Edge grinding device for glass ceramic processing
The design of the support frame and gear system solves the problem of operators having to exert force for a long time when polishing microcrystalline glass, thus achieving stability and convenience for the operator.
Patent Information
- Application Number
- CN202422773481.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-14
AI Technical Summary
When using a grinding device to grind microcrystalline glass, the operator needs to exert force for a long time to push the microcrystalline glass to fit against the grinding wheel, which is laborious and unstable for the operator.
A grinding device for processing microcrystalline glass was designed. The support frame drives the tray and slider to slide in the groove, reducing the force required by the operator to push the microcrystalline glass. The device also enables convenient movement and position adjustment of the tray through a gear and threaded rod system.
It reduces the force required for the operator to push the microcrystalline glass, improves the operator's stability and convenience, and reduces the operator's labor intensity.
Smart Images

Figure CN223506865U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of edge grinding devices, and in particular relates to an edge grinding device for microcrystalline glass processing. Background Technology
[0002] Microcrystalline glass is a novel inorganic non-metallic material made from glass particles through sintering and crystallization. It possesses the dual properties of glass and ceramics. During the processing of microcrystalline glass, to reduce the sharp edges after cutting, an edge grinding device may be used to polish the edges, thereby reducing the sharpness. Microcrystalline glass edge grinding devices are specialized mechanical equipment for edge processing. They can precisely grind and polish microcrystalline glass to obtain smooth and neat edges. Therefore, existing edge grinding devices basically meet people's needs, but the following problems still exist.
[0003] When using a grinding device to grind microcrystalline glass, the operator places the microcrystalline glass on the table of the grinding machine and then pushes it to the grinding wheel. The grinding wheel then grinds the microcrystalline glass. However, when the grinding wheel grinds the microcrystalline glass, the operator may need to push the microcrystalline glass forcefully to make it contact the grinding wheel for effective grinding. When the operator pushes the microcrystalline glass and the grinding wheel to contact each other for a long time, it may be difficult for the operator to grind the microcrystalline glass. Therefore, we propose a grinding device for microcrystalline glass processing. Utility Model Content
[0004] This utility model provides an edge grinding device for processing microcrystalline glass. The operator pushes a support frame, which moves a pallet to support the microcrystalline glass. The operator then horizontally pushes the microcrystalline glass between the carrying plate and the pallet of the edge grinding equipment. The pallet supports the microcrystalline glass, eliminating the need for the operator to push it forcefully, reducing the force required to push the microcrystalline glass, and improving the stability of the operation.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a grinding device for microcrystalline glass processing, comprising a grinding equipment carrier plate, a support plate provided at the upper end of the grinding equipment carrier plate, and an avoidance groove provided inside the support plate, a roller provided in the middle of the avoidance groove, and a rotating rod passing through the middle of the roller, the rotating rod being slidably connected to the avoidance groove, support frames symmetrically fixed at both ends of the support plate, and a slider fixed on the side of the support frame that is in contact with the grinding equipment carrier plate, the surface of the slider being sleeved with a sliding groove opened at both ends of the grinding equipment carrier plate.
[0006] Furthermore, the edge grinding equipment has a housing fixed to the end of the carrying plate, and a second gear is provided in the middle of the housing. A connecting rod is fixed to the middle of the second gear and passes through the middle of the housing. A turntable is fixed to the end of the connecting rod. Third gears are symmetrically meshed on both sides of the connecting rod. A transmission rod is fixed to the middle of each third gear, and another third gear is fixed to the end of each transmission rod. The other third gear meshes with the first gear. A threaded rod passing through a slide groove is fixed to the middle of each first gear, and a slider passes through the middle of each threaded rod. The end of the threaded rod is rotatably connected to the inner wall of the slide groove.
[0007] Furthermore, each threaded rod end is fixed with a rotating block, and the surface of each rotating block is fitted with a rotating groove formed on the inner wall of the slide groove.
[0008] Furthermore, each of the transmission rods is fitted with a support sleeve in the middle, and both sides of the support sleeve are fixed to the inner wall of the housing.
