Laser glass cutting, drilling and splitting all-in-one machine structure

By designing an integrated laser glass cutting, drilling, and dicing machine, which combines cutting, drilling, and dicing functions, the problem of cumbersome equipment in existing technologies has been solved, and efficient multi-functional processing has been achieved.

CN224077255UActive Publication Date: 2026-04-03HANGZHOU GUOKETIANJI INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-17
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Currently, laser cutting, drilling, and dicing of glass require different laser processing equipment, which involves complicated procedures and transfer operations between different machines.

Method used

A laser glass cutting, drilling, and dicing integrated machine was designed, which integrates cutting, drilling, and dicing functions into one machine. Through the combined use of a horizontal slide, a rotary platform, and multiple lenses, multi-functional processing is achieved on the same device.

Benefits of technology

It achieves integrated processing of glass cutting, drilling and sharding, improving processing efficiency and flexibility, and simplifying the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a laser glass cutting, drilling and splitting all-in-one machine structure which comprises a base and a supporting structure, a horizontal sliding table is arranged on the base, a horizontal moving seat moving along the horizontal sliding table is arranged on the horizontal sliding table, and a rotating platform is rotationally connected to the horizontal moving seat through a rotating shaft. A cutting lens is arranged above the rotating platform through a supporting structure, a scanning lens is arranged on one side of the cutting lens side by side, a first reflecting mirror adjusting base is installed above the cutting lens, the first reflecting mirror adjusting base is connected with cutting drilling incident laser and vertically and downwards conveys the laser to the cutting lens, and the scanning lens is connected with a second reflecting mirror adjusting base. And the reflector adjusting seat II is connected with scanning incident laser and transmits the scanning incident laser to the scanning lens. According to the utility model, the functions of glass cutting, drilling and splitting are integrated together, and two functions required by processing can be realized by using the same equipment, so that the processing is more flexible and convenient, and the processing efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of laser processing technology, and in particular to a structure of an integrated laser glass cutting, drilling and splitting machine. Background Technology

[0002] Currently, laser cutting, drilling, and cleaving of glass are three different processing techniques. Laser cutting is a non-contact process where the laser is focused on the middle layer of the glass, creating longitudinal and transverse breakpoints through thermal melting, thereby altering the molecular bonds of the material and forming the cutting line. Laser drilling creates a closed ring-shaped cutting line in the glass. Laser cleaving involves heating the outer ring area of ​​the cut line after the desired closed shape has been achieved, or heating the outer and inner ring areas while cooling the inner ring area, thus allowing the crack to extend throughout the glass.

[0003] Currently, laser cutting, drilling, and dicing of glass require different laser processing equipment, which involves many steps and requires transfer between different machines, making it quite cumbersome. Utility Model Content

[0004] To solve the above-mentioned technical problems, this utility model designs an integrated structure for laser glass cutting, drilling, and splitting.

[0005] The present invention adopts the following technical solution:

[0006] A laser glass cutting, drilling, and sharding integrated machine structure includes a base and a support structure. The base is provided with a horizontal slide table, and a horizontal moving seat that moves along the horizontal slide table is provided on the horizontal slide table. A rotating platform is rotatably connected to the horizontal moving seat via a rotating shaft. A cutting lens is provided above the rotating platform via the support structure. A scanning lens is arranged side by side on one side of the cutting lens. A reflector adjustment seat one is installed above the cutting lens. The reflector adjustment seat one is connected to the cutting and drilling incident laser and vertically conveys it downward to the cutting lens. The scanning lens is connected to a reflector adjustment seat two, which is connected to the scanning incident laser and conveys it to the scanning lens.

[0007] Preferably, the reflector adjustment seat is equipped with a coaxial monitoring lens and camera that are coaxially mounted with a cutting lens.

[0008] Preferably, a lifting slide is provided between the first reflector adjustment seat and the cutting lens, and a lifting movable seat is installed on the lifting slide. The first reflector adjustment seat is fixedly installed on the lifting movable seat, and the distance between the first reflector adjustment seat and the cutting lens is adjusted by the lifting slide.

[0009] Preferably, the horizontal slide and the lifting slide are driven by linear motors to move the horizontal moving seat and the lifting moving seat, respectively.

[0010] Preferably, a rotary motor is installed on the horizontal moving base, and the output end of the rotary motor drives the rotating shaft to rotate through a bevel gear.

[0011] Preferably, a cutting optical path protective cover is installed outside the optical path between the reflector adjustment seat and the cutting lens.

[0012] Preferably, the incident laser for cutting the hole is output from a laser cutter, and the incident laser for scanning is output from a laser dicing device.

[0013] Preferably, the laser cutter is an infrared picosecond laser, and the laser dicing device is a carbon dioxide laser.

