A coating cleaning agent, a cleaning device and a cleaning process

By using a coating cleaning agent composed of triton and isopropanol and an automated conveying mechanism, the chemical reaction problem of FCD100 glass during cleaning was solved, improving the coating yield and cleaning efficiency, and reducing the amount of manual operation.

CN120904973BActive Publication Date: 2026-03-20JIANGSU YUDI OPTICAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-11
Publication Date
2026-03-20

AI Technical Summary

Technical Problem

In the existing technology, FCD100 glass has poor chemical stability during cleaning and is prone to chemical reaction with the moisture in the ultrasonic cleaning agent, resulting in a low coating yield and low efficiency of manual soaking.

Method used

The coating cleaning agent consists of Triton and isopropanol, eliminating the water component. It uses an ultrasonic generator to produce microbubbles to form a high-temperature, high-pressure shock wave cleaning process. Combined with an automated conveying and tilting mechanism, it achieves automatic immersion and efficient cleaning of the glass.

Benefits of technology

It improved the coating yield of FCD100 glass, reduced the probability of chemical reactions, improved cleaning and drying efficiency, and reduced manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to a coating cleaning agent, a cleaning device and a cleaning process, and relates to the technical field of glass coating cleaning.The coating cleaning agent comprises curdlan and isopropanol, and the proportion of the curdlan is less than or equal to 2%. The application has the effect of reducing the probability of chemical reaction of FCD100 material glass during cleaning.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of glass coating cleaning, in particular to a coating cleaning agent, a cleaning device and a cleaning process. BACKGROUND

[0002] With the continuous development of social economy and the increasing improvement of scientific and technological level, people's demand for glass is also increasing. Glass coating is a method of coating one or more layers of metal, alloy or metal compound film on the surface of glass, which can change the optical properties of glass to meet certain specific requirements. In order to ensure the coating effect and prolong the service life of the coating, the glass generally needs to be cleaned before coating.

[0003] For the related technology in the above, since the existing technology generally places the glass in the ultrasonic cleaning tank, so that the ultrasonic generator in the ultrasonic cleaning tank transmits ultrasonic waves to the ultrasonic cleaning agent to clean the glass. Since the FCD100 material glass has poor chemical stability and will react with water, and the existing ultrasonic cleaning agent generally contains a lot of water, the probability of chemical reaction of the FCD100 material glass during cleaning is increased, thereby reducing the coating yield of the FCD100 material glass. Moreover, since manual soaking is generally used in the existing technology, the workload of the relevant personnel is increased, thereby leading to low soaking efficiency and low cleaning efficiency, so it needs to be improved. SUMMARY

[0004] In order to reduce the probability of chemical reaction of the FCD100 material glass during cleaning, the present application provides a coating cleaning agent, a cleaning device and a cleaning process.

[0005] In a first aspect, the present application provides a coating cleaning agent, which adopts the following technical solution:

[0006] A coating cleaning agent, comprising Triton X-100 and isopropyl alcohol, and the proportion of Triton X-100 is less than or equal to 2%.

[0007] By adopting the above technical solution, compared with the ultrasonic cleaning agent used in the prior art, which generally contains a lot of water, thereby increasing the probability of chemical reaction of the FCD100 material glass with poor chemical stability during cleaning, thereby reducing the yield of the FCD100 material glass. By setting the coating cleaning agent, the coating cleaning agent is composed of Triton X-100 and isopropyl alcohol, and the water component in the ultrasonic cleaning agent is cancelled, effectively reducing the probability of chemical reaction between the FCD100 material glass and water during cleaning, thereby improving the subsequent coating yield and ensuring the quality of the coating.

[0008] In a second aspect, the application provides a coating cleaning device, which adopts the following technical scheme:

[0009] The coating cleaning device comprises a device body, a plurality of cleaning tanks are formed in the top of the device body, an ultrasonic generator is arranged in each cleaning tank, and the coating cleaning agent is placed in each cleaning tank.

[0010] By adopting the above technical scheme, when the glass to be cleaned is placed in the cleaning tank, the ultrasonic generator can emit ultrasonic waves, the coating cleaning agent in the cleaning tank can generate micro-bubbles, so as to generate shock waves, form high temperature and high pressure, disperse the sundries and dust adhered to the glass, and effectively clean the glass, thereby increasing the cleaning efficiency of the glass.

