A wear-resistant optical lens cleaning device

Through the design of the push rod and the limit rod, combined with the mixture of glycerin and cleaning liquid, all-round cleaning and drying of optical lenses is achieved, solving the problems of lens wear and cleaning dead corners in existing devices, and improving cleaning efficiency and safety.

CN120268719BActive Publication Date: 2025-09-23XUZHOU JUZHIKE PHOTOELECTRIC TECH CO LTD
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Patent Information

Application Number
CN202510744048.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-05
Publication Date
2025-09-23
Estimated Expiration
2045-06-05

AI Technical Summary

Technical Problem

Existing optical lens cleaning devices are prone to wear and tear due to shaking caused by bubble bursting during ultrasonic cleaning, and fixed lenses are prone to cleaning dead corners when cleaning.

Method used

A wear-resistant optical lens cleaning device was designed. The push rod and the limit rod cooperated to drive the L-shaped placement groove to rotate slightly. The mixture of glycerin and cleaning liquid was combined to reduce the contact between lenses and the cleaning dead angle. The cleaning roller and the blowing component were used for drying to avoid water stains.

Benefits of technology

It effectively reduces the wear and tear on the lens surface and the cleaning dead angle, improves the cleaning efficiency and accuracy, and reduces the need for manual secondary cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of lens cleaning technology, specifically to an anti-wear optical lens cleaning device, including a cleaning machine shell, a top protective shell and a support frame, the inner wall of the cleaning machine shell is provided with two first sliding grooves, the two first sliding grooves are symmetrically distributed on both sides of the inner wall of the cleaning machine shell, the bottom end of the side wall of the first sliding groove is provided with a pushing component, the pushing component includes a push rod that is arranged through the inner wall of the cleaning machine shell, the anti-wear optical lens cleaning device squeezes the limit rod through the push rod, the second spring rod fixed on the protective plate is pulled up, and the rack moves and drives the L-shaped placement groove to rotate at the same time, the L-shaped placement groove rotates slightly during cleaning, which is conducive to more comprehensive cleaning of the lens, and at the same time, there is no contact between the lenses, preventing the lenses from touching each other and causing scratches on the lenses, thereby improving safety during cleaning, and the rotating lenses for cleaning reduce cleaning dead angles, effectively improving the cleaning efficiency of the equipment.
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Description

Technical Field

[0001] The present invention relates to the technical field of lens cleaning, in particular to an anti-wear optical lens cleaning device. Background Art

[0002] An optical lens is a lens made of optical glass or plastic. Its surface is usually curved and has specific optical properties. It plays an important role in many fields by controlling the propagation direction and properties of light.

[0003] In existing cleaning devices, ultrasonic cleaning is performed by using cavitation generated by the bursting of bubbles. When the bubbles burst, they tend to shake, which can easily cause minor damage to the surface of the lens. In addition, fixed and immovable lenses are prone to dead corners during cleaning. Therefore, we propose an anti-wear optical lens cleaning device. Summary of the Invention

[0004] The present invention provides the following technical solution: an anti-wear optical lens cleaning device, comprising a cleaning machine housing, a top protective shell, and a support frame, wherein the inner wall of the cleaning machine housing is provided with two first sliding grooves, the two first sliding grooves being symmetrically distributed on both sides of the inner wall of the cleaning machine housing, a pushing assembly being provided at the bottom end of the side wall of the first sliding groove, the pushing assembly comprising a push rod provided through the inner wall of the cleaning machine housing, the side wall of the push rod being connected to the cleaning machine housing via a spring;

[0005] A placement assembly is slidably provided on the side wall of the first sliding groove, and the placement assembly includes a fixed box located on the side wall of the first sliding groove, and protective plates are provided on both sides of the outer wall of the fixed box. A rotating assembly is slidably provided on the side wall of the fixed box, and the side wall of the rotating assembly passes through the fixed box and is connected to the L-shaped placement groove;

[0006] A plurality of cleaning components are provided on the side wall of the fixed box, and the cleaning component includes a connecting rod provided on the side wall of the fixed box, and a cleaning roller is rotatably provided on the side wall of the connecting rod. A glycerin box is provided on the inner wall of the cleaning machine shell at one end away from the pushing component, and a recovery component is provided on the side wall of the cleaning machine shell. A blowing component is provided on the top of the recovery component, and one end of the blowing component is provided through the interior of the cleaning machine shell.

