Glass roller outer surface polishing device
An improved polishing device, which incorporates a lathe base, drive unit, and other components on the conveyor rollers of a glass annealing furnace, has solved the problem of controlling the surface roughness of the conveyor rollers, achieving efficient polishing, reducing costs, and minimizing deformation.
Patent Information
- Application Number
- CN202520203295.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-10
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-02-10
AI Technical Summary
The surface roughness of existing glass annealing furnace conveyor rollers is difficult to control. Grinding with a grinding machine or polishing with a belt sander is inefficient and costly, and can easily lead to roller deformation.
It adopts a combination of lathe base, drive unit, three-jaw chuck, tailstock center, longitudinal and transverse moving mechanism, mounted motor and blade assembly, and improves the polishing structure of the original lathe to achieve longitudinal and transverse polishing, and controls the feed rate to reduce deformation.
It improves the polishing efficiency of glass rollers and steel rollers, reduces grinding costs, and enhances surface finish.
Smart Images

Figure CN223762936U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of glass roller polishing technology, and specifically relates to a glass roller outer surface polishing device. Background Technology
[0002] The conveyor rollers of a glass annealing furnace are an important part of the furnace used for conveying glass. They consist mainly of a series of rollers, which are designed and made of specific materials to ensure stable operation at high temperatures without scratching or damaging the glass. The surface roughness of the conveyor rollers in a glass annealing furnace is required to be Ra0.1-0.4. Most methods used are grinding with a grinding machine or polishing with a belt abrasive, which are inefficient, costly, and lack control over the feed rate, easily leading to deformation. Therefore, there is an urgent need for a glass roller outer surface polishing device to solve these problems. Utility Model Content
[0003] In view of the problems mentioned above in the background art, the purpose of this utility model is to provide a glass roller outer surface polishing device.
[0004] To achieve the above-mentioned technical objectives, the technical solution adopted by this utility model is as follows:
[0005] A glass roller outer surface polishing device includes a lathe base, a drive device mounted on one side of the top of the lathe base, a three-jaw chuck connected to the power output end of the drive device, a tailstock ejector pin mounted on the other side of the top of the lathe base, a longitudinal moving mechanism mounted inside the lathe base, a transverse moving mechanism connected to the longitudinal moving mechanism, a connecting bracket connected to the transverse moving mechanism, a mounted motor mounted on the top of the connecting bracket, and a blade connected to the power output end of the mounted motor.
[0006] Further specifying, the longitudinal moving mechanism includes a longitudinal mounting housing installed within the lathe base. A servo motor is installed within the longitudinal mounting housing, and the power output end of the servo motor is connected to a longitudinal lead screw. Longitudinal lead screw bearings are installed on both sides of the longitudinal lead screw, and these bearings are installed within the longitudinal mounting housing. A longitudinal nut moving seat is connected to the longitudinal lead screw bearings, and the top of the longitudinal nut moving seat is installed at the bottom of the transverse moving mechanism. This structural design facilitates electric control to drive the blades to move longitudinally.
[0007] Further specifying, the lateral movement mechanism includes a lateral mounting shell installed on top of the longitudinal nut moving seat. Lateral lead screw bearings are mounted on both sides of the lateral mounting shell, and a lateral lead screw is installed between the two lateral lead screw bearings. An adjusting wheel is connected to one side of the lateral lead screw, and the adjusting wheel is rotatably disposed outside the lateral mounting shell. The lateral lead screw is connected to the lateral nut moving seat, and a locking plate is installed on the top of the lateral nut moving seat. The locking plate is installed at the bottom of the connecting bracket. This structural design facilitates manual adjustment of the lateral displacement of the blades.
[0008] Furthermore, the bottom of the connecting bracket is equipped with locking bolts on all four sides, and the locking plate has locking holes at the corresponding locking bolts. The bottom of the mounted motor is equipped with fixing screws on all four sides. The bottom of each fixing screw penetrates the top of the connecting bracket and extends to the lower side. A fixing nut is connected to the bottom of each fixing screw, and the fixing nut is pressed and locked onto the lower top of the connecting bracket. This structural design improves the connection and fixation effect.
