Highly transparent glass sheet and method for processing the same

CN117961702BActive Publication Date: 2026-09-22HEILONG JIANG JIAXING GLASS SHAREHOLDING CO LTD
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Patent Information

Application Number
CN202410114290.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-01-28
Publication Date
2026-09-22
Estimated Expiration
2044-01-28

AI Technical Summary

Technical Problem

因此高透光玻璃被大规模应用,用在不同领域的玻璃需要不同的形状,就需要对玻璃进行切边,再进行磨边,但是现有的玻璃板打磨装置,大都只能对一种形状的玻璃板打磨侧边,无法对不同形状的玻璃板进行打磨,使用不便,因此本申请人在实际生产过程中研发出一种新的技术方案,以解决上述技术问题

Benefits of technology

[0017]本发明的有益效果在于:使用时,将玻璃板放置在底盘上然后通过压紧件将玻璃板压紧在底盘上,然后通过推动件推动滑板在滑槽内水平移动,直至固定板上的打磨组件与玻璃板的侧壁接触,然后通过驱动件驱动转环转动并限制底盘跟随转环转动,此时转环则会通过滑槽带动滑板沿转环的转动轴线转动,此时固定板与打磨组件则会跟随滑板沿转环的转动轴线转动,此时通过固定板上的打磨组件即可打磨圆形玻璃板的侧边,

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Abstract

The application discloses a kind of high light transmission glass plate and its processing method, it is related to glass plate processing technical field, with the advantage that different shapes of glass plate are polished conveniently, its technical scheme main points are: including processing table and the vertical plate being set in the top of processing table, the top of processing table is rotatably connected with swivel, the top of swivel is rotatably connected with the bottom disc for placing glass plate, processing table is equipped with driving element for driving swivel rotation and limiting bottom disc rotation with swivel, vertical plate is equipped with compacting element for compacting glass plate on bottom disc, the outer wall of swivel one side is equipped with sliding slot, sliding plate is slidably connected in sliding slot, the side of fixed plate away from the bottom of sliding slot is equipped with polishing assembly for polishing the side edge of glass plate on bottom disc, when driving element drives swivel rotation, processing table is equipped with pushing element for pushing sliding plate to move horizontally in sliding slot, so that fixed plate moves along the circumference of glass plate.
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Description

Technical Field

[0001] This invention relates to the field of glass plate processing technology, specifically to a high-transmittance glass plate and its processing method. Background Technology

[0002] High-transparency glass is used in the construction industry. Due to its excellent light transmission and low dispersion, it is an indispensable material in the construction industry. It can be used in curtain walls, skylights, partitions, and architectural lighting fixtures such as glass bottles for restaurants / conference rooms. High-transparency glass can improve indoor natural lighting and visibility, effectively reducing energy consumption and improving indoor comfort. It is also commonly used in display glass panels for special exhibits, providing protection while ensuring clear display. Therefore, high-transparency glass is widely used. Glass used in different fields requires different shapes, which necessitates cutting and grinding the edges. However, existing glass grinding equipment can mostly only grind the sides of glass panels of one shape, making it inconvenient to use for glass panels of different shapes. Therefore, the applicant has developed a new technical solution to solve the above-mentioned technical problems during actual production. Summary of the Invention

[0003] In view of the above-mentioned technical deficiencies, the purpose of this invention is to provide a high-transmittance glass plate and its processing method, which has the advantage of facilitating the grinding of glass plates of different shapes.

[0004] To solve the above-mentioned technical problems, the present invention adopts the following technical solution:

[0005] This invention provides a high-transmittance glass plate and its processing method, including a processing table and a vertical plate disposed on the top of the processing table. A rotating ring located on one side of the vertical plate is rotatably connected to the top of the processing table, and a base plate for placing the glass plate is coaxially rotatably connected to the top of the rotating ring. The processing table is provided with a driving component for driving the rotating ring to rotate and restricting the base plate from rotating with the rotating ring. The vertical plate is provided with a clamping component for pressing the glass plate onto the base plate. A sliding groove is provided on one side of the outer wall of the rotating ring, and a sliding plate is horizontally slidably connected in the sliding groove. The side of the sliding plate away from the bottom of the sliding groove extends out of the sliding groove and is vertically fixed. A grinding component is provided on one side of the fixed plate for grinding the side of the glass plate on the base plate. When the driving component drives the rotating ring to rotate, a pushing component is provided on the processing table for pushing the sliding plate to move horizontally in the sliding groove, so that the fixed plate moves circumferentially along the glass plate.

[0006] By adopting the above technical solution, in use, the glass plate is placed on the chassis and then pressed onto the chassis by the clamping component. Then, the sliding plate is pushed horizontally in the slide groove by the pushing component until the grinding component on the fixed plate contacts the side wall of the glass plate. Then, the rotating ring is driven to rotate by the driving component and the chassis is restricted to follow the rotation of the rotating ring. At this time, the rotating ring will drive the sliding plate to rotate along the rotation axis of the rotating ring through the slide groove. At this time, the fixed plate and the grinding component will follow the sliding plate to rotate along the rotation axis of the rotating ring. At this time, the side of the circular glass plate can be ground by the grinding component on the fixed plate.

[0007] When the glass plate is irregularly shaped, as the slide plate, the fixed plate, and the grinding assembly rotate along the rotation axis of the swivel following the slide plate, the pusher pushes the slide plate to move horizontally within the groove, causing the fixed plate to move circumferentially along the glass plate. At this time, the side of the irregularly shaped glass plate can be ground by the grinding assembly on the fixed plate, which is simple and convenient to use.

