Dust collection self-cleaning mechanism used after glass substrate cutting
By designing a self-cleaning mechanism that combines a water-absorbing roller, a spray plate, and a dust-collecting hood, the problem of glass breakage caused by excessive force when manually cleaning glass substrates is solved, achieving a highly efficient and non-destructive cleaning effect for glass substrates.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2026-03-06
AI Technical Summary
When manually wiping and cleaning the surface of a cut glass substrate, excessive force can easily cause the glass to crack or create new scratches, which is difficult to avoid effectively with existing technology.
A self-cleaning mechanism for vacuuming glass substrates after cutting was designed, including a water-absorbing roller, a spray plate, and a dust-absorbing hood. The dust-absorbing hood removes debris from the glass surface, the spray plate sprays cleaning agent and wipes the surface with a cleaning sponge, and the water-absorbing roller absorbs moisture, thus achieving mechanized self-cleaning.
It achieves efficient cleaning of the glass substrate surface, avoids glass breakage and scratches caused by manual cleaning, improves cleaning efficiency, and ensures the cleanliness of the glass substrate surface.
Smart Images

Figure CN223970588U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass substrate cutting and processing technology, specifically to a self-cleaning mechanism for dust collection after glass substrate cutting. Background Technology
[0002] Glass substrate is a thin glass sheet with an extremely flat surface and is one of the key basic materials in the flat panel display industry. During processing, the entire glass substrate raw material needs to be cut into the required size. During the cutting process, glass powder and cutting marks will be generated on the glass surface. These residues not only affect the aesthetics of the glass, but may also reduce its light transmittance. Therefore, it is necessary to remove dust and wipe to remove impurities and residues from the glass surface. However, when manually wiping and cleaning the surface of the glass substrate after cutting, excessive force is often used, which can cause the glass to crack or create new scratches. Utility Model Content
[0003] To overcome the shortcomings of existing technologies, a self-cleaning mechanism for vacuuming after glass substrate cutting is provided to solve the problem of glass breakage or new scratches caused by excessive force when manually wiping and cleaning the surface of the glass substrate after cutting.
[0004] To achieve the above objectives, a self-cleaning mechanism for vacuuming glass substrates after cutting is provided, comprising: a water-absorbing roller, a spray plate, and a vacuum hood. The spray plate is located on the right side of the water-absorbing roller, and the vacuum hood is connected to the right side of the spray plate.
[0005] The inner side of the water-absorbing roller is connected to a fixed frame via a rotating shaft. A small motor is connected to the front end of the rotating shaft. A lifting top plate is connected to the upper end of the water-absorbing roller via a left connecting plate. A spray plate is connected to the lower right end of the lifting top plate via a right connecting plate. A clean water nozzle and a cleaning nozzle are installed on the lower end face of the spray plate. Cleaning sponges are distributed at the distance between the clean water nozzle and the cleaning nozzle. A transmission column is screwed to the upper end of the cleaning sponge via a fixed plate. A small motor is connected to the upper end of the transmission column via a transmission wheel assembly. A dust collection pipe is connected to the upper end face of the dust collection hood.
[0006] Furthermore, a suction chamber is provided on the lower end face of the dust hood; and the suction chamber is connected to the suction pipe, and a silicone scraper is installed on the left side of the dust hood.
[0007] Furthermore, the silicone scraper has sloping sides, the lower surface of the silicone scraper contacts the glass substrate body, and the lower surface of the glass substrate body supports a cleaning platform.
[0008] Furthermore, the lifting top plate is connected to the left connecting plate and the right connecting plate respectively via the second electric push rod, and a connecting block is fixed on the upper surface of the lifting top plate.
[0009] Furthermore, a small motor is fixed to the front surface of the fixed frame, and a water-squeezing vertical plate is connected to the upper end of the fixed frame through a first electric push rod; and the water-squeezing vertical plate is symmetrically attached to the left and right sides of the fixed frame.
