Automatic glass residue cleaning device for carrier plate glass processing
The automatic glass slag cleaning device, which combines negative pressure adsorption and directional airflow, solves the problems of poor cleaning effect and glass slag accumulation in existing devices, and achieves efficient collection of glass slag and purification of the processing environment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN SHUWANG CHENSHENG NEW MATERIALS CO LTD
- Filing Date
- 2025-05-27
- Publication Date
- 2026-05-08
AI Technical Summary
Existing automatic glass slag cleaning devices suffer from poor cleaning performance, easy scratching of glass surfaces, and glass slag accumulation that affects the processing flow during glass processing.
An automatic glass slag cleaning device was designed, comprising an exhaust fan, an air supply pipe, an air blowing head, and a fine filter chamber. It utilizes the synergistic effect of negative pressure adsorption and directional airflow to achieve rapid collection and purification of glass slag and prevent splashing.
It achieves efficient collection of glass shards, avoids debris accumulation and splashing, improves the cleanliness and safety of the processing environment, and reduces the workload of cleaning and maintenance.
Smart Images

Figure CN224208711U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of glass processing technology and relates to an automatic glass slag cleaning device for carrier glass processing. Background Technology
[0002] The automatic glass slag cleaning device for carrier glass processing is designed to replace traditional manual cleaning methods for glass slag, waste liquid and other waste generated during the processing of carrier glass, thereby improving the cleaning efficiency of the glass processing production line.
[0003] For example, patent CN218223646U discloses an automatic glass slag cleaning device for glass processing, including a frame, a cleaning rod, and a collection box. A hopper is connected to the bottom of the frame, and the other end of the hopper is connected to the collection box. A collection container is detachably and slidably connected inside the collection box. An operating table is connected inside the frame, and the operating table includes several horizontal plates with gaps between adjacent plates. Discharge holes are connected between the end plates and the side walls of the frame. Slide grooves are connected to the frame, perpendicular to the horizontal plates. Several brush bristles are connected to the bottom of the cleaning rod, abutting against the horizontal plates. The cleaning rod is parallel to the horizontal plates, and sliders are connected to both ends of the cleaning rod, slidingly engaging with the slide grooves. This automatic glass slag cleaning device facilitates glass slag removal and ensures effective cleaning with clean brushes.
[0004] However, when the cleaning brush is actually needed, the device must wait until the processing work is finished. If the cleaning brush is used rashly during the glass processing, not only will the cleaning effect be poor, but the glass shards remaining on the brush surface will easily form scratches when they come into contact with the glass surface, seriously affecting product quality. In addition, during the processing process where the cleaning brush cannot intervene in time, glass shards may accumulate on the operating table, which will not only interfere with the normal processing flow, but may also increase the cleaning workload due to the flying debris. Therefore, improvements are needed. Utility Model Content
[0005] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide an automatic glass slag cleaning device for carrier glass processing.
[0006] The present invention discloses an automatic glass slag cleaning device for carrier glass processing, comprising a processing table, a horizontal plate installed on the processing table, a collection hopper installed below the processing table, a horizontal slot provided in the collection hopper, a matching collection plate provided in the slot, a handle installed on the collection plate, a fine filtration chamber installed below the collection hopper, a filter cotton connected to the fine filtration chamber through a quick cleaning mechanism, and an exhaust fan connected to the back of the fine filtration chamber.
[0007] The collection plate is provided with ventilation holes.
[0008] The rapid cleaning mechanism includes a main shaft, a ventilation plate, a hinged plate, a protrusion, a positioning block, a pin, and a locking nut. The main shaft is rotatably mounted in the fine filter chamber, the ventilation plate is mounted on the main shaft, the hinged plate is disposed in the fine filter chamber, the protrusion is mounted on the hinged plate, the positioning block is mounted on the fine filter chamber, the pin is slidably disposed in the protrusion, and the locking nut is threadedly connected to the main shaft.
[0009] The ventilation panels are in three groups and are distributed in a circular pattern on the main axis.
[0010] The ventilation plate is attached to the inner wall of the fine filtration chamber, and the filter cotton is installed on the ventilation plate.
[0011] The exhaust fan is connected to an air supply pipe at its air supply end. An air chamber is installed on the back of the processing table. Support plates are installed at both ends of the processing table. An air blowing head is installed above the support plates. Reinforcing plates are installed at both ends of the processing table. Connecting pipes are connected to both ends of the air chamber.