[0008] Preferably, the driving component includes a rotating groove formed on the top of the processing table and coaxial with the rotating ring, and two connecting plates disposed opposite each other at the bottom of the processing table. The bottom ends of the two connecting plates are fixedly connected by a mounting plate. The rotating groove is located above the mounting plate. A rotating cylinder is rotatably connected in the rotating groove, and the top end of the rotating cylinder extends into the rotating ring. The inner wall of the rotating ring is fixedly connected to the outer wall of the rotating cylinder. The bottom end of the rotating cylinder extends out of the rotating groove and is provided with a driven gear. A drive motor is provided at the top of the mounting plate, and one end of the rotating shaft of the drive motor is provided with a drive gear that meshes with the driven gear. A column is coaxially provided at the bottom of the chassis, and the bottom end of the column passes through the rotating cylinder and is fixedly connected to the top of the mounting plate.

[0009] Preferably, the pushing component includes two semicircular rings and two U-shaped frames. The top of the processing table has two opposing side plates. The two semicircular rings and two frames are located between the two side plates. The two semicircular rings face each other and are located on opposite sides of the rotating ring. A first horizontal plate is horizontally provided on the opposite side of each semicircular ring. The bottom ends of both semicircular rings contact the top of the processing table. The two frames face each other and are located above the two semicircular rings. A second horizontal plate is horizontally provided on the opposite side of each frame. The two first horizontal plates and the two second horizontal plates are horizontally slidably connected to the two side plates. Between the bottom of the chute and the slide plate, a compression spring is provided. Two opposing suspension plates are provided at one end of the outer wall of the rotating ring near the opening of the chute. The two suspension plates are located on both sides of the slide plate and are horizontally connected to the slide plate. An extension plate is horizontally provided on the side of the fixed plate away from the rotating ring. The bottom end of the extension plate is rotatably connected to a roller located on one side of the slide plate. One of the side plates is provided with a power component for pushing the two first horizontal plates to move closer to each other. When the power component drives the two first horizontal plates to move closer to each other, the power component drives the two second horizontal plates to move away from each other. At this time, one of the semicircular rings contacts the roller.

[0010] Preferably, the power component includes a first rack horizontally disposed on two first horizontal plates at opposite ends, and a second rack horizontally disposed above the first rack at opposite ends of the two second horizontal plates. A first gear is rotatably connected to the end of one of the side plates near the two first racks, and both first gears are located between and mesh with the first and second racks. A drive shaft is coaxially disposed on each of the two first gears, and the ends of the two drive shafts away from the first gears pass through the side plate containing the first gears and each has a second gear. Two sliding plates are horizontally slidably connected to the side plate near the second gears, with one sliding plate above one of the second gears and the other below the other, thus misaligning the two sliding plates. A third rack meshing with the second gear is disposed along the length of each sliding plate at the end near the second gear. The ends of the two sliding plates near each other are connected by a push plate. A first electric cylinder for pushing the push plate horizontally is disposed on the side plate.

[0011] Preferably, the clamping component includes a long, narrow groove vertically formed on one side of the upright plate, with a slide table vertically slidably connected within the groove. A movable plate located above the chassis is provided on one side of the slide table, and a column is vertically provided at the bottom end of the movable plate. A pressure plate coaxial with the chassis is provided at the bottom end of the column. A lead screw is rotatably connected between the bottom and top walls of the long, narrow groove, and one end of the lead screw passes through the slide table and is threadedly connected to the slide table. A rotary motor for driving the lead screw to rotate is provided on the upright plate. A sliding column is vertically provided between the bottom and top walls of the long, narrow groove, and a circular groove for one end of the sliding column to pass through is provided at the top of the slide table. The sliding column and the lead screw are arranged side by side.

[0012] Preferably, the movable plate is rotatably connected to the slide table via a rotating component. The rotating component includes a rotating groove formed on one side of the slide table, and a rotating shaft is rotatably connected in the rotating groove. One end of the rotating shaft is fixedly connected to the movable plate. A servo motor for driving the rotating shaft to rotate is provided on the slide table. A positioning component is provided at the top of the movable plate. The positioning component is used to make the glass plate on the chassis concentric with the chassis.

[0013] Preferably, the positioning component includes an inverted U-shaped fixing frame disposed at the top of the movable plate, and a disc coaxial with the pressure plate is disposed at the top of the fixing frame. The top of the disc is provided with four horizontal slides, and the four slides are evenly distributed along the circumference of the disc. The ends of the four slides away from the center of the disc are connected to the side wall of the disc. The four slides are horizontally connected to slide blocks, and the ends of the four slide blocks away from the center of the disc extend outside the slides and are vertically provided with positioning plates. The top of the disc is coaxially provided with a central groove, and a central shaft is rotatably connected in the central groove. The top of the central shaft extends outside the central groove and is coaxially provided with a push plate located above the disc. The top of the push plate is provided with four arc-shaped push slots, and the four push slots are evenly distributed along the circumference of the push plate. The tops of the four slide blocks are vertically provided with push columns, and the tops of the four push columns pass vertically through the four push slots respectively. The fixing frame is provided with a rotary motor for driving the central shaft to rotate.

[0014] Preferably, the grinding assembly includes a vertical plate and two baffles disposed on one side of the vertical plate. The two baffles are opposite each other and a grinding roller is rotatably connected between the two baffles. The upper baffle is provided with a motor for driving the grinding roller to rotate. The vertical plate is located on the side of the fixed plate near the rotating ring, and the fixed plate is provided with a second electric cylinder for pushing the vertical plate to move horizontally away from the fixed plate. The grinding roller is located on the side of the vertical plate away from the fixed plate.

[0015] Preferably, the chute is connected to the bottom end of the rotating ring, the bottom end of the slide plate is in contact with the top end of the processing table, the processing table is provided with an embedding groove located on one side of the rotating ring, and a collection box is placed at the bottom of the embedding groove. When the rotating ring rotates, the slide plate passes over the embedding groove.

