Notching machine for glass processing

The glass cutting machine addresses inefficiencies by using movable and limitable clamping mechanisms to securely fix glass edges and corners, enhancing cutting efficiency and accuracy without manual repositioning.

CN223099597UActive Publication Date: 2025-07-15CHENGDE XINSHENG HOUSEHOLD PROD CO LTD
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Patent Information

Application Number
CN202421943212.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-12
Publication Date
2025-07-15
Estimated Expiration
2034-08-12

AI Technical Summary

Technical Problem

During the incision process, the existing glass cutting machine needs to adjust the position of the glass itself to avoid overlapping with the incision position, resulting in a reduction in the incision efficiency.

Method used

The clamps and limiting components are arranged on the inside of the frame. The clamps are moved by the moving components to clamp and fix them. The limiting components are used to fix the four corners of the glass, combining the cut-out motor, hydraulic rod and adjustment components to achieve accurate positioning of the glass and cut-out position adjustment.

Benefits of technology

The efficiency of glass cutouts is improved, the efficiency reduction caused by position adjustment is prevented, and the fixing effect of glass is enhanced.

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Abstract

The utility model discloses a notching machine for glass processing, which relates to the technical field of glass processing and comprises a machine frame, clamping blocks are symmetrically arranged on the inner side of the machine frame, moving assemblies are arranged on the bottom surfaces of the two clamping blocks, clamping assemblies are arranged in the two clamping blocks, and rubber pads are arranged on the surfaces of the two clamping blocks. The glass cutting device comprises a machine frame, a cutting block used for cutting glass is arranged on the inner side of the machine frame, a cutting motor is arranged above the cutting block, a dismounting assembly is arranged between the cutting motor and the cutting block, a hydraulic rod is connected to the top face of the cutting motor, an adjusting frame is arranged on the inner side of the machine frame, and a first adjusting assembly is connected to the top face of the adjusting frame. And a second adjusting assembly is arranged in the adjusting frame, through cooperation of the clamping block, the moving assembly and the clamping assembly, the fixing effect on glass fibers is improved, meanwhile, the situation that the position of the glass needs to be moved when different surfaces of the glass are cut is prevented, and the cutting efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass processing, in particular to a cutting machine for glass processing. Background Art

[0002] Glass, a transparent solid substance, is a silicate non-metallic material that forms a continuous network structure when melted and gradually increases its viscosity and hardens without crystallization during the cooling process. It has a wide variety of types and diverse chemical compositions, with the main component being silicon dioxide. It is widely used in fields such as construction, daily household items, chemical industry, electronics, military, and industry, and is currently one of the most widely used and important materials, being collectively referred to as the three pillar non-metallic materials together with polymer materials and ceramic materials.

[0003] As disclosed in the utility model with the authorization announcement number CN217144425U, a cutting machine for glass processing, a waste cleaning mechanism is installed on one side of the top of the workbench. After processing the glass, the third forward and reverse rotation motor can be started, so that the output end of the third forward and reverse rotation motor can drive the driving gear to rotate, and then the driving gear can drive the driven gear to rotate, so that the driven gear can drive the threaded rod to rotate in a threaded manner, and then the threaded rod can drive the cleaning rod, so that the cleaning rod can clean the residue on the upper part of the glass.

[0004] The following problems still exist when using this prior art:

[0005] This device drives the pressing plate to press the surface of the glass through the second hydraulic telescopic rod to fix the glass. Moreover, the second hydraulic telescopic rod of this device is fixed at the bottom of the U-shaped fixing frame through the second hydraulic cylinder. Therefore, the position of the second hydraulic telescopic rod inside the U-shaped fixing frame cannot be changed. Thus, during actual use, when making cuts at different positions of the glass, the position where the pressing plate presses the glass surface may coincide with the position of the glass cut. Furthermore, during the process of cutting the glass, it is necessary to adjust the position of the glass itself to expose the cutting point to prevent it from contacting the pressing surface of the pressing plate. However, the process of adjusting the glass position will reduce the cutting efficiency. Therefore, this device has certain limitations during cutting. Summary of the Utility Model

[0006] In order to overcome the deficiencies of the prior art, the utility model provides a cutting machine for glass processing. By arranging two clamping blocks inside the machine frame, a limiting component inside the clamping blocks, and a moving component at the bottom surfaces of the two clamping blocks. During use, the moving component can drive the two clamping blocks to move, thereby clamping and fixing the two sides of the glass. Through the limiting component, the four corners of the glass can be limited and fixed, which not only increases the fixing effect on the glass fiber but also prevents the situation where the position of the glass itself needs to be moved when cutting different surfaces of the glass, improving the cutting efficiency.

