-shaped interior with a gap in the middle to facilitate double-sided cleaning of the lens by cleaning roller 1 61 and cleaning roller 2 66. The outer surface of the conveying device 4 is fixedly connected to several locking posts 5, which are used to adaptively clamp the lens. The locking posts 5 are elastic and can be adaptively adjusted according to the diameter of the lens. In addition, a rubber protrusion ring is fixedly provided on the outer surface of the locking posts 5 to form a mechanical engagement with the edge of the lens to prevent the lens from slipping. The worktable 1 is equipped with a cleaning mechanism for cleaning spectacle lenses.

[0038] In use, the eyeglass lens is clamped by several locking posts 5, and the rubber protrusions fixed on the outer surface of the locking posts 5 form a mechanical engagement with the edge of the lens to prevent the lens from slipping. Then, the lens fixed by the locking posts 5 is transported to the bottom of the cleaning mechanism for cleaning by the conveying device 4.

[0039] Reference Figure 2 , Figure 3 The cleaning mechanism includes a protective frame 62 fixedly connected to the outer surface of the baffle 2. The upper part of the inner wall of the protective frame 62 is rotatably connected to a synchronous gear 63. A cleaning roller 61 is fixedly connected to the center of the inner wall of the synchronous gear 63. The cleaning roller 61 is rotatably connected through the baffle 2 and the inner wall of the protective frame 62, and is used to clean the top surface of the lens. The outer surface of the synchronous gear 63 is meshed with a synchronous belt 64. The inner wall of the synchronous belt 64 is meshed with a synchronous gear 65. The synchronous gear 65 is located on the side away from the synchronous gear 63. A cleaning roller 66 is fixedly connected to the center of the inner wall of the synchronous gear 65. The cleaning roller 66 is rotatably connected through the baffle 2 and the inner wall of the protective frame 62, and is used to clean the bottom surface of the lens. The cleaning roller 61 is driven to rotate by a drive motor, and the cleaning roller 61 and the cleaning roller 66 are driven to rotate synchronously through the synchronous gear 63, the synchronous belt 64, and the synchronous gear 65.

[0040] In use, the drive motor drives the cleaning roller 61 to rotate. The rotation of the cleaning roller 61 drives the synchronous gear 63, which is fixedly connected to the cleaning roller 61, to rotate. The rotation of the synchronous gear 63 drives the synchronous belt 64, which is meshed with the synchronous gear 63, to drive the synchronous gear 65 to rotate, which in turn drives the cleaning roller 66 to rotate, thereby cleaning the upper and lower surfaces of the lens simultaneously.

[0041] Reference Figure 5 , Figure 6 The inner top surface of the workbench 1 is fixedly connected to the cylinder 67. The cylinder 67 is hollow and divided into two parts. The lower half of the cylinder 67 is filled with liquid silicone-based cleaning fluid, which is blocked by the piston plate 628. The outer surface of the bottom end of the cylinder 67 is fixedly connected to and communicates with the injection pipe 622. The other end of the injection pipe 622 can be connected to an automatic liquid injection device, which passes through and is fixedly connected inside the workbench 1. The bottom surface of the inner wall of the workbench 1 is fixedly connected to the second protective frame 68, and the second protective frame 68 is in contact with the cylinder 67. One side of the cylinder 67 is fixedly connected to the support plate 616, which is located away from the workbench 1. One side of the support plate 616 is fixedly connected to the auxiliary frame 614, which is located away from the second protective frame 68. The outer surface of the auxiliary frame 614 has a ventilation opening for the motor. Motor 615 is used for heat dissipation. The inner wall of auxiliary frame 614 is fixedly connected to the outer shell of motor 615. The output shaft of motor 615 is fixedly connected to worm gear 613. Worm gear 613 is rotatably connected inside support plate 616. One side of support plate 616 is fixedly connected to connecting frame 617. Connecting frame 617 is located on the side away from cylinder 67. The center of the inner wall of connecting frame 617 is rotatably connected to worm wheel 618. Worm wheel 618 meshes with worm gear 613. The outer surface of connecting frame 617 is rotatably connected to connecting frame 619. Connecting frame 619 is fixedly connected to the shaft of worm wheel 618. The bottom surface of connecting frame 619 is fixedly connected to nozzle 620. The outer surface of nozzle 620 is fixedly connected to connecting pipe 621. The other end of connecting pipe 621 is fixedly connected to the bottom surface of cylinder 67.