[0016] Another object of the present invention is to provide a high-transmittance glass plate.

[0017] The beneficial effects of this invention are as follows: In use, a glass plate is placed on a chassis and then pressed firmly onto the chassis by a clamping member. A pushing member then pushes a sliding plate horizontally within a groove until the grinding assembly on the fixed plate contacts the sidewall of the glass plate. A driving member then drives a rotating ring to rotate while restricting the chassis from rotating with the ring. At this point, the rotating ring, through the groove, causes the sliding plate to rotate along the ring's rotation axis. The fixed plate and grinding assembly then rotate along the ring's rotation axis with the sliding plate. Thus, the sidewall of the circular glass plate can be ground using the grinding assembly on the fixed plate.

[0018] When the glass plate is irregularly shaped, as the slide plate, the fixed plate, and the grinding assembly rotate along the rotation axis of the swivel following the slide plate, the pusher pushes the slide plate to move horizontally within the groove, causing the fixed plate to move circumferentially along the glass plate. At this time, the side of the irregularly shaped glass plate can be ground by the grinding assembly on the fixed plate, which is simple and convenient to use. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 This is a schematic diagram of the structure of this embodiment;

[0021] Figure 2 This is a structural schematic diagram illustrating the upright plate in this embodiment;

[0022] Figure 3 for Figure 2 Enlarged structural diagram of section A in the middle;

[0023] Figure 4 This is a structural schematic diagram illustrating the side panel in this embodiment;

[0024] Figure 5 This is a schematic diagram illustrating the structure of the sliding plate in this embodiment;

[0025] Figure 6 This is a schematic diagram illustrating the push groove in this embodiment;

[0026] Figure 7 This is a schematic diagram illustrating the structure of the slide block in this embodiment;

[0027] Figure 8 for Figure 2 Enlarged structural diagram of section B in the middle;

[0028] Figure 9 A schematic diagram of a structure in which two semicircular rings approach each other to form a complete circle;

[0029] Figure 10 A schematic diagram of a structure where two frames come into contact with each other to form a square frame;

[0030] Figure 11 This is a schematic diagram of the framework structure;

[0031] Figure 12 This is a schematic diagram of the irregular frame structure;

[0032] Figure 13 This is a schematic diagram of the structure of an irregularly shaped glass plate.

[0033] Explanation of reference numerals in the attached figures:

[0034] In the diagram: 1. Machining table; 2. Vertical plate; 3. Rotary ring; 4. Chassis; 5. Slide groove; 6. Slide plate; 7. Fixed plate; 8. Rotary groove; 9. Connecting plate; 10. Mounting plate; 12. Rotary cylinder; 13. Driven gear; 14. Drive motor; 15. Drive gear; 16. Column; 17. Semicircular ring; 18. Frame; 19. Side plate; 20. First horizontal plate; 21. Second horizontal plate; 22. Compression spring; 23. Roller; 24. First rack; 25. Second rack; 26. First gear; 27. Drive shaft; 28. Second gear; 29. ​​Sliding plate; 30. Third rack; 31. Push plate; 32. First electric cylinder; 33. Long strip 34. Slide table; 35. Moving plate; 36. Column; 37. Pressure plate; 38. Lead screw; 39. Rotary motor; 40. Sliding column; 41. Circular groove; 42. Rotary groove; 43. Rotating shaft; 44. Servo motor; 45. Fixed frame; 46. Disc; 47. Slide rail; 48. Slide seat; 49. Positioning plate; 50. Center groove; 51. Center shaft; 52. Pushing plate; 53. Push groove; 54. Push column; 55. Rotary motor; 56. Vertical plate; 57. Baffle; 58. Grinding roller; 59. Electric motor; 60. Second electric cylinder; 61. Embedded groove; 62. Collection box; 63. Extension plate; 64. Suspension plate; 65. Irregular frame. Detailed Implementation

[0035] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0036] Example 1: A high-transmittance glass plate and its processing method, such as Figure 1 and Figure 2 and Figure 3 The system includes a processing table 1 and a vertical plate 2 set at the top of the processing table 1. A rotating ring 3 located on one side of the vertical plate 2 is rotatably connected to the top of the processing table 1, and a base plate 4 for placing a glass plate is coaxially rotatably connected to the top of the rotating ring 3. The processing table 1 is provided with a driving component for driving the rotating ring 3 to rotate and restricting the base plate 4 to follow the rotation of the rotating ring 3. The vertical plate 2 is provided with a clamping component for pressing the glass plate onto the base plate 4. A groove 5 is provided on one side of the outer wall of the rotating ring 3, and a sliding plate 6 is horizontally slidably connected in the groove 5. The side of the sliding plate 6 away from the bottom of the groove 5 extends out of the groove 5 and is vertically upwardly provided with a fixing plate 7. A grinding component is provided on one side of the fixing plate 7 for grinding the side of the glass plate on the base plate 4. When the driving component drives the rotating ring 3 to rotate, a pushing component is provided on the processing table 1 for pushing the sliding plate 6 to move horizontally in the groove 5, so that the fixing plate 7 moves circumferentially along the glass plate.

[0037] like Figure 1 and Figure 2 and Figure 3 In use, the glass plate is placed on the base plate 4 and then pressed on the base plate 4 by the clamping component. Then, the sliding plate 6 is pushed to move horizontally in the slide groove 5 by the pushing component until the grinding component on the fixed plate 7 contacts the side wall of the glass plate. Then, the rotating ring 3 is driven to rotate by the driving component and the base plate 4 is restricted to rotate with the rotating ring 3. At this time, the rotating ring 3 will drive the sliding plate 6 to rotate along the rotation axis of the rotating ring 3 through the slide groove 5. At this time, the fixed plate 7 and the grinding component will rotate with the sliding plate 6 along the rotation axis of the rotating ring 3. At this time, the side of the round glass plate can be ground by the grinding component on the fixed plate 7.

