Cutting equipment for optical glass production

By designing optical glass cutting equipment for servo motors and threaded rod systems, the problem of difficulty in cutting complex shapes in traditional equipment and the need to manually clean up waste is solved, achieving flexible cutting and automatic cleaning.

CN223047417UActive Publication Date: 2025-07-01SICHUAN RUITIAN OPTICAL
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Patent Information

Application Number
CN202422147813.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-07-01
Estimated Expiration
2034-09-03

AI Technical Summary

Technical Problem

Traditional optical glass cutting equipment is difficult to cut in complex shapes, and it requires manual cleaning of waste chips after cutting, which increases labor intensity and untidy operation environment.

Method used

A cutting equipment for optical glass production is designed, using a servo motor and threaded rod system to realize front, back, left and right cutting of glass, and automatically cleans the cut waste through a cleaning mechanism.

Benefits of technology

It realizes flexible cutting of complex-shaped glass, and reduces the need for manual cleaning through automatic cleaning mechanisms, improving production efficiency and cleanliness of the operating environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of laser cutting, and discloses cutting equipment for optical glass production, which comprises a cutting mechanism and a cleaning mechanism, the cutting mechanism comprises two cutting tables and a cross beam, the middle of one end of each adjacent cutting table is provided with a conveyor belt, and the two sides of the middle of one end of each adjacent cutting table are rotatably connected with a transmission roller; and a control panel is arranged in the middle of the other side of the rear end of the outer wall of the cutting table, a second servo motor is arranged on the other side of the control panel, and the output end of the second servo motor penetrates through the cutting table at the rear end, reaches the exterior of the cutting table and is fixedly connected with the rear end of the transmission roller on the other side. According to the glass cutting device, an operator drives the three servo motors to move through the control panel, the second servo motor and the second threaded rod rotate, the second threaded rod can drive the cross beam to slide towards the two sides, meanwhile, the third servo motor, the electric telescopic rod and the cutting assembly slide, and glass can be cut front, back, left and right through the set of movement.
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Description

Technical Field

[0001] The utility model relates to the field of laser cutting, in particular to a cutting device for optical glass production. Background Technique

[0002] Cutting devices for optical glass production are used to cut optical glass raw materials (usually large pieces of optical glass or optical glass plates) into required sizes and shapes to manufacture optical components (such as lenses, prisms, lenses, etc.). These devices play a key role in the processing of optical glass, ensuring the accuracy and quality of optical components.

[0003] Most traditional cutting devices can only perform simple straight-line cutting, with limited cutting ability for complex shapes. At the same time, after cutting, the waste chips on the table need to be manually cleaned, which not only increases the labor intensity but also may lead to an untidy operating environment.

[0004] Therefore, those skilled in the art have provided a cutting device for optical glass production to solve the problems raised in the above background technique. Content of the Utility Model

[0005] The purpose of the content of the utility model is to solve the deficiencies existing in the prior art, and a cutting device for optical glass production is proposed. The operator drives three servo motors through a control panel. The second servo motor rotates the second threaded rod, and the second threaded rod will drive the crossbeam to slide to both sides. At the same time, the third servo motor drives the electric telescopic rod and the cutting component to slide. This series of movements can cut the glass in all directions (front, back, left, and right).

[0006] To achieve the above purpose, the utility model provides the following technical solutions:

[0007] A cutting device for optical glass production includes a cutting mechanism and a cleaning mechanism. The cutting mechanism includes two cutting tables and a crossbeam. Conveyor belts are arranged in the middle of one end of adjacent cutting tables. Transmission rollers are rotatably connected to both sides of the middle of one end of adjacent cutting tables. In the middle of the other side of the outer wall of the rear end of the cutting table, there is a control panel. On the other side of the control panel, there is a second servo motor. The output end of the second servo motor penetrates through the rear cutting table and extends to the outside of the cutting table and is fixedly connected to the rear end of the transmission roller on the other side. Fixed plates are fixedly connected to the upper ends of both cutting tables. Second chutes are opened on one side of the fixed plates away from the center of the cutting tables. On the other side of the inner wall of the rear second chute, there is a first servo motor;