[0007] To solve the above technical problems, the utility model provides the following technical solutions: A cutting machine for glass processing, including a machine frame. Inside the machine frame, clamping blocks are symmetrically arranged. At the bottom surfaces of the two clamping blocks, a moving component is provided. Inside the two clamping blocks, a clamping component is provided. And on the surfaces of the two clamping blocks, rubber pads are provided. Inside the machine frame, a cutting block for cutting the glass is provided. Above the cutting block, a cutting motor is provided. And between the cutting motor and the cutting block, a disassembly component is provided. On the top surface of the cutting motor, a hydraulic rod is connected. Inside the machine frame, an adjustment frame is provided. On the top surface of the adjustment frame, a first adjustment component is connected. Inside the adjustment frame, a second adjustment component is provided.

[0008] Preferably, the moving component is composed of a moving block, a bidirectional threaded rod, guide rods, and guide blocks. The two moving blocks are respectively fixedly connected to the bottom surfaces of the two clamping blocks. And between the two moving blocks, a bidirectional threaded rod is passed through. On both sides of the bidirectional threaded rod, guide rods are provided. The two guide rods pass through two guide blocks, and the guide blocks are fixedly connected to the bottom surfaces of the clamping blocks.

[0009] Preferably, a clamping motor is fixedly installed on the outer surface of the machine frame through a fixing frame, and the output end of the clamping motor is connected to the bidirectional threaded rod.

[0010] Preferably, the clamping component is composed of an electric push rod and a limiting block. The interiors of the two clamping blocks are hollow. And symmetrically arranged inside the clamping blocks are electric push rods. One end of the electric push rod is fixedly connected to a limiting block, and one end of the limiting block extends out of the outside of the clamp.

[0011] Preferably, the first adjustment component is composed of a first adjustment block, a first screw, a worm gear, and a double-section worm. The bottom surfaces of the two first adjustment blocks are fixedly connected to the adjustment frame. And inside the two first adjustment blocks, a first screw is passed through. One end of the two first screws is fixedly connected to a worm gear. On one side of the two worm gears, a double-section worm is meshed and connected.

[0012] Preferably, a drive housing is installed on the top surface of the frame. An adjustment motor is installed on the outer surface of the drive housing, and the output end of the adjustment motor is connected to a double-section worm. Two adjustment grooves are provided on the inner surface of the frame, and two first screws are respectively arranged inside the two adjustment grooves.

[0013] Preferably, the second adjustment assembly is composed of a second screw and a second adjustment block. The second screw is arranged inside the adjustment frame, and the second adjustment block is penetrated by the second screw. The bottom end of the second adjustment block is connected to the hydraulic rod.

[0014] Preferably, a rotation motor is fixedly installed on the outer surface of the adjustment frame through a fixing frame, and the output end of the rotation motor is connected to the second screw.

[0015] Preferably, the disassembly assembly is composed of a threaded cylinder and a bolt. The threaded cylinder is fixedly installed on the top surface of the cut block. The bolt is connected to the cut motor through a rotating rod, and the bolt is arranged inside the threaded cylinder.

[0016] Preferably, a dust suction port is provided inside the frame. A dust suction device is fixedly installed on the outer surface of the frame through a fixing frame, and the dust suction device is communicated with the dust suction port.

[0017] Compared with the prior art, the beneficial effects that the present utility model can achieve are:

[0018] 1. By arranging two clamping blocks inside the frame of the present utility model, a limiting component is arranged inside the clamping blocks, and a moving component is arranged at the bottom surfaces of the two clamping blocks. During use, the two clamping blocks can be driven to move through the moving component, so as to clamp and fix both sides of the glass. Through the limiting component, the four corners of the glass can be limited and fixed, thereby increasing the fixing effect on the glass fiber while preventing the need to move the position of the glass itself when cutting different surfaces of the glass, and improving the cutting efficiency. Description of the Drawings

[0019] Figure 1 is a three-dimensional structural schematic diagram of the present utility model;

