Optical glass cutting device

By using servo motor-driven horizontal and vertical adjustment mechanisms and worm gear feed mechanisms, the optical glass cutting device achieves automated, efficient, and precise cutting, solving the problems of high manual operation costs and low yield rates in existing technologies.

CN223950928UActive Publication Date: 2026-02-27WUHAN ZHENGKE TECH CO LTD
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Patent Information

Application Number
CN202520185230.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-06
Publication Date
2026-02-27
Estimated Expiration
2035-02-06

AI Technical Summary

Technical Problem

Existing optical glass cutting equipment requires a large amount of manual operation, resulting in high labor costs and a yield rate that depends on the operator's skill, making it difficult to guarantee high precision and low damage.

Method used

The cutting head is precisely adjusted and automatically cut by using a servo motor-driven horizontal and vertical adjustment mechanism combined with a worm gear and feed mechanism.

Benefits of technology

It improves the efficiency and precision of optical glass cutting, reduces manual operation, and ensures cutting quality and yield.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an optical glass cutting device, which belongs to the technical field of cutting equipment and comprises a basic shell, two sides of the basic shell are open, and one side of the basic shell is fixedly connected with a first servo motor. By arranging the transverse adjusting mechanism, the transverse position of the cutting tool bit can be adjusted at will, the longitudinal position of the cutting tool bit can be adjusted by arranging the longitudinal adjusting mechanism in a matched mode through the worm and the worm gear, and therefore the position of the cutting tool bit on optical glass can be changed at will, and the cutting tool bit can be adjusted at will through cooperation of the two mechanisms. In addition, in order to further utilize the longitudinal adjusting mechanism, when the rotation directions of the two worms are opposite and the rotation speed is the same, the worm gear can keep the original position immobile but rotate, the feeding mechanism can be linked, the height of the cutting tool bit is controlled, and the cutting efficiency is improved. The cutting efficiency is further improved, and the whole structure of the device is very compact.
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Description

Technical Field

[0001] This utility model belongs to the field of cutting equipment technology, specifically an optical glass cutting device. Background Technology

[0002] Optical glass is a special type of glass characterized by high transparency, low refractive index variation, and excellent optical properties. It is widely used in various precision optical instruments and equipment, such as camera lenses, microscopes, telescopes, lasers, and fiber optic communication systems. The high quality and stability of optical glass are crucial for ensuring the performance of optical systems. An optical glass cutting device is a specialized apparatus for precisely cutting optical glass. This device ensures high precision and low damage during the cutting process, thereby maintaining the surface quality and optical properties of the optical glass.

[0003] When cutting optical glass, the processing precision must be guaranteed to be within an extremely high range. Manual cutting of optical glass requires ensuring that the angle between the cutter head and the glass surface is controlled within a certain range. In the field of optical glass cutting, the current technology still requires a large amount of manual cutting. This cutting method not only has huge labor costs, but the yield rate is also limited by the operator's skill. Therefore, it is necessary to propose an optical glass cutting device. Utility Model Content

[0004] To overcome the above-mentioned defects, this utility model provides an optical glass cutting device, which solves the problems in the prior art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an optical glass cutting device, comprising:

[0006] The base shell has openings on both sides, a servo motor is fixedly connected to one side of the base shell, and a lateral adjustment mechanism is provided inside the base shell.

[0007] The lateral adjustment mechanism includes a lead screw rotatably connected to the base housing. The output end of the first servo motor passes through the base housing and is coaxially and fixedly connected to the lead screw. A square nut is threaded onto the lead screw. The square nut is slidably connected to the base housing. Connecting arms are fixedly connected to both sides of the square nut. A linkage housing is fixedly connected to the top of the two connecting arms. A longitudinal adjustment mechanism and a feed mechanism are provided inside the linkage housing.

[0008] As a further embodiment of this utility model: the longitudinal adjustment mechanism includes two worm gears rotatably connected within the linkage housing, and a worm wheel is provided within the linkage housing, the worm wheel being disposed between the two worm gears and meshing with both worm gears.

[0009] As a further scheme of the utility model: two no. Servo motor is fixedly connected to one side of the linkage shell, and the output end of the no. Servo motor penetrates linkage shell and is coaxially fixedly connected with the corresponding side worm.

[0010] As a further scheme of the utility model: the feed mechanism includes the sliding plate slidingly connected to the bottom of the linkage shell, and the sliding plate bottom is fixedly connected with two limit slot plates.

