Glass lens processing mechanism for optical lens

By designing a glass lens processing mechanism for optical lenses, which utilizes a suction cup and a drive motor to rotate the lens, and combines a cylinder and slow-release cotton to achieve automatic ink coating, the problem of inconvenient loading on existing equipment is solved, and production efficiency and ease of operation are improved.

CN224181160UActive Publication Date: 2026-05-01GUANGDONG GUANGHONG PRECISION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG GUANGHONG PRECISION TECH CO LTD
Filing Date
2025-04-25
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing glass lens ink coating equipment for optical lenses is inconvenient for loading materials, requiring manual lens installation, which is time-consuming.

Method used

A glass lens processing mechanism was designed, which uses a suction cup to adsorb the lens and a drive motor and servo motor to drive the lens to rotate. Combined with a cylinder and slow-release cotton, it realizes automatic ink coating and simplifies the loading and unloading process.

Benefits of technology

It enables automated lens feeding and ink application, improving production efficiency, simplifying the operation process, and reducing the complexity of manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of optical lens production, in particular to a glass lens processing mechanism for optical lenses, which comprises a bottom plate, a structural seat is arranged at the top of the bottom plate, structural grooves are equidistantly formed in the structural seat, and reserved grooves are equidistantly formed in the top end of the structural seat at the tops of the structural grooves. A vertical rod is arranged between the reserved groove and the structural groove in a penetrating and sleeving mode, the bottom end of the vertical rod is connected with a piston through a threaded groove, a driving motor is embedded in the top end of the vertical rod, and a top output shaft of the driving motor is fixedly sleeved with a suction cup through a flat key. A driving assembly is arranged at the top, away from the structural base, of the bottom plate and comprises a protection box arranged at the top of the bottom plate. A lens to be coated with ink is placed in the reserved groove and pressed, the lens is adsorbed to the suction cup, feeding is convenient and fast, compressed air enters the structural groove and then pushes the vertical rod and the adsorbed lens to move upwards through the piston, and smearing and discharging are convenient.
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Description

Technical Field

[0001] This utility model relates to the field of optical lens manufacturing technology, and specifically to a glass lens processing mechanism for optical lenses. Background Technology

[0002] An optical lens is a transparent optical component composed of one or more curved (usually spherical) optical glass pieces. It is used to focus or disperse the light emitted by the subject to generate a real or virtual image of the subject. An optical lens is mainly composed of basic parts such as lens elements, aperture, image sensor, and mechanical components. Among them, the lens element is the most crucial part of the lens, responsible for the refraction and focusing of light; the aperture is used to control the amount of light entering the lens; the image sensor is used to receive and convert light into electrical signals to form an image; and the mechanical components are used to support and protect these optical and electronic components.

[0003] Currently, the production of optical lenses requires multiple processes. After the glass blanks enter the factory, they need to undergo rough and fine grinding, coating, bonding and ink application, testing, etc. Existing glass lens ink application equipment for optical lenses is inconvenient for loading, requiring manual installation of the lenses, which is time-consuming. Therefore, a glass lens processing mechanism for optical lenses is proposed. The lens to be ink-coated is placed in a reserved groove and pressed to adsorb onto the suction cup, making loading convenient. After gas enters the structural groove, it pushes the upright and the adsorbed lens upward, facilitating unloading and ink application. Utility Model Content

[0004] To address the problems in the existing technology, this utility model provides a glass lens processing mechanism for optical lenses. The lens to be coated with ink is placed in a reserved groove and pressed down so that it is adsorbed onto a suction cup, making loading convenient. After gas enters the structural groove, it pushes the upright rod and the adsorbed lens upward, facilitating unloading and ink coating.

[0005] The technical solution adopted by this utility model to solve its technical problem is a glass lens processing mechanism for optical lenses, including a base plate, a structural seat provided on the top of the base plate, structural grooves are provided at equal intervals inside the structural seat, a reserved groove is provided at equal intervals at the top of the structural groove on the top of the structural seat, a vertical rod is sleeved through the reserved groove and the structural groove, a piston is connected to the bottom end of the vertical rod through a threaded groove, a drive motor is embedded in the top end of the vertical rod, and a suction cup is fixedly sleeved on the top output shaft of the drive motor through a flat key;

[0006] A drive assembly is provided on the top of the base plate away from the structural seat. The drive assembly includes a protective box on the top of the base plate. A servo motor is mounted on one end of the protective box via a mounting bracket. A lead screw is rotatably connected inside the protective box via a bearing. An internally threaded slider is sleeved on the outside of the lead screw. A connecting plate is fixed to one side of the internally threaded slider by bolts. An ink coating assembly is provided on the top of the connecting plate.

