A surface cleaning device for photovoltaic glass production and a method thereof
By designing a surface cleaning device for photovoltaic glass production, the problems of uneven release of cleaning fluid and insufficient heat utilization during the cleaning process were solved, achieving comprehensive cleaning and efficient drying of the glass surface, and improving cleaning efficiency and effectiveness.
Patent Information
- Application Number
- CN202410240635.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-04
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2044-03-04
AI Technical Summary
Existing glass surface cleaning devices suffer from uneven release of cleaning water and cleaning fluid during the cleaning process, insufficient heat utilization, and an inability to clean both sides of the glass simultaneously, resulting in poor cleaning effect and low efficiency.
A surface cleaning device for photovoltaic glass production was designed, comprising a driving component, a cleaning component, a wiping component, a drying component, an edge cleaning component, an adsorption component, and a moving component. Through synchronous driving and heat utilization, it achieves comprehensive cleaning and efficient drying of the glass surface.
It achieves comprehensive cleaning of both the upper and lower surfaces of the glass, reduces the waste of cleaning fluid and heat, improves cleaning efficiency and effectiveness, and performs wiping and adsorption work simultaneously.
Smart Images

Figure CN117884426B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of glass surface cleaning device, in particular to a surface cleaning device for photovoltaic glass production and a method thereof. BACKGROUND
[0002] The photovoltaic glass is a kind of special glass for generating electricity by using solar radiation, which is composed of low-iron glass, solar cell, adhesive film, back glass and special metal wire. In the production process of photovoltaic glass, the surface of the photovoltaic glass produced just needs to be cleaned of dust and stains. Due to the particularity of photovoltaic module production, the glass cannot be cleaned manually, and needs to be cleaned by a professional device.
[0003] The existing glass surface cleaning device has the following problems in the process of cleaning the surface of the glass:
[0004] 1. In the process of cleaning the surface of the glass, the cleaning water and cleaning liquid cannot be released synchronously, and too much cleaning water and cleaning liquid is released at one point, which not only wastes the cleaning water and cleaning liquid, but also reduces the cleaning effect.
[0005] 2. In the process of cleaning the surface of the glass, the heat emitted by the device is transferred to the glass, but in most cases it is emitted to the glass being cleaned, which is unnecessary for drying, resulting in poor cleaning effect and waste of heat.
[0006] 3. In the process of cleaning the surface of the glass, the device cannot clean both sides of the glass at the same time, resulting in poor cleaning effect and low cleaning efficiency. SUMMARY
[0007] The present application provides a surface cleaning device for photovoltaic glass production and a method thereof, which can improve the cleaning effect, effectively utilize the heat and improve the cleaning efficiency.
[0008] The present application is a surface cleaning device for photovoltaic glass production, which comprises a housing, a driving assembly, a cleaning assembly, a wiping assembly, a drying assembly, an edge cleaning assembly, an adsorption assembly and a moving assembly.
[0009] The driving assembly, cleaning assembly, wiping assembly, drying assembly, edge cleaning assembly, adsorption assembly and moving assembly are all arranged on the housing, the driving assembly is connected with the wiping assembly and the adsorption assembly, and the edge cleaning assembly is arranged on the drying assembly.
[0010] The drive assembly includes a drive motor, a driving bevel gear, a driven bevel gear, and a transmission gear system. The drive motor is located in a first motor housing inside the inner wall of the housing. The driving bevel gear is connected to the output end of the drive motor. The driven bevel gear meshes with the driving bevel gear. The transmission gear system meshes with the driven bevel gear.
[0011] The wiping assembly includes a mounting base, a first telescopic rod, a first return spring, and an upper wiper. The two mounting bases are connected to a transmission gear system. The first telescopic rod is mounted on the mounting base. The first return spring is mounted on the mounting base and sleeved on the first telescopic rod. The upper wiper is mounted on the first telescopic rod.
[0012] The transmission gear system has two gears driving two mounting seats, the fixed ends of the two first telescopic rods are respectively connected to the two mounting seats, and two upper wipers are set in parallel.
[0013] The moving component includes a moving motor, a drive wheel, and a driven wheel. The moving motor is installed in a second motor housing inside the inner wall of the outer casing. The drive wheel is connected to the output end of the moving motor, and the driven wheel is movably mounted on the outer casing.