[0007] Preferably: the pushing assembly also includes a limiting groove A opened on the inner wall of the cleaning machine shell, the side wall of the limiting groove A is provided with a movable plate, the bottom of the movable plate is slidably connected to the limiting groove A by a fixed connection with an extension block, the side wall of the extension block is fixed with a first spring rod, and the top of the side wall of the movable plate is provided with a bevel rod.

[0008] Preferably, the push rod is provided with an inclined surface at one end close to the inclined surface rod, and the position of the push rod corresponds to the position of the inclined surface rod.

[0009] Preferably: the rotating assembly includes a rack located on the side wall of the fixed box, the side wall of the rack is provided with a second spring rod on the side close to the pushing assembly, the other end of the second spring rod is fixedly connected to the protective plate, and the side wall of the fixed box is laterally provided with multiple gears meshing with the rack, and the side walls of the multiple gears pass through the fixed box and are connected to the L-shaped placement groove.

[0010] Preferably, both sides of the outer wall of the fixed box are provided with limiting grooves B, and the side walls of the rack are slidably connected to the fixed box through limiting rods, and the position of the limiting rods corresponds to the position of the push rods.

[0011] Preferably, four sponge pads are vertically provided on the side wall of the L-shaped placement groove close to the lens, and the material of the four sponge pads is sponge.

[0012] Preferably, the cleaning assembly further comprises a second sliding groove provided on the side wall of the fixed box, the connecting rod slides on the side wall of the second sliding groove, and the connecting rod is elastically connected to the fixed box via a third spring rod provided at the bottom.

[0013] Preferably, a rotating plate is movably provided on the side wall of the glycerin box, and the position of the rotating plate corresponds to the position of the protective plate.

[0014] Preferably, the recycling component comprises a collection box arranged on the side wall of the cleaning machine housing, the inner wall of the collection box is provided with a rotatable blade, the axis of the blade extends to the outer wall of the collection box, and a conveyor belt is provided on the side wall of the blade.

[0015] Preferably: the blowing assembly includes a fan located on the outer wall of the collection box, a starting knob is provided on the side wall of the fan, a conveyor belt is provided on the side wall of the starting knob, the starting knob rotates in the same direction as the blade through the conveyor belt provided on the side wall, an air outlet pipe is provided at one end of the fan, a plurality of air outlets are provided at the bottom of the air outlet pipe, and the position of the air outlet corresponds to the position of the cleaning roller.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] 1. The wear-resistant optical lens cleaning device uses the position of the push rod to correspond to the position of the limit rod. The push rod squeezes the limit rod, and the rack begins to move under the thrust. The second spring rod fixed on the protective plate is pulled up. When the rack moves, it drives the L-shaped placement groove to rotate at the same time. The small rotation of the L-shaped placement groove during cleaning is conducive to more comprehensive cleaning of the lens. At the same time, there is no contact between the lenses, preventing them from touching each other and causing scratches on the lenses, thereby improving safety during cleaning. The rotating lenses for cleaning reduce cleaning dead angles, effectively improving the cleaning efficiency of the equipment.

