Glass cleaning device with water absorption structure
By introducing a water-absorbing structure, including a water-absorbing part and a drive component, into the glass cleaning device, the problem of residual water that cannot be removed is solved, achieving rapid adsorption and recycling, avoiding secondary pollution, and improving cleaning efficiency.
Patent Information
- Application Number
- CN202422901531.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing glass cleaning devices lack water absorption capabilities, resulting in residual water that cannot be removed in time after cleaning, which can easily cause secondary pollution.
A glass cleaning device with a water-absorbing structure was designed, including a base, a conveying mechanism, a cleaning mechanism, and a water-absorbing mechanism. The water-absorbing mechanism removes residual water by reciprocating along the vertical conveying direction through a water-absorbing part and a driving component. The water-absorbing part consists of a cavity, a corrugated pipe, a water pump, and a water collection tank. It utilizes water-absorbing holes and absorbent cotton to achieve rapid adsorption and recovery of residual water.
It enables the timely absorption and removal of residual water on the glass after cleaning, avoiding secondary pollution and improving cleaning efficiency and convenience.
Smart Images

Figure CN223655562U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass cleaning equipment. More specifically, this utility model relates to a glass cleaning device with a water-absorbing structure. Background Technology
[0002] Glass is an amorphous inorganic non-metallic material, generally made from a variety of inorganic minerals as the main raw materials, with the addition of a small amount of auxiliary materials. Its main components are silicon dioxide and other oxides. It is widely used in buildings for wind insulation and light transmission. After the daily glass production and processing work is completed, as well as in routine cleaning operations, glass often needs to be cleaned.
[0003] Existing glass cleaning methods either involve manual cleaning, which is labor-intensive and inefficient, or the use of existing glass cleaning equipment. However, these equipment are relatively simple and lack water absorption capabilities, often leaving residual cleaning water on the glass after cleaning. This water cannot be directly transferred and may cause secondary pollution (direct transfer allows dust and impurities in the air to easily adhere to the glass, and human contact with the glass can also cause secondary pollution). Utility Model Content
[0004] One object of this invention is to solve at least the problems described above and to provide at least the advantages that will be explained later.
[0005] Another objective of this invention is to provide a glass cleaning device with a water-absorbing structure, which can promptly absorb and remove residual water from the glass after cleaning it with water, facilitating rotation and minimizing potential secondary pollution.
[0006] To achieve these objectives and other advantages according to the present invention, a glass cleaning device with a water-absorbing structure is provided, comprising:
[0007] Base;
[0008] A conveying mechanism, which is mounted on the base, for conveying glass;
[0009] A cleaning mechanism, located above the conveying mechanism, is used to clean the glass;
[0010] A water-absorbing mechanism includes a water-absorbing part and a drive member that drives the water-absorbing part to reciprocate in a direction perpendicular to the conveying direction of the conveying mechanism. The water-absorbing part is located downstream of the cleaning mechanism to remove residual water from the cleaned glass.
[0011] Preferably, a horizontal plate is provided above the conveying mechanism; the driving component includes a motor horizontally mounted above the horizontal plate, a rotating rod coaxially fixed to the motor, a first bevel gear coaxially fixed to the rotating rod, a second bevel gear meshing with the first bevel gear, a rotating shaft coaxially fixed to the second bevel gear, a turntable, a slide bar, and a swing plate. The rotating shaft rotates through the horizontal plate, and the turntable is coaxially fixed to the through end of the rotating shaft. The slide bar is provided at the eccentric position at the bottom of the turntable.
[0012] The swing plate is slidably disposed below the horizontal plate, and the swing plate is provided with the water absorption part; the swing plate is provided with a limiting groove along the conveying direction of the conveying mechanism, and the slide bar extends movably into the limiting groove so that when the motor rotates and drives the turntable and the slide bar to rotate, the slide bar drives the swing plate to slide back and forth in the direction perpendicular to the conveying direction of the conveying mechanism.
[0013] Preferably, the water suction unit includes a horizontally arranged cavity, a corrugated pipe, a water pump, and a water collection tank. The water pump and the water collection tank are both located on the horizontal plate. The water collection tank is connected to the water pump outlet via a water pipe. The water pump inlet is connected to the cavity via the corrugated pipe. The cavity is located below the horizontal plate. The top of the cavity is connected to the swing plate. The bottom of the cavity has multiple water suction holes. A one-way valve is provided on the water pipe.