[0008] The output end of the first servo motor is fixedly connected to a second threaded rod. On both sides of the inner wall of the front-end second chute, sliding rods are fixedly connected. On the upper ends of both cutting tables, placing plates are provided. On the front end, rear end, and upper end of the other side of the placing plate, blocking plates are fixedly connected. The lower parts of the front end and rear end of the cross beam are slidably connected to the rod body of the second threaded rod. A first chute is opened at the lower end of the cross beam. At the rear end of the inner wall of the first chute, a third servo motor is fixedly connected. The output end of the third servo motor is fixedly connected to a first threaded rod. A slider is sleeved on the rod body of the first threaded rod. The lower end of the slider is fixedly connected to an electric telescopic rod. The output end of the electric telescopic rod is fixedly connected to a cutting assembly. At one end of the rear blocking plate close to the center of the cutting table, a cleaning mechanism is provided;

[0009] Through the above technical solution, the operator first turns on the control panel, and the control panel drives the first servo motor, the second servo motor, and the third servo motor to rotate simultaneously. The second servo motor drives the conveyor belt to move. The first servo motor drives the second threaded rods at both ends of the cutting table to rotate, and the second threaded rods drive the cross beam to slide to both sides. At the same time, the third servo motor drives the first threaded rod to rotate, and the first threaded rod drives the slider to slide back and forth. The slider drives the electric telescopic rod and the cutting assembly to slide. At the same time, the electric telescopic rod can move up and down. This series of movements can not only cut the glass back and forth and left and right, but also cut the glass with different thicknesses. After cutting, the waste chips will fall onto the conveyor belt through the waste chip groove on the surface of the placing plate, and the conveyor belt will convey the waste chips to the chip collection box.

[0010] Further, the cleaning mechanism includes a cleaning brush. On the outer wall of one end of the rear blocking plate close to the center of the cutting table, a third chute is opened. On the other side of the inner wall of the third chute, a fourth servo motor is fixedly connected. The output end of the fourth servo motor is fixedly connected to a third threaded rod. The other side of the third threaded rod away from the fourth servo motor is rotatably connected to one side of the inner wall of the third chute. The rod body of the third threaded rod is sleeved with a cleaning brush;

[0011] Through the above technical solution, when the cutting is completed, the cutting button is turned off through the control panel, and then the button of the cleaning mechanism is turned on. The control panel drives the fourth servo motor to rotate. The fourth servo motor drives the third threaded rod to rotate. The third threaded rod drives the cleaning brush to clean the waste chips on the surface of the placing plate forward, and finally clean them into the chip collection box, which can ensure the cleanliness of the entire cutting table surface.

[0012] Further, the lower part of one side of the cross beam is slidably connected to the rod body of the sliding rod, and the lower part of the other side of the cross beam is slidably connected to the rod body of the second threaded rod;

[0013] Through the above technical solution, the sliding connection allows the cross beam to move in a specific direction during the cutting process, which increases the flexibility and adaptability of the equipment.

[0014] Further, the sides of the second threaded rod away from the first servo motor are all rotatably connected to the inner wall of the second chute;

[0015] Through the above technical solution, the rotational connection enables the cross beam to achieve smooth movement in the horizontal direction. This rotational connection helps with the precise positioning and fine-tuning of the cross beam during the cutting process, ensuring the accuracy of the cutting path.

[0016] Further, a corrugated plate is provided at the front end of the inner wall of the front end of the third chute;

[0017] Through the above technical solution, by optimizing the air flow, the generation of bubbles and pollutants during the cutting process can be reduced, thereby improving the cutting accuracy. At the same time, it can prevent waste chips from entering the chute during the cutting process.