[0038] When the glass plate is irregularly shaped (e.g.) Figure 13 When the slide plate 6, the fixed plate 7, and the grinding assembly follow the slide plate 6 to rotate along the rotation axis of the rotating ring 3, the pusher pushes the slide plate 6 to move horizontally in the slide groove 5, so that the fixed plate 7 moves along the circumference of the glass plate. At this time, the side of the irregular glass plate can be ground by the grinding assembly on the fixed plate 7, which is simple and convenient to use.

[0039] like Figure 1The driving component includes a rotating groove 8 formed on the top of the processing table 1 and coaxial with the rotating ring 3, and two connecting plates 9 arranged opposite to each other at the bottom of the processing table 1. The bottom ends of the two connecting plates 9 are fixedly connected by a mounting plate 10. The rotating groove 8 is located above the mounting plate 10. A rotating cylinder 12 is rotatably connected in the rotating groove 8, and the top end of the rotating cylinder 12 extends into the rotating ring 3. The inner wall of the rotating ring 3 is fixedly connected to the outer wall of the rotating cylinder 12. The bottom end of the rotating cylinder 12 extends out of the rotating groove 8 and is provided with a driven gear 13. A drive motor 14 is provided at the top of the mounting plate 10, and a drive gear 15 that meshes with the driven gear 13 is provided at one end of the rotating shaft of the drive motor 14. A column 16 is coaxially provided at the bottom end of the chassis 4, and the bottom end of the column 16 passes through the rotating cylinder 12 and is fixedly connected to the top end of the mounting plate 10.

[0040] When it is necessary to drive the rotating ring 3 to rotate, simply turn on the drive motor 14. The rotating shaft of the drive motor 14 drives the drive gear 15 to rotate. The drive gear 15 drives the rotating drum 12 to rotate through the driven gear 13 meshing with it. At this time, the rotating drum 12 will drive the rotating ring 3 to rotate on the processing table 1. When the rotating ring 3 rotates, because the bottom end of the column 16 on the chassis 4 passes through the rotating drum 12 and is fixedly connected to the top end of the mounting plate 10, the chassis 4 will not rotate with the rotating ring 3. It is simple and convenient to use.

[0041] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 8 The pushing component includes two semicircular rings 17 and two U-shaped frames 18. The top of the processing table 1 has two opposing side plates 19. The two semicircular rings 17 and the two frames 18 are located between the two side plates 19. The two semicircular rings 17 are opposite each other and located on both sides of the rotating ring 3. A first horizontal plate 20 is horizontally provided on the opposite side of each of the two semicircular rings 17. The bottom ends of both semicircular rings 17 are in contact with the top of the processing table 1. The two frames 18 are opposite each other and located above the two semicircular rings 17. A second horizontal plate 21 is horizontally provided on the opposite side of each of the two frames 18. The two first horizontal plates 20 and the second horizontal plates 21 are horizontally slidably connected between the two side plates 19. The bottom of the groove 5 is... Compression springs 22 are provided between the slide plates 6. Two opposing suspension plates 64 are provided at one end of the outer wall of the rotating ring 3 near the groove opening of the slide 5. The two suspension plates 64 are located on both sides of the slide plate 6 and are horizontally connected to the slide plate 6. The slide plate 6 is completely outside the slide 5. An extension plate 63 is horizontally provided on the side of the fixed plate 7 away from the rotating ring 3. The bottom end of the extension plate 63 is rotatably connected to a roller 23 located on one side of the slide plate 6. A power component is provided on one of the side plates 19 to push the two first horizontal plates 20 to move closer to each other. When the power component drives the two first horizontal plates 20 to move closer to each other, the power component drives the two second horizontal plates 21 to move away from each other. At this time, one of the semicircular rings 17 contacts the roller 23.

[0042] like Figure 1 and Figure 2 and Figure 3 and Figure 4 and Figure 8 When grinding a circular glass plate, a power component drives two first horizontal plates 20 to move closer together and two second horizontal plates 21 to move further apart. At this time, the two first horizontal plates 20 respectively drive two semicircular rings 17 to move closer together, and the two second horizontal plates 21 respectively drive two frames 18 to move further apart, until the two semicircular rings 17 contact each other. At this point, the two semicircular rings 17 form a complete circular ring coaxial with the rotating ring 3 (e.g., ...). Figure 9 As the two semicircular rings 17 approach each other, one of them contacts the roller 23. As the two semicircular rings 17 move closer, the semicircular ring 17 in contact with the roller 23 will cause the extension plate 63 and the fixed plate 7 to approach the rotating ring 3 via the roller 23. At this time, the fixed plate 7 will push the slide plate 6 towards the bottom of the groove 5, compressing the spring 22. When the two semicircular rings 17 contact each other to form a complete ring, the grinding assembly on the fixed plate 7 contacts one side of the glass plate. Then, the driving component drives the rotating ring 3 to rotate. The rotating ring 3 drives the slide plate 6 to rotate via the groove 5 and the suspension plate 64. The fixed plate 7 and the grinding assembly... The roller 23 and extension plate 63 follow the slide plate 6 and rotate along the rotation axis of the rotating ring 3. At this time, through the cooperation of the compressed spring 22 and the roller 23 on the extension plate 63 and the complete ring formed by the two semi-circular rings 17, the fixed plate 7 can move along the circumference of the circular glass plate when the driving component drives the rotating ring 3 to rotate. At this time, through the grinding component on the fixed plate 7, the side of the circular glass plate can be ground along the circumference of the circular glass plate. Through the compressed spring 22, the roller 23 can always be in contact with the inner wall of the complete ring formed by the two semi-circular rings 17 during the rotation along the rotation axis of the rotating ring 3.