[0009] Furthermore, the power output end of the mounted motor is connected to a mounting base, the blades are mounted on the mounting base, a fixing plate is mounted on the outer side of the mounting base, the fixing plate presses against the blades, and fixing screws are mounted on the fixing plate and locked onto the mounting base. This structure facilitates the positioning and installation of the blades.
[0010] The beneficial effects of this utility model are as follows: This utility model uses a lathe base, drive device, three-jaw chuck, tailstock ejector, longitudinal moving mechanism, transverse moving mechanism, connecting bracket, mounted motor and blade in combination. It utilizes the original lathe, adds a polishing structure, realizes longitudinal polishing, and can control the feed rate, reduce deformation, thereby improving polishing efficiency, reducing grinding costs and the difficulty of processing glass rollers and steel rollers with high surface finish requirements. Attached Figure Description
[0011] This utility model can be further illustrated by the non-limiting embodiments given in the accompanying drawings;
[0012] Figure 1 This is a front structural diagram of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0013] Figure 2 This is a partial side view of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0014] Figure 3 This is a schematic diagram of the axial structure of the moving mechanism of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0015] Figure 4This is a schematic cross-sectional view of the longitudinal moving mechanism of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0016] Figure 5 This is a cross-sectional schematic diagram of the transverse moving mechanism of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0017] Figure 6 This is an enlarged structural diagram of point A of a glass roller outer surface polishing device according to an embodiment of the present invention;
[0018] The symbols for the main components are explained below:
[0019] 1. Lathe base; 2. Drive unit; 3. Three-jaw chuck; 4. Tailstock center; 5. Longitudinal movement mechanism; 6. Transverse movement mechanism; 7. Connecting bracket; 8. Mounted motor; 9. Blade; 10. Longitudinal mounting housing; 11. Servo motor; 12. Longitudinal lead screw; 13. Longitudinal lead screw bearing; 14. Longitudinal nut moving seat; 15. Transverse mounting housing; 16. Transverse lead screw bearing; 17. Adjusting wheel; 18. Transverse nut moving seat; 19. Locking plate; 20. Locking bolt; 21. Lock hole; 22. Fixing screw; 23. Fixing nut; 24. Assembly seat; 25. Fixing plate; 26. Fixing screw; 27. Glass roller / steel roller; 28. Detailed Implementation
[0020] To enable those skilled in the art to better understand this utility model, the technical solution of this utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0021] Example 1, as Figure 1 , Figure 2 and Figure 3 As shown, a glass roller outer surface polishing device includes a drive device 2 installed on one side of the top of a lathe base 1, a three-jaw chuck 3 connected to the power output end of the drive device 2, a tailstock ejector pin 4 installed on the other side of the top of the lathe base 1, a longitudinal moving mechanism 5 installed inside the lathe base 1, a transverse moving mechanism 6 connected to the longitudinal moving mechanism 5, a connecting bracket 7 connected to the transverse moving mechanism 6, a mounted motor 8 installed on the top of the connecting bracket 7, and a blade 9 connected to the power output end of the mounted motor 8.
[0022] In this embodiment, during use, one side of the glass roller / steel roller 28 is mounted on the three-jaw chuck 3 and fixed by the three-jaw chuck 3, while the other side is clamped and fixed by the tailstock pin 4. During use, the drive device 2 drives the three-jaw chuck 3, which drives the glass roller / steel roller 28 to rotate at high speed. At the same time, the mounting motor 8 is started, which drives the blade 9 to rotate at high speed. The longitudinal movement mechanism 5 realizes the automatic adjustment of the blade 9 in the longitudinal direction, realizing the longitudinal polishing of the glass roller / steel roller 28. The transverse movement mechanism 6 manually adjusts the feed of the blade 9 to control the feed amount, improve the use effect, and reduce the occurrence of deformation.
