A polishing machine for processing microcrystalline glass
By setting up a rotary drive component and an air blowing component on the microcrystalline glass polishing machine, crystal debris and dust during the polishing process are automatically cleaned, solving the problems of low efficiency and poor results caused by manual cleaning, and achieving high-efficiency polishing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- FOSHAN SHENGXIAO GLASS PROD CO LTD
- Filing Date
- 2025-08-27
- Publication Date
- 2026-07-24
AI Technical Summary
Existing microcrystalline glass polishing machines require manual cleaning of crystal debris and dust during the polishing process, resulting in low polishing efficiency and affecting the polishing effect.
A polishing machine with a rotary drive component and an air blowing component was designed. The rotary drive component drives the polishing disc to rotate, and the air blowing component cleans the crystal debris and dust around the polishing disc, thus achieving automatic cleaning.
No manual cleaning is required, which improves polishing efficiency and ensures polishing effect, thus enhancing the practical application value of the polishing machine.
Smart Images

Figure CN224544181U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of microcrystalline glass polishing machines, specifically a polishing machine for microcrystalline glass processing. Background Technology
[0002] Microcrystalline glass is a composite material composed of a crystalline phase and a glassy phase. During the processing of microcrystalline glass, cutting and carving processes leave a layer of mechanical damage, which requires mechanical polishing to restore its surface smoothness. During the polishing process of microcrystalline glass, a large amount of crystal debris and dust are generated. If not cleaned in time, it will affect the polishing effect. However, the polishing machines used for microcrystalline glass processing in the current technology can only polish microcrystalline glass and do not have other functions such as cleaning crystal debris and dust. Therefore, it is necessary to continuously clean the surface of microcrystalline glass by hand during the polishing process. This operation method not only reduces the polishing efficiency, but also affects the polishing effect if not cleaned in time, which is not conducive to practical application.
[0003] Therefore, those skilled in the art provide a polishing machine for processing microcrystalline glass to solve the problems mentioned in the background art. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides a polishing machine for microcrystalline glass processing, which solves the problem mentioned in the background art that existing microcrystalline glass polishing machines require constant manual cleaning of the microcrystalline glass surface during the polishing process. This operation method not only reduces polishing efficiency, but also affects the polishing effect if cleaning is not done in time.
[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a polishing machine for microcrystalline glass processing, comprising a U-shaped plate, a rotating tube rotatably connected to the top of the U-shaped plate, the bottom of the rotating tube extending to the bottom of the U-shaped plate and fixedly connected to a polishing disc, a guide groove being formed inside the polishing disc, the bottom of the rotating tube extending to the inside of the guide groove and communicating with the inside of the guide groove, and L-shaped air blowing pipes fixedly connected at equal intervals around the polishing disc, the air blowing pipes communicating with the inside of the guide groove; A rotary drive assembly is provided at the top of the U-shaped plate and on one side of the rotating tube. An air blowing assembly is also provided at one end of the top of the U-shaped plate. The rotary drive assembly is used to drive the rotating tube and polishing disc to rotate on the one hand, and to drive the air blowing assembly to operate on the other hand.
[0006] The above technical solution utilizes a rotating drive component to rotate the polishing disc, which in turn drives the air blowing component to operate. The air blowing component continuously cleans the crystal debris and dust generated around the polishing disc, eliminating the need for manual cleaning. This not only improves the polishing efficiency of microcrystalline glass but also ensures the polishing effect, which is beneficial for practical applications.
[0007] Preferably, the rotary drive assembly includes a motor, a drive gear, a driven gear, a cam, and a rotary joint. The motor is fixedly mounted on the top of the U-shaped plate and located on one side of the rotating tube. The drive gear is fixedly mounted on the output shaft of the motor. The driven gear is fixedly mounted on the outside of the rotating tube and meshes with the drive gear. The cam is fixedly connected to the outside of the rotating tube and located above the driven gear. The rotary joint is fixedly connected to the top of the rotating tube.
[0008] The above technical solution utilizes the operation of the motor to drive the drive gear to rotate. Through the meshing between the driven gear and the drive gear, the drive gear can rotate when it rotates, thereby driving the rotating tube to rotate. The rotation of the rotating tube can drive the polishing disc to rotate, thus enabling the polishing operation to be performed using the polishing disc.