[0043] When polishing Figure 13 When the irregularly shaped glass plate is in use, the power component drives the two second horizontal plates 21 to move closer together and the two first horizontal plates 20 to move further apart. At this time, the two second horizontal plates 21 will respectively drive the two frames 18 to move closer together, and the two first horizontal plates 20 will respectively drive the two semicircular rings 17 to move further apart, until the two frames 18 come into contact with each other. At this time, the two frames 18 form a square frame (such as...). Figure 10As the two frames 18 approach each other, one of the frames 18 contacts the roller 23. Then, as the two frames 18 approach, the frame 18 in contact with the roller 23 will, through the roller 23, cause the extension plate 63 and the fixed plate 7 to approach the rotating ring 3. At this time, the fixed plate 7 will push the slide plate 6 towards the bottom of the groove 5, compressing the spring 22. When the two frames 18 contact each other to form a square frame, the grinding component on the fixed plate 7 contacts one side of the glass plate. Then, the driving component drives the rotating ring 3 to rotate. The rotating ring 3 drives the slide plate 6 to rotate through the groove 5. The fixed plate 7, the grinding component, the roller 23, and the extension plate 63 follow the slide plate 6 and rotate along the rotation axis of the rotating ring 3. At this time, through the cooperation of the slide plate 6, the groove 5, the two suspension plates 64, the compressed spring 22, the roller 23 on the extension plate 63, and the square frame formed by the two frames 18, the fixed plate 7 can be moved circumferentially along the irregularly shaped glass plate when the driving component drives the rotating ring 3 to rotate (e.g., Figure 11 At this time, the side of the irregular glass plate can be polished along the circumference of the irregular glass plate by using the polishing component on the fixed plate 7.

[0044] The frames 18 on the two second horizontal plates 21 can be replaced with, for example, Figure 12 When two irregularly shaped frames 65 approach each other until they come into contact, they form an irregularly shaped frame. Then, the driving component drives the rotating ring 3 to rotate. Through the cooperation of the sliding plate 6, the sliding groove 5, the two suspension plates 64, the compressed compression spring 22, the roller 23 on the extension plate 63, and the irregularly shaped frame formed by the two irregularly shaped frames 65, the fixed plate 7 can move along the circumference of the square glass plate when the driving component drives the rotating ring 3 to rotate. At this time, the side of the square glass plate can be polished along the circumference of the square glass plate through the polishing component on the fixed plate 7.

[0045] The frames 18 on the two second horizontal plates 21 can also be replaced with other shapes to accommodate glass of various shapes, making them simple and convenient to use.

[0046] like Figure 1 and Figure 4 and Figure 5The power component includes two first horizontal plates 20, each horizontally mounted at one end opposite to the other. Two second horizontal plates 21, each horizontally mounted at one end opposite to the other, each have a second rack 25 positioned above the first rack 24. One side plate 19 has a first gear 26 rotatably connected to the end near the two first racks 24. Both first gears 26 are located between the first racks 24 and the second racks 25 and mesh with both. A drive shaft 27 is coaxially mounted on each of the two first gears 26, and the ends of the two drive shafts 27 away from the first gears 26 pass through the space where the first gears 26 are mounted. The side plate 19 is provided with a second gear 28. Two sliding plates 29 are horizontally slidably connected on the side plate 19 near the second gear 28. One sliding plate 29 is located above one of the second gears 28, and the other sliding plate 29 is located below the other second gear 28. At this time, the two sliding plates 29 are misaligned. The ends of the two sliding plates 29 near the second gear 28 are provided with a third rack 30 that meshes with the second gear 28 along the length direction of the sliding plate 29. The ends of the two sliding plates 29 that are close to each other are connected by a push plate 31. The side plate 19 is provided with a first electric cylinder 32 for pushing the push plate 31 to move horizontally.

[0047] like Figure 1 and Figure 4 and Figure 5 When it is necessary to move the two first horizontal plates 20 closer together and the two second horizontal plates 21 further apart, simply activate the first electric cylinder 32. The piston rod of the first electric cylinder 32 pushes the push plate 31 to move horizontally. At this time, the two sliding plates 29 will follow the push plate 31 to move horizontally. Then, through the cooperation of the two third racks 30 on the two sliding plates 29 and the second gears 28 on the two drive shafts 27, the two drive shafts 27 can be driven to rotate in opposite directions simultaneously. At this time, the two drive shafts 27 will drive the two first gears 26 to rotate respectively. Since the first gears 26 are located at the first... The first rack 24 meshes with the second rack 25, so when the two drive shafts 27 drive the two first gears 26 to rotate in opposite directions, the first rack 24 on the two first horizontal plates 20 and the second rack 25 on the two second horizontal plates 21 can be engaged with the two first gears 26 to drive the two first horizontal plates 20 closer to each other and drive the two second horizontal plates 21 further away from each other, or drive the two first horizontal plates 20 further away from each other and drive the two second horizontal plates 21 closer to each other. It is simple and convenient to use.

[0048] like Figure 1The clamping component includes a long strip groove 33 vertically opened on one side of the upright plate 2, and a slide table 34 vertically slidably connected inside the long strip. A movable plate 35 located above the chassis 4 is provided on one side of the slide table 34, and a column 36 is vertically provided at the bottom end of the movable plate 35. A pressure plate 37 coaxial with the chassis 4 is provided at the bottom end of the column 36. A lead screw 38 is rotatably connected between the bottom wall and the top wall of the long strip groove 33, and one end of the lead screw 38 passes through the slide table 34 and is threadedly connected to the slide table 34. A rotary motor 39 for driving the lead screw 38 to rotate is provided on the upright plate 2. A sliding column 40 is vertically provided between the bottom wall and the top wall of the long strip groove 33. A circular groove 41 for one end of the sliding column 40 to pass through is opened at the top of the slide table 34. The sliding column 40 and the lead screw 38 are arranged side by side.

