Photographing detection device for optical glass lens

By designing a detection limiting structure and a position adjustment structure for optical glass lenses, and utilizing a servo motor to drive gears and threaded rods, continuous detection of optical glass lenses is achieved, solving the problem of detection process interruption in existing technologies and improving detection efficiency.

CN223565600UActive Publication Date: 2025-11-18HUBEI XINGYAO OPTOELECTRONICS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422890500.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-26
Publication Date
2025-11-18
Estimated Expiration
2034-11-26

AI Technical Summary

Technical Problem

In existing technologies, optical glass lens inspection devices require a robotic arm to release the limit when removing the lens, resulting in a long pause in the inspection process, making continuous inspection impossible and inefficient.

Method used

An optical glass lens imaging and inspection device was designed. It adopts an optical glass lens detection and limiting structure and a position adjustment structure. It uses a servo motor to drive gears and threaded rods to realize continuous limiting and position adjustment of the lens, and performs imaging and inspection through a camera.

Benefits of technology

It enables continuous inspection of optical glass lenses, reduces downtime, and improves inspection efficiency.

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Abstract

The utility model relates to the technical field of optical glass detection, in particular to an optical glass lens photographing detection device which comprises a shell, an electric telescopic rod and a box body, the middle of the upper end of the inner wall of the shell is fixedly connected with the electric telescopic rod, and an optical glass lens position adjusting structure is arranged at the lower end of the left side of the outer wall of the shell. And an optical glass lens detection limiting structure is arranged at the lower end of the outer wall of the box body. According to the optical glass lens photographing detection device, through cooperation of an optical glass lens detection limiting structure and an optical glass lens position adjusting structure, a first motor is used for finally driving two plate bodies to move relatively to limit and detect an optical glass lens, and then a second motor is used for finally driving a straight plate to move in a reciprocating manner; and the position of the detected optical glass lens is adjusted, and the subsequent optical glass lens is moved below the camera, so that the pause time is effectively shortened, the optical glass lenses can be continuously detected in batches, and the detection efficiency of the optical glass lenses is effectively improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to optical glass detection technical field, concretely is a kind of optical glass lens photographing detection device. BACKGROUND

[0002] Optical glass is the glass that can change the propagation direction of light and can change the relative spectral distribution of ultraviolet, visible or infrared light, and the optical glass in a narrow sense is colorless optical glass, and the optical glass in a broad sense also includes colored optical glass, laser glass, quartz optical glass, radiation-resistant glass, ultraviolet and infrared optical glass, fiber optical glass, acoustooptic glass, magneto-optic glass and photochromic glass, wherein in lens production, whether there is scratch on lens surface needs to be detected to judge whether lens is qualified, thus providing a kind of optical glass lens photographing detection device.

[0003] For example, the mechanical hand downwardly grabs the optical glass lens located in the storage groove, lifts the optical glass lens, and the industrial camera photographs the optical glass lens to detect surface quality defects, the mechanical hand can rotate the optical glass lens, and the industrial camera photographs and detects multiple surfaces of the optical glass lens, compared with the background art, the utility model improves detection efficiency. However, in the above, when the subsequent lens needs to be detected, the mechanical hand needs to be released from the lens limiting, and the lens is taken out from the storage groove, the process is stopped for a long time, the optical glass lens cannot be continuously detected, and the working efficiency is low. UTILITY MODEL CONTENT

[0004] The utility model aims at solving the problem that when the subsequent lens needs to be detected, the mechanical hand needs to be released from the lens limiting, and the lens is taken out from the storage groove, the process is stopped for a long time, the optical glass lens cannot be continuously detected, and the working efficiency is low, and provides a kind of optical glass lens photographing detection device.

[0005] To achieve the above object, the utility model provides the following technical scheme:

[0006] Design a kind of optical glass lens photographing detection device, including shell, electric telescopic rod, box, the shell inner wall upper end middle part is fixedly connected with electric telescopic rod, the shell outer wall left lower end is equipped with optical glass lens position adjusting structure, the box outer wall lower end is equipped with optical glass lens detection limiting structure, the electric telescopic rod output end is installed with camera, the electric telescopic rod output end middle part is fixedly connected with frame, the frame inner wall is slidably connected with two slide bars.