[0014] Preferably, the rotating rod is a worm gear, which meshes with a worm wheel, and the worm wheel is connected to a first belt drive component; the cleaning mechanism includes a cleaning roller and multiple water spray heads, which are spaced apart along the direction perpendicular to the conveying direction of the conveying mechanism. The cleaning roller is located downstream of the multiple water spray heads, and the axial direction of the cleaning roller is perpendicular to the conveying direction of the conveying mechanism. The cleaning roller and the worm wheel are connected by the first belt drive component so that the cleaning roller rotates when the worm wheel rotates.
[0015] Preferably, the cleaning roller is connected to a second belt drive component;
[0016] The conveying mechanism includes a pair of drive wheels, a conveyor belt sleeved on and connected to the pair of drive wheels, and a pressure plate. One drive wheel is connected to the cleaning roller via a second belt conveyor so that when the cleaning roller rotates, it drives the pair of drive wheels to rotate, thereby driving the conveyor belt to convey glass. The pressure plate is mounted on the horizontal plate and is arranged along the conveying direction of the conveyor belt. The pressure plate is located inside the conveyor belt, and the top surface of the pressure plate is in contact with the bottom surface of the adjacent conveyor belt.
[0017] Preferably, the bottom of the cavity, which has water-absorbing holes, is provided with absorbent cotton.
[0018] This utility model has at least the following beneficial effects:
[0019] By incorporating a base, a conveying mechanism, a cleaning mechanism, and a water-absorbing mechanism, a glass cleaning device with a water-absorbing structure is provided. This device can promptly absorb and remove residual water from the glass after it has been cleaned with water, facilitating the transfer of the glass and minimizing the possibility of secondary pollution due to the presence of residual water.
[0020] Other advantages, objectives and features of this invention will be partly apparent from the following description, and partly understood by those skilled in the art through study and practice of this invention. Attached Figure Description
[0021] Fig. 1 This is a schematic diagram of the glass cleaning device with a water-absorbing structure according to one of the technical solutions of this utility model;
[0022] Fig. 2 This is a schematic diagram showing the connection state of the limiting strip, the swing plate, and the fixed shaft according to one of the technical solutions of this utility model;
[0023] Fig. 3 This is a schematic diagram of the conveying mechanism according to one of the technical solutions of this utility model.
[0024] Reference numerals: 1-Base; 2-Upright plate; 3-Horizontal plate; 4-Mounting plate; 5-Motor; 6-Worm gear; 7-First bevel gear; 8-Worm wheel; 9-Second bevel gear; 10-Rotating shaft; 11-Turntable; 12-Sliding bar; 13-Limiting strip; 14-Swing plate; 15-Fixed shaft; 16-Cavity; 17-Bellwall; 18-Water pump; 19-One-way valve; 20-Water collection tank; 22-Second transmission belt; 23-Third transmission belt; 24-Drive wheel; 25-Transmission belt; 26-Pressure plate; 27-Cleaning roller; 28-Spray head. Detailed Implementation
[0025] The present invention will now be described in further detail with reference to the accompanying drawings, so that those skilled in the art can implement it based on the description.
[0026] It should be understood that terms such as “having,” “comprising,” and “including” as used herein do not exclude the presence or addition of one or more other elements or combinations thereof.
[0027] like Figs. 1-3 As shown, this utility model provides a glass cleaning device with a water-absorbing structure, comprising:
[0028] Base 1;
[0029] A conveying mechanism, which is mounted on the base 1, is used to convey glass;
[0030] A cleaning mechanism, located above the conveying mechanism, is used to clean the glass;
[0031] A water-absorbing mechanism includes a water-absorbing part and a driving member that drives the water-absorbing part to reciprocate in a direction perpendicular to the conveying direction of the conveying mechanism. The water-absorbing part is located downstream of the cleaning mechanism to remove residual water from the cleaned glass.
[0032] In the above technical solution, a pair of upright plates 2 are provided on the base 1, and a conveying mechanism is provided between the pair of upright plates 2. The conveying mechanism is used to convey glass. The conveying mechanism can be a common conveyor belt conveying structure. A pair of upright plates 2 are provided on both sides of the conveying mechanism along the conveying direction. A horizontal plate 3 is provided at the top of the pair of upright plates 2. A cleaning mechanism and an absorption mechanism are provided at the bottom of the horizontal plate 3. The cleaning mechanism is a common water cleaning mechanism. The water absorption mechanism includes a water absorption part and a driving component. The water absorption part is located below the cleaning mechanism and is used to absorb and remove residual water on the cleaned glass. The water absorption part can be a negative pressure water absorption structure or a water-absorbing material such as water-absorbing cotton. The water absorption part moves back and forth along the direction perpendicular to the conveying direction of the conveying mechanism. The driving component drives the water absorption part to move back and forth. The driving component can be of various types, such as a reciprocating linear motor 5.