[0007] The ink coating assembly includes an ink reservoir mounted on the top of the connecting plate via a mounting bracket and a cylinder mounted on one end of the connecting plate via a mounting bracket. An L-shaped structural plate is fixed to one side of the cylinder's output shaft by bolts, and slow-release cotton is glued to one side of the L-shaped structural plate.

[0008] By adopting the above technical solution, compressed air enters the structural groove and pushes the upright and the lens adsorbed on the suction cup upward through the piston. The drive motor drives the lens adsorbed by the suction cup to rotate. The servo motor works to drive the cylinder to move through the lead screw and internal thread slider. The cylinder works to push the ink storage tank to move, so that the L-shaped structural plate is close to the corresponding lens side.

[0009] Specifically, a support plate is fixed to the bottom of the protective box by bolts, the support plate is fixed to the top of the base plate by bolts, and the piston is located inside the structural groove.

[0010] Specifically, the output shaft on one side of the servo motor is fixedly connected to one end of the lead screw via a connecting sleeve. The protective box is located inside the lead screw and is fixed with an auxiliary rod by bolts. The auxiliary rod passes through the internal threaded slider.

[0011] Specifically, the ink reservoir outlet is connected to a flexible hose via a threaded groove, and one end of the flexible hose is connected to one side of the L-shaped structural plate via a pipe joint.

[0012] Specifically, an air inlet / outlet assembly is provided on the side of the structural base away from the drive assembly. The air inlet / outlet assembly includes a connecting pipe that is equidistantly connected to one side of the structural base via threaded grooves. One end of the connecting pipe is connected to an air inlet check valve via a threaded groove.

[0013] Specifically, an exhaust pipe is welded to the top of the connecting pipe, and a solenoid valve is connected to the top of the exhaust pipe via a threaded groove.

[0014] The beneficial effects of this utility model are:

[0015] (1) The glass lens processing mechanism for optical lenses described in this utility model places the lens to be coated with ink into the reserved groove and presses it so that it is adsorbed on the suction cup, making loading convenient. After compressed air enters the structure groove, it pushes the upright rod and the adsorbed lens upward through the piston, making it convenient to coat and unload.

[0016] (2) The glass lens processing mechanism for optical lenses described in this utility model can drive the adsorbed lens to rotate by the drive motor. The servo motor drives the connecting plate and cylinder to move through the lead screw and internal thread slider. The cylinder is opened to push the L-shaped structure plate to move, so that the slow-release cotton on one side of the L-shaped structure plate is attached to the outer side of the rotating lens, and the ink is applied to the outer edge of the lens. Attached Figure Description

[0017] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0018] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0019] Figure 2 This is a cross-sectional view of the structural base of this utility model;

[0020] Figure 3 This is a schematic diagram of the drive component structure of this utility model;

[0021] Figure 4 This is a schematic diagram of the ink coating component structure of this utility model;

[0022] Figure 5 This is a schematic diagram of the air inlet / outlet assembly structure of this utility model;

[0023] In the diagram: 1. Base plate; 2. Structural base; 201. Structural groove; 202. Upright pole; 203. Piston; 204. Drive motor; 205. Suction cup; 206. Reserved groove; 3. Support plate; 4. Drive assembly; 401. Protective box; 402. Lead screw; 403. Internal threaded slider; 404. Servo motor; 405. Connecting plate; 406. Auxiliary rod; 5. Ink coating assembly; 501. Cylinder; 502. Ink storage tank; 503. L-shaped structural plate; 504. Slow-release cotton; 505. Telescopic hose; 6. Air inlet / outlet assembly; 601. Connecting pipe; 602. Air inlet check valve; 603. Exhaust pipe; 604. Solenoid valve. Detailed Implementation

[0024] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0025] Place the lens to be coated with ink into the pre-drilled groove and press it down to adhere it to the suction cup. Loading is convenient. Gas enters the structural groove, pushing the upright and the adhered lens upwards, facilitating unloading and ink application. Figure 1-5 As shown, the glass lens processing mechanism for optical lenses of this utility model includes a base plate 1, a structural seat 2 on the top of the base plate 1, structural grooves 201 are equidistantly opened inside the structural seat 2, a reserved groove 206 is equidistantly opened at the top of the structural grooves 201 on the top of the structural seat 2, a vertical rod 202 is sleeved through the reserved groove 206 and the structural grooves 201, a piston 203 is connected to the bottom end of the vertical rod 202 through a threaded groove, a drive motor 204 is embedded at the top of the vertical rod 202, and a suction cup 205 is fixedly sleeved on the top output shaft of the drive motor 204 through a flat key;