[0007] Preferably, the optical glass lens position adjusting structure comprises a second motor, the outer wall of the second motor is fixedly connected with the shell through a support, the output shaft end of the second motor is fixedly connected with a threaded rod, the threaded rod is rotatably connected with the shell through bearings at both ends, the outer wall of the threaded rod is threadedly connected with a bottom plate, and the inner wall of the bottom plate is slidably connected with a straight plate through a bearing.

[0008] Preferably, the straight plate is fixedly connected with the shell at both ends, and the outer wall of the straight plate is fixedly connected with the two boxes at the upper end.

[0009] Preferably, the outer wall of the straight plate is fixedly connected with the two boxes at the upper end.

[0010] Preferably, the outer wall of the straight plate is fixedly connected with the two boxes at the upper end.

[0011] Preferably, the outer wall of the straight plate is fixedly connected with the two boxes at the upper end.

[0012] The optical glass lens photographing detection device has the beneficial effects that: through cooperation of the optical glass lens detection limiting structure and the optical glass lens position adjusting structure, the first motor is started to drive the gear to rotate in the box through the bearing, the gear rotation drives the two racks to slide on the outer wall of the cross bar, the cross bar can support the racks, and then the racks drive the two square plates to slide in the box, the relative sliding of the two square plates drives the relative movement of the plate bodies, the second motor is started to drive the threaded rod to rotate in the shell through the bearing, the threaded rod rotation drives the plate bodies to slide to the left on the outer wall of the straight plate, the right end optical glass lens corresponds to the camera, the first motor finally drives the relative movement of the two plate bodies to detect the optical glass lens limiting position, the second motor finally drives the straight plate to reciprocate, the position of the detected optical glass lens is adjusted, the subsequent optical glass lens is moved below the camera, the pause time is effectively reduced, the optical glass lens can be continuously detected in batches, and the detection efficiency of the optical glass lens is effectively improved. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 It is a structural schematic view of the utility model;

[0014] Figure 2 It is Figure 1front view cross-section view of the middle box;

[0015] Figure 3 for Figure 2 front view cross-section view of the middle box;

[0016] Figure 4 for Figure 3 top view cross-section view of the middle B;

[0017] Figure 5 for Figure 2 enlarged view of the middle B;

[0018] Figure 6 for Figure 2 enlarged view of the middle A.

[0019] In the figure: 1, optical glass lens detection limit structure, 101, first motor, 102, gear, 103, rack, 104, cross bar, 105, square plate, 106, third motor, 2, optical glass lens position adjusting structure, 201, second motor, 202, threaded rod, 203, bottom plate, 204, straight plate, 3, box, 4, plate body, 5, electric telescopic rod, 6, camera, 7, frame, 8, slide bar, 9, shell, 10, LED lamp. DETAILED DESCRIPTION

[0020] The utility model will be further described below in combination with the drawings:

[0021] Referring to the drawings Figures 1-6 In this embodiment, an optical glass lens photographing detection device includes a shell 9, an electric telescopic rod 5, and a box 3. The electric telescopic rod 5 meets the work requirements according to actual needs. The middle part of the upper end of the inner wall of the shell 9 is fixedly connected with the electric telescopic rod 5. The optical glass lens position adjusting structure 2 is arranged at the lower end of the left side of the outer wall of the shell 9. The optical glass lens detection limit structure 1 is arranged at the lower end of the outer wall of the box 3. The output end of the electric telescopic rod 5 is provided with the camera 6.

[0022] The middle part of the output end of the electric telescopic rod 5 is fixedly connected with the frame 7. The inner wall of the frame 7 is slidably connected with two slide bars 8. The two slide bars 8 can support the frame 7. The two ends of the straight plate 204 are fixedly connected with the shell 9. The upper end of the outer wall of the straight plate 204 is fixedly connected with the two boxes 3. The upper end of the slide bar 8 is fixedly connected with the shell 9.