[0010] Furthermore, the water-absorbing roller is provided with an absorbent sponge interlayer, a distance sensor is installed on the front surface of the spray plate, and a liquid inlet is opened on the rear side of the spray plate.
[0011] Furthermore, a transmission column is connected through the middle of the spray plate, and the lower end of the transmission column is provided with external threads.
[0012] The beneficial effects of this utility model are as follows: the self-cleaning mechanism for glass substrates after cutting utilizes a water-absorbing roller, a spray plate, a clean water nozzle, a cleaning nozzle, and a dust-absorbing hood to form a self-cleaning mechanism that combines dust collection, rinsing, and drying functions. The dust-absorbing hood removes residual cutting debris and impurities from the surface of the glass substrate, while the cleaning nozzle and clean water nozzle remove and clean stubborn residues from the glass surface. At the same time, the cleaning sponge rotates and wipes the surface of the glass substrate while the cleaning agent is sprayed, and the water-absorbing roller absorbs and dries the moisture on the glass surface, facilitating efficient cleaning of the surface of the glass substrate after cutting and ensuring the cleanliness of the glass substrate surface after cutting. The mechanized self-cleaning structure makes it easy to control the cleaning of the glass substrate with a constant force, preventing damage and scrapping of the glass substrate during cleaning and improving the cleaning efficiency of the glass substrate. Attached Figure Description
[0013] Figure 1 This is a front view of the self-cleaning mechanism for dust collection after glass substrate cutting, according to an embodiment of the present invention.
[0014] Figure 2 This is a front cross-sectional view of the self-cleaning mechanism for dust collection after glass substrate cutting, according to an embodiment of the present invention.
[0015] Figure 3 This is a schematic diagram of the lower end face structure of the spray plate according to an embodiment of the present utility model.
[0016] Figure 4 This is a front view cross-sectional diagram of the connection structure of the cleaning sponge according to an embodiment of the present invention.
[0017] In the diagram: 1. Absorbent roller; 11. Fixing frame; 12. First electric actuator; 13. Small motor one; 14. Squeezing vertical plate; 15. Absorbent sponge interlayer; 16. Rotating shaft; 2. Lifting top plate; 21. Connecting block; 22. Second electric actuator; 23. Left connecting plate; 24. Right connecting plate; 3. Spray plate; 31. Clean water nozzle; 32. Cleaning nozzle; 33. Liquid inlet; 34. Distance sensor; 4. Dust hood; 41. Dust suction pipe; 42. Silicone scraper; 43. Dust suction chamber opening; 5. Glass substrate body; 51. Cleaning table; 6. Cleaning sponge; 61. Fixing plate; 62. Small motor two; 63. Transmission wheel assembly; 64. Transmission column. Detailed Implementation
[0018] Reference Figures 1 to 4 As shown, this utility model provides a self-cleaning mechanism for vacuuming after glass substrate cutting, including: a water-absorbing roller 1, a spray plate 3, and a dust-collecting hood 4. The spray plate 3 is arranged on the right side of the water-absorbing roller 1, and the dust-collecting hood 4 is connected to the right side of the spray plate 3.
[0019] A fixed frame 11 is connected to the inner side of the water suction roller 1 via a rotating shaft 16. A small motor 13 is connected to the front end of the rotating shaft 16. A lifting top plate 2 is connected to the upper end of the water suction roller 1 via a left connecting plate 23. A spray plate 3 is connected to the lower right end of the lifting top plate 2 via a right connecting plate 24. A clean water nozzle 31 and a cleaning nozzle 32 are installed on the lower end of the spray plate 3. Cleaning sponges 6 are distributed at the distance between the clean water nozzle 31 and the cleaning nozzle 32. A transmission column 64 is screwed to the upper end of the cleaning sponge 6 via a fixed plate 61. A small motor 62 is connected to the upper end of the transmission column 64 via a transmission wheel assembly 63. A dust suction pipe 41 is connected to the upper end of the dust suction hood 4.