[0014] The drive wheel and driven wheel are both provided in twos, and the first motor housing and the second motor housing have air inlets.
[0015] The drying assembly includes a transmission pipe, a connecting pipe, a transfer pipe, an air pump, a gas output pipe, a dryer, a fixing frame, and a lower wiper. The fixing frame is mounted on the outer shell, the lower wiper is mounted on the fixing frame, and the dryer is mounted on the lower wiper. One end of the transmission pipe is connected to a first motor housing, and the other end of the transmission pipe is connected to a second motor housing. The transfer pipe is located inside the outer shell. One end of the connecting pipe is connected to the first motor housing, and the other end of the connecting pipe is connected to the transfer pipe. The air pump is mounted on the connecting pipe, and one end of the gas output pipe is connected to the transfer pipe, while the other end of the gas output pipe is connected to the dryer.
[0016] Among them, two lower wipers are set up to correspond to the upper wipers.
[0017] The edge cleaning assembly includes a second telescopic rod, a second return spring, and cleaning cotton. The fixing frame is provided with a mounting groove, the second telescopic rod is disposed in the mounting groove, the second return spring is sleeved on the second telescopic rod, and the cleaning cotton is disposed on the second telescopic rod.
[0018] The adsorption assembly includes a reducer, a drive shaft, a pulley system, and an adsorption wheel. The reducer is mounted on the housing. The output end of the drive motor is connected to the input end of the reducer. One end of the drive shaft is connected to the output end of the reducer, and the other end of the drive shaft is connected to the input end of the pulley system. The adsorption wheel is connected to the output end of the pulley system.
[0019] The cleaning assembly includes a water storage tank, a cleaning agent tank, a water supply pipe, a water pump, an output pipe, and an output nozzle. The water storage tank and the cleaning agent tank are both mounted on the outer casing. The output pipe is connected to the cleaning agent tank. The output nozzle is located at the end of the output pipe away from the cleaning agent tank. One end of the water supply pipe is connected to the water storage tank, and the other end of the water supply pipe is connected to the output pipe. The water pump is mounted on the water supply pipe.
[0020] The transfer pipe is provided with a rotating chamber, a rotating shaft is movably arranged in the rotating chamber, a number of rotating blades are arranged on the rotating shaft, a partition is provided inside the output pipe, a screw is movably arranged on the partition, a connecting shaft is provided at one end of the rotating shaft and the connecting shaft is connected to the screw, and a notch is provided on the partition.
[0021] The rotating blades extend into the output pipe, causing the gas to drive them to rotate continuously.
[0022] A method of using a surface cleaning device for photovoltaic glass production includes the following steps:
[0023] S1. Place the glass;
[0024] Place the photovoltaic glass between the upper and lower wipers, and place protective strips at the positions of the drive wheel and the driven wheel;
[0025] S2, Device movement;
[0026] Start the moving motor, which causes the drive wheel to rotate and move, thus moving the device on the glass;
[0027] S3, dust adsorption;
[0028] Start the drive motor. After the drive motor is reduced in speed by the reducer, it drives the pulley system to rotate. The pulley system drives the adsorption wheel to rotate. The adsorption wheel contacts the glass and adsorbs the dust that is easily adsorbed on the glass onto the adsorption wheel.
[0029] S4. Glass cleaning;
[0030] Start the water pump, which draws water from the storage tank and then into the output pipe through the water supply pipe. The cleaning agent in the cleaning agent tank will also enter the output pipe. The water in the output pipe carries the cleaning solution out of the output pipe and sprays it out through the output nozzle.
[0031] S5, Glass cleaning;
[0032] When the drive motor is started, the drive motor drives the active bevel gear to rotate, the active bevel gear drives the driven bevel gear to rotate, the driven bevel gear drives the transmission gear system to rotate, and the transmission gear system causes the upper wiper to rotate. In conjunction with the cleaning fluid and cleaning water, the upper wiper wipes away the stains on the glass surface. The lower wiper does not rotate, but it also cleans the glass surface below.
[0033] S6. Cleaning the glass edges;
[0034] The mounting bracket is located on the side of the device. When the device is moved, the cleaning cotton comes into contact with the edge of the glass to clean the edge of the glass.