[0018] Further, a plurality of waste chip grooves are formed at the upper end of the placement plate;

[0019] Through the above technical solution, waste chips can be quickly cleaned up, reducing the downtime during the cutting process, improving production efficiency, helping to keep the working environment clean, and reducing the risk of operators coming into contact with waste chips.

[0020] Further, the other side of the first threaded rod away from the third servo motor is rotatably connected to the front end of the inner wall of the first chute;

[0021] Through the above technical solution, the first threaded rod can move flexibly within a certain range, thereby adjusting the position and angle of the cutting assembly.

[0022] Further, a chip collection box is provided on one side of the cutting table. Universal wheels are fixedly connected to the four corners at the lower end of the chip collection box, and a push handle is fixedly connected to the upper part of the outer wall of one side of the chip collection box;

[0023] Through the above technical solution, waste chips can be quickly cleaned up, reducing the downtime during the cutting process, and improving production efficiency.

[0024] The utility model has the following beneficial effects:

[0025] 1. A cutting device for optical glass production proposed by the present utility model. The operator first turns on the control panel, which simultaneously drives the first servo motor, the second servo motor, and the third servo motor to rotate. The second servo motor drives the conveyor belt to move. The first servo motor drives the second threaded rod at both ends of the cutting table to rotate, and the second threaded rod drives the crossbeam to slide to both sides. At the same time, the third servo motor drives the first threaded rod to rotate, and the first threaded rod drives the slider to slide back and forth. The slider drives the electric telescopic rod and the cutting assembly to slide. At the same time, the electric telescopic rod can move up and down. This series of movements can not only cut the glass in all directions but also cut glass with different thicknesses. After cutting, the waste chips will fall onto the conveyor belt through the waste chip groove on the surface of the placement plate, and the conveyor belt will convey the waste chips to the chip collection box.

[0026] 2. A cutting device for optical glass production proposed by the present utility model. When the cutting is completed, the operator turns off the cutting button through the control panel and then turns on the button of the cleaning mechanism. The control panel drives the fourth servo motor to rotate, the fourth servo motor drives the third threaded rod to rotate, and the third threaded rod drives the cleaning brush to clean the waste chips on the surface of the placement plate forward, and finally clean them into the chip collection box, which can ensure the cleanliness of the entire cutting table surface. Description of the Drawings

[0027] Figure 1 Isometric view of one side of a cutting device for optical glass production proposed by the present utility model;

[0028] Figure 2 Isometric view of the other side of a cutting device for optical glass production proposed by the present utility model;

[0029] Figure 3 Front view of a cutting device for optical glass production proposed by the present utility model;

[0030] Figure 4 Sectional view of the cutting mechanism of a cutting device for optical glass production proposed by the present utility model;

[0031] Figure 5 Partial structural schematic diagram of a cutting device for optical glass production proposed by the present utility model.

[0032] Legend Explanation:

[0033] 1. Cutting mechanism; 101. First servo motor; 102. Driving roller; 103. Cutting table; 104. Baffle; 105. Conveyor belt; 106. Push handle; 107. Chip collection box; 108. Universal wheel; 109. Cross beam; 110. Scrap chute; 111. Second servo motor; 112. Control panel; 113. Placing plate; 114. First threaded rod; 115. First chute; 116. Slide block; 117. Third servo motor; 118. Electric telescopic rod; 119. Cutting assembly; 120. Second threaded rod; 121. Second chute; 122. Fixed plate; 123. Slide bar;

[0034] 2. Cleaning mechanism; 201. Cleaning brush; 202. Fourth servo motor; 203. Third threaded rod; 204. Third chute; 205. Corrugated plate. Specific embodiments

[0035] Next, the technical solutions in the specific embodiments of the present invention will be clearly and completely described in conjunction with the drawings in the specific embodiments of the present invention. Obviously, the described specific embodiments are only a part of the specific embodiments of the present invention, rather than all of the specific embodiments. Based on the specific embodiments of the present invention, all other specific embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0036] Refer to Figure 1 、 Figure 4 and Figure 5 A specific embodiment provided by the present invention:

