Cutting device for photoelectric glass production

By introducing a moving arm, a rotating motor and a worm gear mechanism into the cutting device, combining a servo motor and a screw mechanism, the convenience of chamfering and diversified cutting of photoelectric glass is solved, and efficient cutting and chamfering processing of photoelectric glass is achieved.

CN223056961UActive Publication Date: 2025-07-04GUANGZHOU LANTIAN ELECTRONIC TECHNOLOGY CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202422204816.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-07-04
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

The existing cutting device is not convenient to easily adjust the cutting head to chamfer the photoelectric glass and to easily rotate and adjust the photoelectric glass, which affects the convenience of chamfer and the flexibility of cutting processing.

Method used

It adopts a combination of moving arms, rotating motor, worm gear mechanism and servo motor, and connects adsorption clamps and water jet pipes through flexible hoses to achieve convenient adjustment of laser cutting head and rotation of photoelectric glass, and performs multi-angle cutting and chamfering operations with the transverse and longitudinal screw mechanisms.

Benefits of technology

It realizes convenient chamfering operations and diversified cutting, improves the convenience of chamfering and the flexibility of cutting and processing, and prevents damage to photoelectric glass and smoke from harming people.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223056961U_ABST
    Figure CN223056961U_ABST
Patent Text Reader

Abstract

The utility model discloses a cutting device for photoelectric glass production, which comprises a moving arm and a rotating motor, the rotating motor is mounted on the inner wall of the moving arm, a first worm is mounted at the output end of the rotating motor, a rotating shaft is movably mounted in the moving arm on one side of the first worm, and a second worm is mounted at the other side of the rotating shaft. And the surface of the rotating shaft is sleeved with a first worm wheel, the first worm wheel is meshed with the first worm, the rotating shaft extends to the outer portion of the moving arm, a connecting base is installed at one end of the rotating shaft, a laser cutting head is installed at the bottom end of the connecting base, and a water spraying pipe is installed on the side wall of the connecting base. According to the photoelectric glass chamfering device, the cutting head can be conveniently adjusted to conduct chamfering operation on photoelectric glass, the photoelectric glass can be conveniently rotated and adjusted to conduct chamfering machining, diversified cutting operation on the photoelectric glass is facilitated, and the chamfering convenience and the cutting machining flexibility are improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of cutting devices, in particular to a cutting device for producing photoelectric glass. Background Art

[0002] Photoelectric glass is an organic combination of light energy, electrical energy and glass. Photoelectric glass is generally made of two pieces of glass using a laser etching process. A translucent mesh circuit is etched on the surface of the glass and laminated with an LED lamp chip group. It is also called LED photoelectric glass, LED transparent display, etc. Its main function is to project videos on the glass curtain wall and use a control system to achieve the effect of video demonstration. It is usually used in shopping malls, windows, elevators, subway stations, guardrails, etc. After production, photoelectric glass needs to be cut into different shapes according to different usage scenarios. In order to better cut photoelectric glass, a cutting device for photoelectric glass production is proposed.

[0003] For example, a glass cutting device for glass production disclosed in the authorization announcement number CN219363509U includes a cutting platform, a heat dissipation window, an operating panel, an adjustable cutting device, and a screw-type glass limiting device. The cutting platform is a two-stage four-sided rectangular structure and has a symmetrically distributed heat dissipation window at the bottom of the right end. An operating panel fixed with bolts is installed in the middle of the front end of the cutting platform and is connected by wires. An adjustable cutting device with an embedded structure is installed on the right side of the top of the cutting platform. A screw-type glass limiting device fixed with bolts is installed on the left end of the adjustable cutting device and is symmetrically distributed.