[0018] 2. The anti-wear optical lens cleaning device allows the glycerin stored in the glycerin tank to flow out from the outlet and mix with the cleaning liquid. Since the density of water increases after mixing with the cleaning liquid, the buoyancy also increases with the increase in density. The weight of the cleaning component is less than the buoyancy of the cleaning component immersed in the mixed liquid, so that the buoyancy can push the connecting rod to move upward, avoiding collision with the L-shaped placement groove when it rotates. The displacement of the connecting rod can effectively detect whether the glycerin in the glycerin tank is successfully mixed with the cleaning liquid. When the connecting rod does not move, it is convenient for the operator to check in time, thereby improving the accuracy of the equipment. The mixture of glycerin and cleaning liquid is conducive to reducing the impact force generated by the bursting of bubbles in ultrasonic cleaning and causing minor damage to the anti-wear lens, thereby increasing the protection of the lens during cleaning.

[0019] 3. The wear-resistant optical lens cleaning device also allows the liquid after cleaning to flow into the collection box for storage. When the liquid flows into the collection box, it pushes the blades to rotate. The blades drive the switch knob set on the side of the fan to rotate synchronously through the transmission belt. At this time, the started fan blows the wind to the lens through the air outlet. Since a third spring rod is provided at the bottom of the connecting rod, the wind blown out of the air outlet causes the connecting rod to move up and down in the second sliding groove. The wind drives the cleaning roller to rotate, and the cleaning roller effectively wipes off water stains, impurities, etc. remaining on the surface of the lens. The cleaning roller cooperates with the air outlet to clean the lens after cleaning, avoiding the water stains remaining on the lens after drying to form water marks, which requires manual secondary cleaning, and effectively improves the cleaning efficiency of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the three-dimensional structure of the present invention;

[0021] Figure 2 This is the second schematic diagram of the three-dimensional structure of the present invention;

[0022] Figure 3 It is a schematic diagram of the top cross-sectional structure of the present invention;

[0023] Figure 4 This is a schematic diagram of the structure of the driving assembly of the present invention;

[0024] Figure 5This is the second schematic diagram of the structure of the driving assembly of the present invention;

[0025] Figure 6 This is a schematic diagram of the fixed box structure of the present invention;

[0026] Figure 7 For the present invention Figure 6 A schematic diagram of the structure at center A;

[0027] Figure 8 This is the second structural diagram of the fixed box of the present invention;

[0028] Figure 9 For the present invention Figure 8 A magnified schematic diagram of the structure at point B in the middle;

[0029] Figure 10 This is a schematic diagram of the glycerin box structure of the present invention;

[0030] Figure 11 It is a schematic diagram of the fan structure of the present invention.

[0031] In the figure: 1. Cleaning machine housing; 2. Top protective shell; 3. Support frame; 4. First sliding groove; 5. Moving plate; 6. First spring rod; 7. Push rod; 8. Spring; 9. Fixed box; 10. Protective plate; 11. Rack; 12. Second spring rod; 13. Limit rod; 14. Gear; 15. Second sliding groove; 16. Third spring rod; 17. Connecting rod; 18. Cleaning roller; 19. L-shaped placement groove; 20. Lens; 21. Gasket; 22. Rotating plate; 23. Glycerin box; 24. Collecting box; 25. Blades; 26. Conveyor belt; 27. Fan; 28. Air outlet pipe; 29. ​​Air outlet. DETAILED DESCRIPTION

[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0033] See also Figure 1-11 , an anti-wear optical lens cleaning device, including a cleaning machine housing 1, a top protective shell 2 and a support frame 3, the inner wall of the cleaning machine housing 1 is provided with two first sliding grooves 4, the two first sliding grooves 4 are symmetrically distributed on both sides of the inner wall of the cleaning machine housing 1, a pushing component is provided at the bottom end of the side wall of the first sliding groove 4, the pushing component includes a push rod 7 arranged through the inner wall of the cleaning machine housing 1, and the side wall of the push rod 7 is connected to the cleaning machine housing 1 by a spring 8;

[0034] When the fixed box 9 moves upward, the protrusion slides upward, the thrust acting on the pushing assembly disappears, and after the thrust of the push rod 7 disappears, the spring 8 pulls the push rod 7 to return to its initial position. At this time, the second spring rod 12 pulls the rack 11 to return to its initial position, so that the L-shaped placement slot 19 can continue to rotate when the fixed box 9 moves to the bottom end of the first sliding slot 4 next time, thereby ensuring the accuracy of the equipment.