[0049] like Figure 1 When it is necessary to press the glass plate onto the base 4, simply turn on the rotating motor 39. The rotating shaft of the rotating motor 39 drives the lead screw 38 to rotate clockwise. Since one end of the lead screw 38 passes through the slide table 34 and is threadedly connected to the slide table 34, and the slide table 34 is vertically slidably connected in the elongated groove 33, when the lead screw 38 rotates clockwise, it can drive the slide table 34 to move vertically downward. At this time, the moving plate 35, the column 36, and the pressure plate 37 will follow the slide table 34 to move until the pressure plate 37 contacts the top of the glass plate and presses the glass plate onto the base 4. It is simple and convenient to use.

[0050] like Figure 6 and Figure 7The movable plate 35 is rotatably connected to the slide table 34 via a rotating component. The rotating component includes a rotating groove 42 formed on one side of the slide table 34, and a rotating shaft 43 is rotatably connected within the rotating groove 42. One end of the rotating shaft 43 is fixedly connected to the movable plate 35. The slide table 34 is equipped with a servo motor 44 for driving the rotating shaft 43 to rotate. The top of the movable plate 35 is equipped with a positioning component for aligning the glass plate on the chassis 4 with the chassis 4 (the center of the glass plate is located on the axis of the chassis 4). The positioning component includes an inverted U-shaped fixing frame 45 set at the top of the movable plate 35, and the top of the fixing frame 45 is equipped with a disc 46 coaxial with the pressure plate 37. The top of the disc 46 is horizontally equipped with four slide rails 47, and the four slide rails 47 are evenly distributed along the circumference of the disc 46. The four slide rails 47 are farthest from the center of the disc 46. All four slides 48 are connected to the side wall of the disc 46. The slides 48 are horizontally connected to the slide blocks 48 in the four slides 47. The ends of the four slide blocks 48 that are away from the center of the disc 46 extend to the outside of the slides 47 and are vertically positioned with positioning plates 49. The top of the disc 46 is coaxially provided with a central groove 50. A central shaft 51 is rotatably connected in the central groove 50. The top of the central shaft 51 extends to the outside of the central groove 50 and is coaxially provided with a push plate 52 located above the disc 46. The top of the push plate 52 is provided with four arc-shaped push grooves 53. The four push grooves 53 are evenly distributed along the circumference of the push plate 52. The tops of the four slide blocks 48 are vertically provided with push columns 54. The tops of the four push columns 54 pass vertically through the four push grooves 53 respectively. A rotary motor 55 for driving the rotation of the central shaft 51 is provided on the fixed frame 45.

[0051] like Figure 6 and Figure 7 As the slide table 34 and the movable plate 35 move downwards, pressing the glass plate onto the chassis 4 with the pressure plate 37, the servo motor 44 is activated. The rotating shaft of the servo motor 44 drives the rotating shaft 43 to rotate 180 degrees, positioning the column 36 and the pressure plate 37 above the movable plate 35, with the fixing bracket 45 on the movable plate 35 positioned below it. Then, the rotating shaft of the rotating motor 39 drives the lead screw 38 to rotate clockwise, causing the slide table 34 and the movable plate 35 to move downwards. At this point, the four positioning plates 49 approach the glass plate on the chassis 4. Once the slide table 34 and the movable plate 35 have moved downwards to the appropriate position... Four positioning plates 49 are located around the glass plate on the chassis 4. Then, the rotary motor 55 is turned on. The rotating shaft of the rotary motor 55 drives the push plate 52 to rotate through the central shaft 51. At this time, through the cooperation of the four arc-shaped push grooves 53 on the push plate 52 and the push columns 54 on the four slide blocks 48, the four slide blocks 48 can be driven to slide towards the central shaft 51 at the same time. At this time, the four slide blocks 48 will drive the four positioning plates 49 to approach the glass plate. When the four positioning plates 49 are in contact with the side wall of the glass plate, the glass plate on the chassis 4 can be positioned so that the glass plate is concentric with the chassis 4.

[0052] After concentric positioning, the rotating shaft of the rotary motor 55 drives the push disk 52 to rotate in the opposite direction through the central shaft 51, so that the four positioning plates 49 are away from the glass plate. Then, the rotating shaft of the rotary motor 39 drives the lead screw 38 to rotate in the opposite direction, so that the slide table 34 and the moving plate 35 move upward. After moving to the appropriate position, the servo motor 44 is turned on, and the rotating shaft of the servo motor 44 drives the rotating shaft 43 to rotate 180 degrees in the opposite direction, so that the column 36 and the pressure plate 37 are located below the moving plate 35. Then, the rotating shaft of the rotary motor 39 drives the lead screw 38 to rotate clockwise, so that the slide table 34 and the moving plate 35 move downward until the pressure plate 37 contacts the top of the glass plate and presses the glass plate firmly onto the base plate 4. There is no need for manual adjustment of the glass plate, so that the glass plate and the base plate 4 are concentric, making it simple and convenient to use.

[0053] like Figure 2 and Figure 8 The grinding assembly includes a vertical plate 56 and two baffles 57 disposed on one side of the vertical plate 56. The two baffles 57 are opposite each other and a grinding roller 58 is rotatably connected between the two baffles 57. The upper baffle 57 is provided with a motor 59 for driving the grinding roller 58 to rotate. The vertical plate 56 is located on the side of the fixed plate 7 near the rotating ring 3, and the fixed plate 7 is provided with a second electric cylinder 60 for pushing the vertical plate 56 to move horizontally away from the fixed plate 7. The grinding roller 58 is located on the side of the vertical plate 56 away from the fixed plate 7.