[0004] Although it can realize the position adjustment in the horizontal direction of front and back and left and right directions to achieve laser cutting without dead angles through rational design, it can also cut not only square but also arc or round glass of different sizes with the adjustable laser to further improve the use range of the cutting device;

[0005] However, the problem that the existing cutting device is not conducive to conveniently adjusting the cutting head to chamfer the photovoltaic glass and conveniently rotating and adjusting the photovoltaic glass to facilitate chamfering processing during use is not solved, which is not conducive to performing diversified cutting operations on the photovoltaic glass, affecting the convenience of chamfering and the flexibility of cutting processing. Utility Model Content

[0006] The purpose of the utility model is to provide a cutting device for the production of photovoltaic glass, so as to solve the problem that the cutting device proposed in the above-mentioned background technology is not convenient for conveniently adjusting the cutting head to chamfer the photovoltaic glass and conveniently rotating and adjusting the photovoltaic glass to facilitate the chamfering process, which is not conducive to performing diversified cutting operations on the photovoltaic glass, affecting the convenience of chamfering and the flexibility of cutting processing.

[0007] To achieve the above object, the present utility model provides the following technical solution: A cutting device for optoelectronic glass production, comprising a moving arm and a rotating motor. The rotating motor is installed on the inner wall of the moving arm. The output end of the rotating motor is installed with a first worm. Inside the moving arm on one side of the first worm, a rotating shaft is movably installed. A first worm gear is sleeved on the surface of the rotating shaft, and the first worm gear meshes with the first worm. The rotating shaft extends to the outside of the moving arm. One end of the rotating shaft is installed with a connecting seat. The bottom end of the connecting seat is installed with a laser cutting head. A water spraying pipe is installed on the side wall of the connecting seat. At the bottom end of the connecting seat on one side of the laser cutting head, an L-shaped frame is installed. A dust suction port is installed inside the L-shaped frame. One end of the dust suction port is installed with a flexible hose. A transverse lead screw mechanism is arranged outside the moving arm.

[0008] Preferably, the output end of the transverse lead screw mechanism is installed with a longitudinal lead screw mechanism, and the output end of the longitudinal lead screw mechanism is installed with a rotating seat.

[0009] Preferably, a motor box is installed on the side wall of the rotating seat, and a servo motor is installed inside the motor box.

[0010] Preferably, the output end of the servo motor is installed with a second worm. Inside the rotating seat on one side of the second worm, a movable shaft is installed, and the movable shaft is movably connected to the rotating seat.

[0011] Preferably, the movable shaft extends to the outside of the rotating seat. One end of the movable shaft is installed with a rotating disk. A support plate is installed on the side wall of the rotating disk, and a suction fixture is installed at the top end of the support plate.

[0012] Preferably, a second worm gear is sleeved on the surface of the movable shaft, and the second worm gear meshes with the second worm. An integrated frame is installed at the top end of the transverse lead screw mechanism on one side of the rotating seat.

[0013] Preferably, a moving motor is installed at the top end of the integrated frame. Inside the integrated frame, a threaded rod is movably installed, and the output end of the moving motor is connected to the threaded rod.

[0014] Preferably, a threaded sleeve is sleeved on the surface of the threaded rod, and the threaded sleeve is threadedly connected to the threaded rod. The threaded sleeve is slidably connected to the integrated frame, and the threaded sleeve is connected to the moving arm.

[0015] Compared with the prior art, the beneficial effects of the present utility model are: This cutting device not only realizes the convenient adjustment of the cutting head to perform chamfering operations on optoelectronic glass and the convenient rotational adjustment of optoelectronic glass to facilitate chamfering processing, facilitating diverse cutting operations on optoelectronic glass, but also improves the convenience of chamfering and the flexibility of cutting processing.

