Glass laser film removing machine
By using limiting and guiding components to limit and guide the glass, the problem of glass position deviation in the glass laser coating removal machine is solved, ensuring the coating removal effect and equipment performance, and realizing a highly efficient and stable laser coating removal process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGSHAN FENGDENG GLASS TECH CO LTD
- Filing Date
- 2025-07-21
- Publication Date
- 2026-07-31
AI Technical Summary
Existing glass laser coating removal machines cannot effectively limit the glass position, causing the glass to shift and affecting the coating removal effect and equipment performance.
The system employs a limiting component and a guiding component. The limiting component uses a driving component, a threaded component, a moving component, and a rubber component to limit the glass movement, while the guiding component uses a telescopic component and a guiding component to guide the glass movement, ensuring that the glass moves along a preset path.
It effectively prevents the glass from shifting position during laser coating removal, ensuring the coating removal effect and stable operation of the equipment, and improving work efficiency.
Smart Images

Figure CN224574926U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of film removal machine technology, and in particular relates to a glass laser film removal machine. Background Technology
[0002] With the development of science and technology, laser technology is being used more and more widely in industrial manufacturing, especially in precision manufacturing, particularly in the glass industry. Traditional film removal methods often suffer from problems such as low efficiency, high energy consumption, and easy damage to materials, which limit the further promotion and use of film removal technology. In order to solve these problems, laser technology has been widely used in the glass film removal process. A glass laser film removal machine is now used to meet the above requirements.
[0003] However, existing glass laser coating removal machines have certain defects. They cannot effectively limit the glass position, causing the glass to shift during the laser coating removal process. This not only affects the coating removal effect but also the working performance of the equipment. Utility Model Content
[0004] This invention addresses the shortcomings of existing glass laser coating removal machines, such as the inability to effectively limit the glass's position, leading to glass displacement during laser coating removal. This not only affects the coating removal effect but also the machine's performance. The following technical solution is proposed:
[0005] A glass laser coating removal machine, comprising:
[0006] A frame for supporting a glass laser coating removal machine;
[0007] A film removal head, movably mounted on the frame, is used for laser film removal from the glass;
[0008] A limiting assembly includes a connector, a drive component, a threaded component, a movable component, a movable arm, a lifting plate, a limiting component, and a rubber component. The connector is disposed on the frame, the drive component is connected to the connector, and the output end of the drive component is drivenly connected to the threaded component. The movable component is movably disposed on the threaded component, the movable arm is movably disposed on the movable component, the movable arm is movably disposed on the lifting plate, the lifting plate is movably disposed on the connector, the limiting component is connected to the lifting plate, and the rubber component is bonded to the limiting component. The drive component drives the lifting plate to move vertically through the threaded component.
[0009] Preferably, the system further includes a guide assembly, which includes a telescopic member, a guide member, a slider, and a baffle. The telescopic member is disposed on the frame, and its movable end is drivenly connected to the guide member. The slider is connected to the guide member and is slidably disposed on the frame. The baffle is connected to the guide member and is movably disposed on the frame. The telescopic member drives the baffle to move horizontally through the guide member.
[0010] Preferably, two movable parts are provided on the threaded part, and the two movable parts are located at both ends of the threaded part.
[0011] Preferably, the limiting member is located above the lifting plate, and the rubber part is located outside the limiting member.
[0012] Preferably, the frame has a groove inside, and the slider is slidably disposed in the groove.
[0013] Preferably, the guide is located on the outer side of the baffle, and the guide is provided in a one-to-one correspondence with the baffle.
[0014] The beneficial effects of this utility model are as follows:
[0015] (1) It can effectively limit the glass and prevent the position from shifting when the equipment performs laser film removal on the glass, thus avoiding affecting the film removal effect of the glass and ensuring the working performance of the equipment.