[0012] The air chamber is connected to the air supply pipe, and the connecting pipe is connected to the air blowing head.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] I. In this utility model, the exhaust fan generates negative pressure suction by continuously drawing air, which enables the collection hopper to quickly adsorb the glass shards scattered on the processing table, thereby achieving rapid collection of glass shards, effectively preventing the accumulation of debris, and further improving collection efficiency. In addition, the design of the fine filter chamber can deeply purify the gas discharged by the exhaust fan, intercepting tiny glass shards, eliminating pollution of the processing environment caused by gas emissions from the source, and reducing the workload of cleaning and maintenance. At the same time, the fine filter chamber is highly convenient to maintain.
[0015] II. In this utility model, by setting up an air supply pipe, an air chamber, an air blowing head, and a connecting pipe, the airflow originally discharged by the exhaust fan is converted into directional air pressure. The air blowing head is aimed at the processing table at an angle tilted downwards, and airflow is continuously blown out during the processing to form a protective barrier. This not only effectively suppresses glass shards from splashing, but also pushes the debris into the gap between the horizontal plates, forming a synergistic effect of "blowing and sucking" with the negative pressure collection mechanism, which significantly improves the collection efficiency of glass shards. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0017] Figure 2 This is a schematic diagram of the rear structure of this utility model.
[0018] Figure 3 This is a schematic diagram of the opening structure of the hinged plate in this utility model.
[0019] Figure 4 This is an exploded structural diagram of the fine filtration chamber in this utility model.
[0020] Figure 5 This is a top view structural diagram of the present invention.
[0021] Figure 6 This is a schematic diagram of the upward-facing structure of this utility model.
[0022] In the diagram: 1. Processing table; 2. Horizontal plate; 3. Collection hopper; 4. Slot; 5. Collection plate; 6. Exhaust fan; 7. Air duct; 8. Air chamber; 9. Support plate; 10. Air blower head; 11. Reinforcing plate; 12. Connecting pipe; 13. Handle; 14. Fine filtration chamber; 15. Filter cotton; 16. Main shaft; 17. Ventilation plate; 18. Opening and closing plate; 19. Protrusion; 20. Positioning block; 21. Pin; 22. Locking nut. Detailed Implementation
[0023] Example
[0024] like Figures 1-6 As shown, an automatic glass slag cleaning device for processing carrier glass includes a processing table 1, a horizontal plate 2 installed on the processing table 1, a collection hopper 3 installed below the processing table 1, a horizontal slot 4 provided in the collection hopper 3, a matching collection plate 5 provided in the slot 4, a handle 13 installed on the collection plate 5, a fine filtration chamber 14 installed below the collection hopper 3, a filter cotton 15 connected to the fine filtration chamber 14 through a quick cleaning mechanism, and an exhaust fan 6 connected to the back of the fine filtration chamber 14.
[0025] The collecting plate 5 is equipped with ventilation holes. As glass shards enter, the larger glass shards will eventually be intercepted by the collecting plate 5, and then the air will carry the smaller glass shards through the ventilation holes to continue flowing.
[0026] The quick-cleaning mechanism includes a main shaft 16, a ventilation plate 17, an opening and closing plate 18, a protrusion 19, a positioning block 20, a pin 21, and a locking nut 22. The main shaft 16 is rotatably mounted inside the fine filter chamber 14. The ventilation plate 17 is mounted on the main shaft 16. The opening and closing plate 18 is located inside the fine filter chamber 14. The protrusion 19 is mounted on the opening and closing plate 18. The positioning block 20 is mounted on the fine filter chamber 14. The pin 21 is slidably located inside the protrusion 19. The locking nut 22 is threadedly connected to the main shaft 16. The quick-cleaning mechanism can effectively improve the cleaning and maintenance of the filter cotton 15 and is highly practical.
[0027] There are three sets of ventilation plates 17, which are distributed in a circular pattern on the main shaft 16. Rotate the main shaft 16 counterclockwise until the used filter cotton 15 rotates to the position of the opening and closing plate 18, and at the same time, a new filter cotton 15 will be reset in the original position of the filter cotton 15.
[0028] The ventilation plate 17 is attached to the inner wall of the fine filter chamber 14, and the filter cotton 15 is installed on the ventilation plate 17. The attachment of the ventilation plate 17 to the fine filter chamber 14 can effectively improve the sealing performance and prevent the presence of tiny airflow channels that could cause some glass shards to be discharged with the air.
[0029] The exhaust fan 6 is connected to an exhaust pipe 7 at its air delivery end. An air chamber 8 is installed on the back of the processing table 1. Support plates 9 are installed at both ends of the processing table 1. An air blowing head 10 is installed above the support plates 9. Reinforcing plates 11 are installed at both ends of the processing table 1. Connecting pipes 12 are connected to both ends of the air chamber 8. After the gas is extracted, it is sent into the air chamber 8 through the exhaust pipe 7. Under the action of air pressure, the gas will be driven along the connecting pipe 12 into the air blowing head 10.