[0033] In this technical solution, the glass to be cleaned is first placed on the conveying mechanism, then the conveying mechanism is started to transport the glass. At the same time, the cleaning mechanism and the water absorption mechanism are activated. The cleaning mechanism washes the glass with water, and the water absorption mechanism absorbs water from the washed glass to remove residual water. The beneficial effect of this technical solution is that by setting up a base 1, a conveying mechanism, a cleaning mechanism, and a water absorption mechanism, a glass cleaning device with a water absorption structure is provided, which can promptly absorb and remove residual water from the glass after water washing, facilitate the transfer of glass, and minimize the secondary pollution that may be caused by the presence of residual water.
[0034] In another technical solution, the driving component includes a motor 5 horizontally mounted above the cross plate 3, a rotating rod coaxially fixed to the motor 5, a first bevel gear 7 coaxially fixed to the rotating rod, a second bevel gear 9 meshing with the first bevel gear 7, a rotating shaft 10 coaxially fixed to the second bevel gear 9, a turntable 11, a slide bar 12, and a swing plate 14. The rotating shaft 10 rotates through the cross plate 3, and the turntable 11 is coaxially fixed to the through end of the rotating shaft 10. The slide bar 12 is provided at the eccentric bottom of the turntable 11.
[0035] The swing plate 14 is slidably disposed below the horizontal plate 3, and the swing plate 14 is provided with the water absorption part; the swing plate 14 is provided with a limiting groove along the conveying direction of the conveying mechanism, and the slide bar 12 extends movably into the limiting groove so that when the motor 5 rotates and drives the turntable 11 and the slide bar 12 to rotate, the slide bar 12 drives the swing plate 14 to slide back and forth in a direction perpendicular to the conveying direction of the conveying mechanism;
[0036] In this technical solution, a pair of mounting plates 4 are vertically provided on the top of the horizontal plate 3, and a rotating rod is rotatably provided between the pair of mounting plates 4. One end of the rotating rod is coaxially fixed to the output end of the motor 5. The motor 5 is horizontally set and installed on the mounting plate 4 near the rotating rod. A first bevel gear 7 is coaxially fixed to the rotating rod. The first bevel gear 7 meshes with a second bevel gear 9. The second bevel gear 9 is coaxially fixed to a rotating shaft 10. The rotating shaft 10 is vertically set. The end of the rotating shaft 10 away from the second bevel gear 9 rotates out of the horizontal plate 3. A turntable 11 is coaxially fixed to the end of the rotating shaft 10. A sliding rod 12 is vertically provided on the turntable 11 away from its center (eccentric point).
[0037] Below the horizontal plate 3, a swing plate 14 is provided. The swing plate 14 is horizontally positioned, and the bottom of the swing plate 14 has the water-absorbing part. A pair of sliding holes are horizontally opened through the swing plate 14, and the pair of sliding holes are spaced apart along the conveying direction of the conveying mechanism. The sliding holes are also positioned perpendicular to the conveying direction of the conveying mechanism. A fixed shaft 15 slides through each sliding hole, and both ends of the fixed shaft 15 protrude from the sliding hole. Each protruding end of the fixed shaft 15 is connected to a vertically positioned support rod. The end of the support rod away from the swing plate 14 is connected to the side wall of the horizontal plate 3, that is, the... The swing plate 14 slides along the fixed shaft 15; the top of the swing plate 14 is provided with a limiting groove, and the slide bar 12 extends into the limiting groove. The limiting groove specifically includes a pair of limiting strips 13, which are arranged along the conveying direction of the conveying mechanism. The pair of limiting strips 13 are spaced apart along the direction perpendicular to the conveying direction of the conveying mechanism. The distance between the pair of limiting strips 13 is slightly larger than the diameter of the slide bar 12 (e.g., 2-5 mm larger). The slide bar 12 extends between the pair of limiting strips 13, and the pair of limiting strips 13 limit the slide bar 12.