[0020] Figure 2 is a rear-view structural schematic diagram of the present utility model;

[0021] Figure 3 is a bottom-view structural schematic diagram of the present utility model;

[0022] Figure 4 is a structural schematic diagram of the moving component of the present utility model;

[0023] Figure 5 is a structural schematic diagram of the clamping component of the present utility model;

[0024] Figure 6 Schematic diagram of the first adjustment component of the present utility model;

[0025] Figure 7 Schematic diagram of the second adjustment component of the present utility model;

[0026] Figure 8 Schematic diagram of the disassembly component of the present utility model;

[0027] Wherein: 1, machine frame; 2, clamping motor; 3, dust suction port; 4, guide rod; 5, clamping block; 6, rubber pad; 7, limit block; 8, notch block; 9, notch motor; 10, hydraulic rod; 11, drive housing; 12, dust suction device; 13, adjustment motor; 14, bidirectional threaded rod; 15, moving block; 16, guide block; 17, electric push rod; 18, adjustment frame; 19, rotating motor; 20, first screw rod; 21, first adjustment block; 22, worm gear; 23, worm; 24, second screw rod; 25, second adjustment block; 26, threaded barrel; 27, bolt; 28, adjustment slot. Specific embodiments

[0028] In order to make the technical means, creative features, achieved purposes and effects realized by the present utility model easy to understand, the present utility model will be further described below in conjunction with specific embodiments. However, the following embodiments are only the preferred embodiments of the present utility model, not all of them. Based on the embodiments in the implementation manners, other embodiments obtained by those skilled in the art without creative efforts all belong to the protection scope of the present utility model.

[0029] Embodiment

[0030] Please refer to Figure 1 、 Figure 2 、 Figure 3 、 Figure 6 、 Figure 7 and Figure 8As shown in the figure, the utility model provides a cutting machine for glass processing, which includes a machine frame 1. Support legs for supporting the machine frame 1 are fixedly connected to the four corners of the bottom surface of the machine frame 1. An incision block 8 for incising glass is arranged inside the machine frame 1. An incision motor 9 is arranged above the incision block 8, and a disassembly component is arranged between the incision motor 9 and the incision block 8. The disassembly component is composed of a threaded cylinder 26 and a bolt 27. The threaded cylinder 26 is fixedly arranged on the top surface of the incision block 8. The bolt 27 is connected to the output end of the incision motor 9 through a rotating rod, and the sizes and threads between the bolt 27 and the threaded cylinder 26 correspond to each other. Thus, the bolt 27 can be installed inside the threaded cylinder 26, and then the incision block 8 can be installed below the incision motor 9 through the thread and the threaded cylinder 26. In this way, when the incision motor 9 is driven, the incision block 8 can be driven to rotate through the threaded cylinder 26 and the bolt 27, and then the glass can be incised. Also, the incision block 8 can be disassembled by disassembling the threaded cylinder 26 from the bolt 27. This can facilitate the staff to replace different incision blocks 8 according to the type and size of the incision. And the screwing direction of installing the threaded cylinder 26 on the bolt 27 is opposite to the rotation direction of the incision motor 9, so as to prevent the threaded cylinder 26 from loosening when the incision motor 9 drives the threaded cylinder 26 to rotate. A hydraulic rod 10 is connected to the top surface of the incision motor 9. An adjustment frame 18 is arranged inside the machine frame 1. A first adjustment component is connected to the top surface of the adjustment frame 18. The first adjustment component is composed of a first adjustment block 21, a first screw rod 20, a worm gear 22 and a double-segment worm 23. Two first adjustment blocks 21 are fixedly connected to the adjustment frame 18, and the first screw rod 20 passes through the inside of the first adjustment block 21, and the first adjustment block 21 and the first screw rod 20 are connected by threads. Therefore, by rotating the first screw rod 20, the first adjustment block 21 can be driven to move. One ends of the two first screw rods 20 are fixedly connected with the worm gear 22. One side of the two first worm gears 22 is meshed with the double-segment worm 23. A driving shell 11 is installed on the top surface of the machine frame 1. An adjustment motor 13 is installed on the outer surface of the driving shell 11, and the output end of the adjustment motor 13 is connected to the double-segment worm 23. Therefore, by driving the adjustment motor 13, the double-segment worm 23 can be driven to rotate. Two adjustment grooves 28 are formed on the inner surface of the machine frame 1, and the two first screw rods 20 and the first adjustment blocks 21 are respectively arranged inside the two adjustment grooves 28, and a very small gap is left between the first adjustment block 21 and the adjustment groove 28, so as to prevent the first adjustment block 21 from rotating with the rotation of the first screw rod 20 when the first screw rod 20 drives the first adjustment block 21 to move. A second adjustment component is arranged inside the adjustment frame 18. The second adjustment component is composed of a second screw rod 24 and a second adjustment block 25. The second screw rod 24 is arranged inside the adjustment frame 18, and the second screw rod 24 passes through the second adjustment block 25, and the second screw rod 24 and the second adjustment block 25 are connected by threads. Therefore, by rotating the second screw rod 24, the second adjustment block 25 can be driven to move.A rotation motor 19 is fixedly installed on the outer surface of the adjustment frame 18 through a fixing frame, and the output end of the rotation motor 19 is connected to the second screw rod 24. Therefore, the second screw rod 24 can be driven to rotate by driving the rotation motor 19. The bottom and top surfaces of the second adjustment block 25 are fixedly connected to the hydraulic rod 10. Thus, when the second adjustment block 25 moves, the hydraulic rod 10 can be driven to move;