[0009] Furthermore, both the connecting rod and the threaded rod are fitted with guide sleeves, which are fixed between the inner wall of the housing and the inner wall of the slide groove, respectively.
[0010] Furthermore, springs are symmetrically fixed at both ends of the rotating rod, and traction grooves are provided on the surface of the springs and opened on the inner wall of the clearance groove. Traction blocks are provided on the inner wall of the traction grooves and respectively abut against the spring surface and the inner wall of the traction groove.
[0011] The beneficial effects of this utility model are:
[0012] 1. The grinding device for processing microcrystalline glass is equipped with a support frame, a slider, a roller, and a support plate. After the operator pushes the support frame, the support frame drives the slider to slide in the groove, causing the support frame to drive the support plate to slide on the surface, so that the support plate supports the microcrystalline glass. Then the operator horizontally pushes the microcrystalline glass between the support plate and the grinding wheel. When the operator performs grinding, it is no longer necessary for the operator to push the microcrystalline glass with force, reducing the force required for the operator to push the microcrystalline glass and improving the stability of the operator's pushing.
[0013] 2. This edge-grinding device for microcrystalline glass processing is equipped with a turntable, a connecting rod, a second gear, a transmission rod, a third gear, a first gear, and a threaded rod. When the operator turns the turntable, the turntable drives the second gear to rotate via the connecting rod. The second gear drives the transmission rod to rotate via the third gear. The transmission rod drives the first gear to rotate via another third gear. The first gear drives the threaded rod to engage with the slider, allowing both sets of sliders to rotate simultaneously. This facilitates the simultaneous movement of the two sets of support frames on the edge-grinding equipment's worktable, improving the ease with which the support frames can move the pallet. Attached Figure Description
[0014] Figure 1This is a front view structural diagram of the present utility model;
[0015] Figure 2 This is a top view cross-sectional structural diagram of the present invention;
[0016] Figure 3 This is a top view of the structure of this utility model;
[0017] Figure 4 This is a top view cross-sectional structural diagram of the pallet of this utility model;
[0018] Figure 5 This is a front view cross-sectional structural diagram of the pallet of this utility model.
[0019] In the picture:
[0020] 1. Grinding equipment carrier plate; 2. Support frame; 3. Threaded rod; 4. Slide groove; 5. Rotary groove; 6. Rotary block; 7. Sliding block; 8. Guide sleeve; 9. First gear; 10. Transmission rod; 11. Second gear; 12. Connecting rod; 13. Turntable; 14. Support sleeve; 15. Third gear; 16. Clearance groove; 17. Traction groove; 18. Housing; 19. Roller; 20. Support plate; 21. Spring; 22. Traction block; 23. Rotating rod. Detailed Implementation
[0021] To further understand the utility model's content, features, and effects, the following embodiments are provided, along with detailed descriptions in conjunction with the accompanying drawings.
[0022] Example:
[0023] Please see Figure 1 - Figure 5A grinding device for processing microcrystalline glass includes a grinding equipment carrier plate 1. A support plate 20 is provided on the upper end of the carrier plate 1, and a clearance groove 16 is formed inside the support plate 20. A roller 19 is provided in the middle of the clearance groove 16, and a rotating rod 23 passes through the middle of each roller 19. The rotating rod 23 is slidably connected to the clearance groove 16. Support frames 2 are symmetrically welded to both ends of the support plate 20, and sliders 7 are welded to the side of the support frames 2 that are in contact with the grinding equipment carrier plate 1. The surfaces of the sliders 7 are fitted with grooves 4 formed on both ends of the grinding equipment carrier plate 1. When the operator is grinding the microcrystalline glass, the operator first places the microcrystalline glass... The glass is placed on the carrier plate 1 of the edging equipment. Then the operator pushes the support frame 2, which slides on both sides of the surface of the carrier plate 1. This causes the support frame 2 to move the support plate 20, which in turn moves the roller 19. The roller 19 and the support plate 20 are then placed against the surface of the microcrystalline glass, and the roller 19 and the support plate 20 support the microcrystalline glass. The operator then pushes the microcrystalline glass horizontally between the support plate 20 and the grinding wheel. When the operator is grinding the microcrystalline glass, the operator no longer needs to push the glass with force, reducing the force required to push the glass and improving the stability of the operation.