[0054] like Figure 2 and Figure 8 When the fixed plate 7 is close to the glass plate on the chassis 4, the motor 59 is turned on. The rotating shaft of the motor 59 drives the grinding roller 58 to rotate. When the rotating grinding roller 58 contacts one end of the side wall of the glass plate, the side wall of the glass plate can be ground. Then, when the fixed plate 7 moves along the circumference of the glass plate, the four sides of the glass plate can be ground by the rotating grinding roller 58. The piston rod of the second electric cylinder 60 pushes the vertical plate 56 to move horizontally away from the fixed plate 7. At this time, the thickness of the glass plate side wall grinding can be adjusted.

[0055] The vertical plate 56 can also be moved horizontally towards or away from the fixed plate 7 by the piston rod of the second electric cylinder 60 to accommodate glass plates of different sizes, making it simple and convenient to use.

[0056] like Figure 1 and Figure 2 and Figure 3The bottom end of the slide 5 is connected to the bottom end of the rotating ring 3, and the bottom end of the slide plate 6 is in contact with the top end of the processing table 1. The processing table 1 is provided with an embedding groove 61 located on one side of the rotating ring 3, and a collection box 62 is placed at the bottom of the embedding groove 61. When the rotating ring 3 rotates, the slide plate 6 passes over the embedding groove 61. The purpose of this setting is that when the rotating ring 3 drives the slide plate 6 to rotate along the rotation axis of the rotating ring 3 through the slide 5, because the bottom end of the slide plate 6 is in contact with the top end of the processing table 1, when the slide plate 6 follows the rotating ring 3 to rotate along the rotation axis of the rotating ring 3, the waste material that has fallen off the rotating ring 3 on the processing table 1 can be pushed to the embedding groove 61 through the slide plate 6 located outside the slide 5. At this time, the waste material pushed to the embedding groove 61 can be collected through the collection box 62. It is simple and convenient to use.

[0057] Example 2: A high-transmittance glass plate, which is polished using the processing method described in Example 1 above.

[0058] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

Claims

1. A method for processing a high-transmittance glass plate, characterized in that, The assembly includes a processing table (1) and a vertical plate (2) mounted on the top of the processing table (1). A rotating ring (3) located on one side of the vertical plate (2) is rotatably connected to the top of the processing table (1), and a base plate (4) for placing a glass plate is coaxially rotatably connected to the top of the rotating ring (3). The processing table (1) is provided with a driving component for driving the rotating ring (3) to rotate and restricting the base plate (4) from rotating with the rotating ring (3). The vertical plate (2) is provided with a clamping component for pressing the glass plate onto the base plate (4). The outer wall of the rotating ring (3) is located on one side. A slide groove (5) is provided, and a slide plate (6) is horizontally connected in the slide groove (5). The side of the slide plate (6) away from the bottom of the slide groove (5) extends to the outside of the slide groove (5) and is vertically fixed with a fixing plate (7). A grinding component for grinding the side of the glass plate on the chassis (4) is provided on one side of the fixing plate (7). When the driving member drives the rotating ring (3) to rotate, the processing table (1) is provided with a pushing member for pushing the slide plate (6) to move horizontally in the slide groove (5) so that the fixing plate (7) moves along the circumference of the glass plate. The pusher includes two semicircular rings (17) and two U-shaped frames (18). The top of the processing table (1) is provided with two opposing side plates (19). The two semicircular rings (17) and the two frames (18) are located between the two side plates (19). The two semicircular rings (17) are opposite each other and located on both sides of the rotating ring (3). The opposite sides of the two semicircular rings (17) are each provided with a first horizontal plate (20). The bottom ends of the two semicircular rings (17) are in contact with the top of the processing table (1). The two frames (18) are opposite each other and located above the two semicircular rings (17). The opposite sides of the two frames (18) are each provided with a second horizontal plate (21). The two first horizontal plates (20) and the two second horizontal plates (21) are horizontally slidably connected between the two side plates (19). A compression spring (22) is provided between the bottom of the groove (5) and the slide plate (6). Two opposing suspension plates (64) are provided at one end of the outer wall of the rotating ring (3) near the groove opening of the groove (5). The two suspension plates (64) are located on both sides of the slide plate (6) and are horizontally connected to the slide plate (6). An extension plate (63) is horizontally provided on the side of the fixed plate (7) away from the rotating ring (3). The bottom end of the extension plate (63) is rotatably connected to a roller (23) located on one side of the slide plate (6). One of the side plates (19) is provided with a power member for pushing the two first horizontal plates (20) to move closer to each other. When the power member drives the two first horizontal plates (20) to move closer to each other, the power member drives the two second horizontal plates (21) to move away from each other. At this time, one of the semicircular rings (17) contacts the roller (23).

2. The processing method of a high-transmittance glass plate as described in claim 1, characterized in that, The driving component includes a rotating groove (8) formed at the top of the processing table (1) and coaxial with the rotating ring (3), and two connecting plates (9) opposite to each other at the bottom of the processing table (1). The bottom ends of the two connecting plates (9) are fixedly connected by a mounting plate (10). The rotating groove (8) is located above the mounting plate (10). A rotating cylinder (12) is rotatably connected in the rotating groove (8), and the top end of the rotating cylinder (12) extends into the rotating ring (3). The inner wall of the rotating ring (3) is connected to the rotating cylinder (12). The outer wall of the rotating drum (12) is fixedly connected. The bottom end of the rotating drum (12) extends to the outside of the rotating groove (8) and is provided with a driven gear (13). The top end of the mounting plate (10) is provided with a drive motor (14), and one end of the rotating shaft of the drive motor (14) is provided with a drive gear (15) that meshes with the driven gear (13). The bottom end of the chassis (4) is coaxially provided with a column (16), and the bottom end of the column (16) passes through the rotating drum (12) and is fixedly connected to the top end of the mounting plate (10).