[0031] When using this device, place this device at a designated position, place the glass to be cut on the inner side of the machine frame 1 and on the bottom surface of the cutting block 8. Start the cutting motor 9, and the cutting motor 9 drives the cutting block 8 to rotate. Start the hydraulic rod 10, and the hydraulic rod 10 drives the cutting motor 9 and the cutting block 8 to move downward. When the cutting block 8 contacts the point to be cut on the glass surface, the glass can be cut. When cutting different positions of the glass, start the adjustment motor 13, the adjustment motor 13 drives the double-section worm 23 to rotate, the double-section worm 23 drives the two worm wheels 22 to rotate synchronously, the worm wheels 22 drive the two first screw rods 20 to rotate synchronously, the first screw rods 20 drive the first adjustment block 21 to move inside the adjustment groove 28, the first adjustment block 21 drives the adjustment frame 18 on the bottom surface to move, and the adjustment frame 18 drives the cutting motor 9 and the cutting block 8 to move through the hydraulic rod 10, so as to adjust the horizontal position of the cutting block 8. Start the rotation motor 19, the rotation motor 19 drives the second screw rod 24 to rotate, the second screw rod 24 drives the second adjustment block 25 to move, the second adjustment block 25 drives the hydraulic rod 10 to move, and the hydraulic rod 10 drives the cutting motor 9 and the cutting block 8 to move, so as to adjust the horizontal position of the cutting block 8, and thus different positions on the glass surface can be cut;

[0032] As a further implementation manner of this embodiment, such as Figure 1 、 Figure 4 and Figure 5As shown in the figure, clamping blocks 5 are symmetrically arranged on the inner side of the frame 1. A moving component for moving the two clamping blocks 5 is provided on the bottom surface of the two clamping blocks 5. The moving component is composed of a moving block 15, a bidirectional threaded rod 14, a guide rod 4 and a guide block 16. Among them, the two moving blocks 15 are respectively fixedly connected to the bottom surfaces of the two clamping blocks 5. A bidirectional threaded rod 14 is passed through between the two moving blocks 15. The two sections of the bidirectional threaded rod 14 have opposite threads and are threadedly connected to the two moving blocks 15. Therefore, by rotating the bidirectional threaded rod 14, the two moving blocks 15 can be driven to move relatively or away from each other. Guide rods 4 are provided on both sides of the bidirectional threaded rod 14, and two guide blocks 16 are passed through the two guide rods 4. The guide blocks 16 are fixedly connected to the bottom surface of the clamping block 5. Thus, when the bidirectional threaded rod 14 drives the two clamping blocks 5 to move through the moving block 15, the clamping block 5 can drive the guide block 16 to slide on the guide rod 4, so as to increase the directivity and stability of the two clamping blocks 5 during movement. A clamping motor 2 is fixedly installed on the outer surface of the frame 1 through a fixing bracket, and the output end of the clamping motor 2 is connected to the bidirectional threaded rod 14. Thus, by driving the clamping motor 2, the bidirectional threaded rod 14 can be driven to rotate. The interiors of the two clamping blocks 5 are hollow, and a clamping component is provided inside the clamping block 5. The clamping component is composed of an electric push rod 17 and a limiting block 7. Among them, electric push rods 17 are symmetrically arranged inside the two clamping blocks 5. The telescopic end of the electric push rod 17 is connected to the limiting block 7, and one end of the limiting block 7 extends out of the outside of the clamping block 5. Rubber pads 6 are provided on one side surface of the two clamping blocks 5. Thus, when the two clamping blocks 5 clamp the two sides of the glass, the rubber pads 6 buffer the two sides of the glass, thereby preventing damage to the glass during clamping. A dust suction port 3 is opened on the inner surface of the frame 1. A dust suction device 12 is fixedly installed on the outer surface of the frame 1 through a fixing bracket, and the dust suction device 12 is communicated with the dust suction port 3. The dust suction device 12 is an existing device, and a negative pressure fan and a dust collection box are provided inside it. During use, negative pressure is generated inside it through the negative pressure fan, so as to adsorb the glass debris generated during the process of cutting the glass, and prevent the glass debris from accumulating inside the frame 1 and affecting the subsequent cutting process;