[0011] As a further scheme of the utility model: the sliding plate bottom is rotatably connected with no. Screw rod, and the no. Screw rod is threadedly connected with adjusting nut, the adjusting nut is slidingly connected in the limit slot plate, and the adjusting nut bottom is fixedly connected with cutting tool bit.

[0012] As a further scheme of the utility model: the rotating shaft of the worm wheel penetrates linkage shell and is coaxially fixedly connected with no. Screw rod.

[0013] Compared with the prior art, the utility model has the beneficial effects that:

[0014] The utility model discloses a cutting device for optical glass, which comprises a base shell, a worm gear, a worm, a linkage shell, a worm wheel, a no. Servo motor, a sliding plate, a limit slot plate, a no. Screw rod and an adjusting nut. BRIEF DESCRIPTION OF DRAWINGS

[0015] Fig. 1 It is the three-dimensional structure schematic diagram of the utility model;

[0016] Fig. 2 It is the three-dimensional internal structure schematic diagram of the base shell part of the utility model;

[0017] Fig. 3 It is the three-dimensional internal structure schematic diagram of the linkage shell part of the utility model.

[0018] In the drawing: 1 base shell, 2 no. Servo motor, 3 no. Screw rod, 4 square nut, 5 connecting folding arm, 6 linkage shell, 7 worm, 8 worm wheel, 9 no. Servo motor, 10 limit slot plate, 11 no. Screw rod, 12 adjusting nut, 13 cutting tool bit. DETAILED DESCRIPTION

[0019] The technical solutions of the patent are further described in detail in combination with specific embodiments.

[0020] As Figs. 1-3 shown, the utility model provides a technical scheme:

[0021] The base shell 1 is provided with a No. 1 servo motor 2 on one side, and a horizontal adjusting mechanism is arranged in the base shell 1.

[0022] The horizontal adjusting mechanism comprises a No. 1 lead screw 3 rotatably connected in the base shell 1, the output end of the No. 1 servo motor 2 penetrates the base shell 1 and is fixedly connected with the No. 1 lead screw 3 coaxially, a square nut 4 is threadedly connected on the No. 1 lead screw 3, the square nut 4 is slidably connected in the base shell 1, two connecting folding arms 5 are fixedly connected on both sides of the square nut 4, a linkage shell 6 is fixedly connected on the top of the two connecting folding arms 5, a longitudinal adjusting mechanism and an infeed mechanism are arranged in the linkage shell 6, the horizontal adjusting mechanism can adjust the horizontal position of the cutting tool bit 13, the No. 1 servo motor 2 is started, the No. 1 servo motor 2 drives the No. 1 lead screw 3 to rotate, the square nut 4 threadedly connected with the No. 1 lead screw 3 drives the two connecting folding arms 5 to move axially along the No. 1 lead screw 3, and the horizontal position of the cutting tool bit 13 can be adjusted.

[0023] The longitudinal adjusting mechanism comprises two worm gears 7 rotatably connected in the linkage shell 6, a worm wheel 8 is arranged in the linkage shell 6 and engages with the two worm gears 7, two No. 2 servo motors 9 are fixedly connected on one side of the linkage shell 6, the output end of the No. 2 servo motor 9 penetrates the linkage shell 6 and is fixedly connected with the corresponding side worm gear 7 coaxially, the longitudinal adjusting mechanism can adjust the longitudinal position of the cutting tool bit 13, the two worm gears 7 can be controlled by controlling the two No. 2 servo motors 9, and it should be noted that the screw directions of the two worm gears 7 are consistent, when the rotation directions of the two worm gears 7 are consistent and the rotation speeds are consistent, the worm wheel 8 moves axially along the worm gear 7 at this time, and the longitudinal position of the cutting tool bit 13 can be adjusted at this time.

[0024] The feeding mechanism comprises a sliding plate slidingly connected to the bottom of the linkage shell 6, two limiting groove plates 10 fixedly connected to the bottom of the sliding plate, a No. 2 lead screw 11 rotatably connected to the bottom of the sliding plate, an adjusting nut 12 threadedly connected to the No. 2 lead screw 11, the adjusting nut 12 slidingly connected to the limiting groove plate 10, a cutting tool bit 13 fixedly connected to the bottom of the adjusting nut 12, and the rotating shaft of the worm wheel 8 penetrating through the linkage shell 6 and coaxially fixedly connected to the No. 2 lead screw 11. The feeding mechanism is linked through the longitudinal adjusting mechanism and is subject to the longitudinal adjusting mechanism. When the two worm gears 7 rotate in opposite directions and at the same speed, the worm wheel 8 will not move in position but will rotate, the No. 2 lead screw 11 coaxially fixedly connected to the worm wheel 8 will rotate, and the adjusting nut 12 threadedly connected to the No. 2 lead screw 11 will slide in the limiting groove plate 10. Thus, the feeding and withdrawing actions of the cutting tool bit 13 are realized, the cutting efficiency is further improved, and the overall structure of the device is extremely compact.

