A surface cleaning device for glass processing
By adjusting the nozzle spacing through the piston rod and linkage system, combined with the inclined sewage discharge and adjustable roller design, the problem of poor adaptability of existing glass cleaning devices to glass of different thicknesses is solved, achieving efficient and consistent cleaning results and cost savings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENYANG HUAYE CONSTR ENG CO LTD
- Filing Date
- 2025-08-18
- Publication Date
- 2026-07-21
AI Technical Summary
Existing glass cleaning devices are poorly adaptable to glass of different thicknesses, resulting in low cleaning efficiency and poor consistency.
Employing a vertically movable piston rod and linkage system, the distance between the nozzle and the glass is adjusted. Combined with an inclined drainage design and adjustable rollers, this ensures controlled spraying of the cleaning fluid and stable glass transport, eliminating the need for additional adjustment steps.
It enables adaptive cleaning of glass of different thicknesses, improves cleaning efficiency, ensures cleaning continuity, saves cleaning fluid, and reduces maintenance costs.
Smart Images

Figure CN224525435U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass processing technology, and specifically to a surface cleaning device for glass processing. Background Technology
[0002] Glass is a relatively transparent solid substance. The main component of ordinary glass is silicon dioxide, and it also contains other components such as sodium oxide and calcium oxide. Glass processing is the process of processing raw glass sheets into glass products with specific shapes, sizes, properties and uses through various processes and technologies. Surface cleaning in glass processing is an important step to ensure the quality and performance of glass products. During the glass cutting, edging, coating and other processing, glass debris, oil stains, dust and other impurities may remain on the surface. Therefore, it is necessary to clean the impurities on the glass surface with cleaning equipment. Existing glass cleaning equipment usually adopts dry cleaning or wet cleaning. In wet cleaning, water washing or ultrasonic cleaning is usually used. In water washing, an aqueous solution containing detergent or clean water is usually used for cleaning.
[0003] CN219616208U discloses a surface cleaning device for tempered glass processing, including a worktable. The device is characterized by: movable adjustment mechanisms installed on both sides of the worktable for driving a cleaning rotating mechanism to move horizontally; a cleaning rotating mechanism for cleaning the glass surface installed on the top of the movable adjustment mechanisms; a cleaning brush installed at the bottom of the cleaning rotating mechanism via an installation and disassembly mechanism; and a water collection mechanism installed at the bottom of the worktable to collect wastewater after cleaning. In this invention, the movable adjustment mechanisms provide adaptability. The linear guide rail and guide rail slider allow the cleaning rotating mechanism connected to the mounting base to move back and forth. Adjustable cylinders on both sides allow for height adjustment of the cleaning rotating mechanism to accommodate different glass thicknesses and ensure a tight fit.
[0004] While the existing technology CN219616208U has many advantages in use, it still has the following problems: its adaptability to glass thickness is not perfect, and it needs to be adjusted for different glass thicknesses, resulting in poor adaptability of the device to glass thickness. The adjustment steps lead to low cleaning efficiency of the glass and affect the continuity of glass cleaning. Utility Model Content
[0005] To address the problems in the prior art, this utility model provides a surface cleaning device for glass processing.
[0006] The technical solution adopted by this utility model to solve its technical problem is a surface cleaning device for glass processing, including a frame, a fixing plate and a support frame. The upper outer wall of the frame is provided with fixing plates on both sides. A linkage shaft is rotatably installed inside the fixing plate. A support frame is installed on one side of the upper outer wall of the fixing plate. A sleeve is screwed to one end of the outer wall of the support frame. A piston plate is provided inside the sleeve. A piston rod is installed on the lower outer wall of the piston plate. A linkage rod is provided on one side of the lower outer wall of the piston rod and the linkage shaft. The two ends of the linkage rod are rotatably connected to the piston rod and the linkage shaft respectively by pins. A diverter plate is installed on one side of the outer wall of the piston rod.
