Glass processing chamfering equipment

By designing a three-axis adjustment mechanism and grinding components, the problem of frequent grinding wheel replacements required in existing glass beveling machines has been solved, enabling efficient beveling of glass of different thicknesses and improving work efficiency and the practicality of the device.

CN223617407UActive Publication Date: 2025-12-02NINGBO BORUI GLASS TECH CO LTD
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Patent Information

Application Number
CN202520217376.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-12-02
Estimated Expiration
2035-02-12

AI Technical Summary

Technical Problem

Existing glass beveling machines require frequent changes of grinding wheels when beveling glass of different thicknesses, resulting in low work efficiency, especially when processing small batches of glass of various specifications.

Method used

The design employs a three-axis adjustment mechanism and grinding components, enabling the grinding wheel to move in the X, Y, and Z axes. The position of the grinding wheel can be adjusted by the adjustment components, eliminating the need to replace the grinding wheel and adapting to glass of different thicknesses.

Benefits of technology

This technology enables chamfering of glass of different thicknesses without changing the grinding wheel, improving glass grinding efficiency, reducing manual labor, and enhancing the practicality of the device.

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Abstract

The utility model relates to the technical field of glass processing, in particular to chamfering equipment for glass processing. Comprising a chamfering equipment body and a grinding wheel, a plurality of glass suction cups are evenly distributed in the chamfering equipment body, a three-axis adjusting mechanism for adjusting the position of the grinding wheel is arranged at the top end of the chamfering equipment body, and the three-axis adjusting mechanism comprises a mounting frame and a mounting block; a grinding mechanism for controlling the grinding wheel is arranged in the mounting block, and a control center for controlling the glass machining chamfering equipment is arranged on one side of the chamfering equipment body. According to the chamfering equipment for glass machining, through the design of the three-axis adjusting mechanism, a worker only needs to control the first driving motor, the second driving motor and the third driving motor to be started, and then the grinding wheel can move in the X-axis direction, the Y-axis direction and the Z-axis direction, so that the grinding wheel is matched with the grinding mechanism; and the edge of glass with different thicknesses can be chamfered by the grinding wheel.
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Description

Technical Field

[0001] This utility model relates to the field of glass processing technology, and in particular to a glass processing chamfering device. Background Technology

[0002] After glass is cut, in order to prevent sharp edges from scratching construction workers and to prevent the presence of micro-cracks at the edges, the edges and corners are generally required to be chamfered to improve the safety and aesthetics of the glass. At the same time, chamfering makes the glass easier to assemble and effectively improves the actual use effect of the glass.

[0003] Existing glass beveling machines often require operators to replace the grinding wheels according to the glass thickness when beveling glass of different thicknesses. This ensures that the upper and lower ends of the grinding wheel can contact the glass edge for grinding, creating a rounded bevel to improve the safety and aesthetics of the glass. While existing glass beveling machines can beveling various thicknesses, the need to disassemble and replace the grinding wheels based on the thickness of the glass increases the workload unnecessarily. Furthermore, frequent disassembly and replacement of the grinding wheels is necessary when grinding small batches of glass of various specifications, leading to reduced grinding efficiency and poor device usability.

[0004] To address this issue, we have designed a glass chamfering device to provide an alternative technical solution. Utility Model Content

[0005] Therefore, it is necessary to provide a glass processing beveling device that can beveling glass of different thicknesses without replacing the grinding wheel, in order to address the above-mentioned technical problems.

[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:

[0007] A glass chamfering device includes a chamfering device body and a grinding wheel. The interior of the chamfering device body is evenly distributed with multiple glass suction cups for fixing and adsorbing the glass. The top of the chamfering device body is provided with a three-axis adjustment mechanism for adjusting the position of the grinding wheel. The three-axis adjustment mechanism includes a mounting frame and a mounting block. The mounting frame is slidably disposed on the top of the chamfering device body, and the mounting block is slidably disposed on the mounting frame. The mounting block contains a grinding mechanism for controlling the grinding wheel. A control center for controlling the glass chamfering device is located on one side of the chamfering device body.