[0035] S7. Drying;
[0036] The heat generated when the air pump is started and the drive motor is working is in the first motor box, and the heat generated when the moving motor is working is in the second motor box. The hot air from the second motor box enters the first motor box through the transmission pipe, is drawn into the transfer pipe by the air pump, and enters the dryer through the gas output pipe. The gas dries the glass.
[0037] S8, Flow regulation;
[0038] Gas flows in the transfer pipe, causing the rotating blades in the rotating chamber to rotate, and through the connecting shaft, it causes the auger in the output pipe to rotate. Corresponding to the notch on the partition, the cleaning water and cleaning fluid in the output pipe can be output intermittently.
[0039] The present invention has the following beneficial effects:
[0040] 1. When the drive motor is started, the drive motor drives the active bevel gear to rotate, which in turn drives the driven bevel gear to rotate. The driven bevel gear then drives the transmission gear system to rotate, which in turn causes the upper wiper to rotate. In conjunction with the cleaning fluid and water, the upper wiper wipes away the stains on the glass surface. The lower wiper does not rotate, but it also cleans the glass surface below. This method cleans both the upper and lower surfaces of the glass, resulting in a more comprehensive cleaning and improved cleaning effect. Furthermore, it pre-cleans the area below the glass, further enhancing cleaning efficiency.
[0041] 2. This invention utilizes the heat generated by the air pump and the drive motor during operation to dry the glass. The heat generated by the drive motor is located in the first motor housing, while the heat generated by the moving motor is located in the second motor housing. The hot air from the second motor housing enters the first motor housing through a transmission pipe, is then pumped into a transfer pipe by the air pump, and finally enters the dryer through a gas output pipe. The gas dries the glass, thus utilizing the heat generated by the drive motor and the moving motor to dry and heat the glass. This process removes organic dirt and absorbed moisture from the glass surface, improving the cleaning effect and reducing waste.
[0042] 3. This invention improves the cleaning effect by starting a water pump, which draws water from the storage tank and then into the output pipe through a water delivery pipe. The cleaning agent in the cleaning agent tank also enters the output pipe. The water in the output pipe carries the cleaning solution out of the output pipe and sprays it out through the output nozzle.
[0043] 4. This invention utilizes gas flow in a transfer pipe, which causes the rotating blades in the rotating chamber to rotate. The connecting shaft then rotates the auger in the output pipe, which corresponds to the notch on the partition. This allows the cleaning water and cleaning liquid in the output pipe to be output intermittently. As the device moves, the cleaning water and cleaning liquid are left in puddles on the glass, making them easier to clean. This not only prevents waste but also improves the cleaning effect.
[0044] 5. In this invention, the spiral in the output pipe mixes the cleaning water and cleaning fluid inside the output pipe during rotation, thereby improving the cleaning effect of the cleaning water and cleaning fluid.
[0045] 6. This invention is driven by a drive motor to perform wiping and adsorption work synchronously, and works synchronously with the help of an air pump and a water pump, thus improving the synchronicity of the device.
[0046] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0047] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0048] Figure 1 This is a three-dimensional structural diagram of a surface cleaning device for photovoltaic glass production according to the present invention;
[0049] Figure 2 This is a front view schematic diagram of a surface cleaning device for photovoltaic glass production according to the present invention;
[0050] Figure 3 This is a three-dimensional partial cross-sectional view of a surface cleaning device for photovoltaic glass production according to the present invention;
[0051] Figure 4 This is a top view schematic diagram of a surface cleaning device for photovoltaic glass production according to the present invention;
[0052] Figure 5 For the present invention Figure 4 Sectional view at point AA;
[0053] Figure 6 For the present invention Figure 4 Sectional view at point BB;
[0054] Figure 7 For the present invention Figure 2 Sectional view at CC;
[0055] Figure 8 For the present invention Figure 5 Enlarged view of a section at point D;
[0056] Figure 9 For the present invention Figure 7 Enlarged view of a section at point E in the middle;
[0057] Figure 10 This is a schematic diagram of the internal structure between the transfer tube and the output tube in this invention.