[0020] First, the cut glass substrate is positioned on the cleaning table 51. The spray plate 3 and the dust hood 4 are lowered until the lower surface of the silicone scraper 42 contacts the glass substrate. While the lifting top plate 2 moves to the right, the dust hood 4 first removes the debris and impurities from the surface of the glass substrate. The cleaning nozzle 32 sprays cleaning agent onto the surface of the glass substrate after the cleaning agent is removed. At the same time, the cleaning sponge 6 rotates and wipes the surface of the glass substrate until it moves to the far right. Then, the suction and spraying of cleaning agent are stopped. The spray plate 3 moves up a short distance and then moves to the left to reset. The cleaning agent on the surface of the glass substrate is cleaned by the water nozzle 31. Finally, when it moves to the right, the water suction roller 1 is lowered so that the rotating water suction roller 1 can roll and remove the water from the surface of the glass substrate.
[0021] In this embodiment, a suction chamber 43 is provided on the lower end face of the dust collection hood 4; and the suction chamber 43 is connected to the suction pipe 41. A silicone scraper 42 is installed on the left side of the dust collection hood 4. The left and right sides of the silicone scraper 42 are sloping, and the lower surface of the silicone scraper 42 contacts the glass substrate body 5. A cleaning table 51 is supported on the lower surface of the glass substrate body 5.
[0022] In a preferred embodiment, the dust hood 4 removes debris and impurities from the surface of the glass substrate body 5 after cutting. The silicone scraper 42 prevents water sprayed from the cleaning nozzle 32 from entering the dust collection area, allowing the dust collection and cleaning agent spraying processes to be carried out simultaneously without interference.
[0023] In this embodiment, the surface of the lifting top plate 2 is connected to the left connecting plate 23 and the right connecting plate 24 respectively through the second electric push rod 22, and a connecting block 21 is fixed on the upper surface of the lifting top plate 2.
[0024] In a preferred embodiment, the second electric actuator 22 pushes the left connecting plate 23 and the right connecting plate 24 to move up and down, so that the water-absorbing roller 1, the cleaning sponge 6, and the silicone scraper 42 come into contact with the surface of the glass substrate body 5. The upper end of the lifting top plate 2 can be installed with the sliding table mechanism through the connecting block 21, which facilitates the movement of the water-absorbing roller 1, the spray plate 3, and the dust suction cover 4 at the lower end of the connecting block 21 on the surface of the glass substrate body 5.
[0025] In this embodiment, a small motor 13 is fixed on the front surface of the fixed frame 11, and a water-squeezing vertical plate 14 is connected to the upper end of the fixed frame 11 through a first electric push rod 12; and the water-squeezing vertical plate 14 is symmetrically attached to the left and right sides of the fixed frame 11.
[0026] In a preferred embodiment, the small motor 13 facilitates the rotation of the water-absorbing roller 1 on the surface of the glass substrate body 5 to absorb water and dry the surface of the glass substrate body 5. The water-squeezing vertical plate 14 is pushed down by the first electric push rod 12, so that the first electric push rod 12 contacts the left and right sides of the rotating water-absorbing roller 1, thereby squeezing out the water inside the water-absorbing roller 1.
[0027] In this embodiment, the absorbent roller 1 has an absorbent sponge interlayer 15 inside, a distance sensor 34 is installed on the front surface of the spray plate 3, and a liquid inlet 33 is opened on the rear side of the spray plate 3. A transmission column 64 is connected through the middle of the spray plate 3, and the lower end of the transmission column 64 is provided with external threads.
[0028] In a preferred embodiment, the absorbent sponge interlayer 15 inside the absorbent roller 1 further enhances the water absorption effect while preventing the absorbent roller 1 from excessively squeezing the surface of the glass substrate body 5. The liquid inlet 33 of the spray plate 3 can be easily connected to the clean water pipe and the cleaning agent pipe, so that the clean water nozzle 31 and the cleaning nozzle 32 spray clean water and cleaning agent onto the surface of the glass substrate body 5 respectively, which facilitates the removal of stubborn residues on the surface of the glass substrate body 5 and ensures that the surface of the glass substrate body 5 is clean. The distance sensor 34 is used to monitor the distance between the entire vacuum self-cleaning mechanism and the surface of the glass substrate body 5. The drive column 64 is used to drive the cleaning sponge 6 at the lower end to rotate and wipe the impurities on the surface of the glass substrate body 5.