[0007] By adopting the above technical solution, the frame provides a stable supporting foundation for the overall equipment. Furthermore, the vertically movable piston rod allows for adjustment of the working height of the flow divider plate, ensuring a corresponding distance between the nozzle and the glass surface to be cleaned. This guarantees that the impact force between the cleaning fluid sprayed from the nozzle and the glass meets requirements, enabling the equipment to adapt to glass of different thicknesses. This avoids the need for additional adjustment steps, improves glass cleaning efficiency, and ensures the continuity of glass cleaning. Moreover, after the flow divider plate moves upward, the inlet pipe connects to the inside of the flow divider plate through a connecting pipe, and the cleaning fluid is sprayed out through the nozzle, ensuring controlled spraying of the cleaning fluid. This achieves the purpose of adaptive control of the cleaning fluid, avoiding waste and saving costs.
[0008] Specifically, the inner walls of the frame are designed with an inclined shape on both sides, a drain outlet is provided on one side of the lower end of the inner wall of the frame, and conveyor belts are provided on both sides of the inner wall of the frame, with the two conveyor belts distributed on both sides of the fixed plate.
[0009] By adopting the above technical solution, the wastewater and impurities generated during the glass cleaning process can flow smoothly to the drain outlet through the inclined surface, avoiding wastewater accumulation and facilitating subsequent centralized cleaning of wastewater by staff. The conveyor belt can transport the glass until it reaches the position of the fixed plate and rollers, and the continuous transport of the glass can be ensured by the conveyor belt.
[0010] Specifically, connectors are installed on both sides of the lower outer wall of the fixing plate, and the fixing plate is connected to the outer wall of the frame by screws through the connectors.
[0011] By adopting the above technical solution, the connector ensures that the fixed plate is in a stable position on the outside of the frame and facilitates the overall disassembly of the fixed plate, making it easier for staff to maintain the equipment.
[0012] Specifically, a retaining sleeve is screwed to the outer wall of one end of the linkage shaft, and a roller for adapting to the thickness is rotatably installed inside the retaining sleeve.
[0013] By adopting the above technical solution, during the glass conveying process, the roller first contacts the glass and moves to its upper surface as the glass moves. Since the roller can rotate flexibly, it can automatically adjust its position according to the change in glass thickness and synchronously drive the linkage shaft to rotate, which ensures that the glass remains stable during the conveying process and avoids scratches on the glass surface due to hard contact.
[0014] Specifically, a torsion spring for providing torsional force is provided through one side of the outer wall of the fixed plate, and the two ends of the torsion spring are respectively connected to the linkage shaft and the outer wall of the fixed plate.
[0015] By adopting the above technical solution, the torsion spring provides torsional force to the linkage shaft, ensuring that the roller always maintains close contact with the glass surface. When the roller contacts glass of different thicknesses, the rotation angle of the linkage shaft varies. When the linkage shaft rotates, it pushes the piston rod and the flow divider to move vertically through the linkage rod, thereby maintaining the required distance between the nozzle and the upper part of the glass to be cleaned and adapting to glass of different thicknesses. After the glass is cleaned, the torsional force generated by the torsion spring can drive the linkage shaft, roller and flow divider to reset.
[0016] Specifically, a sealing ring is bonded and fixed to one side of the lower end of the inner wall of the sleeve, and the inner ring of the sealing ring is in contact with the outer wall of the piston rod, and the piston plate is in contact with the inner wall of the sleeve.
[0017] By adopting the above technical solution, the cooperation between the sealing ring and the piston plate and piston rod effectively prevents the cleaning fluid from leaking. It ensures stable pressure inside the casing, allowing the cleaning fluid to flow along the designed path, ensuring efficient delivery of the cleaning fluid to the distributor plate and nozzles, and improving the operational reliability of the cleaning device.
[0018] Specifically, the lower outer wall of the flow divider is fitted with equally spaced parallel nozzles, the flow divider has a hollow interior, and the nozzles are connected to the interior of the flow divider.