[0042] In use, the motor 615 drives the worm gear 613 to rotate, which in turn drives the worm wheel 618, which is meshed with the worm gear 613, to rotate. The rotation of the worm wheel 618 drives the connecting frame 619, which is fixedly connected to the shaft of the worm wheel 618, to swing back and forth. This, in turn, drives the nozzle 620, which is fixedly connected to the connecting frame 619, to swing back and forth, thereby achieving a fan-shaped coverage of the cleaning liquid on the lens surface. Compared with fixed spraying of cleaning liquid, the diameter of the dynamic spray coverage area is increased, which can ensure that there is no cleaning liquid residue on the edges and corners of the lens.

[0043] Reference Figure 5 , Figure 6The center of one side of the worm gear 613 is fixedly connected to the center of the rotating shaft 612. The rotating shaft 612 is located on the side away from the motor 615 and is rotatably connected to the bottom of the inner wall of the protective frame 68. The center of one side of the rotating shaft 612 is fixedly connected to the center of the synchronous gear 611. The synchronous gear 611 is located on the side away from the worm gear 613. The outer surface of the synchronous gear 611 meshes with the synchronous belt 610. The inner wall of the synchronous belt 610 meshes with the synchronous gear 69. The synchronous gear 69 is located on the side away from the synchronous gear 611. The center of the inner wall of the synchronous gear 69 is fixedly connected to the center of the rotating shaft 623. The rotating shaft 623 is rotatably connected to the inside of the protective frame 68 and the cylinder 67. One side of the rotating shaft 623 is connected to the bevel gear set 62. 4. Fixed connection: The bevel gear set 624 is located on the side away from the synchronous gear 69. The center of one side of the bevel gear set 624 is fixedly connected to the center of the top surface of the threaded column 625. The threaded column 625 is located on the side away from the rotating shaft 623 and is rotatably connected to the inner wall of the cylinder 67 and located in the upper half of the cylinder 67. The outer surface of the threaded column 625 is threadedly connected to the nut 626. The nut 626 has balls inside for sliding in the threads on the outer surface of the threaded column 625. The eccentric part of one side of the nut 626 is fixedly connected to the connecting rod 627. The connecting rod 627 is located on the side away from the bevel gear set 624. One side of the connecting rod 627 is fixedly connected to the piston plate 628. The piston plate 628 is located on the side away from the nut 626 and is slidably connected to the inner wall of the cylinder 67.

[0044] In use, the worm gear 613 rotates, driving the rotating shaft 612 to rotate. The rotating shaft 612 rotates, driving the synchronous gear 611 fixedly connected to the rotating shaft 612 to rotate. The synchronous gear 611 rotates, driving the synchronous belt 610 meshing with the synchronous gear 611 to rotate, which in turn drives the synchronous gear 69 to rotate. The synchronous gear 69 rotates, driving the bevel gear set 624 to rotate. The bevel gear set 624 rotates, driving the threaded column 625 to rotate, which in turn drives the nut 626 to reciprocate on the outer surface of the threaded column 625. This, in turn, drives the connecting rod 627 and the piston plate 628 to reciprocate on the inner wall of the cylinder 67, thereby pushing the cleaning agent contained at the bottom of the inner wall of the cylinder 67 into the connecting tube 621, and then spraying it onto the lens surface through the nozzle 620.