[0058] The attached diagram lists the components represented by each number as follows:
[0059] 110. Housing; 120. Drive assembly; 1201. Drive motor; 1202. Driving bevel gear; 1203. Driven bevel gear; 1204. Transmission gear system; 1205. First motor housing; 130. Cleaning assembly; 1301. Water tank; 1302. Cleaning agent tank; 1303. Water supply pipe; 1304. Water pump; 1305. Output pipe; 1306. Output nozzle; 140. Wiping assembly; 1401. Mounting base; 1402. First telescopic rod; 1403. First return spring; 1404. Upper wiper; 150. Drying assembly; 1501. Transfer pipe; 1502. Connecting pipe; 1503. Transfer pipe; 1 504. Air pump; 1505. Gas output pipe; 1506. Dryer; 1507. Fixing frame; 1508. Lower wiper; 160. Side cleaning assembly; 1601. Second telescopic rod; 1602. Return spring; 1603. Cleaning cotton; 170. Adsorption assembly; 1701. Reducer; 1702. Drive shaft; 1703. Pulley system; 1704. Adsorption wheel; 180. Moving assembly; 1801. Moving motor; 1802. Drive wheel; 1803. Driven wheel; 210. Rotating chamber; 220. Rotating shaft; 230. Rotating blades; 240. Partition; 250. Spiral; 260. Connecting shaft; 270. Notch. Detailed Implementation
[0060] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0061] In the description of this invention, it should be understood that the terms "upper," "middle," "outer," "inner," etc., which indicate orientation or positional relationship, are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the components or elements referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as limiting this invention.
[0062] like Figures 1-10 As shown, this embodiment provides a surface cleaning device for photovoltaic glass production, including a housing 110, a drive assembly 120, a cleaning assembly 130, a wiping assembly 140, a drying assembly 150, an edge cleaning assembly 160, an adsorption assembly 170, and a moving assembly 180.
[0063] The drive assembly 120, cleaning assembly 130, wiping assembly 140, drying assembly 150, side cleaning assembly 160, adsorption assembly 170 and moving assembly 180 are all mounted on the housing 110. The drive assembly 120 is connected to the wiping assembly 140 and the adsorption assembly 170, and the side cleaning assembly 160 is mounted on the drying assembly 150.
[0064] The drive assembly 120 includes a drive motor 1201, a driving bevel gear 1202, a driven bevel gear 1203, and a transmission gear system 1204. The drive motor 1201 is disposed in the first motor housing 1205 inside the inner wall of the housing 110. The driving bevel gear 1202 is connected to the output end of the drive motor 1201. The driven bevel gear 1203 meshes with the driving bevel gear 1202. The transmission gear system 1204 meshes with the driven bevel gear 1203.
[0065] The wiping assembly 140 includes a mounting base 1401, a first telescopic rod 1402, a first return spring 1403, and an upper wiper 1404. The two mounting bases 1401 are connected to the transmission gear system 1204. The first telescopic rod 1402 is mounted on the mounting base 1401. The first return spring 1403 is mounted on the mounting base 1401 and sleeved on the first telescopic rod 1402. The upper wiper 1404 is mounted on the first telescopic rod 1402.
[0066] When the drive motor 1201 is started, it drives the active bevel gear 1202 to rotate, which in turn drives the driven bevel gear 1203 to rotate. The driven bevel gear 1203 then drives the transmission gear system 1204 to rotate, which in turn causes the upper wiper 1404 to rotate. In conjunction with the cleaning fluid and water, the upper wiper 1404 wipes away the dirt on the glass surface. The lower wiper 1508 does not rotate, but it also cleans the glass surface below. This cleaning process cleans both the upper and lower surfaces of the glass, resulting in a more comprehensive cleaning and improved cleaning effect. Furthermore, it pre-cleans the area below the glass, further enhancing cleaning efficiency.
[0067] The transmission gear system 1204 has two gears that drive two mounting bases 1401. The fixed ends of the two first telescopic rods 1402 are respectively connected to the two mounting bases 1401, and two upper wipers 1404 are arranged in parallel.
[0068] The moving component 180 includes a moving motor 1801, a drive wheel 1802 and a driven wheel 1803. The moving motor 1801 is disposed in the second motor housing 1804 on the inner wall of the housing 110. The drive wheel 1802 is connected to the output end of the moving motor 1801. The driven wheel 1803 is movably disposed on the housing 110.