[0035] A placement assembly is slidably provided at the side wall of the first sliding groove 4, and the placement assembly includes a fixed box 9 located at the side wall of the first sliding groove 4, and protective plates 10 are provided on both sides of the outer wall of the fixed box 9. A rotating assembly is slidably provided at the side wall of the fixed box 9, and the side wall of the rotating assembly passes through the fixed box 9 and is connected to the L-shaped placement groove 19;

[0036] When the fixed box 9 moves to the bottom end of the first sliding groove 4, the protrusion at the front end of the fixed box 9 squeezes the movable plate 5, and the movable plate 5 moves to both sides under the thrust. The inclined rod set at the top of the movable plate 5 pushes the push rod 7 to move in the direction of the fixed box 9. Since the position of the push rod 7 corresponds to the position of the limit rod 13, the push rod 7 squeezes the limit rod 13. At this time, the rack 11 starts to move under the thrust, and the second spring rod 12 fixed on the protective plate 10 is pulled up. When the rack 11 moves, it drives the L-shaped placement groove 19 to rotate at the same time. The small rotation of the L-shaped placement groove 19 during cleaning is conducive to more comprehensive cleaning of the lens 20.

[0037] A plurality of cleaning components are provided on the side wall of the fixed box 9, and the cleaning component includes a connecting rod 17 arranged on the side wall of the fixed box 9, and a cleaning roller 18 is rotatably provided on the side wall of the connecting rod 17. A glycerin box 23 is provided on the inner wall of the cleaning machine housing 1 at the end away from the pushing component, and a recovery component is provided on the side wall of the cleaning machine housing 1. A blowing component is provided on the top of the recovery component, and one end of the blowing component is arranged through the interior of the cleaning machine housing 1.

[0038] After cleaning is completed, the liquid flows into the collection box 24 for storage. After the liquid flows into the collection box 24, it pushes the blades 25 to rotate. The blades 25 drive the switch knob set on the side of the fan 27 to rotate synchronously through the transmission belt 26, effectively ensuring that only after the cleaned waste water flows out, the blowing component can be dried through the air outlet 29. When the blowing component blows the gas to the cleaning roller 18, the cleaning roller 18 rotates on the connecting rod 17 to wipe off the water stains, impurities, etc. remaining on the surface of the lens 20.

[0039] It should be noted that when the fixed box 9 moves downward to the bottom of the first sliding groove 4, the pushing component squeezes the limit rod 13 to move forward. After the limit rod 13 moves, it drives the L-shaped placement groove 19 to rotate. When the L-shaped placement groove 19 rotates slightly during cleaning, it is beneficial for the lens 20 to be more comprehensively cleaned. When the protective plate 10 is pushed, the rotating plate 22 is squeezed to open the glycerin box 23, and the glycerin flowing out of the outlet is mixed with the cleaning liquid. Since the density of water increases after mixing with the cleaning liquid, the buoyancy also increases with the increase in density. If the cleaning liquid is successfully mixed with the glycerin, the connecting rod 17 moves upward with the increased buoyancy. If the glycerin is not mixed with the cleaning liquid, the connecting rod 17 will not move under the premise that the buoyancy does not change. The unmoved connecting rod 17 blocks the L-shaped placement groove 19, and cleaning is performed without the glycerin being mixed with the cleaning liquid. The protection of the surface of the lens 20 is reduced. The setting of the connecting rod 17 not only effectively detects whether the glycerin in the glycerin box 23 is successfully mixed with the cleaning liquid, but also can timely clean the lens 20 after subsequent cleaning to avoid the formation of water marks. The liquid after cleaning flows into the collection component for storage. When the liquid flows into the collection box 24, it pushes the blade 25 to rotate. The blade 25 is able to drive the switch knob set on the side of the fan 27 to rotate synchronously through the conveyor belt 26, which effectively saves resources and enables the lens 20 to be dried in time after cleaning to reduce water stains. The wind blown out from the air outlet 29 cooperates with the cleaning roller 18 to effectively wipe off water stains, impurities, etc. remaining on the surface of the lens 20, clean the lens 20, and avoid the water stains remaining on the lens after drying to form water marks, which requires manual secondary cleaning, thereby improving the cleaning efficiency of the equipment.