[0025] The working principle of the utility model is as follows:

[0026] The transverse adjusting mechanism can adjust the transverse position of the cutting tool bit 13. The No. 1 servo motor 2 is started, the No. 1 servo motor 2 drives the No. 1 lead screw 3 to rotate, the square nut 4 threadedly connected to the No. 1 lead screw 3 drives the two connecting folding arms 5 to move along the No. 1 lead screw 3 in the axial direction, and the transverse position of the cutting tool bit 13 can be adjusted.

[0027] The longitudinal adjusting mechanism can adjust the longitudinal position of the cutting tool bit 13. The two No. 2 servo motors 9 are controlled, and the two worm gears 7 are controlled. It is to be noted that the spiral directions of the two worm gears 7 are consistent. When the two worm gears 7 rotate in the same direction and at the same speed, the worm wheel 8 will move along the worm gear 7 in the axial direction, and the longitudinal position of the cutting tool bit 13 can be adjusted.

[0028] The feeding mechanism is linked through the longitudinal adjusting mechanism and is subject to the longitudinal adjusting mechanism. When the two worm gears 7 rotate in opposite directions and at the same speed, the worm wheel 8 will not move in position but will rotate, the No. 2 lead screw 11 coaxially fixedly connected to the worm wheel 8 will rotate, and the adjusting nut 12 threadedly connected to the No. 2 lead screw 11 will slide in the limiting groove plate 10. Thus, the feeding and withdrawing actions of the cutting tool bit 13 are realized, the cutting efficiency is further improved, and the overall structure of the device is extremely compact.

[0029] The preferred embodiments of the patent are described in detail above, but the patent is not limited to the above embodiments. Various changes can be made within the knowledge of those skilled in the art without departing from the purpose of the patent.

Claims

1. An optical glass cutting apparatus characterized by comprising: Include: Base shell (1), both sides of the base shell (1) are open, one side of the base shell (1) is fixedly connected with a servo motor (2), the base shell (1) is provided with a transverse adjusting mechanism; The transverse adjusting mechanism includes a No. 1 lead screw (3) rotatably connected in the base shell (1), the output end of the No. 1 servo motor (2) penetrates the base shell (1) and is fixedly connected with the No. 1 lead screw (3) coaxially, the No. 1 lead screw (3) is threadedly connected with a square nut (4), the square nut (4) is slidably connected in the base shell (1), both sides of the square nut (4) are fixedly connected with a connecting folding arm (5), and the top of the two connecting folding arms (5) is fixedly connected with a linkage housing (6), the linkage housing (6) is provided with a longitudinal adjusting mechanism and a feed mechanism.

2. An optical glass cutting apparatus according to claim 1, wherein: The longitudinal adjusting mechanism includes two worm gears (7) rotatably connected in the linkage housing (6), the linkage housing (6) is provided with a worm wheel (8), and the worm wheel (8) is arranged between the two worm gears (7) and engaged with the two worm gears (7).

3. An optical glass cutting apparatus according to claim 2, wherein: The linkage housing (6) is fixedly connected with two No. 2 servo motors (9) on one side, the output end of the No. 2 servo motor (9) penetrates the linkage housing (6) and is fixedly connected with the corresponding side worm gear (7) coaxially.

4. An optical glass cutting apparatus according to claim 3, wherein: The feed mechanism includes a sliding plate slidably connected to the bottom of the linkage housing (6), and the bottom of the sliding plate is fixedly connected with two limiting groove plates (10).

5. An optical glass cutting apparatus according to claim 4, wherein: The bottom of the sliding plate is rotatably connected with a No. 2 lead screw (11), the No. 2 lead screw (11) is threadedly connected with an adjusting nut (12), the adjusting nut (12) is slidably connected in the limiting groove plate (10), and the bottom of the adjusting nut (12) is fixedly connected with a cutting tool bit (13).

6. An optical glass cutting apparatus according to claim 5, wherein: The rotating shaft of the worm wheel (8) penetrates the linkage housing (6) and is fixedly connected with the No. 2 lead screw (11) coaxially.