[0045] A liquid level sensor can be installed at the bottom of the cylinder 67. The liquid level sensor is a Honeywell WLD2 water level sensor. When the liquid level is lower than the preset value, the automatic replenishment system will be turned on to replenish the silicone-based cleaning fluid.

[0046] The 615 motor uses an AC induction motor with a power of 500W and a speed of 1400rpm. The speed is reduced to the required speed through a gear transmission system.

[0047] A spiral adjustment device can be added inside the snap-fit ​​post 5. The clamping force of the snap-fit ​​post 5 can be changed by rotating the adjustment button. It can adapt to lens diameters from 40mm to 80mm, ensuring stable clamping of lenses of different sizes.

[0048] Both synchronous gear 63 and synchronous gear 65 utilize module 1.5 gears to ensure precise gear meshing and prevent gear misalignment during operation. The gear transmission system employs high-precision gear manufacturing processes to ensure gear machining accuracy ≤0.01mm, effectively reducing meshing errors. Synchronous gears 63 and 65 are supported by high-precision bearings to ensure smooth gear rotation and reduce vibration and noise.

[0049] An electromagnetic flow control valve is added to the injection tube 622 to precisely control the flow rate of the cleaning fluid. The flow rate setting range is 50ml / min to 100ml / min. The liquid flow rate is adjusted according to the actual usage to ensure the cleaning effect. The nozzle 620 adopts micro-spray technology, which can precisely control the spray volume and spray angle of the cleaning fluid to ensure that the cleaning fluid evenly covers the lens surface. The spray pressure of the nozzle 620 is controlled between 0.2MPa and 0.5MPa to ensure uniform spraying without damaging the lens. The liquid level of the cleaning fluid in the cylinder 67 is monitored by a liquid level sensor. When the liquid level is lower than the set value, the replenishment system is automatically started. A Honeywell WLD2 water level sensor can be used to start liquid replenishment when the liquid level is lower than the preset value.

[0050] The worm gear 618 and worm 613 are made of high-grade alloy steel and undergo heat treatment to ensure their wear resistance and load-bearing capacity. The thread angle of the worm 613 is 20°, resulting in higher rotational efficiency.

[0051] The implementation principle of the spectacle lens cleaning device in this application is as follows:

[0052] In use, the eyeglass lens is clamped by several locking posts 5, and the rubber protrusions fixed on the outer surface of the locking posts 5 form a mechanical engagement with the edge of the lens to prevent the lens from slipping. Then, the lens fixed by the locking posts 5 is transported by the conveying device 4 to the space between cleaning roller 1 61 and cleaning roller 2 66. Then, the drive motor drives the cleaning roller 1 61 to rotate. The rotation of the cleaning roller 1 61 drives the synchronous gear 1 63, the synchronous belt 1 64, and the synchronous gear 2 65 to rotate, which in turn drives the cleaning roller 2 66 to rotate, thereby cleaning the upper and lower surfaces of the lens simultaneously.

[0053] While the cleaning roller 61 rotates, the motor 615 drives the worm gear 613 to rotate. The rotation of the worm gear 613 drives the worm wheel 618 to rotate, which in turn drives the nozzle 620, which is fixedly connected to the connecting frame 619, to swing back and forth. This achieves a fan-shaped coverage of the cleaning liquid on the lens surface. Compared with fixed spraying of cleaning liquid, the diameter of the dynamic spraying coverage area is increased, which can ensure that there is no cleaning liquid residue on the edges and corners of the lens.

[0054] At the same time, the rotation of the worm gear 613 drives the rotation of the first shaft 612, the fourth synchronous gear 611, the second synchronous belt 610, the third synchronous gear 69, the bevel gear set 624, and the threaded column 625 to rotate, which in turn drives the nut 626 to reciprocate on the outer surface of the threaded column 625, which in turn drives the connecting rod 627 and the piston plate 628 to reciprocate on the inner wall of the cylinder 67, thereby pushing the cleaning agent at the bottom of the inner wall of the cylinder 67 into the connecting pipe 621, and then spraying it onto the lens surface through the nozzle 620.