[0033] When further using this device, after the glass is placed inside the machine frame 1, the clamping motor 2 can be started. The clamping motor 2 drives the bidirectional threaded rod 14 to rotate. The bidirectional threaded rod 14 drives the two moving blocks 15 to move relatively or away from each other. The two moving blocks 15 drive the two clamping blocks 5 to move relatively or away from each other. When the two clamping blocks 5 are in full contact with both sides of the glass, the two sides of the glass can be clamped and fixed. At this time, the electric push rod 17 is started. The electric push rod 17 drives the limiting block 7 to move. When the four limiting blocks 7 are in contact with the four corners of the glass, the four corners of the glass can be limited and fixed. The advantage of fixing the glass in this way is that while increasing the effect of fixing the glass, it also eliminates the situation where the position of the glass itself needs to be moved when making cuts at different positions on the glass surface. By starting the dust suction device 12, the glass debris generated during the cutting process can be adsorbed into the interior of the dust suction device 12 through the dust suction port 3;

[0034] Specific working principle: Place this device at a designated position. Place the glass to be cut inside the machine frame 1. Start the clamping motor 2. The clamping motor 2 drives the bidirectional threaded rod 14 to rotate. The bidirectional threaded rod 14 drives the two moving blocks 15 to move relatively. The two moving blocks 15 drive the two clamping blocks 5 to move relatively. When the two clamping blocks 5 are in contact with both sides of the glass, the two sides of the glass can be fixed. Start the electric push rod 17. The electric push rod 17 drives the limiting block 7 to move. When the four limiting blocks 7 are in contact with the four corners of the glass, the glass can be further clamped and fixed, thus increasing the effect of limiting and fixing the glass. After the glass is fixed, start the cutting motor 9. The cutting motor 9 drives the cutting block 8 to rotate. Start the hydraulic rod 10. The hydraulic rod 10 drives the cutting block 8 to move downward. When the cutting block 8 is in contact with the surface of the glass, the glass can be cut. Start the adjustment motor 13. The adjustment motor 13 drives the double-section worm 23 to rotate. The double-section worm 23 drives the two worm wheels 22 to rotate synchronously. The two worm wheels 22 drive the two first screw rods 20 to rotate synchronously. The two first screw rods 20 drive the two first adjustment blocks 21 to move. The two first adjustment blocks 21 drive the adjustment frame 18 to move. The adjustment frame 18 can drive the cutting block 8 to adjust its horizontal position through the hydraulic rod 10. Start the rotation motor 19. The rotation motor 19 drives the second screw rod 24 to rotate. The second screw rod 24 drives the second adjustment block 25 to move. The second adjustment block 25 drives the cutting block 8 to adjust its vertical position through the hydraulic rod 10. In this way, cuts can be made at different positions on the glass. By starting the dust suction device 12, the dust suction device 12 can adsorb the debris generated during the glass cutting process through the dust suction port 3, preventing the debris from affecting the subsequent cutting process and the external environment.

[0035] The foregoing has shown and described the basic principles, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above-mentioned embodiments. The above-mentioned embodiments and the descriptions in the specification are only preferred examples of the present utility model and are not used to limit the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.