3. The processing method of a high-transmittance glass plate as described in claim 2, characterized in that, The power component includes a first rack (24) horizontally disposed on two first horizontal plates (20) at opposite ends. A second rack (25) is horizontally disposed above the first rack (24) at opposite ends of the two second horizontal plates (21). A first gear (26) is rotatably connected to the end of one of the side plates (19) near the two first racks (24). Both first gears (26) are located between the first rack (24) and the second rack (25) and mesh with both. A drive shaft (27) is coaxially disposed on each of the two first gears (26), and the ends of the two drive shafts (27) away from the first gears (26) pass through the side plate where the first gears (26) are disposed. (19) and each is provided with a second gear (28). Two sliding plates (29) are horizontally slidably connected on the side plate (19) near the second gear (28). One of the sliding plates (29) is located above one of the second gears (28), and the other sliding plate (29) is located below the other second gear (28). At this time, the two sliding plates (29) are misaligned. The ends of the two sliding plates (29) near the second gear (28) are provided with a third rack (30) that meshes with the second gear (28) along the length direction of the sliding plate (29). The ends of the two sliding plates (29) that are close to each other are connected by a push plate (31). The side plate (19) is provided with a first electric cylinder (32) for pushing the push plate (31) to move horizontally.

4. The processing method of a high-transmittance glass plate as described in claim 3, characterized in that, The clamping component includes a long strip groove (33) vertically formed on one side of the upright plate (2), and a slide table (34) is vertically slidably connected in the long strip groove (33). A movable plate (35) located above the chassis (4) is provided on one side of the slide table (34), and a column (36) is vertically provided at the bottom end of the movable plate (35). A pressure plate (37) coaxial with the chassis (4) is provided at the bottom end of the column (36). The bottom wall of the long strip groove (33) and the top wall of the long strip groove (33) are rotatably connected. A lead screw (38) is connected, and one end of the lead screw (38) passes through the slide table (34) and is threadedly connected to the slide table (34). The vertical plate (2) is provided with a rotating motor (39) for driving the lead screw (38) to rotate. A sliding column (40) is vertically provided between the bottom wall and the top wall of the long strip groove (33). A circular groove (41) is opened at the top of the slide table (34) for one end of the sliding column (40) to pass through. The sliding column (40) and the lead screw (38) are arranged side by side.

5. The processing method of a high-transmittance glass plate as described in claim 4, characterized in that, The movable plate (35) is rotatably connected to the slide table (34) via a rotating component. The rotating component includes a rotating groove (42) opened on one side of the slide table (34), and a rotating shaft (43) is rotatably connected in the rotating groove (42). One end of the rotating shaft (43) is fixedly connected to the movable plate (35). The slide table (34) is provided with a servo motor (44) for driving the rotating shaft (43) to rotate. The top of the movable plate (35) is provided with a positioning component, which is used to make the glass plate on the chassis (4) concentric with the chassis (4).

6. The processing method of a high-transmittance glass plate as described in claim 5, characterized in that, The positioning component includes an inverted U-shaped fixing frame (45) set at the top of the movable plate (35), and a disc (46) coaxial with the pressure plate (37) is provided at the top of the fixing frame (45). The top of the disc (46) is provided with four horizontal slides (47), and the four slides (47) are evenly distributed along the circumference of the disc (46). The ends of the four slides (47) away from the center of the disc (46) are connected to the side wall of the disc (46). The four slides (47) are horizontally connected to the slide blocks (48), and the ends of the four slide blocks (48) away from the center of the disc (46) extend outside the slides (47) and are all provided with positioning plates (49) vertically upward. The disc (46) The top of the disk (46) is coaxially provided with a central groove (50), and a central shaft (51) is rotatably connected in the central groove (50). The top of the central shaft (51) extends to the outside of the central groove (50) and is coaxially provided with a push disk (52) located above the disk (46). The top of the push disk (52) is provided with four arc-shaped push grooves (53), and the four push grooves (53) are evenly distributed along the circumference of the push disk (52). The tops of the four slides (48) are all provided with push columns (54) vertically upward, and the tops of the four push columns (54) pass vertically through the four push grooves (53) respectively. The fixed frame (45) is provided with a rotary motor (55) for driving the central shaft (51) to rotate.

7. The processing method of a high-transmittance glass plate as described in claim 1, characterized in that, The grinding assembly includes a vertical plate (56) and two baffles (57) disposed on one side of the vertical plate (56). The two baffles (57) are opposite each other and a grinding roller (58) is rotatably connected between the two baffles (57). The upper baffle (57) is provided with a motor (59) for driving the grinding roller (58) to rotate. The vertical plate (56) is located on the side of the fixed plate (7) close to the rotating ring (3). The fixed plate (7) is provided with a second electric cylinder (60) for pushing the vertical plate (56) to move horizontally away from the fixed plate (7). The grinding roller (58) is located on the side of the vertical plate (56) away from the fixed plate (7).

8. The processing method of a high-transmittance glass plate as described in claim 3, characterized in that, The chute (5) is connected to the bottom end of the rotating ring (3), and the bottom end of the slide plate (6) is in contact with the top end of the processing table (1). The processing table (1) is provided with an embedding groove (61) located on one side of the rotating ring (3), and a collection box (62) is placed at the bottom of the embedding groove (61). When the rotating ring (3) rotates, the slide plate (6) passes over the embedding groove (61).

9. A high-transmittance glass plate, characterized in that, The high-transmittance glass plate is processed using the processing method described in any one of the preceding claims.

Citation Information

Patent Citations

  • Glass surface grinding equipment

    CN219819299U