[0023] Example 2, as Figure 3 , Figure 4 and Figure 5 As shown, this embodiment adds the following structure based on embodiment 1: the longitudinal moving mechanism 5 includes a longitudinal mounting shell 10 installed in the lathe base 1, a servo motor 11 installed in the longitudinal mounting shell 10, a longitudinal lead screw 12 connected to the power output end of the servo motor 11, longitudinal lead screw bearings 13 installed on both sides of the longitudinal lead screw 12, the longitudinal lead screw bearings 13 installed in the longitudinal mounting shell 10, and a longitudinal nut moving seat 14 connected to the longitudinal lead screw bearings 13. The top of the longitudinal nut moving seat 14 is installed at the bottom of the transverse moving mechanism 6.
[0024] In this embodiment, during use, the servo motor 11 is controlled to drive the longitudinal lead screw 12 to rotate along the longitudinal lead screw bearing 13. The rotating longitudinal lead screw 12 drives the longitudinal nut moving seat 14 to move longitudinally, which in turn drives the transverse moving mechanism 6. The transverse moving mechanism 6 drives the connecting bracket 7. The connecting bracket 7 drives the seated motor 8. The seated motor 8 drives the blades 9 to move longitudinally, thereby realizing the automatic longitudinal polishing of the glass roller / steel roller 28.
[0025] Example 3, as Figure 3 , Figure 4 and Figure 5 As shown, this embodiment adds the following structure based on embodiment 1: the transverse moving mechanism 6 includes a transverse mounting shell 15 mounted on the top of the longitudinal nut moving seat 14, transverse lead screw bearings 16 mounted on both sides of the transverse mounting shell 15, a transverse lead screw 17 mounted between the two transverse lead screw bearings 16, an adjusting wheel 18 connected to one side of the transverse lead screw 17, the adjusting wheel 18 being rotatably disposed on the outside of the transverse mounting shell 15, the transverse lead screw 17 being connected to a transverse nut moving seat 19, a locking plate 20 mounted on the top of the transverse nut moving seat 19, and the locking plate 20 being mounted on the bottom of the connecting bracket 7.
[0026] In this embodiment, during use, the adjusting wheel 18 is manually adjusted to rotate, causing the adjusting wheel 18 to drive the transverse lead screw 17 to rotate along the transverse lead screw bearing 16. After the transverse lead screw 17 rotates, it drives the transverse nut moving seat 19 to move laterally. The transverse nut moving seat 19 then drives the connecting bracket 7, which in turn drives the seated motor 8. The seated motor 8 drives the blade 9 to move laterally, so as to control the feed rate, improve the polishing effect, and reduce the occurrence of deformation.
[0027] Example 4, as Figure 2 As shown, this embodiment adds the following structure based on embodiment 1: locking bolts 21 are installed on the four sides of the bottom of the connecting bracket 7, the locking plate 20 has locking holes 22 at the corresponding locking bolts 21, fixing screws 23 are installed on the four sides of the bottom of the mounting motor 8, the bottom of the fixing screws 23 passes through the top of the connecting bracket 7 and extends to the lower side, and fixing nuts 24 are connected to the bottom of the fixing screws 23. The fixing nuts 24 are locked and pressed against the lower side of the top of the connecting bracket 7.
[0028] In this embodiment, during installation, the bottom of the connecting bracket 7 is locked onto the locking plate 20 by the cooperation of the locking bolt 21 and the locking hole 22, so that the lateral moving mechanism 6 can drive the locking plate 20, and the locking plate 20 can drive the connecting bracket 7 to move. The top of the connecting bracket 7 is locked onto the mounting by the fixing screw 23 and the fixing nut 24, thereby realizing the fixed installation of the mounted motor 8 and ensuring the stable use of the mounted motor 8.