[0008] Preferably, the three-axis adjustment mechanism includes a longitudinal axis adjustment component, a transverse axis adjustment component, and a vertical axis adjustment component. The longitudinal axis adjustment component includes a slide rail 1 located on both sides of the chamfering device body. The mounting frame is slidably mounted on the slide rail. The bottom of the mounting frame is provided with a cleaning brush for cleaning glass grinding debris. A drive motor 1 is fixedly mounted on one side of the mounting frame. The output end of the drive motor 1 passes through the mounting frame and is connected to a drive gear 1. One side of one of the slide rails 1 is provided with a rack 1 that cooperates with the drive gear 1. The transverse axis adjustment component includes a slide rail 2 fixedly mounted on one side of the mounting frame. The mounting block is slidably mounted on the slide rail. A drive motor 2 is fixedly mounted on the back of the mounting block. The output end of the drive motor 2 passes through the mounting block and is connected to a drive gear 2. A rack 2 that cooperates with the drive gear 2 is fixedly mounted on the mounting frame.

[0009] Preferably, the vertical axis adjustment assembly includes multiple sprockets rotatably disposed inside the mounting block, with a chain meshing with the outside of the multiple sprockets. A rotating shaft is fixedly connected between two sprockets located at the bottom. A drive motor for driving the sprocket is fixedly connected to one side of one of the sprockets. Multiple connecting pieces are fixedly disposed on the chain, and an L-shaped mounting plate is fixedly connected to the side of the connecting piece away from the chain.

[0010] Preferably, the grinding mechanism includes a grinding component and an adjustment component. The grinding component includes a drive motor four fixedly mounted on the L-shaped mounting plate. The output end of the drive motor four passes through the L-shaped mounting plate and is connected to a drive shaft. Multiple limit strips are fixedly mounted on the drive shaft. The grinding wheel is fixedly connected to the drive shaft by bolts. Multiple nozzles are arranged around the grinding wheel. A liquid transfer chamber communicating with the nozzles is opened on the mounting block. A liquid inlet is opened on one side of the liquid transfer chamber.

[0011] Preferably, the abrasive wheel is divided into abrasive wheel one and abrasive wheel two. Abrasive sleeves are movably mounted inside abrasive wheel one and abrasive wheel two. Multiple guide limiting blocks are fixedly mounted on the outer side of the abrasive sleeves. Guide limiting grooves matching the guide limiting blocks are opened inside abrasive wheel one and abrasive wheel two. Abrasive wheel one is movably mounted on the drive shaft. Abrasive wheel two is fixedly mounted on the drive shaft by bolts. An annular connecting sleeve is rotatably connected to the top of abrasive wheel one. An annular locking block is fixedly mounted on the abrasive wheel. Multiple ball bearings are rotatably connected to the outer side of the annular locking block. A locking groove matching the annular locking block and the ball bearings is opened on the annular connecting sleeve.

[0012] Preferably, the two sides of the annular connecting sleeve are connected to L-shaped connecting blocks by bolts. One of the L-shaped connecting blocks is threaded with an adjusting screw in the middle. One end of the adjusting screw is rotatably connected to the inner wall of the mounting block, and the other end of the adjusting screw is fixedly connected to a drive motor. The other L-shaped connecting block is rotatably connected with a plurality of ball bearings. The mounting block has a groove that matches the ball bearings.

[0013] It is clear without a doubt that the technical solution described above in this application can solve the technical problem that this application aims to address.

[0014] At the same time, through the above technical solutions, this utility model has at least the following beneficial effects:

[0015] 1. The glass processing chamfering equipment provided by this utility model, through the design of a three-axis adjustment mechanism, allows the operator to control the start of drive motor one, drive motor two and drive motor three respectively, so that the grinding wheel can move in the X-axis, Y-axis and Z-axis directions, thereby cooperating with the grinding mechanism to realize the chamfering processing of glass edges of different thicknesses.

[0016] 2. The glass chamfering equipment provided by this utility model, through the design of the grinding component, allows the operator to start the drive motor four to drive the grinding wheel to rotate, so that the grinding wheel grinds the edges of the glass, and control the three-axis adjustment mechanism to start, so as to drive the high-speed rotating grinding wheel to feed along the edge of the glass, thereby completing the chamfering process of the glass edge.