[0016] (1) Connect it to an external suction pump through a flexible hose, connect the adsorption fixture to a suction pump through an external pipeline, connect the water spray pipe to a coolant water pump, place the optoelectronic glass to be cut on the adsorption fixture, and use the suction pump to create a negative pressure environment inside the adsorption fixture through the suction holes on the surface of the adsorption fixture, so as to adsorb the optoelectronic glass on the surface of the adsorption fixture. Drive the threaded rod to rotate by the moving motor, drive the threaded sleeve to move downward by the threaded rod, drive the moving arm, connecting seat, and laser cutting head to move downward by the threaded sleeve, so that the laser cutting head moves to near the upper part of the optoelectronic glass. Then turn on the laser cutting head, and at the same time turn on the transverse lead screw mechanism and the longitudinal lead screw mechanism. Drive the adsorption fixture and the optoelectronic glass to move horizontally and vertically by the transverse lead screw mechanism and the longitudinal lead screw mechanism. Under the mutual cooperation of the transverse lead screw mechanism and the longitudinal lead screw mechanism, the laser cutting head cuts the optoelectronic glass. During the cutting process, the coolant water pump sprays coolant to the cutting position through the water spray pipe to prevent the optoelectronic glass from being damaged. The external suction pump works, and sucks the dust generated by cutting through the flexible hose through the dust suction port to prevent the excessive dust from damaging the users and the cutting device. Turn on the rotation motor, drive the first worm to rotate by the rotation motor, drive the first worm gear to rotate by the first worm, and drive the connecting seat and the laser cutting head to rotate by the first worm gear through the rotating shaft to adjust the cutting angle of the laser cutting head, so as to complete the chamfering operation on the cutting surface, realizing the convenient adjustment of the cutting head to perform the chamfering operation on the optoelectronic glass and improving the convenience of chamfering;

[0017] (2) Drive the second worm to rotate by the servo motor, drive the second worm gear to rotate by the second worm, drive the movable shaft to rotate by the second worm gear, drive the rotating disk to rotate by the movable shaft, drive the support plate, the adsorption fixture, and the optoelectronic glass to rotate by the rotating disk, so as to rotate and adjust the angle of the optoelectronic glass, thus facilitating the chamfering processing of the optoelectronic glass. After the processing is completed, just remove the optoelectronic glass from the adsorption fixture, realizing the convenient rotation and adjustment of the optoelectronic glass to facilitate the chamfering processing, facilitating the diversified cutting operations on the optoelectronic glass, and improving the flexibility of cutting processing. Description of the Drawings

[0018] Figure 1 It is a three-dimensional structure schematic diagram of the present utility model;

[0019] Figure 2 It is a three-dimensional structure schematic diagram of the moving arm of the present utility model;

[0020] Figure 3 It is a side view sectional structure schematic diagram of the integrated frame of the present utility model;

[0021] Figure 4 It is a front view sectional structure schematic diagram of the moving arm of the present utility model;

[0022] Figure 5 This is a schematic top-sectional view of the rotating base of the present utility model.

[0023] In the figure: 1, horizontal lead screw mechanism; 2, vertical lead screw mechanism; 3, motor box; 4, adsorption fixture; 5, rotating disk; 6, support plate; 7, rotating base; 8, laser cutting head; 9, connecting seat; 10, moving arm; 11, integrated frame; 12, moving motor; 13, threaded rod; 14, threaded sleeve; 15, rotating shaft; 16, rotating motor; 17, first worm gear; 18, first worm; 19, L-shaped frame; 20, dust suction port; 21, water spray pipe; 22, movable shaft; 23, second worm; 24, second worm gear; 25, servo motor; 26, flexible hose. Specific embodiments

[0024] To further elaborate on the technical means and effects adopted by the present utility model to achieve the predetermined utility model purpose, the following will, in conjunction with the accompanying drawings and preferred embodiments, describe in detail the specific embodiments, structures, features and their effects of the present utility model as follows.