[0037] A cutting device for optical glass production includes a cutting mechanism 1 and a cleaning mechanism 2. The cutting mechanism 1 includes two cutting tables 103 and a cross beam 109. Conveyor belts 105 are arranged in the middle of one end of adjacent cutting tables 103. Driving rollers 102 are rotatably connected to both sides of the middle of one end of adjacent cutting tables 103. In the middle of the other side of the rear end of the outer wall of the cutting table 103, a control panel 112 is provided. On the other side of the control panel 112, a second servo motor 111 is provided. The output end of the second servo motor 111 penetrates the rear cutting table 103 and extends to the outside of the cutting table 103 and is fixedly connected to the rear end of the driving roller 102 on the other side. Fixed plates 122 are fixedly connected to the upper ends of both cutting tables 103. Second chutes 121 are opened on the side of the fixed plate 122 away from the center of the cutting table 103. On the other side of the inner wall of the rear second chute 121, a first servo motor 101 is fixedly connected;

[0038] The output end of the first servo motor 101 is fixedly connected to a second threaded rod 120. Both sides of the inner wall of the second chute 121 at the front end are fixedly connected to sliding rods 123. Placement plates 113 are arranged at the upper ends of both cutting tables 103. Blocking plates 104 are fixedly connected to the front end, rear end, and the upper end of the other side of the placement plate 113. The lower parts of the front end and rear end of the cross beam 109 are slidably connected to the rod body of the second threaded rod 120. A first chute 115 is opened at the lower end of the cross beam 109. A third servo motor 117 is fixedly connected to the inner wall of the rear end of the first chute 115. The output end of the third servo motor 117 is fixedly connected to a first threaded rod 114. A slider 116 is sleeved on the rod body of the first threaded rod 114. An electric telescopic rod 118 is fixedly connected to the lower end of the slider 116. The output end of the electric telescopic rod 118 is fixedly connected to a cutting assembly 119. A cleaning mechanism 2 is arranged at one end of the rear blocking plate 104 close to the center of the cutting table 103;

[0039] The operator first turns on the control panel 112. The control panel 112 simultaneously drives the first servo motor 101, the second servo motor 111, and the third servo motor 117 to rotate. The second servo motor 111 will drive the conveyor belt 105 to move. The first servo motor 101 drives the second threaded rods 120 at both ends of the cutting table 103 to rotate. The second threaded rods 120 will drive the cross beam 109 to slide towards both sides. At the same time, the third servo motor 117 will drive the first threaded rod 114 to rotate. The first threaded rod 114 will drive the slider 116 to slide back and forth. The slider 116 will drive the electric telescopic rod 118 and the cutting assembly 119 to slide. At the same time, the electric telescopic rod 118 can move up and down. This series of movements can not only cut the glass in all directions but also cut the glass with different thicknesses. After cutting, the waste chips will fall onto the conveyor belt 105 through the waste chip groove 110 on the surface of the placement plate 113. The conveyor belt 105 will convey the waste chips to the chip collection box 107.