[0040] In an optional embodiment: the pushing component also includes a limiting groove A opened on the inner wall of the cleaning machine housing 1, the side wall of the limiting groove A is provided with a movable plate 5, the bottom of the movable plate 5 is slidably connected to the limiting groove A through a fixed connection with an extension block, the side wall of the extension block is fixed with a first spring rod 6, and the top of the side wall of the movable plate 5 is provided with a bevel rod.

[0041] It should be noted that the first spring rod 6 is set so that after the thrust of the inclined rod on the push rod 7 disappears, the first spring rod 6 is able to pull the movable plate 5 back to its initial position, so that the L-shaped placement groove 19 can continue to rotate when the fixed box 9 moves to the bottom end of the first sliding groove 4 next time, thereby ensuring the accuracy of the equipment.

[0042] In an optional embodiment, the push rod 7 is configured as an inclined surface at one end close to the inclined surface rod, and the position of the push rod 7 corresponds to the position of the inclined surface rod.

[0043] It should be noted that when the inclined rod moves to a position close to the push rod 7, since the push rod 7 is set as an inclined surface at one end close to the inclined rod, the inclined rod squeezes the push rod 7 and the push rod 7 is displaced.

[0044] In an optional embodiment: the rotating assembly includes a rack 11 located on the side wall of the fixed box 9, and the side wall of the rack 11 is provided with a second spring rod 12 on the side close to the pushing assembly. The other end of the second spring rod 12 is fixedly connected to the protective plate 10, and the side wall of the fixed box 9 is laterally provided with multiple gears 14 that mesh with the rack 11, and the side walls of the multiple gears 14 pass through the fixed box 9 and are connected to the L-shaped placement groove 19.

[0045] It should be noted that after the rack 11 moves, it drives the L-shaped placement groove 19 to rotate at the same time. The small rotation of the L-shaped placement groove 19 during cleaning is conducive to a more comprehensive cleaning of the lens 20. At the same time, there is no contact between the lenses, preventing the lenses from touching each other and causing scratches on the lenses, thereby improving safety during cleaning. The rotating lens 20 for cleaning reduces the blind spots in cleaning and effectively improves the cleaning efficiency of the equipment.

[0046] In an optional embodiment: limiting grooves B are provided on both sides of the outer wall of the fixed box 9, and the side walls of the rack 11 are slidingly connected to the fixed box 9 through a limiting rod 13, and the position of the limiting rod 13 corresponds to the position of the push rod 7.

[0047] It should be noted that, since the position of the push rod 7 corresponds to the position of the limit rod 13, the push rod 7 squeezes the limit rod 13. At this time, the rack 11 begins to move under the thrust, and the rack 11 drives the gear 14 to rotate, which is conducive to a more comprehensive cleaning of the lens 20 and effectively improves the cleaning efficiency of the equipment.

[0048] In an optional embodiment, four sponge pads 21 are vertically provided on the side wall of the L-shaped placement groove 19 close to the lens 20 , and the material of the four sponge pads 21 is sponge.

[0049] It should be noted that since symmetrical sponge pads 21 are provided at the four corners of the L-shaped placement groove 19, the ultrasonic cleaning method is to use the cavitation effect produced by the bursting of bubbles to clean. When the bubbles burst, slight shaking will occur, which not only reduces the collision caused by the contact between the surface of the lens 20 and the clamping component with higher hardness during cleaning, but also increases the friction between the clamping assembly and the lens 20. The setting of the sponge pad 21 reduces the contact area between the lens 20 and the hard component, effectively reducing the slight scratches or minor damage on the surface of the lens 20 caused by shaking.