[0019] By adopting the above technical solution, the diverter plate can evenly disperse and spray the cleaning liquid onto the glass surface through the nozzle. This design ensures that all areas of the glass surface can be thoroughly cleaned, guaranteeing the comprehensiveness and uniformity of the cleaning and ensuring consistent cleaning results on the glass surface.
[0020] Specifically, an inlet pipe is inserted into the outer wall of one side of the sleeve, a quick connector is inserted into the outer wall of the inlet pipe on the side away from the sleeve, and a connecting pipe is inserted into the outer wall of the sleeve on the side away from the inlet pipe. The connecting pipe is connected to the inside of the flow divider plate, and both the inlet pipe and the connecting pipe are connected to the inside of the sleeve.
[0021] By adopting the above technical solution, the inlet pipe can be connected to the delivery pipe of the external liquid pump through a quick connector. The liquid pump can then deliver cleaning fluid into the inlet pipe through the quick connector. After the piston plate moves upward with the roller, it will disengage from the blockage of the inlet pipe and the connecting pipe. Thus, the cleaning fluid inside the inlet pipe can flow into the distribution plate through the sleeve and the connecting pipe, and the cleaning fluid can be sprayed out at multiple points through the nozzle. The flow trajectory of the cleaning fluid can be controlled, ensuring the controlled discharge of the cleaning fluid.
[0022] The beneficial effects of this utility model are:
[0023] (1) The surface cleaning device for glass processing described in this utility model can adjust the height of the diverter plate to ensure that the distance between the nozzle and the glass surface to be cleaned is corresponding, and ensure that the impact force between the cleaning liquid sprayed by the nozzle and the glass meets the requirements, thereby ensuring that the equipment can adapt to glass of different thicknesses, avoiding the need for additional adjustment steps, improving the cleaning efficiency of the glass, and ensuring the continuity of glass cleaning.
[0024] (2) The surface cleaning device for glass processing described in this utility model ensures the controlled spraying of the cleaning fluid, achieves the purpose of adaptive control of the cleaning fluid, avoids waste of cleaning fluid, and achieves the purpose of saving costs. Attached Figure Description
[0025] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0026] Figure 1 This is a schematic diagram of the main frame structure of this utility model;
[0027] Figure 2 This is an enlarged schematic diagram of the fixing plate structure of this utility model;
[0028] Figure 3 This is a partially exploded view of the fixing plate structure of this utility model;
[0029] Figure 4 This is an enlarged schematic diagram of the sleeve structure of this utility model;
[0030] Figure 5 This is a cross-sectional schematic diagram of the sleeve structure of this utility model.
[0031] In the diagram: 1. Frame; 11. Conveyor belt; 12. Drain outlet; 2. Fixing plate; 21. Connecting piece; 22. Linkage shaft; 23. Torsion spring; 24. Sleeve; 25. Roller; 26. Linkage rod; 3. Support frame; 31. Sleeve; 32. Liquid inlet pipe; 33. Piston plate; 34. Piston rod; 35. Diverter plate; 36. Nozzle; 37. Connecting pipe. Detailed Implementation
[0032] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0033] To save manpower and improve efficiency, as one embodiment of this utility model, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 As shown, the surface cleaning device for glass processing of this utility model includes a frame 1, a fixing plate 2, and a support frame 3. The fixing plates 2 are provided on both sides of the upper outer wall of the frame 1. A linkage shaft 22 is rotatably installed inside the fixing plate 2. A support frame 3 is installed on one side of the upper outer wall of the fixing plate 2. A sleeve 31 is screwed to one end of the outer wall of the support frame 3. A piston plate 33 is provided inside the sleeve 31. A piston rod 34 is installed on the lower outer wall of the piston plate 33. A linkage rod 26 is provided on one side of the lower outer wall of the piston rod 34 and the outer wall of the linkage shaft 22. The two ends of the linkage rod 26 are rotatably connected to the piston rod 34 and the linkage shaft 22 respectively by pins. A diverter plate 35 is installed on one side of the outer wall of the piston rod 34.