[0069] When in operation, the moving motor 1801 is started, which causes the drive wheel 1802 to rotate and move, thus moving the device on the glass.
[0070] The drive wheel 1802 and the driven wheel 1803 are both provided in twos, and the first motor housing 1205 and the second motor housing 1804 have air inlets.
[0071] The drying assembly 150 includes a transfer pipe 1501, a connecting pipe 1502, a transfer pipe 1503, an air pump 1504, a gas output pipe 1505, a dryer 1506, a mounting frame 1507, and a lower wiper 1508. The mounting frame 1507 is mounted on the outer casing 110, the lower wiper 1508 is mounted on the mounting frame 1507, and the dryer 1506 is mounted on the lower wiper 1508. One end of the transfer pipe 1501 is connected to the first motor housing 120. 5. The other end of the transmission pipe 1501 is connected to the second motor box 1804. The transfer pipe 1503 is located inside the outer shell 110. One end of the connecting pipe 1502 is connected to the first motor box 1205, and the other end of the connecting pipe 1502 is connected to the transfer pipe 1503. The air pump 1504 is located on the connecting pipe 1502. One end of the gas output pipe 1505 is connected to the transfer pipe 1503, and the other end of the gas output pipe 1505 is connected to the dryer 1506.
[0072] During operation, the air pump 1504 is started. The heat generated by the drive motor 1201 is in the first motor housing 1205, and the heat generated by the moving motor 1801 is in the second motor housing 1804. The hot air from the second motor housing 1804 enters the first motor housing 1205 through the transmission pipe 1501, is drawn into the transfer pipe 1503 by the air pump 1504, and enters the dryer 1506 through the gas output pipe 1505. The gas dries the glass, utilizing the heat generated by the drive motor 1201 and the moving motor 1801 to dry and heat the glass. This process removes organic dirt and absorbed moisture from the glass surface, improving the cleaning effect and reducing waste.
[0073] Among them, two lower wipers 1508 are provided, corresponding to the upper wiper 1404.
[0074] The cleaning component 160 includes a second telescopic rod 1601, a second return spring 1602, and a cleaning cotton 1603. The fixing frame 1507 is provided with a mounting groove. The second telescopic rod 1601 is disposed in the mounting groove, the second return spring 1602 is sleeved on the second telescopic rod 1601, and the cleaning cotton 1603 is disposed on the second telescopic rod 1601.
[0075] During operation, when the device moves, the cleaning cotton 1603 contacts the edge of the glass to clean the edge of the glass. The second telescopic rod 1601 and the second return spring 1602 can extend and retract to adapt the device to different types of glass.
[0076] The adsorption assembly 170 includes a reducer 1701, a drive shaft 1702, a pulley system 1703, and an adsorption wheel 1704. The reducer 1701 is mounted on the housing 110. The output end of the drive motor 1201 is connected to the input end of the reducer 1701. One end of the drive shaft 1702 is connected to the output end of the reducer 1701, and the other end of the drive shaft 1702 is connected to the input end of the pulley system 1703. The adsorption wheel 1704 is connected to the output end of the pulley system 1703.
[0077] When in operation, the drive motor 1201 is started. After being reduced in speed by the reducer 1701, the drive motor 1201 drives the pulley system 1703 to rotate. The pulley system 1703 drives the adsorption wheel 1704 to rotate. The adsorption wheel 1704 contacts the glass and adsorbs the easily adsorbed dust on the glass onto the adsorption wheel 1704, thus improving the cleaning effect.
[0078] The cleaning assembly 130 includes a water storage tank 1301, a cleaning agent tank 1302, a water supply pipe 1303, a water pump 1304, an output pipe 1305, and an output nozzle 1306. The water storage tank 1301 and the cleaning agent tank 1302 are both mounted on the outer casing 110. The output pipe 1305 is connected to the cleaning agent tank 1302. The output nozzle 1306 is located at the end of the output pipe 1305 away from the cleaning agent tank 1302. One end of the water supply pipe 1303 is connected to the water storage tank 1301, and the other end of the water supply pipe 1303 is connected to the output pipe 1305. The water pump 1304 is mounted on the water supply pipe 1303.