[0024] Furthermore, when the operator's pallet 20 is fixed on the carrier plate 1 of the edging equipment, the operator can directly place the microcrystalline glass on the pallet 20, allowing the pallet 20 to support the microcrystalline glass and improving the stability of the operator pushing the microcrystalline glass.
[0025] In other embodiments, a housing 18 is welded to the end of the work plate 1 of the edge grinding equipment, and a second gear 11 is provided in the middle of the housing 18. A connecting rod 12 is welded to the middle of the second gear 11, and the connecting rod 12 passes through the middle of the housing 18. A turntable 13 is welded to the end of the connecting rod 12. Third gears 15 are symmetrically meshed on both sides of the connecting rod 12, and a transmission rod 10 is welded to the middle of each third gear 15. Another third gear 15 is welded to the end of each transmission rod 10, and the other third gear 15 interacts with the first gear 9. The first gear 9 is engaged, with a threaded rod 3 welded to the middle of each gear, passing through the slide groove 4. A slider 7 passes through the middle of each threaded rod 3. The ends of the threaded rod 3 are rotatably connected to the inner wall of the slide groove 4. A rotating block 6 is welded to the end of each threaded rod 3, and the surface of each rotating block 6 is fitted with a rotating groove 5 formed on the inner wall of the slide groove 4. When the operator needs to adjust the position of the pallet 20, the operator first holds their hand on the surface of the turntable 13, then rotates the turntable 13. The turntable 13 drives the second gear 11 to rotate via the connecting rod 12. When the second gear 11 rotates, it meshes with the third gear 15. The third gear 15 drives the transmission rod 10 to rotate. After the transmission rod 10 rotates, it drives another third gear 15 fixed on the other side of the transmission rod 10 to rotate, so that the other third gear 15 meshes with the first gear 9. The other third gear 15 drives the first gear 9 to rotate, and the first gear 9 drives the threaded rod 3 to rotate. When the threaded rod 3 rotates, the disc-shaped rotating block 6 fixed at the end of the threaded rod 3 rotates in the rotating groove 5, which is set as a disc-shaped groove, so that the threaded rod 3 can rotate smoothly in the slide groove 4. When the threaded rod 3 rotates, the thread on the surface of the threaded rod 3 and the internal thread on the inner wall of the slider 7 are threadedly engaged. When the threaded rod 3 is threadedly engaged with the slider 7, the threaded rod 3 drives the slider 7 to move left and right in the slide groove 4. When the slider 7 moves, the slider 7 drives the support plate 20 to move through the support frame 2, which makes it convenient for the operator to quickly adjust the position of the support plate 20.
[0026] In other embodiments, a support sleeve 14 is fitted in the middle of the transmission rod 10, and both sides of the support sleeve 14 are welded to the inner wall of the housing 18. When the transmission rod 10 rotates, the transmission rod 10 rotates inside the support sleeve 14. By rotating the transmission rod 10 inside the support sleeve 14, the support sleeve 14 supports the transmission rod 10, increasing the stability of the transmission rod 10 rotating inside the housing 18.
[0027] In other embodiments, guide sleeves 8 are fitted on the surfaces of both the connecting rod 12 and the threaded rod 3, and the guide sleeves 8 are welded between the inner wall of the housing 18 and the inner wall of the groove 4, respectively. When the connecting rod 12 and the threaded rod 3 rotate, the connecting rod 12 and the threaded rod 3 rotate within the guide sleeves 8, thereby increasing the contact area between the housing 18 and the threaded rod 3 and the connecting rod 12, and improving the stability of the rotation of the connecting rod 12 and the threaded rod 3.