[0038] In this technical solution, when in use, the motor 5 starts, driving the rotating rod to rotate. The rotation of the rotating rod drives the first bevel gear 7, the second bevel gear 9, the rotating shaft 10, the turntable 11, and the slide bar 12 to rotate. During the rotation, the bottom of the slide bar 12 slides between a pair of limiting plates 13, driving the swing plate 14 to slide along the fixed shaft 15. This, in turn, drives the water-absorbing part at the bottom of the swing plate 14 to absorb and remove residual water from the glass. The beneficial effect of this technical solution is that by setting up the motor, rotating rod, first bevel gear 7, second bevel gear 9, rotating shaft 10, turntable 11, slide bar 12, swing plate 14, fixed shaft 15, and support rod, a driving component structure is provided. The design is reasonable, the driving effect is good, the materials are relatively easy to select, and the practicality is strong.
[0039] In another technical solution, the water suction unit includes a horizontally arranged cavity 16, a corrugated pipe 17, a water pump 18, and a water collection tank 20. The water pump 18 and the water collection tank 20 are both mounted on the horizontal plate 3. The water collection tank 20 is connected to the outlet of the water pump 18 via a water pipe. The inlet of the water pump 18 is connected to the cavity 16 via the corrugated pipe 17. The cavity 16 is located below the horizontal plate 3. The top of the cavity 16 is connected to the swing plate 14. The bottom of the cavity 16 has multiple water suction holes. A one-way valve 19 is provided on the water pipe.
[0040] In this technical solution, the water absorption part includes a horizontally arranged cavity 16. The bottom of the cavity 16 is provided with multiple water absorption holes. The top of the cavity 16 is connected to the bottom of the swing plate 14. One end of the cavity 16 has an opening, and a corrugated pipe 17 is connected to the opening. The other end of the corrugated pipe 17 is connected to the inlet of a water pump 18. The outlet of the water pump 18 is connected to a water pipe. A one-way valve 19 is provided on the water pipe. The other end of the water pipe is connected to a water collection tank 20. The one-way valve 19 is used to guide the water absorbed by the water pump 18 into the water collection tank 20. The water collection tank 20 and the water pump 18 are both located on the horizontal plate 3. It should be noted that the horizontal plate 3 has through holes for the corrugated pipe 17 to pass through, without interfering with the swing (reciprocating movement) of the swing plate 14. The cavity 16 is located above the glass and can be attached to it or designed at a certain distance from the glass, such as 5-30mm, depending on the suction force generated by the water pump 18.
[0041] In this technical solution, when in use, the water pump 18 starts, driving the suction hole on the cavity 16 to generate suction, thereby absorbing the residual water on the glass. The residual water enters the water pump 18 after passing through the cavity 16 and the corrugated pipe 17, and then enters the water collection tank 20 through the water pump 18 and the water pipe for recycling. The beneficial effect of adopting this technical solution is that, by designing the cavity 16, the suction hole, the corrugated pipe 17, the water pump 18, the water pipe, the water collection tank 20, and the one-way valve 19, a water suction mechanism structure is provided that can cooperate with the conveying mechanism and the swing mechanism to quickly remove residual water from the glass, with good water suction effect and recycling of residual water, ensuring the cleanliness of the work surface.
[0042] In another technical solution, the rotating rod is a worm gear 6, which meshes with a worm wheel 8, and the worm wheel 8 is connected to a first belt drive component; the cleaning mechanism includes a cleaning roller 27 and multiple water spray heads 28, which are spaced apart along the direction perpendicular to the conveying direction of the conveying mechanism; the cleaning roller 27 is located downstream of the multiple water spray heads 28, and the axial direction of the cleaning roller 27 is perpendicular to the conveying direction of the conveying mechanism; the cleaning roller 27 is connected to the worm wheel 8 through the first belt drive component so that when the worm wheel 8 rotates, it drives the cleaning roller 27 to rotate.
[0043] In this technical solution, the rotating rod is a worm gear 6, which is rotatably mounted between a pair of mounting plates 4. The worm gear 6 meshes with a worm wheel 8, which is vertically arranged (i.e., the axial direction of the worm wheel 8 is horizontal). A support plate is provided on one side of the worm wheel 8, and a support shaft is horizontally provided on the plate body of the support plate near the worm wheel 8. The end of the support shaft away from the support plate is coaxially fixed to the worm wheel 8. The cleaning structure includes a cleaning roller 27 and multiple water spray heads 28. The multiple water spray heads 28 are located upstream of the cleaning roller 27 and are spaced apart along the direction of the vertical conveying mechanism to spray water onto the glass as comprehensively as possible. The water spray heads 28 are connected to an external water supply device (not shown in the figure). The axial direction of the cleaning roller 27 is parallel to the direction of the vertical conveying mechanism. Mounting shafts are coaxially provided at both ends of the cleaning roller 27. A connecting plate is vertically provided on each of the two side walls of the horizontal plate 3. A pair of connecting plates corresponds to a pair of mounting shafts, and the mounting shafts are rotatably connected to the corresponding connecting plates.