[0023] Two LED lamps 10 are arranged at the lower end of the outer wall of the frame 7. The rotating shafts of the two plate bodies 4 are rotatably connected with the square plate 105 through bearings. The two plate bodies 4 can rotate in the square plate 105 through the bearings. The outer wall of the first motor 101 is fixedly connected with the box 3 through a support. The camera 6 and the LED lamp are prior art, and the working mode will not be described here.

[0024] Referring to the drawings Figures 1-2And 6: optical glass lens position adjusting structure 2 includes second motor 201, second motor 201 adopts servo motor, second motor 201 outer wall is fixedly connected with shell 9 through support, and the output shaft end of second motor 201 is fixedly connected with threaded rod 202, and the both ends of threaded rod 202 are rotatably connected with shell 9 through bearing;

[0025] Second motor 201 can drive threaded rod 202 to rotate in shell 9 through bearing, the outer wall of threaded rod 202 is screw-connected with bottom plate 203, the inner wall of bottom plate 203 is slidingly connected with straight plate 204 through bearing, threaded rod 202 rotation can drive bottom plate 203 to slide on the outer wall of straight plate 204, and straight plate 204 can limit the position of bottom plate 203.

[0026] Refer to the attached drawings Figures 1-4 : optical glass lens detection limiting structure 1 includes first motor 101, first motor 101 adopts servo motor, the output shaft end of first motor 101 is fixedly connected with gear 102, the rotating shaft of gear 102 is rotatably connected with box body 3 through bearing, and first motor 101 can drive gear 102 to rotate in box body 3 through bearing;

[0027] The outer wall of gear 102 is meshingly connected with two racks 103, the inner wall of two racks 103 is slidingly connected with cross bar 104, gear 102 rotation can drive two racks 103 to slide on the outer wall of cross bar 104, cross bar 104 can support rack 103, the both ends of cross bar 104 are fixedly connected with box body 3, and the outer wall of rack 103 is fixedly connected with square plate 105;

[0028] The outer wall of square plate 105 is slidingly connected with box body 3, and square plate 105 can slide in box body 3, the outer wall of left square plate 105 is fixedly connected with third motor 106 through support, third motor 106 adopts servo motor, and the output shaft end of third motor 106 is fixedly connected with plate body 4.

[0029] Working principle:

[0030] Optical glass lens photographing detection limiting work:

[0031] When it is necessary to take a photo of the optical glass lens for detection, the optical glass lens is placed horizontally between the two left plate bodies 4 corresponding to the grooves in the two plate bodies 4, then the external power supply of the first motor 101 is connected, the first motor 101 is started to drive the gear 102 to rotate in the box 3 through the bearing, the gear 102 drives the two racks 103 to slide relative to the outer wall of the cross bar 104, the cross bar 104 supports the racks 103, and then the racks 103 drive the two square plates 105 to slide relative to each other in the box 3, the relative sliding of the two square plates 105 drives the plate bodies 4 to move relative to each other, and the optical glass lens between the two plate bodies 4 is clamped and positioned, when the two plate bodies 4 abut against the outer wall of the optical glass lens, the first motor 101 stops rotating, the first motor 101 is a servo motor with self-locking function, so that the two plate bodies 4 can be positioned, when the optical glass lens needs to be taken out, the second motor 101 is controlled to flip, so that the two plate bodies 4 are reset, so that the optical glass lens can be clamped and positioned, and then the subsequent optical glass lens can be placed between the two plate bodies 4 at the right end for positioning.