[0050] In an optional embodiment: the cleaning component also includes a second sliding groove 15 opened on the side wall of the fixed box 9, and the connecting rod 17 slides on the side wall of the second sliding groove 15. The connecting rod 17 is elastically connected to the fixed box 9 through a third spring rod 16 provided at the bottom.

[0051] It should be noted that the wind blown out from the air outlet 29 causes the connecting rod 17 to move up and down in the second sliding groove 15. Since the cleaning roller 18 is connected to the side wall of the connecting rod 17 through a rotating shaft, the wind drives the cleaning roller 18 to rotate, and the cleaning roller 18 effectively wipes off the water stains, impurities, etc. remaining on the surface of the lens 20. The cleaning roller 18 cooperates with the air outlet 29 to clean the lens 20 after cleaning, avoiding the water stains remaining on the lens after drying to form water marks and the need for manual secondary cleaning, thereby effectively improving the cleaning efficiency of the equipment.

[0052] In an optional embodiment, a rotating plate 22 is movably provided on the side wall of the glycerin box 23 , and the position of the rotating plate 22 corresponds to the position of the protection plate 10 .

[0053] It should be noted that when the protective plate 10 moves to the rotating plate 22, one end of the rotating plate 22 is pressed to rotate the rotating plate 22. At this time, the glycerin stored in the glycerin box 23 flows out from the outlet and mixes with the cleaning liquid. The mixture of glycerin and cleaning liquid helps to reduce the impact force generated by the bursting of bubbles during ultrasonic cleaning, which causes minor damage to the anti-wear lens, thereby increasing the protection of the lens 20 during cleaning.

[0054] In an optional embodiment: the recycling component includes a collection box 24 arranged on the side wall of the cleaning machine housing 1, the inner wall of the collection box 24 is rotatably provided with a blade 25, the axis of the blade 25 extends to the outer wall of the collection box 24, and a conveyor belt 26 is provided on the side wall of the blade 25.

[0055] It should be noted that the liquid after cleaning flows into the collection box 24 for storage. When the liquid flows into the collection box 24, it pushes the blades 25 to rotate. The blades 25 drive the switch knob set on the side of the fan 27 to rotate synchronously through the transmission belt 26. The wind blown out from the air outlet 29 dries up the water stains remaining on the surface of the lens 20.

[0056] In an optional embodiment: the blowing assembly includes a fan 27 located on the outer wall of the collection box 24, a starting knob is provided on the side wall of the fan 27, a conveyor belt 26 is provided on the side wall of the starting knob, the starting knob rotates in the same direction as the blade 25 through the conveyor belt 26 provided on the side wall, an air outlet pipe 28 is provided at one end of the fan 27, and a plurality of air outlets 29 are provided at the bottom of the air outlet pipe 28, and the position of the air outlet 29 corresponds to the position of the cleaning roller 18.

[0057] It should be noted that, since the cleaning roller 18 is rotatably connected to the side wall of the connecting rod 17 through a rotating shaft, the wind drives the cleaning roller 18 to rotate, and the cleaning roller 18 effectively wipes off the water stains, impurities, etc. remaining on the surface of the lens 20. The cleaning roller 18 cooperates with the air outlet 29 to clean the lens 20 after cleaning, avoiding the water stains remaining on the lens after drying to form water marks and require manual secondary cleaning, thereby effectively improving the cleaning efficiency of the equipment.

[0058] When the cleaning machine is in a state of being cleaned, the cleaning machine 10 is turned on and the cleaning plate 5 is turned off, and the cleaning machine 10 is turned off.

[0059] Since symmetrical sponge pads 21 are provided at the four corners of the L-shaped placement groove 19, the ultrasonic cleaning method is to use the cavitation effect generated by the bursting of bubbles to perform cleaning. When the bubbles burst, slight shaking is generated, which not only reduces the collision between the surface of the lens 20 and the clamping component with higher hardness during cleaning, but also increases the friction between the clamping component and the lens 20. The provision of the sponge pads 21 reduces the contact area between the lens 20 and the hard component, effectively reducing slight scratches or minor damage to the surface of the lens 20 caused by shaking.