[0079] When in operation, the water pump 1304 is started, and the water pump 1304 draws water from the water storage tank 1301 and then enters the output pipe 1305 through the water supply pipe 1303. The cleaning agent in the cleaning agent tank 1302 also enters the output pipe 1305. The water in the output pipe 1305 carries the cleaning liquid out of the output pipe 1305 and sprays it out through the output nozzle 1306, which improves the cleaning effect.
[0080] A rotating chamber 210 is provided on the transfer pipe 1503. A rotating shaft 220 is movably arranged in the rotating chamber 210. Several rotating blades 230 are arranged on the rotating shaft 220. A partition 240 is provided inside the output pipe 1305. A screw 250 is movably arranged on the partition 240. A connecting shaft 260 is provided at one end of the rotating shaft 220 and is connected to the screw 250. A notch 270 is provided on the partition 240.
[0081] During operation, gas flows in the transfer pipe 1503, causing the rotating blades 230 in the rotating chamber 210 to rotate, and the connecting shaft 260 causes the spiral auger 250 in the output pipe 1305 to rotate, corresponding to the notch 270 on the partition 240. This allows the cleaning water and cleaning liquid in the output pipe 1305 to be output intermittently. As the device moves, the cleaning water and cleaning liquid are left in puddles on the glass, making it easier to clean, preventing waste and improving the cleaning effect.
[0082] During operation, the spiral 250 in the output tube 1305 will mix the cleaning water and cleaning fluid inside the output tube 1305 as it rotates, thereby improving the cleaning effect of the cleaning water and cleaning fluid.
[0083] The rotating blade 230 extends into the output pipe 1305, so that the gas will drive the rotating blade 230 to rotate continuously.
[0084] A method of using a surface cleaning device for photovoltaic glass production includes the following steps:
[0085] S1. Place the glass;
[0086] Place the photovoltaic glass between the upper wiper 1404 and the lower wiper 1508, and place protective strips at the positions of the drive wheel 1802 and the driven wheel 1803;
[0087] S2, Device movement;
[0088] Start the moving motor 1801, which causes the drive wheel 1802 to rotate and move, thus moving the device on the glass;
[0089] S3, dust adsorption;
[0090] Start the drive motor 1201. After the drive motor 1201 is reduced in speed by the reducer 1701, it drives the pulley system 1703 to rotate. The pulley system 1703 drives the adsorption wheel 1704 to rotate. The adsorption wheel 1704 contacts the glass and adsorbs the dust that is easily adsorbed on the glass onto the adsorption wheel 1704.
[0091] S4. Glass cleaning;
[0092] Start the water pump 1304. The water pump 1304 draws water from the water storage tank 1301 and then enters the output pipe 1305 through the water supply pipe 1303. The cleaning agent in the cleaning agent tank 1302 will also enter the output pipe 1305. The water in the output pipe 1305 carries the cleaning liquid out of the output pipe 1305 and sprays it out through the output nozzle 1306.
[0093] S5, Glass cleaning;
[0094] When the drive motor 1201 is started, the drive motor 1201 drives the active bevel gear 1202 to rotate, the active bevel gear 1202 drives the driven bevel gear 1203 to rotate, the driven bevel gear 1203 drives the transmission gear system 1204 to rotate, and the transmission gear system 1204 causes the upper wiper 1404 to rotate, which, in conjunction with the cleaning fluid and cleaning water, wipes away the stains on the glass surface. The lower wiper 1508 does not rotate, but it also cleans the glass surface below.
[0095] S6. Cleaning the glass edges;
[0096] The mounting bracket 1507 is located on the side of the device. When the device is moved, the cleaning cotton 1603 contacts the edge of the glass to clean the edge of the glass.
[0097] S7. Drying;
[0098] When the air pump 1504 is started, the heat generated by the drive motor 1201 is in the first motor housing 1205, and the heat generated by the moving motor 1801 is in the second motor housing 1804. The hot air from the second motor housing 1804 enters the first motor housing 1205 through the transmission pipe 1501, is drawn into the transfer pipe 1503 by the air pump 1504, and enters the dryer 1506 through the gas output pipe 1505, where the gas dries the glass.