[0016] (2) It can effectively guide the glass to move along a preset path, so that the glass moves to the position below the film removal head, thereby ensuring that the equipment maintains a stable working state and thus ensuring the high efficiency of the equipment. Attached Figure Description
[0017] Figure 1 The diagram shown is a structural schematic of a glass laser film removal machine;
[0018] Figure 2 The diagram shown is a schematic of the installation structure of the connector;
[0019] Figure 3 The diagram shows the installation structure of the limiting component;
[0020] Figure 4 The diagram shown is a schematic of the installation structure of the guide component;
[0021] In the diagram: 1. Frame; 2. Film removal head; 3. Connector; 4. Drive component; 5. Threaded component; 6. Movable component; 7. Movable arm; 8. Lifting plate; 9. Limiting component; 10. Rubber component; 11. Telescopic component; 12. Guide component; 13. Slider; 14. Baffle; 15. Slide. Detailed Implementation
[0022] To make the objectives, technical solutions, and advantages of the present invention clearer, the technical solutions of the present invention will be clearly and completely described below in conjunction with the embodiments.
[0023] Example 1
[0024] This utility model provides a glass laser coating removal machine, such as Figures 1 to 4 As shown, the system includes: a frame 1, a decoction head 2, and a limiting assembly. The frame 1 supports the glass laser decoction machine and has a conveyor belt inside. Both ends of the frame 1 have electric slide rail structures at their tops. The sliders on the electric slide rail structures are fixedly connected to the decoction head 2, driving it to move horizontally. The decoction head 2 is movably mounted on the frame 1. The decoction head 2 consists of laser equipment, control equipment, a worktable, auxiliary equipment, safety protection equipment, and laser cooling equipment, and is used for laser decoction removal of glass. The limiting assembly includes a connector 3, a drive component 4, a threaded component 5, a movable component 6, a movable arm 7, a lifting plate 8, a limiting component 9, and a rubber component 10. The connector 3 is mounted on the frame 1 and can be a connecting frame. The drive component 4 is connected to the connector 3 and can be a motor. The output end of the drive component 4 is connected to the threaded component 3. The threaded part 5 is driven and connected. The threaded part 5 can be a bidirectional threaded rod. The movable part 6 is movably set on the threaded part 5. The movable arm 7 is movably set on the movable part 6. The movable part 6 can be a movable block. There are two movable parts 6 on the threaded part 5. The movable arm 7 is movably set on the lifting plate 8. Both ends of the lifting plate 8 are connected to protrusions. The protrusions are movably connected to the inside of the connecting part 3. The lifting plate 8 is movably set on the connecting part 3. The limiting part 9 is connected to the lifting plate 8. The rubber part 10 is bonded to the limiting part 9. The limiting part 9 can be a limiting plate. The driving part 4 drives the lifting plate 8 to move in the vertical direction through the threaded part 5. There are two movable parts 6 on the threaded part 5. The two movable parts 6 are located at both ends of the threaded part 5. The limiting part 9 is located above the lifting plate 8. The rubber part 10 can be a rubber sheet. The rubber part 10 is located outside the limiting part 9.
[0025] By using a limiting component, the glass can be effectively limited to prevent the position from shifting during laser film removal, thus avoiding affecting the film removal effect and ensuring the working performance of the equipment.
[0026] In use, the glass moves under the drive of the conveyor belt. Then, the drive unit 4 is activated, and the output end of the drive unit 4 drives the threaded part 5 to rotate. Since the threads at both ends of the threaded part 5 turn in opposite directions, the two movable parts 6 move synchronously towards each other on the threaded part 5, causing the two movable parts 6 to move closer to each other. Since each movable part 6 is movably connected to a set of movable arms 7 through a pin, as the movable part 6 moves, the movable arms 7 push the lifting plate 8 upward. The movement of the lifting plate 8 causes the limiting part 9 to move synchronously. The movement of the limiting part 9 causes the rubber part 10 to move synchronously. As the limiting part 9 moves, the horizontal height of the top of the limiting part 9 will be higher than the horizontal height of the conveyor belt. As the glass moves, the outer surface of the glass will contact and abut against the rubber part 10, thereby limiting the glass.