[0044] The first belt drive includes a pair of pulleys and a belt connected to the pair of pulleys. The belt is a second drive belt 22. Of the pair of pulleys, one pulley is coaxially fixed to the support shaft, and the other pulley is coaxially fixed to a nearby mounting shaft. When the worm gear 8 is driven to rotate by the motor 5, it drives the cleaning roller 27 to rotate through the first belt drive, thereby cleaning the glass. The cleaning roller 27 can be a roller shaft with cleaning cotton. It should be noted that in actual use, in order to reduce costs or save electricity and improve energy transmission efficiency, the drive end of the water pump 18 can be connected to the worm gear 8 through the belt drive, so that the water pump 18 is driven to work when the worm gear 8 rotates.
[0045] The beneficial effect of adopting this technical solution is that, by designing the worm gear 6, worm wheel 8, first belt drive component, cleaning roller 27, and multiple water spray heads 28, a cleaning mechanism that is synchronously driven by the motor 5 is provided, which ensures cleaning effect while saving costs and electricity.
[0046] In another technical solution, the cleaning roller 27 is connected to a second belt drive component;
[0047] The conveying mechanism includes a pair of drive wheels 24, a transmission belt 25 sleeved on and connected to the pair of drive wheels 24, and a pressure plate 26. One drive wheel 24 is connected to the cleaning roller 27 via a second belt conveyor so that when the cleaning roller 27 rotates, it drives the pair of drive wheels 24 to rotate, thereby driving the transmission belt 25 to convey glass. The pressure plate 26 is mounted on the horizontal plate 3 and is arranged along the conveying direction of the transmission belt 25. The pressure plate 26 is located inside the transmission belt 25, and the top surface of the pressure plate 26 is in contact with the bottom surface of the adjacent transmission belt 25.
[0048] In this technical solution, the base 1 is provided with a pair of support seats, and the pair of support seats corresponds to a pair of drive wheels 24. The drive wheels 24 are rotatably mounted on the corresponding support seats. Specifically, the support seat is a C-shaped block. The two ends of the drive wheels 24 are respectively coaxially fixed with connecting shafts. The connecting shafts are rotatably mounted on the adjacent C-shaped blocks (two blocks in the same direction of the C-shaped blocks are respectively rotatably mounted with a connecting shaft). The pair of drive wheels 24 are connected to the transmission belt 25. The transmission belt 25 is provided with a pressure plate 26 inside. The pressure plate 26 is horizontally arranged and the top surface of the pressure plate 26 is in contact with the bottom surface of the upper belt body of the transmission belt 25. Here, the upper belt body refers to the belt body of the transmission belt 25 where the glass conveying surface is located. The two end side walls of the pressure plate 26 along the vertical conveying direction of the transmission belt 25 are respectively provided with support rods. The other end of the support rod away from the pressure plate 26 is connected to the side wall of the base 1 to support the pressure plate 26.
[0049] The second belt conveyor includes a pair of pulleys and a belt, which is a third transmission belt 23. Of the pair of pulleys, one pulley is coaxially fixed to a mounting shaft, and the other pulley is coaxially fixed to a connecting shaft of a drive wheel 24. The third transmission belt 23 drives the pair of pulleys. In use, the motor 5 rotates, driving the pair of pulleys to rotate, which in turn drives the cleaning roller 27 and the pair of drive wheels 24 to rotate synchronously. This causes the cleaning roller 27 to clean the glass while the conveyor belt 25 transports it. In actual use, a speed reducer can be equipped to better match the rotational speed of the cleaning roller 27 with the transmission speed of the conveyor belt 25.
[0050] The beneficial effect of adopting this technical solution is that by setting a second belt drive component, drive wheel 24, transmission belt 25, and pressure plate 26, a conveying mechanism structure is provided. The cleaning roller 27 is driven to rotate by motor 5, which in turn drives a pair of drive wheels 24 to rotate, thus saving costs while ensuring the driving effect.