Claims

1. A cutting machine for glass processing, comprising a machine frame (1), characterized in that: On the inner side of the frame (1), clamping blocks (5) are symmetrically arranged. A moving component is provided on the bottom surface of the two clamping blocks (5), a clamping component is arranged inside the two clamping blocks (5), and rubber pads (6) are arranged on the surfaces of the two clamping blocks (5). A cutting block (8) for the glass cut is arranged on the inner side of the frame (1). Above the cutting block (8), a cutting motor (9) is provided, and a disassembly component is arranged between the cutting motor (9) and the cutting block (8). The top surface of the cutting motor (9) is connected to a hydraulic rod (10). An adjusting frame (18) is arranged on the inner side of the frame (1), a first adjusting component is connected to the top surface of the adjusting frame (18), and a second adjusting component is arranged inside the adjusting frame (18).

2. The cutting machine for glass processing according to claim 1, characterized in that: The moving component is composed of a moving block (15), a bidirectional threaded rod (14), guide rods (4) and guide blocks (16). The two moving blocks (15) are respectively fixedly connected to the bottom surfaces of the two clamping blocks (5), and the bidirectional threaded rod (14) passes through between the two moving blocks (15). Guide rods (4) are arranged on both sides of the bidirectional threaded rod (14). The two guide rods (4) pass through two guide blocks (16), and the guide blocks (16) are fixedly connected to the bottom surfaces of the clamping blocks (5).

3. The notch cutter for glass processing according to claim 2, wherein: A clamping motor (2) is fixedly installed on the outer surface of the frame (1) through a fixing frame, and the output end of the clamping motor (2) is connected to the bidirectional threaded rod (14).

4. A cutting machine for glass processing according to claim 1, wherein: The clamping component is composed of an electric push rod (17) and a limiting block (7). The interiors of the two clamping blocks (5) are hollow, and electric push rods (17) are symmetrically arranged inside the clamping blocks (5). One end of the electric push rod (17) is fixedly connected to the limiting block (7), and one end of the limiting block (7) extends out of the outer side of the clamping block (5).

5. The cutting machine for glass processing according to claim 1, characterized in that: The first adjusting component is composed of a first adjusting block (21), a first screw rod (20), a worm gear (22) and a double-section worm (23). The bottom surfaces of the two first adjusting blocks (21) are fixedly connected to the adjusting frame (18), and the first screw rod (20) passes through the interiors of the two first adjusting blocks (21). One end of the two first screw rods (20) is fixedly connected to the worm gear (22), and a double-section worm (23) is meshed and connected to one side of the two worm gears (22).

6. The cutting machine for glass processing according to claim 5, characterized in that: A driving shell (11) is installed on the top surface of the frame (1). An adjusting motor (13) is installed on the outer surface of the driving shell (11), and the output end of the adjusting motor (13) is connected to the double-section worm (23). Two adjusting grooves (28) are formed on the inner surface of the frame (1), and the two first screw rods (20) are respectively arranged inside the two adjusting grooves (28).

7. A cutting machine for glass processing according to claim 1, wherein: The second adjusting component is composed of a second screw rod (24) and a second adjusting block (25). The second screw rod (24) is arranged inside the adjusting frame (18), and the second screw rod (24) passes through the second adjusting block (25), and the bottom end of the second adjusting block (25) is connected to the hydraulic rod (10).

8. The cutting machine for glass processing according to claim 7, wherein: A rotation motor (19) is fixedly installed on the outer surface of the adjustment frame (18) through a fixing frame, and the output end of the rotation motor (19) is connected to a second screw rod (24).

9. The cutting machine for glass processing according to claim 7, wherein: The disassembly component is composed of a threaded cylinder (26) and a bolt (27). The threaded cylinder (26) is fixedly installed on the top surface of the incision block (8). The bolt (27) is connected to the incision motor (9) through a rotating rod, and the bolt (27) is arranged inside the threaded cylinder (26).

10. A cutting machine for glass processing according to claim 7, characterized in that: A dust suction port (3) is formed inside the machine frame (1). A dust suction device (12) is fixedly installed on the outer surface of the machine frame (1) through a fixing frame, and the dust suction device (12) is communicated with the dust suction port (3).

Citation Information

Patent Citations

  • Notching machine for glass processing

    CN217144425U