[0027] Specifically, two film removal heads 2 are movably connected to the top of the frame 1. Connectors 3 are movably connected to both sides of one end of the frame 1. A drive component 4 is fixedly installed on the connector 3. A threaded component 5 is fixedly connected to the output end of the drive component 4. Movable components 6 are threadedly connected to both ends of the threaded component 5. A set of movable arms 7 (two as a set) is movably connected to the outer surface of the movable component 6 through a pin. A lifting plate 8 is movably connected to one end of the movable arm 7 through a pin. Both ends of the lifting plate 8 are movably connected to the inside of the connector 3. A limit component 9 is fixedly connected to the top of the lifting plate 8. A rubber component 10 is glued to one end of the limit component 9.
[0028] like Figure 1 and Figure 4 As shown, it also includes a guide assembly, which includes a telescopic member 11, a guide member 12, a slider 13, and a baffle 14. The telescopic member 11 is disposed on the frame 1, and the movable end of the telescopic member 11 is drivenly connected to the guide member 12. The telescopic member 11 can be an electric telescopic rod, which is formed by the movable insertion and connection of two rod-shaped objects. The inside is filled with hydraulic oil, and the extension and retraction of the two rod-shaped objects are realized by the injection and extraction of hydraulic oil. This is prior art and will not be described in detail here. The slider 13 is connected to the guide member 12, and the guide member 12 can be a guide plate. The guide 12 is kept in an inclined state, one end of the guide 12 is offset towards the telescopic member 11, the slider 13 is slidably set on the frame 1, the baffle 14 is kept in a horizontal state, the guide 12 is located outside the baffle 14, the baffle 14 is connected to the guide 12, the baffle 14 is movably set on the frame 1, the telescopic member 11 drives the baffle 14 to move in the horizontal direction through the guide 12, the frame 1 is provided with a slide groove 15, the slider 13 is slidably set in the slide groove 15, the guide 12 is located outside the baffle 14, and the guide 12 and the baffle 14 are set in a one-to-one correspondence.
[0029] The guide component effectively guides the glass to move along a preset path, moving the glass to a position below the film removal head 2, thereby ensuring that the equipment maintains a stable working state and thus ensuring the high efficiency of the equipment.
[0030] In use, when laser coating removal is required on the glass, the distance between the two baffles 14 is adjusted according to the width of the glass. The two telescopic components 11 are then activated, and the movable ends of the telescopic components 11 extend or retract. The movable ends of the telescopic components 11 drive the guide component 12 to move horizontally. The movement of the guide component 12 causes the slider 13 to slide synchronously inside the slide groove 15. The movement of the guide component 12 also causes the baffles 14 to move synchronously. As the baffles 14 move, when the distance between the two baffles 14 is the same as the width of the glass, the position adjustment of the baffles 14 is completed. Since the guide component 12 remains in an inclined state, it can guide the glass during transportation. As the glass moves, it will contact the baffles 14, which will limit the glass. Also, since the baffles 14 remain in a horizontal state.
[0031] Specifically, telescopic components 11 are fixedly connected to both sides of the other end of the frame 1. A guide component 12 is fixedly connected to the movable end of the telescopic component 11. A slider 13 is fixedly connected to the bottom end of the guide component 12. A groove 15 is opened inside the frame 1 at the position corresponding to the slider 13. The outer surface of the slider 13 is slidably connected to the inside of the groove 15. A baffle 14 is fixedly connected to one end of the guide component 12.