[0029] Example 5, as Figure 6 As shown, this embodiment adds the following structure based on embodiment 1: the power output end of the mounted motor 8 is connected to the mounting base 25, the blade 9 is mounted on the mounting base 25, the outer side of the mounting base 25 is mounted with a fixing plate 26, the fixing plate 26 is pressed on the blade 9, and a fixing screw 27 is mounted on the fixing plate 26, which is then locked onto the mounting base 25.
[0030] In this embodiment, during installation, the blade 9 is mounted on the mounting base 25, and a fixing plate 26 is installed on the outside of the mounting base 25 and locked with fixing screws 27, so that the fixing plate 26 can press against the side of the blade 9 to limit the installation of the blade 9 and improve the stability of the blade 9 in use.
[0031] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.
Claims
1. A glass roll outer surface polishing apparatus characterized by: The application relates to a lathe base (1), the top side of the lathe base (1) is provided with a driving device (2), the power output end of the driving device (2) is connected with a three-jaw chuck (3), the other top side of the lathe base (1) is provided with a tailstock tail pin (4), a longitudinal moving mechanism (5) is arranged in the lathe base (1), the longitudinal moving mechanism (5) is connected with a transverse moving mechanism (6), the transverse moving mechanism (6) is connected with a connecting support (7), the top of the connecting support (7) is provided with a bracket motor (8), the power output end of the bracket motor (8) is connected with a thousand-blade (9).
2. A device for polishing the outer surface of a glass roll as claimed in claim 1, wherein: The longitudinal moving mechanism (5) comprises a longitudinal installation shell (10) arranged in the lathe base (1), a servo motor (11) is arranged in the longitudinal installation shell (10), the power output end of the servo motor (11) is connected with a longitudinal screw rod (12), longitudinal screw rod bearings (13) are arranged on the two sides of the longitudinal screw rod (12), the longitudinal screw rod bearings (13) are arranged in the longitudinal installation shell (10), the longitudinal screw rod bearings (13) are connected with a longitudinal nut moving base (14), and the top of the longitudinal nut moving base (14) is arranged at the bottom of the transverse moving mechanism (6).
3. A device for polishing the outer surface of a glass roll as claimed in claim 2, wherein: The transverse moving mechanism (6) comprises a transverse installation shell (15) arranged at the top of the longitudinal nut moving base (14), transverse screw rod bearings (16) are arranged on the two sides of the transverse installation shell (15), a transverse screw rod (17) is arranged between the two transverse screw rod bearings (16), one side of the transverse screw rod (17) is connected with an adjusting rotating wheel (18), the adjusting rotating wheel (18) is arranged outside the transverse installation shell (15) in a rotating mode, the transverse screw rod (17) is connected with a transverse nut moving base (19), the top of the transverse nut moving base (19) is provided with a locking plate (20), and the locking plate (20) is arranged at the bottom of the connecting support (7).
4. A device for polishing the outer surface of a glass roll as set forth in claim 3, characterized in that: The bottom of the connecting support (7) is provided with locking bolts (21) on four sides, the locking plate (20) is provided with locking holes (22) corresponding to the locking bolts (21), the bottom of the bracket motor (8) is provided with fixing screws (23) on four sides, the bottom of the fixing screws (23) penetrates through the top of the connecting support (7) and extends to the lower side, the bottom of the fixing screws (23) is connected with fixing nuts (24), and the fixing nuts (24) are locked and pressed on the top of the connecting support (7) on the lower side.
5. A device for polishing the outer surface of a glass roll as defined in claim 4, characterized in that: The power output end of the bracket motor (8) is connected with an assembling seat (25), the thousand-blade (9) is arranged on the assembling seat (25), a fixing plate (26) is arranged outside the assembling seat (25), the fixing plate (26) is pressed on the thousand-blade (9), the fixing plate (26) is provided with a fixing screw (27), and the fixing screw (27) is locked and arranged on the assembling seat (25).