[0060] When the fixed box 9 moves upward, the thrust on the movable plate 5 disappears, and the first spring rod 6 pulls the movable plate 5 back to its initial position. After the thrust of the push rod 7 disappears, the spring 8 pulls the push rod 7 back to its initial position. At this time, the second spring rod 12 pulls the rack 11 back to its initial position, so that the L-shaped placement slot 19 can continue to rotate when the fixed box 9 moves to the bottom end of the first sliding slot 4 next time, thereby ensuring the accuracy of the equipment.

[0061] When the push rod 7 pushes the limit rod 13 to move, and when the protective plate 10 moves to the rotating plate 22, one end of the rotating plate 22 is pressed to rotate the rotating plate 22. At this time, the glycerin stored in the glycerin box 23 flows out from the outlet and mixes with the cleaning liquid. Since the density of water increases after mixing with the cleaning liquid, the buoyancy increases with the increase in density. The weight of the cleaning component is less than the buoyancy of the cleaning component immersed in the mixed liquid, so that the buoyancy can push the connecting rod 17 to move upward, avoiding collision with the L-shaped placement groove 19 when it rotates. The displacement of the connecting rod 17 is effectively detected whether the glycerin in the glycerin box 23 is successfully mixed with the cleaning liquid. When the connecting rod 17 does not move, it is convenient for the operator to check in time, thereby improving the accuracy of the equipment. The mixing of glycerin and cleaning liquid is conducive to reducing the impact force generated by the bursting of bubbles in ultrasonic cleaning to cause minor damage to the anti-wear lens, thereby increasing the protection of the lens 20 during cleaning;

[0062] After cleaning, the liquid flows into the collection box 24 for storage. When the liquid flows into the collection box 24, it pushes the blades 25 to rotate. The blades 25 drive the switch knob set on the side of the fan 27 to rotate synchronously through the conveyor belt 26. At this time, the activated dynamic fan 27 blows the wind to the lens 20 through the air outlet 29. Since a third spring rod 16 is provided at the bottom of the connecting rod 17, the wind blown out of the air outlet 29 causes the connecting rod 17 to move up and down in the second sliding groove 15. Since the cleaning roller 18 is connected to the side wall of the connecting rod 17 through a rotating shaft, the wind drives the cleaning roller 18 to rotate, and the cleaning roller 18 effectively wipes off water stains, impurities, etc. remaining on the surface of the lens 20. The cleaning roller 18 cooperates with the air outlet 29 to clean the lens 20 after cleaning, avoiding the water stains remaining on the lens after drying to form water marks, which requires manual secondary cleaning, thereby effectively improving the cleaning efficiency of the equipment.