[0032] Working principle: In actual use, when laser removal of film from glass is required, the distance between the two baffles 14 is adjusted according to the width of the glass. The two telescopic components 11 are activated, and the movable ends of the telescopic components 11 extend or retract. The movable ends of the telescopic components 11 drive the guide component 12 to move horizontally. The movement of the guide component 12 drives the slider 13 to slide synchronously inside the slide groove 15. The movement of the guide component 12 drives the baffles 14 to move synchronously. As the baffles 14 move, when the distance between the two baffles 14 is the same as the width of the glass, the position adjustment of the baffles 14 is completed. Since the guide component 12 is kept in an inclined state, it can guide the glass during transportation. As the glass moves, the glass will contact the baffles 14, and the baffles 14 will limit the glass. Also, since the baffles 14 are kept in a horizontal state, they can effectively guide the glass to move along the preset path, so that the glass moves to the position below the removal head 2, thereby ensuring that the equipment maintains a stable working state and thus ensuring the high efficiency of the equipment.
[0033] Then the glass moves along the conveyor belt. Next, the drive unit 4 is activated, and the output end of the drive unit 4 drives the threaded part 5 to rotate. Since the threads at both ends of the threaded part 5 rotate in opposite directions, the two movable parts 6 move synchronously towards each other on the threaded part 5, causing the two movable parts 6 to move closer to each other. Since each movable part 6 is movably connected to a set of movable arms 7 through a pin, as the movable part 6 moves, the movable arms 7 push the lifting plate 8 upward. The movement of the lifting plate 8 causes the limiting part 9 to move synchronously. The movement of the limiting part 9 causes the rubber part 10 to move synchronously. As the limiting part 9 moves, the horizontal height of the top of the limiting part 9 will be higher than the horizontal height of the conveyor belt. As the glass moves, the outer surface of the glass will contact and abut against the rubber part 10, thereby limiting the glass. This can effectively limit the glass and prevent the position from shifting when the equipment performs laser film removal on the glass, avoiding affecting the film removal effect of the glass, and thus ensuring the working performance of the equipment.
[0034] The above embodiments are only used to illustrate the technical solution of this utility model, and are not intended to limit it.
Claims
1. A glass laser defilming machine characterized by comprising: include: Frame (1), used for supporting the glass laser coating removal machine; A film removal head (2) is movably mounted on the frame (1) for laser film removal from the glass; The limiting component includes a connector (3), a drive component (4), a threaded component (5), a movable component (6), a movable arm (7), a lifting plate (8), a limiting component (9), and a rubber component (10). The connector (3) is disposed on the frame (1). The drive component (4) is connected to the connector (3). The output end of the drive component (4) is drivenly connected to the threaded component (5). The movable component (6) is movably disposed on the threaded component (5). The movable arm (7) is movably disposed on the movable component (6). The movable arm (7) is movably disposed on the lifting plate (8). The lifting plate (8) is movably disposed on the connector (3). The limiting component (9) is connected to the lifting plate (8). The rubber component (10) is bonded to the limiting component (9). The drive component (4) drives the lifting plate (8) to move in the vertical direction through the threaded component (5).
2. The glass laser film removing machine according to claim 1, wherein: It also includes a guide assembly, which includes a telescopic member (11), a guide member (12), a slider (13), and a baffle (14). The telescopic member (11) is disposed on the frame (1), and the movable end of the telescopic member (11) is drivenly connected to the guide member (12). The slider (13) is connected to the guide member (12) and is slidably disposed on the frame (1). The baffle (14) is connected to the guide member (12) and is movably disposed on the frame (1). The telescopic member (11) drives the baffle (14) to move in the horizontal direction through the guide member (12).
3. The glass laser coating removal machine according to claim 1, characterized in that: Two movable parts (6) are provided on the threaded part (5), and the two movable parts (6) are located at both ends of the threaded part (5).
4. The glass laser film removing machine according to claim 1, wherein: The limiting member (9) is located above the lifting plate (8), and the rubber part (10) is located outside the limiting member (9).
5. The glass laser film removing machine according to claim 2, wherein: The frame (1) has a groove (15) inside, and the slider (13) is slidably disposed in the groove (15).
6. The glass laser film removing machine according to claim 2, wherein: The guide (12) is located outside the baffle (14), and the guide (12) and the baffle (14) are arranged in a one-to-one correspondence.