[0026] A drive assembly 4 is provided on the top of the base plate 1 away from the structural seat 2. The drive assembly 4 includes a protective box 401 on the top of the base plate 1. A servo motor 404 is mounted on one end of the protective box 401 via a mounting bracket. A lead screw 402 is rotatably connected inside the protective box 401 via a bearing. An internal threaded slider 403 is sleeved on the outside of the lead screw 402. A connecting plate 405 is fixed to one side of the internal threaded slider 403 by bolts. An ink coating assembly 5 is provided on the top of the connecting plate 405.

[0027] The ink coating assembly 5 includes an ink storage tank 502 mounted on the top of the connecting plate 405 via a mounting bracket and a cylinder 501 mounted on one end of the connecting plate 405 via a mounting bracket. An L-shaped structural plate 503 is fixed to one side of the output shaft of the cylinder 501 by bolts, and a slow-release cotton 504 is glued to one side of the L-shaped structural plate 503.

[0028] In use, compressed air enters the structural groove 201 and pushes the upright 202 and the lens adsorbed on the suction cup 205 upward through the piston 203. The drive motor 204 drives the lens adsorbed by the suction cup 205 to rotate. The servo motor 404 works to drive the cylinder 501 to move through the lead screw 402 and the internal thread slider 403. The cylinder 501 works to push the ink storage tank 502 to move, so that the L-shaped structural plate 503 is close to the corresponding lens side.

[0029] For example, such as Figure 1 , Figure 2 As shown, the present invention also includes a support plate 3 fixed to the bottom of the protective box 401 by bolts, the support plate 3 being fixed to the top of the base plate 1 by bolts, and the piston 203 being located inside the structural groove 201.

[0030] In use, the support plate 3 supports the protective box 401, and the gas enters the structural groove 201 and pushes the upright 202 upward through the piston 203.

[0031] For example, such as Figure 3 As shown, the present invention also includes an output shaft on one side of the servo motor 404 that is fixedly connected to one end of the lead screw 402 via a connecting sleeve, and an auxiliary rod 406 is fixed inside the protective box 401 on one side of the lead screw 402 by bolts, the auxiliary rod 406 passing through the internal threaded slider 403.

[0032] In use, the servo motor 404 drives the lead screw 402 to rotate, and the auxiliary rod 406 can prevent the internal thread slider 403 from rotating with the lead screw 402 without affecting its movement.

[0033] For example, such as Figure 4As shown, the present invention also includes a telescopic hose 505 connected to the ink outlet end of the ink storage tank 502 via a threaded groove, and one end of the telescopic hose 505 is connected to one side of the L-shaped structural plate 503 via a pipe joint.

[0034] When in use, the ink poured into the ink reservoir 502 flows through the telescopic hose 505 into the slow-release cotton 504.

[0035] For example, such as Figure 5 As shown, the present invention also includes an air inlet / outlet assembly 6 provided on the side of the structural base 2 away from the drive assembly 4. The air inlet / outlet assembly 6 includes a connecting pipe 601 that is equidistantly connected to one side of the structural base 2 through a threaded groove. One end of the connecting pipe 601 is connected to an air inlet one-way valve 602 through a threaded groove.

[0036] In use, gas can be delivered to the structural tank 201 through the connecting pipe 601 and the one-way valve 602. The one-way valve 602 can prevent the gas entering the structural tank 201 from flowing back.

[0037] For example, such as Figure 5 As shown, the present invention also includes an exhaust pipe 603 welded to the top of the connecting pipe 601, and a solenoid valve 604 connected to the top of the exhaust pipe 603 through a threaded groove.

[0038] When in use, the solenoid valve 604 is opened to allow the gas in the structural groove 201 to be discharged through the structural groove 201 and the piston 203.

[0039] When using this utility model, the operator uses a power cord to connect the servo motor 404, drive motor 204 and solenoid valve 604 to an external intelligent control device, and uses an air hose to connect the air inlet one-way valve 602 and cylinder 501 to an external air supply device. The ink is poured into the ink storage tank 502, and the ink entering the ink storage tank 502 flows into the telescopic hose 505 and soaks the slow-release cotton 504.