[0014] The beneficial effects of this utility model are as follows: In this utility model, the laser beam incident on the cutting and drilling process is guided into the cutting lens through a reflector, and the focus is adjusted by the lifting slide to act on the workpiece surface. Then, the size of the drilling hole is adjusted by the rotation of the rotating platform and the horizontal slide. After the drilling and cutting process is completed, the workpiece is transported to the underside of the scanning lens by the horizontal slide, and the workpiece is cleaved by the scanning incident laser. This utility model integrates the glass cutting and drilling and cleaving functions into one, and the two processing needs can be achieved using the same equipment, making the processing more flexible and convenient and improving the processing efficiency. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of this utility model;

[0016] In the diagram: 1. Horizontal slide, 2. Horizontal moving seat, 3. Rotary platform, 4. Rotary motor, 5. Cutting and drilling incident laser, 6. Reflector adjustment seat one, 7. Lifting slide, 8. Cutting optical path protective cover, 9. Coaxial monitoring lens, 10. Camera, 11. Scanning lens, 12. Cutting lens, 13. Scanning incident laser, 14. Reflector adjustment seat two. Detailed Implementation

[0017] The technical solution of this utility model will be further described in detail below through specific embodiments and with reference to the accompanying drawings:

[0018] Example: Figure 1As shown, a laser glass cutting, drilling, and sharding integrated machine structure includes a base and a support structure. A horizontal slide table 1 is provided on the base, and a horizontal moving seat 2 that moves along the horizontal slide table is provided on the horizontal slide table. A rotating platform 3 is rotatably connected to the horizontal moving seat via a rotating shaft. A cutting lens 12 is provided above the rotating platform via the support structure. A scanning lens 11 is arranged side by side on one side of the cutting lens. A reflector adjustment seat 1 6 is installed above the cutting lens. The reflector adjustment seat 1 is connected to the cutting and drilling incident laser 5 and vertically conveys it downward to the cutting lens. The scanning lens is connected to a reflector adjustment seat 2 14, and the reflector adjustment seat 2 is connected to the scanning incident laser 13 and conveyed to the scanning lens.

[0019] The reflector adjustment mount is equipped with a coaxial monitoring lens 9 and a camera 10, which are coaxially mounted with a cutting lens.

[0020] A lifting slide 7 is provided between the reflector adjustment seat 1 and the cutting lens. A lifting moving seat is installed on the lifting slide 1. The reflector adjustment seat 1 is fixedly installed on the lifting moving seat 7. The distance between the reflector adjustment seat 1 and the cutting lens is adjusted by the lifting slide 7.

[0021] The horizontal slide and the lifting slide are driven by linear motors, respectively, to move the horizontal moving base and the lifting moving base. A rotary motor 4 is mounted on the horizontal moving base, and the output of the rotary motor drives the rotating shaft to rotate through a bevel gear.

[0022] A cutting optical path protective cover 8 is installed outside the optical path between the reflector adjustment seat and the cutting lens. The cutting drilling incident laser is output from the laser cutter, and the scanning incident laser is output from the laser dicing device. The laser cutter is an infrared picosecond laser, and the laser dicing device is a carbon dioxide laser.

[0023] This invention integrates glass cutting and drilling with glass cleaving. The laser beam is guided through a mirror to the cutting lens, and the focal point is adjusted by a lifting slide to act on the workpiece surface. The size of the drill hole is then adjusted by a rotating platform and a horizontal slide. After the drilling and cutting process is completed, the workpiece is transported to the scanning lens via a horizontal slide, where the workpiece is cleaved by scanning with the incident laser. This invention integrates glass cutting and drilling with cleaving functions, allowing for the use of the same equipment to meet both processing needs, making processing more flexible and convenient, and improving processing efficiency.

[0024] The embodiments described above are merely preferred solutions of this utility model and are not intended to limit this utility model in any way. Other variations and modifications are possible without departing from the technical solutions described in the claims.

Claims

1. A laser glass cutting and drilling and splitting all-in-one machine structure, comprising a base and a support structure, characterized in that, The base is provided with a horizontal sliding table, a horizontal moving seat moving along the horizontal sliding table is arranged on the horizontal sliding table, a rotating platform is rotationally connected to the horizontal moving seat through a rotating shaft, a cutting lens is arranged above the rotating platform through a supporting structure, a scanning lens is arranged side by side on one side of the cutting lens, a reflecting mirror adjusting seat one is installed above the cutting lens, the cutting drilling incident laser is input into the reflecting mirror adjusting seat one and is vertically and downwardly conveyed to the cutting lens, the scanning lens is connected to a reflecting mirror adjusting seat two, and the scanning incident laser is input into the reflecting mirror adjusting seat two and is conveyed to the scanning lens.

2. The laser glass cutting and drilling machine according to claim 1, wherein, A coaxial monitoring lens coaxial with the cutting lens is arranged on the reflecting mirror adjusting seat one.

3. The laser glass cutting and drilling machine of claim 1, wherein, A lifting sliding table is arranged between the reflecting mirror adjusting seat one and the cutting lens, a lifting moving seat is installed on the lifting sliding table, and the reflecting mirror adjusting seat one is fixedly installed on the lifting moving seat.

4. The laser glass cutting and drilling machine of claim 3, wherein, The horizontal sliding table and the lifting sliding table are respectively driven by linear motors to drive the horizontal moving seat and the lifting moving seat.

5. The laser glass cutting and drilling machine of claim 1, wherein, A rotating motor is installed on the horizontal moving seat, and the output end of the rotating motor drives the rotating shaft to rotate through a bevel gear.

6. The laser glass cutting and drilling machine of claim 1, wherein, A cutting light path protection cover is installed outside the light path between the reflecting mirror adjusting seat one and the cutting lens.

7. The laser glass cutting and drilling machine of claim 1, wherein, The cutting drilling incident laser is output by a laser cutter, and the scanning incident laser is output by a laser flaker.

8. The laser glass cutting and drilling machine of claim 7, wherein, The laser cutter is an infrared picosecond laser, and the laser flaker is a carbon dioxide laser.