[0099] S8, Flow regulation;
[0100] Gas flows in the transfer pipe 1503, causing the rotating blade 230 in the rotating chamber 210 to rotate, and the spiral 250 in the output pipe 1305 to rotate via the connecting shaft 260, corresponding to the notch 270 on the partition 240, enabling the cleaning water and cleaning liquid in the output pipe 1305 to be output intermittently.
[0101] During operation, the device is driven by the drive motor 1201 to perform wiping and adsorption work synchronously. Furthermore, it operates synchronously under the action of the air pump 1504 and the water pump 1304, thereby improving the synchronicity of the device.
[0102] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.
Claims
1. A surface cleaning device for photovoltaic glass production, characterized in that, It includes a housing (110), a drive assembly (120), a cleaning assembly (130), a wiping assembly (140), a drying assembly (150), a side cleaning assembly (160), an adsorption assembly (170), and a moving assembly (180). The drive assembly (120), cleaning assembly (130), wiping assembly (140), drying assembly (150), side cleaning assembly (160), adsorption assembly (170), and moving assembly (180) are all disposed on the housing (110). The drive assembly (120) is connected to the wiping assembly (140) and the adsorption assembly (170), and the side cleaning assembly (160) is disposed on the drying assembly (150). The drying assembly (150) includes a transmission pipe (1501), a connecting pipe (1502), a transfer pipe (1503), an air pump (1504), a gas output pipe (1505), a dryer (1506), a mounting bracket (1507), and a lower wiper (1508). The mounting bracket (1507) is mounted on the outer casing (110), the lower wiper (1508) is mounted on the mounting bracket (1507), and the dryer (1506) is mounted on the lower wiper (1508). One end of the transmission pipe (1501) is connected to the first motor housing (120). 5) Connected, the other end of the transmission pipe (1501) is connected to the second motor box (1804), the transfer pipe (1503) is set inside the outer shell (110), one end of the connecting pipe (1502) is connected to the first motor box (1205), the other end of the connecting pipe (1502) is connected to the transfer pipe (1503), the air pump (1504) is set on the connecting pipe (1502), one end of the gas output pipe (1505) is connected to the transfer pipe (1503), and the other end of the gas output pipe (1505) is connected to the dryer (1506); The cleaning assembly (130) includes a water tank (1301), a cleaning agent tank (1302), a water supply pipe (1303), a water pump (1304), an output pipe (1305), and an output nozzle (1306). The water tank (1301) and the cleaning agent tank (1302) are both mounted on the outer casing (110). The output pipe (1305) is connected to the cleaning agent tank (1302). The output nozzle (1306) is located at the end of the output pipe (1305) away from the cleaning agent tank (1302). One end of the water supply pipe (1303) is connected to the water tank (1301), and the other end of the water supply pipe (1303) is connected to the output pipe (1305). The water pump (1304) is mounted on the water supply pipe (1303). The transfer pipe (1503) is provided with a rotating chamber (210), and a rotating shaft (220) is movably arranged in the rotating chamber (210). Several rotating blades (230) are arranged on the rotating shaft (220). A partition (240) is provided inside the output pipe (1305), and a screw (250) is movably arranged on the partition (240). A connecting shaft (260) is provided at one end of the rotating shaft (220), and the connecting shaft (260) is connected to the screw (250). A notch (270) is provided on the partition (240).
2. The surface cleaning device for photovoltaic glass production according to claim 1, characterized in that, The drive assembly (120) includes a drive motor (1201), a driving bevel gear (1202), a driven bevel gear (1203), and a transmission gear system (1204). The drive motor (1201) is located in a first motor housing (1205) on the inner wall of the housing (110). The driving bevel gear (1202) is connected to the output end of the drive motor (1201). The driven bevel gear (1203) meshes with the driving bevel gear (1202). The transmission gear system (1204) meshes with the driven bevel gear (1203).
3. The surface cleaning device for photovoltaic glass production according to claim 2, characterized in that, The wiping assembly (140) includes a mounting base (1401), a first telescopic rod (1402), a first return spring (1403), and an upper wiper (1404). The two mounting bases (1401) are connected to the transmission gear system (1204). The first telescopic rod (1402) is mounted on the mounting base (1401). The first return spring (1403) is mounted on the mounting base (1401) and sleeved on the first telescopic rod (1402). The upper wiper (1404) is mounted on the first telescopic rod (1402).