[0040] Place the lens to be coated with ink into the reserved slot 206 and press it down to make the suction cup 205 hold it. Supply air to the structural slot 201 through the air inlet one-way valve 602 and the connecting pipe 601. After the gas enters the structural slot 201, it pushes the upright 202 and the lens attached to the suction cup 205 upward through the piston 203. Turn on the drive motor 204 to drive the attached lens to rotate.

[0041] The servo motor 404 drives the lead screw 402 to rotate, which pushes the connecting plate 405 to move through the internal thread slider 403. The movement of the connecting plate 405 drives the cylinder 501 and the L-shaped structure plate 503 to move. After the L-shaped structure plate 503 moves to the position of the rising and rotating lens, the cylinder 501 is opened to push the L-shaped structure plate 503 to move, so that the slow-release cotton 504 on one side of the L-shaped structure plate 503 is attached to the outer side of the rotating lens, and the ink is applied to the outer edge of the lens.

[0042] After the ink coating is completed, the cylinder 501 controls the L-shaped structure plate 503 to reset, and opens the solenoid valve 604 to allow the gas in the structure groove 201 to be discharged through the connecting pipe 601 and the exhaust pipe 603, so that the upright 202 and the inked lens can be moved down.

[0043] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A glass lens processing mechanism for optical lenses, characterized in that, Includes a base plate (1), the top of which is provided with a structural seat (2), the structural seat (2) is provided with structural grooves (201) at equal intervals inside, the top of which is located at equal intervals with a reserved groove (206), a vertical rod (202) is sleeved through between the reserved groove (206) and the structural groove (201), the bottom end of the vertical rod (202) is connected to a piston (203) through a threaded groove, the top end of the vertical rod (202) is embedded with a drive motor (204), and the top output shaft of the drive motor (204) is fixedly sleeved with a suction cup (205) through a flat key; A drive assembly (4) is provided on the top of the base plate (1) away from the structural seat (2). The drive assembly (4) includes a protective box (401) on the top of the base plate (1). A servo motor (404) is mounted on one end of the protective box (401) via a mounting bracket. A lead screw (402) is rotatably connected inside the protective box (401) via a bearing. An internal thread slider (403) is sleeved on the outside of the lead screw (402). A connecting plate (405) is fixed to one side of the internal thread slider (403) via bolts. An ink coating assembly (5) is provided on the top of the connecting plate (405). The ink coating assembly (5) includes an ink reservoir (502) mounted on the top of the connecting plate (405) via a mounting bracket and a cylinder (501) mounted on one end of the connecting plate (405) via a mounting bracket. An L-shaped structural plate (503) is fixed to one side of the output shaft of the cylinder (501) by bolts. A slow-release cotton (504) is glued to one side of the L-shaped structural plate (503).

2. The glass lens processing mechanism for optical lenses according to claim 1, characterized in that, The bottom of the protective box (401) is fixed with a support plate (3) by bolts. The support plate (3) is fixed to the top of the base plate (1) by bolts. The piston (203) is located inside the structural groove (201).

3. The glass lens processing mechanism for optical lenses according to claim 1, characterized in that, The output shaft of the servo motor (404) is fixedly connected to one end of the lead screw (402) through a connecting sleeve. The protective box (401) is located inside the lead screw (402) and an auxiliary rod (406) is fixed by bolts. The auxiliary rod (406) passes through the internal thread slider (403).

4. A glass lens processing mechanism for optical lenses according to claim 1, characterized in that, The ink reservoir (502) has a flexible hose (505) connected to its outlet end via a threaded groove. One end of the flexible hose (505) is connected to one side of the L-shaped structural plate (503) via a pipe joint.

5. A glass lens processing mechanism for optical lenses according to claim 1, characterized in that, An air inlet / outlet assembly (6) is provided on the side of the structural base (2) away from the drive assembly (4). The air inlet / outlet assembly (6) includes a connecting pipe (601) that is equidistantly connected to one side of the structural base (2) through a threaded groove. One end of the connecting pipe (601) is connected to an air inlet check valve (602) through a threaded groove.

6. A glass lens processing mechanism for optical lenses according to claim 5, characterized in that, An exhaust pipe (603) is welded to the top of the connecting pipe (601), and a solenoid valve (604) is connected to the top of the exhaust pipe (603) through a threaded groove.