[0025] Please refer to Figures 1-5 , an embodiment provided by the present utility model: a cutting device for optoelectronic glass production, including a moving arm 10 and a rotating motor 16. A rotating motor 16 is installed on the inner wall of the moving arm 10, and the rotating motor 16 plays a role in power driving. A first worm 18 is installed at the output end of the rotating motor 16. A rotating shaft 15 is movably installed inside the moving arm 10 on one side of the first worm 18. A first worm gear 17 is sleeved on the surface of the rotating shaft 15, and the first worm gear 17 meshes with the first worm 18. The rotating shaft 15 extends to the outside of the moving arm 10. A connecting seat 9 is installed at one end of the rotating shaft 15. A laser cutting head 8 is installed at the bottom end of the connecting seat 9. A water spray pipe 21 is installed on the side wall of the connecting seat 9. An L-shaped frame 19 is installed at the bottom end of the connecting seat 9 on one side of the laser cutting head 8. A dust suction port 20 is installed inside the L-shaped frame 19. One end of the dust suction port 20 is installed with a flexible hose 26. A horizontal lead screw mechanism 1 is arranged outside the moving arm 10, and the horizontal lead screw mechanism 1 plays a role in power driving;

[0026] First, connect the device to an external controller and external circuit. Connect the flexible hose 26 to an external suction pump, connect the adsorption clamp 4 to an air suction pump through an external pipeline, connect the water spray pipe 21 to a coolant water pump, place the optoelectronic glass to be cut on the adsorption clamp 4, turn on the air suction pump, and use the air suction pump to pass through the suction holes on the surface of the adsorption clamp 4 to create a negative pressure environment inside the adsorption clamp 4, thereby adsorbing the optoelectronic glass on the surface of the adsorption clamp 4. Then, turn on the moving motor 12. The moving motor 12 drives the threaded rod 13 to rotate. Under the threaded connection between the threaded rod 13 and the threaded sleeve 14, and under the sliding fit between the threaded sleeve 14 and the integrated frame 11, the threaded rod 13 drives the threaded sleeve 14 to move downward. The threaded sleeve 14 drives the moving arm 10, the connecting seat 9, and the laser cutting head 8 to move downward, so that the laser cutting head 8 moves to near the upper part of the optoelectronic glass. Then, turn on the laser cutting head 8. At the same time, turn on the transverse lead screw mechanism 1 and the longitudinal lead screw mechanism 2. The transverse lead screw mechanism 1 and the longitudinal lead screw mechanism 2 drive the adsorption clamp 4 and the optoelectronic glass to move horizontally and vertically. Under the mutual cooperation of the transverse lead screw mechanism 1 and the longitudinal lead screw mechanism 2, the laser cutting head 8 completes the cutting of the optoelectronic glass. During the cutting process, the coolant water pump sprays coolant to the cutting position through the water spray pipe 21 to prevent the optoelectronic glass from being damaged. The external suction pump works, and sucks the dust generated by cutting through the flexible hose 26 through the dust suction port 20 to prevent excessive dust from damaging the users and the cutting device. When chamfering the cutting surface is required, turn on the rotary motor 16. The rotary motor 16 drives the first worm 18 to rotate. Under the mutual meshing of the first worm 18 and the first worm gear 17, the first worm 18 drives the first worm gear 17 to rotate. The first worm gear 17 drives the connecting seat 9 and the laser cutting head 8 to rotate through the rotating shaft 15 to adjust the cutting angle of the laser cutting head 8, thereby completing the chamfering operation on the cutting surface, realizing the convenient adjustment of the cutting head to perform the chamfering operation on the optoelectronic glass, and improving the convenience of chamfering;

[0027] The output end of the transverse lead screw mechanism 1 is equipped with a longitudinal lead screw mechanism 2. The longitudinal lead screw mechanism 2 plays a role of power drive. The output end of the longitudinal lead screw mechanism 2 is equipped with a rotating seat 7;

[0028] A motor box 3 is installed on the side wall of the rotating seat 7. A servo motor 25 is installed inside the motor box 3. The servo motor 25 plays a role of power drive. The output end of the servo motor 25 is equipped with a second worm 23. Inside the rotating seat 7 on one side of the second worm 23, a movable shaft 22 is installed, and the movable shaft 22 is movably connected to the rotating seat 7;