[0034] During use, frame 1 provides a stable support foundation for the entire device. The vertically movable piston rod 34 allows for adjustment of the working height of the diverter plate 35, ensuring that the distance between the nozzle 36 and the glass surface to be cleaned corresponds. This guarantees that the impact force between the cleaning fluid sprayed from the nozzle 36 and the glass meets the requirements, thus ensuring that the device can adapt to glass of different thicknesses. This avoids the need for additional adjustment steps, improves the cleaning efficiency of the glass, and ensures the continuity of glass cleaning. Furthermore, after the diverter plate 35 moves upward, the inlet pipe 32 connects to the inside of the diverter plate 35 through the connecting pipe 37 and sprays the cleaning fluid through the nozzle 36. This ensures controlled spraying of the cleaning fluid, achieving the purpose of adaptive control of the cleaning fluid, avoiding waste of cleaning fluid, and saving costs.
[0035] To drive movement, for example, such as Figure 1 As shown, the inner walls of the frame 1 are both designed with an inclined shape. A drain outlet 12 is provided on one side of the lower end of the inner wall of the frame 1. Conveyor belts 11 are provided on both sides of the inner wall of the frame 1, and the two conveyor belts 11 are distributed on both sides of the fixed plate 2.
[0036] During use, the wastewater and impurities generated during the cleaning process of the cleaning fluid can flow smoothly to the drain outlet 12 through the inclined surface to avoid wastewater accumulation and facilitate subsequent centralized cleaning of wastewater by staff. The conveyor belt 11 can transport the glass until it reaches the position of the fixed plate 2 and the roller 25, and the continuous transport of the glass can be ensured by the conveyor belt 11.
[0037] To maintain the usage location, for example, such as Figure 2 As shown, connectors 21 are installed on both sides of the lower outer wall of the fixing plate 2, and the fixing plate 2 is connected to the outer wall of the frame 1 by screws through the connectors 21.
[0038] During use, the connector 21 ensures that the fixed plate 2 is in a stable position outside the frame 1 and facilitates the disassembly of the fixed plate 2 as a whole, making it convenient for staff to maintain the equipment.
[0039] To accommodate glass, for example, such as Figure 3 As shown, a retaining sleeve 24 is screwed to the outer wall of one end of the linkage shaft 22, and a roller 25 for adapting to the thickness is rotatably installed inside the retaining sleeve 24.
[0040] During use, the roller 25 first contacts the glass during the glass conveying process and moves to its upper surface as the glass moves. Since the roller 25 can rotate flexibly, it can automatically adjust its position according to the change in glass thickness and synchronously drive the linkage shaft 22 to rotate, which ensures that the glass remains stable during the conveying process and avoids scratches on the glass surface due to hard contact.
[0041] To provide torsional force, for example, such as Figure 3 As shown, a torsion spring 23 for providing torsional force is provided through the outer wall of one side of the linkage shaft 22, and the two ends of the torsion spring 23 are connected to the linkage shaft 22 and the outer wall of the fixed plate 2, respectively.
[0042] During use, the torsion spring 23 provides torsional force to the linkage shaft 22, ensuring that the roller 25 remains in close contact with the glass surface. When the roller 25 contacts glass of different thicknesses, the rotation angle of the linkage shaft 22 varies. When the linkage shaft 22 rotates, it pushes the piston rod 34 and the flow divider 35 to move vertically through the linkage rod 26. This ensures that the distance between the nozzle 36 and the upper surface of the glass to be cleaned meets the requirements and can adapt to glass of different thicknesses. After the glass is cleaned, the torsional force generated by the torsion spring 23 can drive the linkage shaft 22, the roller 25 and the flow divider 35 to reset.
[0043] For sealing purposes, exemplarily, such as Figure 5 As shown, a sealing ring is bonded and fixed to one side of the lower end of the inner wall of the sleeve 31, and the inner ring of the sealing ring is in contact with the outer wall of the piston rod 34, while the piston plate 33 is in contact with the inner wall of the sleeve 31.