4. The surface cleaning device for photovoltaic glass production according to claim 3, characterized in that, The moving component (180) includes a moving motor (1801), a drive wheel (1802), and a driven wheel (1803). The moving motor (1801) is disposed in a second motor housing (1804) on the inner wall of the outer casing (110). The drive wheel (1802) is connected to the output end of the moving motor (1801). The driven wheel (1803) is movably disposed on the outer casing (110).
5. A surface cleaning device for photovoltaic glass production according to claim 4, characterized in that, The edge cleaning assembly (160) includes a second telescopic rod (1601), a second return spring (1602), and a cleaning cotton (1603). The fixing frame (1507) is provided with an installation groove. The second telescopic rod (1601) is disposed in the installation groove. The second return spring (1602) is sleeved on the second telescopic rod (1601). The cleaning cotton (1603) is disposed on the second telescopic rod (1601).
6. A surface cleaning device for photovoltaic glass production according to claim 5, characterized in that, The adsorption assembly (170) includes a reducer (1701), a drive shaft (1702), a pulley system (1703), and an adsorption wheel (1704). The reducer (1701) is mounted on the housing (110). The output end of the drive motor (1201) is connected to the input end of the reducer (1701). One end of the drive shaft (1702) is connected to the output end of the reducer (1701), and the other end of the drive shaft (1702) is connected to the input end of the pulley system (1703). The adsorption wheel (1704) is connected to the output end of the pulley system (1703).
7. A method of using a surface cleaning device for photovoltaic glass production, comprising the surface cleaning device for photovoltaic glass production as described in any one of claims 1-6, characterized in that, Includes the following steps: S1. Place the glass; Place the photovoltaic glass between the upper wiper (1404) and the lower wiper (1508), and place protective strips at the positions of the drive wheel (1802) and the driven wheel (1803); S2, Device movement; Start the moving motor (1801), which causes the drive wheel (1802) to rotate and move, thus moving the device on the glass; S3. Dust adsorption; Start the drive motor (1201). After the drive motor (1201) is reduced in speed by the reducer (1701), it drives the pulley system (1703) to rotate. The pulley system (1703) drives the adsorption wheel (1704) to rotate. The adsorption wheel (1704) contacts the glass and adsorbs the easily adsorbed dust on the glass onto the adsorption wheel (1704). S4. Glass cleaning; Start the water pump (1304). The water pump 1304 draws water from the water storage tank (1301) and then enters the output pipe (1305) through the water supply pipe (1303). The cleaning agent in the cleaning agent tank (1302) also enters the output pipe (1305). The water in the output pipe (1305) carries the cleaning liquid out of the output pipe (1305) and sprays it out through the output nozzle (1306). S5, Glass cleaning; When the drive motor (1201) is started, the drive motor (1201) drives the active bevel gear (1202) to rotate, the active bevel gear (1202) drives the driven bevel gear (1203) to rotate, the driven bevel gear (1203) drives the transmission gear system (1204) to rotate, the transmission gear system (1204) causes the upper wiper (1404) to rotate, and in conjunction with the cleaning fluid and cleaning water, wipes away the stains on the glass surface. The lower wiper (1508) does not rotate, but it also cleans the glass surface below. S6. Cleaning the glass edges; The mounting bracket (1507) is located on the side of the device. When the device is moved, the cleaning cotton (1603) comes into contact with the edge of the glass to clean the edge of the glass. S7. Drying; When the air pump (1504) is started, the heat generated by the drive motor (1201) is in the first motor housing (1205), and the heat generated by the moving motor (1801) is in the second motor housing (1804). The hot air in the second motor housing (1804) enters the first motor housing (1205) through the transmission pipe (1501), and is drawn into the transfer pipe (1503) by the air pump (1504), and enters the dryer (1506) through the gas output pipe (1505). The gas dries the glass. S8, Flow regulation; Gas flows in the transfer pipe (1503), causing the rotating blades (230) in the rotating chamber (210) to rotate, and the spiral (250) in the output pipe (1305) to rotate via the connecting shaft (260), corresponding to the notch (270) on the partition (240), enabling the cleaning water and cleaning fluid in the output pipe (1305) to be output intermittently.
Citation Information
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