[0029] The movable shaft 22 extends to the outside of the rotating base 7. A rotating disk 5 is installed at one end of the movable shaft 22. A support plate 6 is installed on the side wall of the rotating disk 5. An adsorption clamp 4 is installed at the top of the support plate 6. A second worm gear 24 is sleeved on the surface of the movable shaft 22, and the second worm gear 24 meshes with the second worm 23. The top of a transverse lead screw mechanism 1 on one side of the rotating base 7 is installed with an integrated frame 11;

[0030] A moving motor 12 is installed at the top of the integrated frame 11. The moving motor 12 plays a role in power driving. A threaded rod 13 is movably installed inside the integrated frame 11, and the output end of the moving motor 12 is connected to the threaded rod 13;

[0031] A threaded sleeve 14 is sleeved on the surface of the threaded rod 13. The threaded sleeve 14 is threadedly connected to the threaded rod 13, and the threaded sleeve 14 is slidably connected to the integrated frame 11. The threaded sleeve 14 is connected to the moving arm 10;

[0032] When the rotation angle of the laser cutting head 8 is limited, the servo motor 25 is turned on. The servo motor 25 drives the second worm 23 to rotate. Under the mutual meshing of the second worm 23 and the second worm gear 24, the second worm 23 drives the second worm gear 24 to rotate. The second worm gear 24 drives the movable shaft 22 to rotate. The movable shaft 22 drives the rotating disk 5 to rotate. The rotating disk 5 drives the support plate 6, the adsorption clamp 4 and the optoelectronic glass to rotate, so as to rotate and adjust the angle of the optoelectronic glass, thereby facilitating the chamfering process of the optoelectronic glass. After the processing is completed, the optoelectronic glass can be removed from the adsorption clamp 4, realizing convenient rotation and adjustment of the optoelectronic glass to facilitate chamfering, facilitating diversified cutting operations on the optoelectronic glass, and improving the flexibility of cutting processing.

[0033] Working principle: First, connect the device to an external controller and external circuit. Connect the flexible hose 26 to an external suction pump, connect the adsorption fixture 4 to an air suction pump through an external pipeline, connect the water spray pipe 21 to a coolant water pump, place the optoelectronic glass to be cut on the adsorption fixture 4, turn on the air suction pump, and make the interior of the adsorption fixture 4 form a negative pressure environment through the air suction holes on the surface of the adsorption fixture 4 by the air suction pump, so as to adsorb the optoelectronic glass on the surface of the adsorption fixture 4. Drive the threaded rod 13 to rotate by the moving motor 12, drive the threaded sleeve 14 to move downward by the threaded rod 13, drive the moving arm 10, the connecting seat 9 and the laser cutting head 8 to move downward by the threaded sleeve 14, so that the laser cutting head 8 moves to near the upper part of the optoelectronic glass. Drive the adsorption fixture 4 and the optoelectronic glass to move horizontally and vertically by the transverse lead screw mechanism 1 and the longitudinal lead screw mechanism 2. Under the mutual cooperation of the transverse lead screw mechanism 1 and the longitudinal lead screw mechanism 2, the optoelectronic glass is cut by the laser cutting head 8. During the cutting process, the coolant water pump sprays coolant to the cutting position through the water spray pipe 21 to prevent the optoelectronic glass from being damaged. The external suction pump works, and sucks the dust generated by cutting through the flexible hose 26 through the dust suction port 20 to prevent the excessive dust from damaging the users and the cutting device. When chamfering the cutting surface is required, drive the first worm 18 to rotate by the rotating motor 16, drive the first worm gear 17 to rotate by the first worm 18, and drive the connecting seat 9 and the laser cutting head 8 to rotate by the first worm gear 17 through the rotating shaft 15 to adjust the cutting angle of the laser cutting head 8, so as to complete the chamfering operation of the cutting surface. Drive the second worm 23 to rotate by the servo motor 25, drive the second worm gear 24 to rotate by the second worm 23, drive the movable shaft 22 to rotate by the second worm gear 24, drive the rotating disk 5 to rotate by the movable shaft 22, drive the support plate 6, the adsorption fixture 4 and the optoelectronic glass to rotate by the rotating disk 5 to rotate and adjust the angle of the optoelectronic glass, so as to facilitate the chamfering processing of the optoelectronic glass. After the processing is completed, just remove the optoelectronic glass from the adsorption fixture 4 to complete the use of the cutting device for optoelectronic glass production.