[0017] 3. The glass chamfering device provided by this utility model, through the design of the adjustment component, allows the operator to simply start the drive motor five when processing glass of different thicknesses. This raises the first grinding wheel, increasing the area of ​​the grinding sleeve exposed on the first and second grinding wheels. After the first and second grinding wheels abut against the upper and lower edges of the glass, the drive motor five is stopped, and the three-axis adjustment mechanism and grinding component are controlled to chamfer the edges of the glass. This eliminates the need for the operator to repeatedly disassemble and replace the grinding wheels according to the thickness of the glass to be processed, effectively improving the efficiency of glass grinding. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0019] Figure 1This is a schematic diagram of the axial view structure of this utility model;

[0020] Figure 2 This is a top view of the structure of this utility model;

[0021] Figure 3 This is a schematic diagram of the longitudinal adjustment component of this utility model from an axial view.

[0022] Figure 4 This is a schematic diagram of the installation structure of the grinding component of this utility model on the vertical adjustment component;

[0023] Figure 5 This is a schematic diagram of the axial view structure of the grinding mechanism of this utility model;

[0024] Figure 6 This is a half-sectional structural diagram of the mounting block of this utility model;

[0025] Figure 7 This is a schematic diagram of the mating structure of the abrasive wheel and the nozzle of this utility model;

[0026] Figure 8 This is a schematic diagram of the fitting structure between the liquid transfer chamber and the liquid inlet of this utility model.

[0027] In the diagram: 1. Chamfering equipment body; 2. Grinding wheel; 3. Glass suction cup; 4. Mounting bracket; 5. Mounting block; 6. Control center; 7. Slide rail one; 8. Cleaning brush; 9. Drive motor one; 10. Drive gear one; 11. Rack one; 12. Slide rail two; 14. Drive motor two; 15. Rack two; 16. Sprocket; 17. Chain; 18. Rotating shaft; 19. Drive motor three; 20. Connecting piece; 21. L-shaped mounting plate; 22. Drive... 23. Motor 4; 24. Drive shaft; 25. Limiting strip; 26. Nozzle; 27. Liquid transfer chamber; 28. Liquid inlet; 29. ​​Grinding wheel 1; 30. Grinding wheel 2; 31. Grinding sleeve; 32. Guide limiting block; 33. Guide limiting groove; 34. Annular connecting sleeve; 35. Annular locking block; 36. Ball bearing 1; 37. Slot; 38. L-shaped connecting block; 39. Adjusting screw; 40. Drive motor 5; 41. Ball bearing 2; 42. Groove. Detailed Implementation

[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0029] Example

[0030] Reference Figure 1-8A glass chamfering device includes a chamfering device body 1 and a grinding wheel 2. The chamfering device body 1 has multiple glass suction cups 3 evenly distributed inside for fixing and adsorbing the glass. The top of the chamfering device body 1 is provided with a three-axis adjustment mechanism for adjusting the position of the grinding wheel 2. The three-axis adjustment mechanism includes a mounting frame 4 and a mounting block 5. The mounting frame 4 is slidably disposed on the top of the chamfering device body 1, and the mounting block 5 is slidably disposed on the mounting frame 4. The mounting block 5 has a grinding mechanism inside for controlling the grinding wheel 2. A control center 6 for controlling the glass chamfering device is provided on one side of the chamfering device body 1. Specifically, in this invention, through the design of the three-axis adjustment mechanism, the operator only needs to control the start of drive motor 1 9, drive motor 2 14, and drive motor 3 19 respectively to enable the grinding wheel 2 to move in the X, Y, and Z axes, thereby cooperating with the grinding mechanism to achieve chamfering processing of glass edges of different thicknesses.

[0031] It should be noted that in this utility model, the glass suction cup 3 adopts the existing technology design. After the glass to be processed is placed on the glass suction cup 3, the operator only needs to control the vacuum pump through the control center 6 to extract the air between the glass suction cup 3 and the glass to be processed, forming a certain negative pressure. At this time, the atmospheric pressure outside the glass suction cup 3 is greater than the negative pressure inside the glass suction cup 3. Therefore, an inward pressure difference will be generated between the glass suction cup 3 and the glass. This pressure difference will make the glass firmly adsorbed on the glass suction cup 3, thereby completing the fixation of the glass to be processed on the main body 1 of the chamfering equipment.