[0009] Preferably, the air blowing assembly includes an air blowing box, a T-shaped rod, a contact plate, a spring, an intake pipe, and an exhaust pipe. The air blowing box is fixedly connected to one end of the top of the U-shaped plate. The T-shaped rod is slidably connected inside the air blowing box, with one end extending to the outside of the air blowing box. The contact plate is fixedly connected to the end of the T-shaped rod located on the outside of the air blowing box, and the contact plate contacts the outside of the cam. The spring is fixedly connected between the contact plate and the outside of the air blowing box, and the spring is located on the outside of the T-shaped rod. The intake pipe is fixedly connected to the outside of the air blowing box. One end of the exhaust pipe is fixedly connected to the outside of the air blowing box and located on one side of the intake pipe. The other end of the exhaust pipe is fixedly connected to the top of the rotary joint.
[0010] With the above technical solution, when the rotating tube rotates, it can drive the cam to rotate. Due to the elastic force of the spring, the contact plate is always in contact with the outer side of the cam. Thus, when the cam rotates, it can push the contact plate and the T-shaped rod to move, thereby realizing the blowing action. At the same time, under the elastic force of the spring, the contact plate and the T-shaped rod can automatically return to their original positions, thereby realizing the suction action.
[0011] Preferably, two fixing holes are provided at one end of the top of the U-shaped plate.
[0012] The above technical solution allows the U-shaped plate to be installed in a designated position using two fixing holes.
[0013] Preferably, a first filter screen is fixedly connected inside each of the air blowing pipes, and a second filter screen is fixedly connected inside each of the air suction pipes.
[0014] Through the above technical solution, the first filter screen can prevent crystal debris and dust from entering the interior of the guide channel through the air blowing pipe, while the second filter screen can prevent crystal debris and dust from entering the interior of the air blowing box through the air suction pipe.
[0015] Preferably, the ratio of the diameter of the driven gear to the diameter of the driving gear is 1:2.
[0016] The above technical solution facilitates increasing the rotation speed, thereby ensuring the effectiveness of the equipment.
[0017] This utility model provides a polishing machine for processing microcrystalline glass, which has the following beneficial effects: This polishing machine for microcrystalline glass processing uses a rotary drive component to rotate the polishing disc, which in turn drives the air blowing component to operate. The air blowing component continuously cleans the crystal debris and dust generated around the polishing disc, eliminating the need for manual cleaning. This not only improves the polishing efficiency of microcrystalline glass but also ensures the polishing effect, which is beneficial for practical applications. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the external structure of this utility model.
[0019] Figure 2 This is a cross-sectional structural diagram of the present invention.
[0020] Figure 3 This is a schematic diagram of the rotary drive assembly structure of this utility model.
[0021] Figure 4 This is a schematic diagram of the air blowing component structure of this utility model.
[0022] In the diagram: 1. U-shaped plate; 2. Rotating tube; 3. Polishing disc; 4. Guide channel; 5. Air blowing pipe; 6. Motor; 7. Drive gear; 8. Driven gear; 9. Cam; 10. Rotary joint; 11. Air blowing box; 12. T-shaped rod; 13. Contact plate; 14. Spring; 15. Intake pipe; 16. Exhaust pipe; 17. Fixing hole; 18. First filter screen; 19. Second filter screen. Detailed Implementation
[0023] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.
[0024] Reference Figures 1-4This utility model provides a polishing machine for microcrystalline glass processing, including a U-shaped plate 1. Two fixing holes 17 are provided at one end of the top of the U-shaped plate 1, allowing the U-shaped plate 1 to be installed in a designated position. A rotating tube 2 is rotatably connected to the top of the U-shaped plate 1. The bottom of the rotating tube 2 extends to the bottom of the U-shaped plate 1 and is fixedly connected to a polishing disc 3. Rotation of the rotating tube 2 drives the polishing disc 3 to rotate. A guide groove 4 is provided inside the polishing disc 3. The bottom of the rotating tube 2 extends into and communicates with the inside of the guide groove 4, allowing gas inside the rotating tube 2 to enter the guide groove 4. L-shaped air blowing pipes 5 are fixedly connected at equal intervals around the polishing disc 3. The air blowing pipes 5 communicate with the inside of the guide groove 4, allowing gas inside the rotating tube 2 to flow into the air blowing pipes 5 and be blown out. Each air blowing pipe 5 is fixedly connected to a first filter screen 18, which can prevent crystal fragments and dust from entering the interior of the guide groove 4 through the air blowing pipe 5.