[0063] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. An anti-wear optical lens cleaning device, comprising a cleaning machine housing (1), a top protective shell (2) and a support frame (3), characterized in that: The inner wall of the cleaning machine housing (1) is provided with two first sliding grooves (4), and the two first sliding grooves (4) are symmetrically distributed on both sides of the inner wall of the cleaning machine housing (1). A pushing assembly is provided at the bottom end of the side wall of the first sliding groove (4), and the pushing assembly includes a push rod (7) that is arranged through the inner wall of the cleaning machine housing (1), and the side wall of the push rod (7) is connected to the cleaning machine housing (1) through a spring (8); The pushing assembly further comprises a limiting groove A provided on the inner wall of the cleaning machine housing (1); a movable plate (5) is provided on the side wall of the limiting groove A; the bottom of the movable plate (5) is slidably connected to the limiting groove A by being fixedly connected to an extension block; a first spring rod (6) is fixedly provided on the side wall of the extension block; a sloped rod is provided on the top of the side wall of the movable plate (5); the push rod (7) is provided with a slope at one end close to the sloped rod; and the position of the push rod (7) corresponds to the position of the sloped rod; A placement assembly is slidably provided at the side wall of the first sliding groove (4), and the placement assembly includes a fixed box (9) located at the side wall of the first sliding groove (4), and protective plates (10) are provided on both sides of the outer wall of the fixed box (9). A rotating assembly is slidably provided at the side wall of the fixed box (9), and the side wall of the rotating assembly passes through the fixed box (9) and is connected to the L-shaped placement groove (19); A plurality of cleaning components are provided on the side wall of the fixed box (9), and the cleaning components include a connecting rod (17) provided on the side wall of the fixed box (9), a cleaning roller (18) is rotatably provided on the side wall of the connecting rod (17), a glycerin box (23) is provided on the inner wall of the cleaning machine housing (1) at one end away from the pushing component, a recovery component is provided on the side wall of the cleaning machine housing (1), a blowing component is provided on the top of the recovery component, and one end of the blowing component is provided through the interior of the cleaning machine housing (1); The cleaning assembly further comprises a second sliding groove (15) provided on the side wall of the fixed box (9), the connecting rod (17) slides on the side wall of the second sliding groove (15), the connecting rod (17) is elastically connected to the fixed box (9) through a third spring rod (16) provided at the bottom, the side wall of the glycerin box (23) is movably provided with a rotating plate (22), the position of the rotating plate (22) corresponds to the position of the protective plate (10), when the protective plate (10) moves to the rotating plate (22), one end of the rotating plate (22) is pressed to rotate the rotating plate (22), at which time the glycerin stored in the glycerin box (23) flows out from the outlet and mixes with the cleaning liquid, and the mixing of the glycerin and the cleaning liquid helps to reduce the impact force generated by the bursting of bubbles during ultrasonic cleaning to cause minor damage to the anti-wear lens, thereby increasing the protection of the lens (20) during cleaning; The rotating assembly includes a rack (11) located on the side wall of the fixed box (9), and the side wall of the rack (11) is provided with a second spring rod (12) on the side close to the pushing assembly. The other end of the second spring rod (12) is fixedly connected to the protective plate (10). The side wall of the fixed box (9) is laterally provided with a plurality of gears (14) meshing with the rack (11). The side walls of the plurality of gears (14) pass through the fixed box (9) and are connected to the L-shaped placement groove (19). Limiting grooves B are provided on both sides of the outer wall of the fixed box (9). The side wall of the rack (11) is slidably connected to the fixed box (9) by a limiting rod (13). The position of the limiting rod (13) corresponds to the position of the push rod (7).

2. The wear-resistant optical lens cleaning device according to claim 1, characterized in that: Four sponge pads (21) are vertically provided on the side wall of the L-shaped placement groove (19) close to the lens (20), and the material of the four sponge pads (21) is sponge.

3. The wear-resistant optical lens cleaning device according to claim 1, characterized in that: The recycling assembly comprises a collection box (24) arranged on the side wall of the cleaning machine housing (1); a blade (25) is rotatably provided on the inner wall of the collection box (24); the axis of the blade (25) extends to the outer wall of the collection box (24); and a conveyor belt (26) is provided on the side wall of the blade (25).

4. The wear-resistant optical lens cleaning device according to claim 1, characterized in that: The air blowing assembly comprises a fan (27) located on the outer wall of the collecting box (24); a starting knob is provided on the side wall of the fan (27); a conveyor belt (26) is provided on the side wall of the starting knob; the starting knob rotates in the same direction as the blade (25) via the conveyor belt (26) provided on the side wall; an air outlet pipe (28) is provided at one end of the fan (27); a plurality of air outlets (29) are provided at the bottom of the air outlet pipe (28); the positions of the air outlets (29) correspond to the positions of the cleaning roller (18).

Citation Information

Patent Citations

  • Double-sided cleaning equipment for optical lens processing

    CN219923934U

  • Cleaning System for Individual Firearms

    KR102646932B1