[0032] Reference Figure 2-4 and Figure 6 The three-axis adjustment mechanism includes a longitudinal axis adjustment component, a transverse axis adjustment component, and a vertical axis adjustment component. The longitudinal axis adjustment component includes a slide rail 7 on both sides of the chamfering device body 1. The mounting frame 4 is slidably mounted on the slide rail. The bottom of the mounting frame 4 is provided with a cleaning brush 8 for cleaning glass grinding debris. A drive motor 9 is fixedly mounted on one side of the mounting frame 4. The output end of the drive motor 9 passes through the mounting frame 4 and is connected to a drive gear 10. One side of one of the slide rails 7 is provided with a rack 11 that cooperates with the drive gear 10. The transverse axis adjustment component includes a slide rail 12 fixedly mounted on one side of the mounting frame 4. The mounting block 5 is slidably mounted on the slide rail. A drive motor 14 is fixedly mounted on the back of the mounting block 5. The output end of the drive motor 14 passes through the mounting block 5 and is connected to the drive gear 2. A rack 15 that cooperates with the drive gear 2 is fixedly mounted on the mounting frame 4.

[0033] The vertical axis adjustment assembly includes multiple sprockets 16 rotatably disposed inside the mounting block 5. A chain 17 is meshed with the outside of each sprocket 16. A rotating shaft 18 is fixedly connected between two sprockets 16 located at the bottom. A drive motor 19 for driving one of the sprockets 16 is fixedly connected to one side of each sprocket 16. Multiple connecting pieces 20 are fixedly disposed on the chain 17. An L-shaped mounting plate 21 is fixedly connected to the side of each connecting piece 20 away from the chain 17. Specifically, in this invention, through the design of the cleaning brush 8, when the device uses the abrasive wheel 2 to grind and chamfer the glass edge... The cleaning brush 8 can sweep away glass debris adhering to the glass surface, thus preventing workers from being injured by glass debris adhering to the glass surface when removing the glass after the glass beveling process. It also eliminates the need for secondary cleaning of the glass after processing, effectively improving the practicality of the device. Through the design of multiple connecting pieces 20, the L-shaped mounting plate 21 is fixed on the chain 17, so that the worker can start the drive motor 19 by controlling the sprocket 16 to drive the chain 17 to move, thereby moving the L-shaped mounting plate 21 fixedly connected to the chain 17 to lift and move, ensuring the normal use of the device.

[0034] When it is necessary to move the grinding wheel 2 longitudinally, simply start the drive motor 9, so that the output end of the drive motor 9 drives the drive gear 10 to rotate, thereby causing the drive gear 10 to mesh with the rack 11, so as to drive the mounting bracket 4 to move longitudinally on the slide rail 7, thereby driving the grinding wheel 2 to move longitudinally.

[0035] When it is necessary to move the grinding wheel 2 axially, simply start the drive motor 14, so that the output end of the drive motor 14 drives the drive gear 2 to rotate, thereby causing the drive gear 2 to mesh with the rack 15, so as to drive the mounting block 5 to move laterally on the slide rail 12, thereby driving the grinding wheel 2 to move laterally.

[0036] When the grinding wheel 2 needs to be moved vertically, simply start the drive motor 19 to rotate the sprocket 16 connected to the output shaft of the drive motor 19. This sprocket 16 will then rotate via the shaft 18, causing the chain 17 meshing with the sprocket 16 to rotate. This chain 17 will then rotate the other two sprockets 16. During this process, the chain 17 will drive the L-shaped mounting plate 21 to move vertically via the connecting piece 20, thereby causing the grinding wheel 2 to move vertically.