[0040] Refer to Figure 1 、 Figure 2 and Figure 3, the cleaning mechanism 2 includes a cleaning brush 201. One end of the outer wall of the rear end baffle 104 near the center of the cutting table 103 is provided with a third chute 204. On the other side of the inner wall of the third chute 204, a fourth servo motor 202 is fixedly connected. The output end of the fourth servo motor 202 is fixedly connected with a third threaded rod 203. The other side of the third threaded rod 203 away from the fourth servo motor 202 is rotatably connected to one side of the inner wall of the third chute 204. The rod body of the third threaded rod 203 is sleeved with the cleaning brush 201. When the cutting is completed, the cutting button is closed through the control panel 112, and then the button of the cleaning mechanism 2 is turned on. The control panel 112 will drive the fourth servo motor 202 to rotate. The fourth servo motor 202 will drive the third threaded rod 203 to rotate. The third threaded rod 203 will drive the cleaning brush 201 to clean the waste chips on the surface of the placing plate 113 forward. Finally, the waste chips are cleaned into the chip collection box 107. This can ensure the cleanliness of the entire cutting table surface 103. The lower part of one side of the cross beam 109 is slidably connected to the rod body of the sliding rod 123. The lower part of the other side of the cross beam 109 is slidably connected to the rod body of the second threaded rod 120. The sliding connection allows the cross beam 109 to move in a specific direction during the cutting process, which increases the flexibility and adaptability of the equipment. The other side of the second threaded rod 120 away from the first servo motor 101 is rotatably connected to the inner wall of the second chute 121. The rotational connection enables the cross beam 109 to move smoothly in the horizontal direction. This rotational connection helps the cross beam 109 to be accurately positioned and finely adjusted during the cutting process, ensuring the accuracy of the cutting path. At the front end of the inner wall of the front end third chute 204, a corrugated plate 205 is provided. By optimizing the air flow, the bubbles and pollutants generated during the cutting process can be reduced, thereby improving the cutting accuracy. At the same time, it can prevent the waste chips during the cutting process from entering the chute. A plurality of waste chip grooves 110 are opened at the upper end of the placing plate 113, which can quickly clean the waste chips, reduce the downtime during the cutting process, improve the production efficiency, help to keep the working environment clean, and reduce the risk of operators contacting the waste chips. The other side of the first threaded rod 114 away from the third servo motor 117 is rotatably connected to the front end of the inner wall of the first chute 115, enabling the first threaded rod 114 to move flexibly within a certain range, thereby adjusting the position and angle of the cutting assembly 119. A chip collection box 107 is provided on one side of the cutting table 103. Universal wheels 108 are fixedly connected to the four corners at the lower end of the chip collection box 107. A push handle 106 is fixedly connected to the upper part of the outer wall of one side of the chip collection box 107, which can quickly clean the waste chips, reduce the downtime during the cutting process, and improve the production efficiency.

[0041] Working principle: The operator first turns on the control panel 112. The control panel 112 drives the first servo motor 101, the second servo motor 111, and the third servo motor 117 to rotate simultaneously. The second servo motor 111 drives the conveyor belt 105 to move. The first servo motor 101 drives the second threaded rod 120 at both ends of the cutting table 103 to rotate. The second threaded rod 120 drives the cross beam 109 to slide to both sides. At the same time, the third servo motor 117 drives the first threaded rod 114 to rotate. The first threaded rod 114 drives the slider 116 to slide back and forth. The slider 116 drives the electric telescopic rod 118 and the cutting assembly 119 to slide. At the same time, the electric telescopic rod 118 can move up and down. This series of movements can not only cut the glass in all directions but also cut glass with different thicknesses. After cutting, the waste chips will fall onto the conveyor belt 105 through the waste chip groove 110 on the surface of the placement plate 113. The conveyor belt 105 will convey the waste chips to the waste chip collection box 107. When the cutting is completed, the cutting button is turned off through the control panel 112, and the button of the cleaning mechanism 2 is turned on. The control panel 112 drives the fourth servo motor 202 to rotate. The fourth servo motor 202 drives the third threaded rod 203 to rotate. The third threaded rod 203 drives the cleaning brush 201 to clean the waste chips on the surface of the placement plate 113 forward, and finally clean them into the waste chip collection box 107, which can ensure the cleanliness of the entire cutting table surface 103.