[0029] This utility model's self-cleaning mechanism for vacuuming after glass substrate cutting effectively solves the problem of glass breakage or new scratches caused by excessive force when manually wiping and cleaning the surface of glass substrates after cutting. It facilitates efficient cleaning of the surface of glass substrates after cutting, ensuring the cleanliness of the glass substrate surface after cutting. The mechanized self-cleaning structure allows for easy control of cleaning the glass substrate with constant force, preventing damage and scrapping of the glass substrate during cleaning, and improving the cleaning efficiency of the glass substrate. It is applicable to self-cleaning mechanisms for vacuuming after glass substrate cutting.
Claims
1. A glass substrate post-cut dusting and self-cleaning mechanism, comprising: Water absorption roller (1), spray plate (3) and dust cover (4), the water absorption roller (1) is provided with spray plate (3) on the right side, and the spray plate (3) is connected with dust cover (4) on the right side, characterized by: The inner side of the water absorption roller (1) is connected with a fixed frame (11) through a rotating shaft (16), the front end of the rotating shaft (16) is connected with a small motor (13), the upper end of the water absorption roller (1) is limitingly connected with a lifting top plate (2) through a left link plate (23), the right lower end of the lifting top plate (2) is limitingly connected with a spray plate (3) through a right link plate (24), the lower end surface of the spray plate (3) is provided with a clean water nozzle (31) and a cleaning nozzle (32), the cleaning sponge (6) is distributed at the interval between the clean water nozzle (31) and the cleaning nozzle (32), the upper end of the cleaning sponge (6) is screwed with a transmission column (64) through a fixed disc (61), the upper end of the transmission column (64) is connected with a small motor (62) through a transmission wheel assembly (63), and the upper end surface of the dust cover (4) is connected with a dust suction pipeline (41).
2. The glass substrate cutting dust suction self-cleaning mechanism according to claim 1, wherein The lower end surface of the dust cover (4) is provided with a dust suction cavity (43); and the dust suction cavity (43) is in communication with the dust suction pipeline (41), and the left end of the dust cover (4) is provided with a silica gel scraper (42).
3. The glass substrate cutting dust suction self-cleaning mechanism according to claim 2, characterized in that, The left and right side surfaces of the silica gel scraper (42) are inclined, the lower surface of the silica gel scraper (42) is in contact with a glass substrate body (5), and the lower surface of the glass substrate body (5) supports a cleaning table (51).
4. The glass substrate cutting dust suction self-cleaning mechanism according to claim 1, wherein The plate surface of the lifting top plate (2) is connected with the left link plate (23) and the right link plate (24) through the second electric push rod (22), and the upper end surface of the lifting top plate (2) is fixed with a link block (21).
5. The glass substrate cutting dust suction self-cleaning mechanism according to claim 1, wherein The front surface of the fixed frame (11) is fixed with a small motor (13), and the upper end of the fixed frame (11) is connected with a water squeezing vertical plate (14) through a first electric push rod (12); and the water squeezing vertical plate (14) is symmetrically attached to the left and right side surfaces of the fixed frame (11).
6. The glass substrate cutting dust suction self-cleaning mechanism according to claim 1, wherein The water absorption roller (1) is provided with a water absorption sponge interlayer (15), the front surface of the spray plate (3) is provided with a distance sensor (34), and the rear surface of the spray plate (3) is provided with a liquid inlet (33).
7. The glass substrate cutting dust suction self-cleaning mechanism according to claim 1, wherein The transmission column (64) penetrates through the middle part of the spray plate (3), and the lower end surface of the transmission column (64) is provided with external threads.