[0055] The above are merely optional embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A spectacle lens cleaning device, characterized in that: Includes a workbench (1), inside which a support platform (3) is fixedly connected, and on the outer surface of the support platform (3) is a conveying device (4) for transporting lenses, and on the outer surface of the conveying device (4) are a plurality of snap-fit ​​posts (5) for adaptively clamping lenses. The workbench (1) is equipped with a cleaning mechanism for cleaning eyeglass lenses. The cleaning mechanism includes a first cleaning roller (61) and a second cleaning roller (66) for cleaning the upper and lower surfaces of the lenses. The workbench (1) is also equipped with a nozzle (620) for spraying cleaning liquid onto the lenses.

2. The spectacle lens cleaning device according to claim 1, characterized in that: The cleaning mechanism also includes a protective frame (62) fixedly connected to one side of the baffle (2). The protective frame (62) is rotatably connected to a synchronous gear (63) fixedly connected to a cleaning roller (61) and rotatably connected inside the baffle (2). The outer surface of the synchronous gear (63) is meshed with a synchronous belt (64). The inside of the synchronous belt (64) is meshed with a synchronous gear (65) fixedly connected to a cleaning roller (66) and rotatably connected inside the baffle (2).

3. The spectacle lens cleaning device according to claim 2, characterized in that: A cylinder (67) is fixedly connected inside the workbench (1). An injection pipe (622) is fixedly connected and communicates with the outer surface of the cylinder (67) and is fixedly connected inside the workbench (1). A protective frame (68) that contacts the cylinder (67) is fixedly connected inside the workbench (1). A support plate (616) is fixedly connected to the side of the cylinder (67) away from the workbench (1).

4. The spectacle lens cleaning device according to claim 3, characterized in that: An auxiliary frame (614) is fixedly connected to one side of the support plate (616), and a motor (615) is fixedly connected inside the auxiliary frame (614). The output shaft of the motor (615) is fixedly connected to a worm gear (613) that is rotatably connected inside the support plate (616).

5. The spectacle lens cleaning device according to claim 4, characterized in that: A connecting frame one (617) is fixedly connected to the side of the support plate (616) away from the cylinder (67). A worm wheel (618) that meshes with the worm (613) is rotatably connected inside the connecting frame one (617). A connecting frame two (619) that is fixedly connected to the shaft of the worm wheel (618) and fixedly connected to the nozzle (620) is rotatably connected to the outer surface of the connecting frame one (617). A connecting pipe (621) that is fixedly connected to the bottom surface of the cylinder (67) is fixedly connected through the outer surface of the nozzle (620).

6. The spectacle lens cleaning device according to claim 5, characterized in that: The worm gear (613) is fixedly connected to a rotating shaft (612) that is rotatably connected inside the protective frame (68) on the side away from the motor (615). The rotating shaft (612) is fixedly connected to a synchronous gear (611) on the side away from the worm gear (613). The outer surface of the synchronous gear (611) is meshed with a synchronous belt (610).

7. The spectacle lens cleaning device according to claim 6, characterized in that: The synchronous belt two (610) is internally meshed with synchronous gear three (69) on the side away from synchronous gear four (611). Synchronous gear three (69) is internally fixedly connected with rotating shaft two (623) which is rotatably connected through protective frame two (68) and cylinder (67). The rotating shaft two (623) is fixedly connected with bevel gear set (624) on the side away from synchronous gear three (69).

8. The spectacle lens cleaning device according to claim 7, characterized in that: The bevel gear set (624) is fixedly connected to a threaded column (625) rotatably connected inside the cylinder (67) on the side away from the rotating shaft (623). A nut (626) is threadedly connected to the outer surface of the threaded column (625). A connecting rod (627) is fixedly connected to the side of the nut (626) away from the bevel gear set (624). A piston plate (628) slidably connected inside the cylinder (67) is fixedly connected to the side of the connecting rod (627) away from the nut (626).