[0025] In one aspect of this embodiment, a rotary drive assembly is provided at the top of the U-shaped plate 1 and on one side of the rotating tube 2. The rotary drive assembly includes a motor 6, a driving gear 7, a driven gear 8, a cam 9, and a rotary joint 10. The motor 6 is fixedly mounted at the top of the U-shaped plate 1 and on one side of the rotating tube 2. The driving gear 7 is fixedly mounted on the output shaft of the motor 6, and the operation of the motor 6 drives the driving gear 7 to rotate. The driven gear 8 is fixedly mounted on the outside of the rotating tube 2 and meshes with the driving gear 7. Through the meshing between the driven gear 8 and the driving gear 7, the rotation of the driving gear 7 drives the driven gear 8 to rotate, thereby driving the rotating tube 2 to rotate. The diameter ratio of the driven gear 8 to the driving gear 7 is 1:2, which facilitates increasing the rotation speed and thus ensuring the effectiveness of the equipment. The cam 9 is fixedly connected to the outside of the rotating tube 2 and located above the driven gear 8. The rotation of the rotating tube 2 drives the cam 9 to rotate. The rotary joint 10 is fixedly connected to the top of the rotating pipe 2. The rotary joint 10 is a pipe joint that can rotate at both ends. It is existing technology and does not need to be described in detail.
[0026] In one aspect of this embodiment, an air blowing assembly is also provided at one end of the top of the U-shaped plate 1. The rotary drive assembly is used to drive the rotating tube 2 and the polishing disc 3 to rotate, and also to drive the air blowing assembly to operate. The air blowing assembly includes an air blowing box 11, a T-shaped rod 12, a contact plate 13, a spring 14, an air intake pipe 15, and an exhaust pipe 16. The air blowing box 11 is fixedly connected to one end of the top of the U-shaped plate 1. The T-shaped rod 12 is slidably connected inside the air blowing box 11, and the end of the T-shaped rod 12 inside the air blowing box 11 is a piston plate. The air intake and air blowing actions are achieved by pulling and drawing the air inside the air blowing box 11. One end of the T-shaped rod 12 extends to the outside of the air-blowing box 11. The contact plate 13 is fixedly connected to the end of the T-shaped rod 12 located on the outside of the air-blowing box 11. The contact plate 13 is in contact with the outside of the cam 9. The spring 14 is fixedly connected between the contact plate 13 and the outside of the air-blowing box 11. The spring 14 is located on the outside of the T-shaped rod 12. By utilizing the action of the spring 14, the contact plate 13 is always in contact with the outside of the cam 9. Thus, when the cam 9 rotates, it can push the contact plate 13 and the T-shaped rod 12 to move, thereby realizing the blowing action. At the same time, under the elastic force of the spring 14, the contact plate 13 and the T-shaped rod 12 can automatically return to their original positions, thereby realizing the suction action. The suction pipe 15 is fixedly connected to the outside of the air blowing box 11. A second filter 19 is fixedly connected inside the suction pipe 15. The suction pipe 15 draws outside air into the air blowing box 11, while the second filter 19 prevents crystal debris and dust from entering the air blowing box 11 through the suction pipe 15. One end of the exhaust pipe 16 is fixedly connected to the outside of the air blowing box 11 and located to one side of the suction pipe 15. The other end of the exhaust pipe 16 is fixedly connected to the top of the rotary joint 10. The rotary joint 10 prevents the exhaust pipe 16, which is connected to its interior, from rotating during the rotation of the rotating tube 2. At the same time, the exhaust pipe 16 guides the gas discharged from the air blowing box 11 into the interior of the rotating tube 2.
[0027] Working principle: In use, first install the device in the designated position through the fixing hole 17. Then, power on the motor 6 and align the polishing disc 3 with the area on the microcrystalline glass that needs polishing.
[0028] The operation of motor 6 drives the drive gear 7 to rotate. Through the meshing between the driven gear 8 and the drive gear 7, the drive gear 7 rotates, which in turn drives the rotating tube 2 to rotate. The rotation of the rotating tube 2 drives the polishing disc 3 to rotate, thereby achieving the polishing operation using the polishing disc 3.