[0034] The above is only a preferred embodiment of the present invention, and does not impose any form of limitation on the present invention. Although the present invention has been disclosed above with a preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to it as equivalent embodiments with equivalent changes within the scope of the technical solution of the present invention. However, as long as it does not depart from the content of the technical solution of the present invention, any brief modifications, equivalent changes and modifications made to the above embodiments according to the technical essence of the present invention still fall within the scope of the technical solution of the present invention.

Claims

1. A cutting device for optoelectronic glass production, comprising a moving arm (10) and a rotating motor (16), characterized in that: A rotary motor (16) is installed on the inner wall of the moving arm (10). A first worm (18) is installed at the output end of the rotary motor (16). A rotary shaft (15) is movably installed inside the moving arm (10) on one side of the first worm (18). A first worm gear (17) is sleeved on the surface of the rotary shaft (15), and the first worm gear (17) meshes with the first worm (18). The rotary shaft (15) extends to the outside of the moving arm (10). A connecting seat (9) is installed at one end of the rotary shaft (15). A laser cutting head (8) is installed at the bottom end of the connecting seat (9). A water spraying pipe (21) is installed on the side wall of the connecting seat (9). An L-shaped frame (19) is installed at the bottom end of the connecting seat (9) on one side of the laser cutting head (8). A dust suction port (20) is installed inside the L-shaped frame (19). One end of the dust suction port (20) is installed with a flexible hose (26). A transverse lead screw mechanism (1) is arranged outside the moving arm (10).

2. The cutting device for the production of optoelectronic glass according to claim 1, wherein: The output end of the transverse lead screw mechanism (1) is installed with a longitudinal lead screw mechanism (2). The output end of the longitudinal lead screw mechanism (2) is installed with a rotating seat (7).

3. A cutting device for the production of optoelectronic glass according to claim 2, characterized in that: A motor box (3) is installed on the side wall of the rotating seat (7). A servo motor (25) is installed inside the motor box (3).

4. A cutting device for the production of optoelectronic glass according to claim 3, characterized in that: The output end of the servo motor (25) is installed with a second worm (23). A movable shaft (22) is installed inside the rotating seat (7) on one side of the second worm (23), and the movable shaft (22) is movably connected to the rotating seat (7).

5. A cutting device for the production of optoelectronic glass according to claim 4, characterized in that: The movable shaft (22) extends to the outside of the rotating seat (7). A rotating disk (5) is installed at one end of the movable shaft (22). A support plate (6) is installed on the side wall of the rotating disk (5). An adsorption fixture (4) is installed at the top end of the support plate (6).

6. The cutting device for producing optoelectronic glass according to claim 4, characterized in that: A second worm gear (24) is sleeved on the surface of the movable shaft (22), and the second worm gear (24) meshes with the second worm (23). An integrated frame (11) is installed at the top of the transverse lead screw mechanism (1) on one side of the rotating seat (7).

7. A cutting device for the production of optoelectronic glass according to claim 6, characterized in that: A moving motor (12) is installed at the top of the integrated frame (11). A threaded rod (13) is movably installed inside the integrated frame (11), and the output end of the moving motor (12) is connected to the threaded rod (13).

8. A cutting device for the production of optoelectronic glass according to claim 7, characterized in that: A threaded sleeve (14) is sleeved on the surface of the threaded rod (13), and the threaded sleeve (14) is threadedly connected to the threaded rod (13). The threaded sleeve (14) is slidably connected to the integrated frame (11). The threaded sleeve (14) is connected to the moving arm (10).

Citation Information

Patent Citations

  • Glass cutting device for glass production

    CN219363509U