[0042] Finally, it should be noted that the above are only the preferred specific embodiments of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing specific embodiments, those skilled in the art can still modify the technical solutions described in the foregoing specific embodiments, or perform equivalent replacements on some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A cutting device for optical glass production, comprising a cutting mechanism (1) and a cleaning mechanism (2), characterized in that: The cutting mechanism (1) comprises two cutting tables (103) and a crossbeam (109); a conveyor belt (105) is provided in the middle of one end of the adjacent cutting tables (103); both sides of the middle of one end of the adjacent cutting tables (103) are rotatably connected to drive rollers (102); a control panel (112) is provided in the middle of the other side of the rear end of the outer wall of the cutting table (103); a second servo motor (111) is provided on the other side of the control panel (112); an output end of the second servo motor (111) passes through the rear end cutting table (103) and reaches the outside of the cutting table (103) and is fixedly connected to the rear end of the drive roller (102) on the other side; the upper ends of the cutting tables (103) on both sides are fixedly connected to fixed plates (122); a second slide groove (121) is provided on one side of the fixed plate (122) away from the center of the cutting table (103); and the other side of the inner wall of the second slide groove (121) at the rear end is fixedly connected to the first servo motor (101); The output end of the first servo motor (101) is fixedly connected to a second threaded rod (120), and both sides of the inner wall of the second slide groove (121) at the front end are fixedly connected to slide rods (123), and the upper ends of the cutting tables (103) on both sides are provided with placement plates (113), and the front end, rear end and the upper end of the other side of the placement plate (113) are fixedly connected to a blocking plate (104), and the lower parts of the front end and rear end of the cross beam (109) are slidably connected to the rod body of the second threaded rod (120), and the lower end of the cross beam (109) is provided with a first slide groove (115). The rear end of the inner wall of the first slide groove (115) is fixedly connected to a third servo motor (117), the output end of the third servo motor (117) is fixedly connected to a first threaded rod (114), the rod body of the first threaded rod (114) is sleeved with a slider (116), the lower end of the slider (116) is fixedly connected to an electric telescopic rod (118), the output end of the electric telescopic rod (118) is fixedly connected to a cutting assembly (119), and a cleaning mechanism (2) is provided at one end of the rear end of the blocking plate (104) close to the center of the cutting table (103).

2. The optical glass cutting device according to claim 1, characterized in that: The cleaning mechanism (2) comprises a cleaning brush (201); a third sliding groove (204) is provided on an outer wall of one end of the blocking plate (104) at the rear end close to the center of the cutting table (103); a fourth servo motor (202) is fixedly connected to the other side of the inner wall of the third sliding groove (204); a third threaded rod (203) is fixedly connected to the output end of the fourth servo motor (202); the other side of the third threaded rod (203) away from the fourth servo motor (202) is rotatably connected to one side of the inner wall of the third sliding groove (204); and the cleaning brush (201) is sleeved on the rod body of the third threaded rod (203).

3. The optical glass cutting device according to claim 1, characterized in that: The lower portion of one side of the cross beam (109) is slidably connected to the rod body of the sliding rod (123), and the lower portion of the other side of the cross beam (109) is slidably connected to the rod body of the second threaded rod (120).

4. The optical glass cutting device according to claim 1, characterized in that: The side of the second threaded rod (120) away from the first servo motor (101) is rotatably connected to the inner wall of the second sliding groove (121).

5. The optical glass cutting device according to claim 2, characterized in that: A corrugated plate (205) is provided at the front end of the inner wall of the third slide groove (204) at the front end.

6. The optical glass cutting device according to claim 1, characterized in that: A plurality of waste chip grooves (110) are provided at the upper end of the placement plate (113).

7. The optical glass cutting device according to claim 1, characterized in that: The other side of the first threaded rod (114) away from the third servo motor (117) is rotatably connected to the front end of the inner wall of the first sliding groove (115).

8. The optical glass cutting device according to claim 1, characterized in that: A chip collecting box (107) is provided on one side of the cutting table (103); four corners of the lower end of the chip collecting box (107) are fixedly connected to universal wheels (108); and a push handle (106) is fixedly connected to the upper portion of the outer wall of one side of the chip collecting box (107).