[0044] During use, the sealing ring, piston plate 33, and piston rod 34 work together to effectively prevent cleaning fluid leakage. This ensures stable pressure within the sleeve 31, allowing the cleaning fluid to flow along the designed path and ensuring efficient delivery of the cleaning fluid to the diverter plate 35 and nozzle 36, thus improving the reliability of the cleaning device.
[0045] For example, to allow the cleaning fluid to be sprayed out, such as... Figure 4 As shown, nozzles 36 are equidistantly and parallelly distributed on the lower outer wall of the flow divider 35. The flow divider 35 has a hollow interior design, and the nozzles 36 are connected to the interior of the flow divider 35.
[0046] When in use, the diverter plate 35 can evenly disperse and spray the cleaning liquid onto the glass surface through the nozzle 36. This design ensures that all areas of the glass surface can be thoroughly cleaned, guaranteeing comprehensive and uniform cleaning and consistent cleaning results.
[0047] To control the flow trajectory, for example, such as Figure 5 As shown, an inlet pipe 32 is inserted into the outer wall of one side of the sleeve 31. A quick connector is inserted into the outer wall of the inlet pipe 32 on the side away from the sleeve 31. A connecting pipe 37 is inserted into the outer wall of the sleeve 31 on the side away from the inlet pipe 32. The connecting pipe 37 is connected to the inside of the diverter plate 35. Both the inlet pipe 32 and the connecting pipe 37 are connected to the inside of the sleeve 31.
[0048] In use, the inlet pipe 32 can be connected to the delivery pipe of the external liquid pump via a quick connector, so that the liquid pump can deliver cleaning fluid into the inlet pipe 32 through the quick connector. After the piston plate 33 moves upward with the roller 25, the piston plate 33 will disengage from the blockage of the inlet pipe 32 and the connecting pipe 37. Thus, the cleaning fluid inside the inlet pipe 32 can flow into the diverter plate 35 through the sleeve 31 and the connecting pipe 37, and the cleaning fluid can be sprayed out at multiple points through the nozzle 36. The flow trajectory of the cleaning fluid can be controlled to ensure the controlled discharge of the cleaning fluid.
[0049] In use, the glass is placed on the conveyor belt 11 on the left side of the frame 1. The conveyor belt 11 rotates smoothly, transporting the glass towards the fixed plate 2 and the roller 25. When the glass reaches the roller 25, the roller 25 first contacts the glass. Because the roller 25 can rotate flexibly, as the glass moves, the roller 25 will automatically adjust its position according to the change in glass thickness until the roller 25 moves to the upper surface of the glass. At the same time, the linkage shaft 22 is driven to rotate synchronously. During this period, the torsion spring 23 provides torsional force to the linkage shaft 22, so that the roller 25 always fits tightly against the glass surface, ensuring the stability of the position of the diverter plate 35.
[0050] As the linkage shaft 22 rotates, the linkage rod 26 pushes the piston rod 34 to move vertically, which in turn drives the flow divider plate 35 mounted on the outer wall of one side of the piston rod 34 to move vertically. This action can automatically adjust the height of the flow divider plate 35 according to the glass thickness, ensuring that the distance between the nozzle 36 on the lower outer wall of the flow divider plate 35 and the upper surface of the glass to be cleaned meets the cleaning requirements, and ensuring that the impact force between the cleaning fluid sprayed by the nozzle 36 and the glass is just right.
[0051] The inlet pipe 32 is connected to the delivery pipe of an external liquid pump via a quick-connect coupling, and the liquid pump delivers the cleaning fluid to the inlet pipe 32. Before the diverter plate 35 moves upward with the roller 25, the piston plate 33 blocks the inlet pipe 32 and the connecting pipe 37, preventing the cleaning fluid from entering the diverter plate 35. When the diverter plate 35 moves upward, the piston plate 33 releases its blockage of the inlet pipe 32 and the connecting pipe 37, and the cleaning fluid in the inlet pipe 32 flows into the diverter plate 35 through the sleeve 31 and the connecting pipe 37. Then, the cleaning fluid is evenly sprayed onto the glass surface through the nozzle 36 to thoroughly clean all areas of the glass.