[0037] Reference Figure 4-8The grinding mechanism includes a grinding component and an adjustment component. The grinding component includes a drive motor 22 fixedly mounted on the L-shaped mounting plate 21. The output end of the drive motor 22 passes through the L-shaped mounting plate 21 and is connected to a drive shaft 23. Multiple limit strips 24 are fixedly mounted on the drive shaft 23. The grinding wheel 2 is fixedly connected to the drive shaft 23 by bolts. Multiple nozzles 25 are arranged around the periphery of the grinding wheel 2. A liquid transfer chamber 26 communicating with the nozzles 25 is opened on the mounting block 5. A liquid inlet is opened on one side of the liquid transfer chamber 26. 27. Specifically, in this utility model, through the design of the grinding component, the operator only needs to start the drive motor 22 to drive the grinding wheel 2 to rotate, so that the grinding wheel 2 can grind the edges of the glass. The three-axis adjustment mechanism is controlled to start, so that the high-speed rotating grinding wheel 2 can feed along the edge of the glass to complete the chamfering process of the glass edge. Through the design of the limit strip 24, the drive shaft 23 can normally drive the grinding wheel 28 to rotate, so that the grinding wheel 28 can move radially or rotate, thereby ensuring the normal use of the grinding mechanism.

[0038] It should be noted that in this utility model, a liquid inlet 27 is provided with a liquid delivery pipe, and the other end of the liquid delivery pipe is connected to an external liquid pump and a liquid storage tank. This design ensures a continuous liquid supply to the nozzle 25, so that the nozzle 25 can continuously spray liquid to cool the glass during the glass grinding and chamfering process, so as to avoid micro-cracks or surface damage to the glass due to excessive temperature during the grinding process, and effectively improve the practical performance of the device.

[0039] Reference Figure 5-7The abrasive wheel 2 is divided into abrasive wheel one 28 and abrasive wheel two 29. Abrasive sleeves 30 are movably mounted inside both abrasive wheel one 28 and abrasive wheel two 29. Multiple guide limiting blocks 31 are fixedly mounted on the outer side of the abrasive sleeves 30. Guide limiting grooves 32 matching the guide limiting blocks 31 are formed inside both abrasive wheel one 28 and abrasive wheel two 29. Abrasive wheel one 28 is movably mounted on the drive shaft 23, and abrasive wheel two 29 is fixedly mounted on the drive shaft 23 by bolts. A ring-shaped connecting rod is rotatably connected to the top of abrasive wheel one 28. The connecting sleeve 33 has an annular locking block 34 fixedly mounted on the grinding wheel 2. Multiple ball bearings 35 are rotatably connected to the outer side of the annular locking block 34. The annular connecting sleeve 33 has a groove 36 that matches the annular locking block 34 and the ball bearings 35. Specifically, in this utility model, through the design of the adjustment component, when the operator needs to process glass of different thicknesses, only the drive motor 39 needs to be activated to raise the grinding wheel 28, thereby increasing the area of ​​the grinding sleeve 30 exposed between the grinding wheel 28 and the grinding wheel 29. After grinding wheels 28 and 29 abut against the upper and lower edges of the glass respectively, the drive motor 39 is stopped, and the three-axis adjustment mechanism and grinding components are controlled to chamfer the edges of the glass. This eliminates the need for workers to repeatedly disassemble and replace grinding wheels 2 depending on the thickness of the glass being processed, effectively improving the efficiency of glass grinding. Through the design of the guide limit block 31 and guide limit groove 32, the grinding sleeve 30 is prevented from falling off from grinding wheels 28 and 29, allowing it to follow the grinding wheels 28 and 29. The high-speed rotation of wheel 29 completes the grinding of the glass edges, effectively ensuring the normal operation of the device. Through the design of the annular locking block 34, the ball bearing 35 and the slot 36, the grinding wheel 28 can be rotatably mounted on the annular connecting sleeve 33. This ensures that the grinding wheel 28 can rotate with the drive shaft 23, while the annular connecting sleeve 33 drives the grinding wheel 28 to move radially. This allows the grinding wheel 28, the grinding wheel 29 and the grinding sleeve 30 to grind and chamfer glass of different thicknesses, effectively improving the efficiency of glass grinding.