[0030] The air chamber 8 is connected to the air supply pipe 7, and the connecting pipe 12 is connected to the air blowing head 10. The air blowing head 10 is tilted downwards and aimed at the processing table 1. During the processing, it continuously blows out airflow to form a protective barrier. This not only effectively suppresses glass shards from splashing, but also pushes the debris into the gap of the horizontal plate 2, forming a synergistic effect of "blowing and sucking" with the negative pressure collection mechanism.
[0031] Working principle: When the carrier glass is placed on the horizontal plate 2 for processing, the exhaust fan 6 is first started and the air in the collection hopper 3 is quickly extracted, thereby creating a negative pressure at the gap of the horizontal plate 2 and sucking in the air carrying glass shards. As the glass shards enter, the larger glass shards are eventually intercepted by the collection plate 5. Then, the air carries the smaller glass shards and continues to flow. The filter cotton 15 effectively intercepts the smaller glass shards, thus effectively purifying the gas. After being extracted, the gas is sent into the air chamber 8 through the air supply pipe 7. Under the action of air pressure, the gas is driven along the connecting pipe 12 into the air blowing head 10. The air blowing head 10 is tilted downwards and aimed at the processing table 1. During processing, airflow is continuously blown out to form a protective barrier, which can not only effectively suppress glass shards from splashing, but also push the debris into the gap of the horizontal plate 2. This creates a synergistic effect of "blowing and sucking" with the negative pressure collection mechanism, improving the collection efficiency of glass shards. When the filter cotton 15 needs to be cleaned, first turn the locking nut 22 to stop applying a top force to the fine filter chamber 14. Then, rotate the main shaft 16 counterclockwise until the used filter cotton 15 rotates to the position of the opening and closing plate 18. At the same time, a new filter cotton 15 will be reset at the original position. Then, the pin 21 can be pulled out and the opening and closing plate 18 can be opened to expose the internal filter cotton 15. The surface of the filter cotton 15 can be cleaned with a cleaning tool. The operation is convenient.
[0032] The descriptions of the orientation and relative positional relationships of the structure in this utility model, such as descriptions of front, back, left, right, up, and down, do not constitute a limitation on this utility model, but are merely for the convenience of description.
Claims
1. An automatic glass slag cleaning device for carrier glass processing, characterized in that: The system includes a processing table (1), on which a horizontal plate (2) is installed. A collection hopper (3) is installed below the processing table (1). A horizontal slot (4) is provided in the collection hopper (3). A matching collection plate (5) is provided in the slot (4). A handle (13) is installed on the collection plate (5). A fine filter chamber (14) is installed below the collection hopper (3). The fine filter chamber (14) is connected to filter cotton (15) through a quick cleaning mechanism. A fan (6) is connected to the back of the fine filter chamber (14).
2. The automatic glass slag cleaning device for carrier glass processing according to claim 1, characterized in that: The collection plate (5) is provided with ventilation holes.
3. The automatic glass slag cleaning device for carrier glass processing according to claim 1, characterized in that: The rapid cleaning mechanism includes a main shaft (16), a ventilation plate (17), an opening and closing plate (18), a protrusion (19), a positioning block (20), a pin (21), and a locking nut (22). The main shaft (16) is rotatably installed in the fine filter chamber (14). The ventilation plate (17) is installed on the main shaft (16). The opening and closing plate (18) is located in the fine filter chamber (14). The protrusion (19) is installed on the opening and closing plate (18). The positioning block (20) is installed on the fine filter chamber (14). The pin (21) is slidably located in the protrusion (19). The locking nut (22) is threadedly connected to the main shaft (16).
4. The automatic glass slag cleaning device for carrier glass processing according to claim 3, characterized in that: The number of ventilation panels (17) is three sets, and they are distributed in a circular shape on the main shaft (16).
5. The automatic glass slag cleaning device for carrier glass processing according to claim 3, characterized in that: The ventilation plate (17) is attached to the inner wall of the fine filtration chamber (14), and the filter cotton (15) is installed on the ventilation plate (17).
6. The automatic glass slag cleaning device for carrier glass processing according to claim 1, characterized in that: The exhaust fan (6) is connected to an air supply pipe (7), an air chamber (8) is installed on the back of the processing table (1), support plates (9) are installed at both ends of the processing table (1), an air blowing head (10) is installed above the support plate (9), a reinforcing plate (11) is installed at both ends of the processing table (1), and a connecting pipe (12) is connected to both ends of the air chamber (8).
7. The automatic glass slag cleaning device for carrier glass processing according to claim 6, characterized in that: The air chamber (8) is connected to the air supply pipe (7), and the connecting pipe (12) is connected to the air blowing head (10).