[0028] In other embodiments, springs 21 are symmetrically welded to both ends of the rotating rod 23, and each spring 21 has a traction groove 17 formed on the inner wall of the clearance groove 16. The inner wall of each traction groove 17 is provided with traction blocks 22 that abut against the surface of the spring 21 and the inner wall of the traction groove 17, respectively. When the operator places the microcrystalline glass between the tray 20 and the grinding wheel, the operator pushes the microcrystalline glass, causing it to abut against the surface of the roller 19. The microcrystalline glass pushes the roller 19, which in turn moves the rotating rod 23. The rotating rod 23 causes the spring 21 to slide within the traction groove 17. As the spring 21 moves, it presses against the traction blocks 22, causing the traction blocks to move. When the guide block 22 undergoes elastic deformation, it avoids the spring 21, causing the roller 19 to slide horizontally within the avoidance groove 16. The roller 19 avoids the microcrystalline glass. When the microcrystalline glass no longer presses against the roller 19, and the roller 19 no longer presses against the guide block 22 via the rotating rod 23, the elastic deformation of the guide block 22 returns to normal. The guide block 22 pushes the spring 21 to move, the spring 21 drives the rotating rod 23 to move, and the rotating rod 23 drives the roller 19 to move, so that the roller 19 abuts against the surface of the microcrystalline glass, facilitating the lifting of the microcrystalline glass and bringing it against the surface of the grinding wheel.
[0029] 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 variations 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 grinding device for processing microcrystalline glass, comprising a grinding equipment carrier plate (1), characterized in that: The upper end of the edging equipment carrier plate (1) is provided with a support plate (20), and the support plate (20) is provided with a clearance groove (16). A roller (19) is provided in the middle of the clearance groove (16), and a rotating rod (23) passes through the middle of the roller (19). The rotating rod (23) is slidably connected to the clearance groove (16). Support frames (2) are symmetrically fixed at both ends of the support plate (20), and a slider (7) is fixed on the side of the support frame (2) that is in contact with the edging equipment carrier plate (1). The surface of the slider (7) is provided with a sliding groove (4) opened at both ends of the edging equipment carrier plate (1).
2. The edge grinding device for processing microcrystalline glass according to claim 1, characterized in that: The end of the loading plate (1) of the edge grinding equipment is fixed with a housing (18), and a second gear (11) is provided in the middle of the housing (18). A connecting rod (12) is fixed in the middle of the second gear (11), and the connecting rod (12) passes through the middle of the housing (18). A turntable (13) is fixed at the end of the connecting rod (12). A third gear (15) is symmetrically meshed on both sides of the connecting rod (12), and a transmission rod (10) is fixed in the middle of each of the third gears (15). Another third gear (15) is fixed at the end of each of the transmission rods (10), and the other third gear (15) meshes with the first gear (9). A threaded rod (3) passing through the slide groove (4) is fixed in the middle of each of the first gears (9), and a slider (7) passes through the middle of each of the threaded rods (3). The end of the threaded rod (3) is rotatably connected to the inner wall of the slide groove (4).
3. The edge grinding device for processing microcrystalline glass according to claim 2, characterized in that: The threaded rod (3) is fixed with a rotating block (6) at its end, and the rotating block (6) is fitted with a rotating groove (5) on the inner wall of the slide groove (4).
4. The edge grinding device for processing microcrystalline glass according to claim 2, characterized in that: The transmission rod (10) is fitted with a support sleeve (14) in the middle, and both sides of the support sleeve (14) are fixed to the inner wall of the casing (18).
5. The edge grinding device for processing microcrystalline glass according to claim 2, characterized in that: The connecting rod (12) and the threaded rod (3) are both fitted with guide sleeves (8), and the guide sleeves (8) are fixed between the inner wall of the housing (18) and the inner wall of the groove (4).
6. The edge grinding device for processing microcrystalline glass according to claim 1, characterized in that: Springs (21) are symmetrically fixed at both ends of the rotating rod (23), and traction grooves (17) are provided on the surface of the springs (21) and are opened on the inner wall of the clearance groove (16). Traction blocks (22) are provided on the inner wall of the traction grooves (17) respectively abutting between the surface of the springs (21) and the inner wall of the traction grooves (17).