[0040] Reference Figure 4-6The annular connecting sleeve 33 has L-shaped connecting blocks 37 bolted to both sides. One of the L-shaped connecting blocks 37 has an adjusting screw 38 threaded to its center. One end of the adjusting screw 38 is rotatably connected to the inner wall of the mounting block 5, and the other end is fixedly connected to a drive motor 39. Multiple ball bearings 40 are rotatably connected to the periphery of the other L-shaped connecting block 37. The mounting block 5 has a groove 41 that matches the ball bearings 40. Specifically, in this invention, the L-shaped connecting block 37, adjusting screw 38, drive motor 39, ball bearings 40, and groove 41 are designed... The design allows operators to control the adjustment screw 38 to rotate simply by starting the drive motor 39. This causes the L-shaped connecting block 37 threaded onto the adjustment screw 38 to move the annular connecting sleeve 33 and the first grinding wheel 28. During this process, another L-shaped connecting block 37 moves on the groove 41 via the second ball bearing 40, thereby adjusting the distance between the first grinding wheel 28 and the second grinding wheel 29. This allows the grinding wheel 2 to grind and chamfer glass of different thicknesses, eliminating the need for operators to repeatedly disassemble and replace the grinding wheel 2 depending on the thickness of the glass to be processed, thus effectively improving the practicality of the device.

[0041] When chamfering glass of different thicknesses is required, the operator only needs to use the three-axis adjustment mechanism to move the first grinding wheel 28, the second grinding wheel 29, and the grinding sleeve 30 to one side of the glass to be processed. Then, the drive motor 39 is started, causing the adjusting screw 38 to rotate. This causes the annular connecting sleeve 33 threaded on the adjusting screw 38 to move the first grinding wheel 28 upward. During this process, the grinding sleeve 30, which is movably engaged in the first grinding wheel 28 and the second grinding wheel 29, will gradually expand its exposed area. After the bottom of the first grinding wheel 28 is higher than the top of the glass to be processed, the drive motor 39 is stopped, and then the three-axis adjustment mechanism is used to move the grinding wheel 28 upward. The adjusting mechanism drives the second grinding wheel 29 to abut against the bottom side of the glass to be processed, so that the second grinding wheel 29 and the grinding sleeve 30 abut against the outer edge of the glass to be processed. Then, the drive motor 39 is started again, so that the adjusting screw 38 drives the annular connecting sleeve 33 and the first grinding wheel 28 to move down and gradually move towards the top of the glass to be processed. During this process, the friction sleeves that are movably locked in the first grinding wheel 28 and the second grinding wheel 29 will gradually reduce the exposed area. When the first grinding wheel 28 abuts against the top of the glass to be processed, the drive motor 39 is stopped, so that the grinding wheel 2 can be chamfered on glass of different thicknesses.

[0042] The glass chamfering device provided by this utility model is used as follows:

[0043] When chamfering glass, the operator simply places the glass to be processed on the glass suction cup 3. Then, the control center 6 controls the vacuum pump to extract the air between the glass suction cup 3 and the glass, creating a negative pressure that firmly adheres the glass to the glass suction cup 3. The control system then activates the three-axis adjustment mechanism, moving the grinding wheel 2 to one side of the glass. The drive motor 22 then starts, rotating the grinding wheel 2. Simultaneously, the nozzle 25 opens, and the externally connected inlet pump 27 starts to pump the stored liquid. The liquid stored in the tank is continuously supplied to the nozzle 25, which then sprays it onto the surface of the glass. The three-axis adjustment mechanism then drives the grinding wheel 2 to feed along the edge of the glass to complete the chamfering process. During this process, the nozzle 25 continuously sprays liquid to cool the glass, and the cleaning brush 8 continuously sweeps away glass debris adhering to the glass surface. Then, the grinding mechanism is reset, and the vacuum pump controls the suction cup to quickly depressurize. Finally, the operator removes the chamfered glass from the glass suction cup 3, thus completing the chamfering process.

[0044] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the present utility model to specific implementations. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the present utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A glass processing beveling device, comprising a beveling device body (1) and a grinding wheel (2), characterized in that, The interior of the chamfering equipment body (1) is evenly distributed with multiple glass suction cups (3) for fixing and adsorbing the glass. The top of the chamfering equipment body (1) is provided with a three-axis adjustment mechanism for adjusting the position of the grinding wheel (2). The three-axis adjustment mechanism includes a mounting frame (4) and a mounting block (5). The mounting frame (4) is slidably disposed on the top of the chamfering equipment body (1). The mounting block (5) is slidably disposed on the mounting frame (4). The interior of the mounting block (5) is provided with a grinding mechanism for controlling the grinding wheel (2). A control center (6) for controlling the glass processing chamfering equipment is provided on one side of the chamfering equipment body (1).