[0051] In another technical solution, the bottom of the cavity 16 with water absorption holes is provided with absorbent cotton. The beneficial effect of this technical solution is that by setting the absorbent cotton, when in use, the absorbent cotton is attached to the glass and can absorb water on the glass, further improving the effect of removing residual water on the glass. At the same time, the absorbent cotton can form a protective pad layer to avoid damage to the glass caused by the cavity 16 contacting the glass (if the cavity 16 is designed to contact the glass directly).
[0052] The number of devices and processing capacity described herein are for the purpose of simplifying the description of this utility model. Applications, modifications, and variations of the glass cleaning device with an absorbent structure of this utility model will be readily apparent to those skilled in the art.
[0053] Although the embodiments of this utility model have been disclosed above, they are not limited to the applications listed in the specification and embodiments. They can be applied to various fields suitable for this utility model. For those skilled in the art, other modifications can be easily made. Therefore, without departing from the general concept defined by the claims and their equivalents, this utility model is not limited to the specific details and the illustrations shown and described herein.
Claims
1. A glass cleaning device with a water-absorbing structure, characterized in that, include: Base; A conveying mechanism, which is mounted on the base, for conveying glass; A cleaning mechanism, located above the conveying mechanism, is used to clean the glass; A water-absorbing mechanism includes a water-absorbing part and a drive member that drives the water-absorbing part to reciprocate in a direction perpendicular to the conveying direction of the conveying mechanism. The water-absorbing part is located downstream of the cleaning mechanism to remove residual water from the cleaned glass.
2. The glass cleaning device with a water-absorbing structure as described in claim 1, characterized in that, A horizontal plate is provided above the conveying mechanism; the driving component includes a motor horizontally mounted above the horizontal plate, a rotating rod coaxially fixed to the motor, a first bevel gear coaxially fixed to the rotating rod, a second bevel gear meshing with the first bevel gear, a rotating shaft coaxially fixed to the second bevel gear, a turntable, a slide bar, and a swing plate. The rotating shaft rotates through the horizontal plate, and the turntable is coaxially fixed to the through end of the rotating shaft. The slide bar is provided at the eccentric position at the bottom of the turntable. The swing plate is slidably disposed below the horizontal plate, and the swing plate is provided with the water absorption part; the swing plate is provided with a limiting groove along the conveying direction of the conveying mechanism, and the slide bar extends movably into the limiting groove so that when the motor rotates and drives the turntable and the slide bar to rotate, the slide bar drives the swing plate to slide back and forth in the direction perpendicular to the conveying direction of the conveying mechanism.
3. The glass cleaning device with a water-absorbing structure as described in claim 2, characterized in that, The water suction unit includes a horizontally arranged cavity, a corrugated pipe, a water pump, and a water collection tank. The water pump and the water collection tank are both located on the horizontal plate. The water collection tank is connected to the water pump outlet via a water pipe. The water pump inlet is connected to the cavity via the corrugated pipe. The cavity is located below the horizontal plate. The top of the cavity is connected to the swing plate. The bottom of the cavity has multiple water suction holes. A one-way valve is provided on the water pipe.
4. The glass cleaning device with a water-absorbing structure as described in claim 3, characterized in that, The rotating rod is a worm gear, which meshes with a worm wheel. The worm wheel is connected to a first belt drive component. The cleaning mechanism includes a cleaning roller and multiple water spray heads. The multiple water spray heads are spaced apart along the direction perpendicular to the conveying direction of the conveying mechanism. The cleaning roller is located downstream of the multiple water spray heads. The axial direction of the cleaning roller is perpendicular to the conveying direction of the conveying mechanism. The cleaning roller and the worm wheel are connected by the first belt drive component so that the cleaning roller rotates when the worm wheel rotates.
5. The glass cleaning device with a water-absorbing structure as described in claim 4, characterized in that, The cleaning roller is connected to a second belt drive component; The conveying mechanism includes a pair of drive wheels, a conveyor belt sleeved on and connected to the pair of drive wheels, and a pressure plate. One drive wheel is connected to the cleaning roller via a second belt conveyor so that when the cleaning roller rotates, it drives the pair of drive wheels to rotate, thereby driving the conveyor belt to convey glass. The pressure plate is mounted on the horizontal plate and is arranged along the conveying direction of the conveyor belt. The pressure plate is located inside the conveyor belt, and the top surface of the pressure plate is in contact with the bottom surface of the adjacent conveyor belt.
6. The glass cleaning device with a water-absorbing structure as described in claim 4, characterized in that, The cavity has absorbent holes and absorbent cotton is provided at the bottom.