[0032] Optical glass lens photo detection and position adjustment:

[0033] When the optical glass lens is clamped and positioned, the external power supply of the camera 6 is connected and connected to the network, the external power supply of the two LED lamps 10 is further connected, the LED lamp 10 is started to irradiate and supplement light for the optical glass lens, then the external power supply of the electric telescopic rod 5 is connected, the electric telescopic rod 5 is started to drive the camera 6 to descend and take a photo of the optical glass lens, and upload the photo to the network, the photo is clear through the display screen connected thereto, whether there is a scratch on the surface of the optical glass lens is judged, so that the optical glass lens can be detected, at the same time, the external power supply of the third motor 106 is connected, the third motor 106 is started to drive the plate body at the left end to rotate in the square plate 105 through the bearing, and then the plate body 105 drives the optical glass lens to rotate to detect the remaining surface, in this process, the plate body 4 at the right end rotates in the square plate 105 through the bearing synchronously with the optical glass lens, when the optical glass lens detection is completed, the external power supply of the second motor 201 is connected, the second motor 201 is started to drive the threaded rod 202 to rotate in the housing 9 through the bearing, the threaded rod 202 drives the plate body 203 to slide leftward on the outer wall of the straight plate 204, so that the optical glass lens at the right end corresponds to the camera 6, when the optical glass lens at the right end corresponds to the camera 6, the second motor 201 stops moving, so that the optical glass lens at the right end can be detected, at the same time, the optical glass lens at the left end can be clamped and taken out, and the subsequent optical glass lens can be put in for positioning, when the optical glass lens at the right end is detected, the second motor 201 drives the optical glass lens at the left end to reset, so that the optical glass lens can be continuously detected through the reciprocating motion.

[0034] Although the utility model has carried on the illustration and the description through the reference preferred embodiment, but, the professional ordinary skilled person should understand, can make various changes in form and detail in the scope of claims.

Claims

1. An optical glass lens photographing detection device, comprising a shell (9), an electric telescopic rod (5) and a box body (3), the electric telescopic rod (5) is fixedly connected to the middle part of the upper end of the inner wall of the shell (9), characterized in that: The outer wall left lower end of the shell (9) is provided with an optical glass lens position adjusting structure (2), the outer wall lower end of the box (3) is provided with an optical glass lens detection limiting structure (1), the output end of the electric telescopic rod (5) is installed with a camera (6), the output end of the electric telescopic rod (5) is fixedly connected with a frame (7) in the middle, and the inner wall of the frame (7) is slidably connected with two slide rods (8).

2. The optical glass lens photographing detection device according to claim 1, characterized in that: The optical glass lens position adjusting structure (2) comprises a second motor (201), the outer wall of the second motor (201) is fixedly connected with the shell (9) through a support, the output shaft end of the second motor (201) is fixedly connected with a threaded rod (202), the both ends of the threaded rod (202) are rotatably connected with the shell (9) through bearings, and the outer wall of the threaded rod (202) is threadedly connected with a bottom plate (203), the inner wall of the bottom plate (203) is slidably connected with a straight plate (204) through a bearing.

3. The optical glass lens photographing detection device according to claim 2, characterized in that: The both ends of the straight plate (204) are fixedly connected with the shell (9), and the outer wall upper end of the straight plate (204) is fixedly connected with the two boxes (3).

4. The optical glass lens photographing detection device according to claim 1, characterized in that: The outer wall lower end of the frame (7) is installed with two LED lamps (10).

5. The optical glass lens photographing detection device according to claim 1, characterized in that: The optical glass lens detection limiting structure (1) comprises a first motor (101), the output shaft end of the first motor (101) is fixedly connected with a gear (102), the rotating shaft of the gear (102) is rotatably connected with the box (3) through a bearing, the outer wall of the gear (102) is meshedly connected with two racks (103), the inner walls of the two racks (103) are slidably connected with a cross rod (104), the both ends of the cross rod (104) are fixedly connected with the box (3), the outer wall of the rack (103) is fixedly connected with a square plate (105), the outer wall of the square plate (105) is slidably connected with the box (3), the outer wall of the square plate (105) on the left is fixedly connected with a third motor (106) through a support, and the output shaft end of the third motor (106) is fixedly connected with a plate body (4).

6. The optical glass lens photographing detection device according to claim 5, characterized in that: The rotating shafts of the two plate bodies (4) are rotatably connected with the square plate (105) through bearings, and the outer wall of the first motor (101) is fixedly connected with the box (3) through a support.

Citation Information

Patent Citations

  • An optical glass lens imaging and inspection device

    CN221038770U