[0029] At the same time, when the rotating tube 2 rotates, it can drive the cam 9 to rotate. Due to the elastic force of the spring 14, the contact plate 13 is always in contact with the outer side of the cam 9. Thus, when the cam 9 rotates, it can push the contact plate 13 and the T-shaped rod 12 to move, thereby realizing the blowing action. At the same time, under the elastic force of the spring 14, the contact plate 13 and the T-shaped rod 12 can automatically return to their original positions, thereby realizing the suction action.
[0030] During the suction operation, the suction pipe 15 draws outside air into the air blowing box 11. During the blowing operation, the exhaust pipe 16 guides the gas discharged from the air blowing box 11 into the rotating pipe 2, allowing the gas to enter the guide groove 4 and finally be blown out through the air blowing pipe 5. This cleans up the crystal debris and dust generated around the polishing disc 3, eliminating the need for manual cleaning. This not only improves the polishing efficiency of the microcrystalline glass but also ensures the polishing effect, which is beneficial for practical applications.
[0031] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A polishing machine for processing microcrystalline glass, comprising a U-shaped plate (1), characterized in that, The top of the U-shaped plate (1) is rotatably connected to a rotating tube (2), the bottom of the rotating tube (2) extends to the bottom of the U-shaped plate (1) and is fixedly connected to a polishing disc (3), the inside of the polishing disc (3) is provided with a guide groove (4), the bottom of the rotating tube (2) extends to the inside of the guide groove (4) and communicates with the inside of the guide groove (4), and L-shaped air blowing pipes (5) are fixedly connected at equal intervals around the polishing disc (3), and the air blowing pipes (5) communicate with the inside of the guide groove (4); A rotary drive assembly is provided on the top of the U-shaped plate (1) and on one side of the rotating tube (2). An air blowing assembly is also provided at one end of the top of the U-shaped plate (1). The rotary drive assembly is used to drive the rotating tube (2) and the polishing disc (3) to rotate on one hand, and to drive the air blowing assembly to operate on the other hand.
2. The polishing machine for processing microcrystalline glass according to claim 1, characterized in that: The rotary drive assembly includes a motor (6), a drive gear (7), a driven gear (8), a cam (9), and a rotary joint (10). The motor (6) is fixedly mounted on the top of the U-shaped plate (1) and located on one side of the rotating tube (2). The drive gear (7) is fixedly mounted on the output shaft of the motor (6). The driven gear (8) is fixedly mounted on the outside of the rotating tube (2) and meshes with the drive gear (7). The cam (9) is fixedly connected to the outside of the rotating tube (2) and located above the driven gear (8). The rotary joint (10) is fixedly connected to the top of the rotating tube (2).
3. The polishing machine for microcrystalline glass processing according to claim 2, characterized in that: The air blowing assembly includes an air blowing box (11), a T-shaped rod (12), a contact plate (13), a spring (14), an air intake pipe (15), and an exhaust pipe (16). The air blowing box (11) is fixedly connected to one end of the top of the U-shaped plate (1). The T-shaped rod (12) is slidably connected inside the air blowing box (11), with one end of the T-shaped rod (12) extending to the outside of the air blowing box (11). The contact plate (13) is fixedly connected to the end of the T-shaped rod (12) located outside the air blowing box (11). The contact plate (13) contacts the outer side of the cam (9), the spring (14) is fixedly connected between the contact plate (13) and the outer side of the air box (11), the spring (14) is located on the outer side of the T-shaped rod (12), the air intake pipe (15) is fixedly connected to the outer side of the air box (11), one end of the exhaust pipe (16) is fixedly connected to the outer side of the air box (11) and located on one side of the air intake pipe (15), and the other end of the exhaust pipe (16) is fixedly connected to the top of the rotary joint (10).
4. The polishing machine for processing microcrystalline glass according to claim 1, characterized in that: Two fixing holes (17) are provided at one end of the top of the U-shaped plate (1).
5. The polishing machine for processing microcrystalline glass according to claim 3, characterized in that: The inside of each of the blowing pipes (5) is fixedly connected to a first filter screen (18), and the inside of each of the suction pipes (15) is fixedly connected to a second filter screen (19).
6. The polishing machine for processing microcrystalline glass according to claim 2, characterized in that: The ratio of the diameter of the driven gear (8) to the diameter of the driving gear (7) is one to two.