[0052] During the cleaning process of the cleaning fluid on the glass, the wastewater and impurities generated will flow smoothly along the inclined surfaces on both sides of the inner wall of the frame 1 to the drain outlet 12 opened on the lower side of the inner wall of the frame 1 and be discharged.
[0053] After the glass is cleaned and removed, the torsional force generated by the torsion spring 23 drives the linkage shaft 22, roller 25 and flow divider 35 to reset. At this time, the piston plate 33 re-blocks the inlet pipe 32 and connecting pipe 37, stopping the delivery of cleaning fluid and waiting for the next piece of glass to enter the cleaning process.
[0054] It should be noted that this utility model is a surface cleaning device for glass processing. All components in this utility model are known to those skilled in the art, and their structure and principle can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0055] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A surface cleaning device for glass processing, characterized in that, The frame includes a frame (1), a fixing plate (2), and a support frame (3). The upper outer wall of the frame (1) is provided with fixing plates (2) on both sides. A linkage shaft (22) is rotatably installed inside the fixing plate (2). A support frame (3) is installed on one side of the upper outer wall of the fixing plate (2). A sleeve (31) is screwed to one end of the outer wall of the support frame (3). A piston plate (33) is provided inside the sleeve (31). A piston rod (34) is installed on the lower outer wall of the piston plate (33). A linkage rod (26) is provided on one side of the lower outer wall of the piston rod (34) and the outer wall of the linkage shaft (22). The two ends of the linkage rod (26) are rotatably connected to the piston rod (34) and the linkage shaft (22) respectively by a pin. A diverter plate (35) is installed on one side of the outer wall of the piston rod (34).
2. The surface cleaning device for glass processing according to claim 1, characterized in that, The inner walls of the frame (1) are both designed with an inclined shape. A drain outlet (12) is provided on one side of the lower end of the inner wall of the frame (1). Conveyor belts (11) are provided on both sides of the inner wall of the frame (1). The two conveyor belts (11) are distributed on both sides of the fixed plate (2).
3. The surface cleaning device for glass processing according to claim 1, characterized in that, The fixing plate (2) is equipped with connectors (21) on both sides of the lower outer wall, and the fixing plate (2) is connected to the outer wall of the frame (1) by screws through the connectors (21).
4. The surface cleaning device for glass processing according to claim 1, characterized in that, The outer wall of one end of the linkage shaft (22) is screwed to a sleeve (24), and a roller (25) for adapting to the thickness is rotatably installed inside the sleeve (24).
5. The surface cleaning device for glass processing according to claim 1, characterized in that, The linkage shaft (22) passes through the outer wall of one side of the fixed plate (2) and is provided with a torsion spring (23) for providing torsional force. The two ends of the torsion spring (23) are respectively connected to the linkage shaft (22) and the outer wall of the fixed plate (2).
6. The surface cleaning device for glass processing according to claim 1, characterized in that, A sealing ring is bonded and fixed to one side of the lower end of the inner wall of the sleeve (31), and the inner ring of the sealing ring is in contact with the outer wall of the piston rod (34), and the piston plate (33) is in contact with the inner wall of the sleeve (31).
7. The surface cleaning device for glass processing according to claim 1, characterized in that, The lower outer wall of the flow divider (35) is fitted with equally spaced parallel nozzles (36). The flow divider (35) has a hollow interior and the nozzles (36) are connected to the interior of the flow divider (35).
8. The surface cleaning device for glass processing according to claim 1, characterized in that, An inlet pipe (32) is inserted into the outer wall of one side of the sleeve (31). A quick connector is inserted into the outer wall of the inlet pipe (32) on the side away from the sleeve (31). A connecting pipe (37) is inserted into the outer wall of the sleeve (31) on the side away from the inlet pipe (32). The connecting pipe (37) is connected to the inside of the diverter plate (35). Both the inlet pipe (32) and the connecting pipe (37) are connected to the inside of the sleeve (31).