2. The glass processing chamfering equipment according to claim 1, characterized in that, The three-axis adjustment mechanism includes a longitudinal axis adjustment component, a transverse axis adjustment component, and a vertical axis adjustment component. The longitudinal axis adjustment component includes a slide rail (7) located on both sides of the chamfering equipment body (1). The mounting frame (4) is slidably mounted on the slide rail. The bottom of the mounting frame (4) is provided with a cleaning brush (8) for cleaning glass grinding debris. A drive motor (9) is fixedly mounted on one side of the mounting frame (4). The output end of the drive motor (9) passes through the mounting frame (4) and is connected to a drive gear (10). The slide rail (7) has a rack (11) that meshes with the drive gear (10) on one side. The horizontal axis adjustment assembly includes a slide rail (12) that is fixedly mounted on one side of the mounting frame (4). The mounting block (5) is slidably mounted on the slide rail. A drive motor (14) is fixedly mounted on the back of the mounting block (5). The output end of the drive motor (14) passes through the mounting block (5) and is connected to the drive gear. A rack (15) that meshes with the drive gear is fixedly mounted on the mounting frame (4).

3. The glass processing chamfering equipment according to claim 2, characterized in that, The vertical axis adjustment assembly includes multiple sprockets (16) rotatably disposed inside the mounting block (5), with a chain (17) meshing on the outside of the multiple sprockets (16), and a rotating shaft (18) fixedly connected between the two sprockets (16) located at the bottom. A drive motor (19) for driving the sprocket (16) is fixedly connected to one side of one of the sprockets (16). Multiple connecting pieces (20) are fixedly disposed on the chain (17), and an L-shaped mounting plate (21) is fixedly connected to the side of the connecting piece (20) away from the chain (17).

4. A glass processing chamfering device according to claim 3, characterized in that, The grinding mechanism includes a grinding component and an adjustment component. The grinding component includes a drive motor four (22) fixedly mounted on the L-shaped mounting plate (21). The output end of the drive motor four (22) passes through the L-shaped mounting plate (21) and is connected to a drive shaft (23). Multiple limit strips (24) are fixedly mounted on the drive shaft (23). The grinding wheel (2) is fixedly mounted on the drive shaft (23) by bolts. Multiple nozzles (25) are arranged around the grinding wheel (2). A liquid transfer chamber (26) communicating with the nozzles (25) is opened on the mounting block (5). A liquid inlet (27) is opened on one side of the liquid transfer chamber (26).

5. A glass processing chamfering device according to claim 4, characterized in that, The abrasive wheel (2) is divided into abrasive wheel one (28) and abrasive wheel two (29). Abrasive sleeves (30) are movably mounted inside abrasive wheel one (28) and abrasive wheel two (29). Multiple guide limiting blocks (31) are fixedly mounted on the outside of abrasive sleeves (30). Guide limiting grooves (32) matching the guide limiting blocks (31) are opened inside abrasive wheel one (28) and abrasive wheel two (29). Abrasive wheel one (28) is movably mounted on a drive. On the shaft (23), the second grinding wheel (29) is fixedly mounted on the drive shaft (23) by bolt connection. The top end of the first grinding wheel (28) is rotatably connected to an annular connecting sleeve (33). An annular locking block (34) is fixedly mounted on the grinding wheel (2). Multiple first balls (35) are rotatably connected to the outer side of the annular locking block (34). The annular connecting sleeve (33) is provided with a slot (36) that matches the annular locking block (34) and the first balls (35).

6. A glass processing chamfering device according to claim 5, characterized in that, The two sides of the annular connecting sleeve (33) are connected by bolts to L-shaped connecting blocks (37). One of the L-shaped connecting blocks (37) is threaded with an adjusting screw (38) in the middle. One end of the adjusting screw (38) is rotatably connected to the inner wall of the mounting block (5). The other end of the adjusting screw (38) is fixedly connected to a drive motor (39). The other L-shaped connecting block (37) is rotatably connected with multiple ball bearings (40). The mounting block (5) is provided with a groove (41) that matches the ball bearings (40).