[0011] Preferably, a plurality of conveying mechanisms are arranged on the device body, the conveying mechanisms correspond to the cleaning tanks and are located above the corresponding cleaning tanks, each conveying mechanism comprises a lifting piece, a lifting frame, a rotating assembly and a plurality of conveying rollers, the lifting piece is used to drive the lifting frame to displace along the opening direction of the corresponding cleaning tank, each conveying roller is arranged on the corresponding lifting frame, the plurality of conveying rollers are respectively used to abut against the upper and lower surfaces of the glass on the lifting frame, and the rotating assembly is used to drive each corresponding conveying roller to rotate.

[0012] By adopting the above technical scheme, the glass conveyed can enter between the plurality of conveying rollers on the corresponding lifting frame, so that the rotating assembly can drive each conveying roller to rotate, thereby driving the glass to move, and then driving the glass to completely move to the lifting frame, thereby achieving the transmission of the glass, and the lifting piece can also drive the lifting frame to lift, so that the lifting frame drives the glass on the lifting frame to move into the coating cleaning agent in the corresponding cleaning tank, thereby achieving the automatic soaking of the glass, and the conveying mechanism can replace the manual transmission and soaking, thereby effectively improving the cleaning efficiency of the glass and facilitating the operation of the relevant personnel.

[0013] Preferably, an inclined frame is arranged on each lifting frame, each inclined frame is rotationally connected with the corresponding lifting frame, each conveying roller is arranged on the corresponding inclined frame, an inclination mechanism is arranged on each lifting frame, and each inclination mechanism is used to drive the corresponding inclined frame to rotate.

[0014] By adopting the technical scheme, the glass on the tilting frame can be rotated by the tilting mechanism when entering or taking out from the coating cleaning agent, the resistance of the glass when entering the liquid surface is reduced, the size of the splashed water is reduced, the residual liquid on the glass surface is returned to the groove along the tilting direction of the glass, the amount of the residual liquid on the glass surface is effectively reduced, and the efficiency of the subsequent drying of the glass is increased.

[0015] Preferably, the tilting mechanism comprises a driving member, a sliding frame and a transmission frame, the sliding frame is slidingly connected with the lifting frame, the transmission frame is rotationally connected with the sliding frame and the tilting frame, the rotationally connected position of the tilting frame and the transmission frame is different from the rotationally connected position of the sliding frame and the transmission frame, and is also different from the rotationally connected position of the tilting frame and the lifting frame, and the driving member is used to drive the sliding frame to slide.

[0016] By adopting the technical scheme, the driving member can drive the sliding frame to slide, so that the transmission frame away from the side of the sliding frame, drives the rotationally connected position of the tilting frame and the transmission frame to displace, and then drives the tilting frame to rotate. Meanwhile, the existence of the sliding frame and the transmission frame can effectively increase the supporting force of the tilting frame, so as to ensure the stability of the tilting frame and reduce the probability of accidental displacement of the tilting frame due to the heavy glass on the tilting frame.

[0017] Preferably, the tilting mechanism further comprises an obstacle frame and a linkage assembly, the obstacle frame is slidingly connected with the end of the tilting frame, the displacement path of the obstacle frame intersects with the displacement path of the glass on the tilting frame, the linkage assembly comprises a linkage frame, a gear and rack set and a linkage member, the linkage frame is slidingly connected with the tilting frame, the linkage frame drives the obstacle frame to slide through the gear and rack set, and the sliding frame drives the linkage frame to slide through the linkage member.

[0018] By adopting the technical scheme, when the sliding frame slides, the linkage member can drive the linkage frame to slide, so that the linkage frame drives the corresponding obstacle frame to slide through the gear and rack set, so that the obstacle frame is displaced to the displacement path of the glass on the tilting frame, and then the glass is prevented from sliding out of the tilting frame when the tilting frame slides, the stability of the application is effectively ensured, the linkage between the sliding frame and the linkage frame is realized, and the operation of the relevant personnel is effectively facilitated.

[0019] Preferably, the linkage comprises a linkage rod and two sleeve frames, the middle part of the linkage rod is rotationally connected to the lifting frame, the two sleeve frames are respectively sleeved on the two ends of the corresponding linkage rod and are slidably connected to the corresponding linkage rod, one of the sleeve frames is rotationally connected to the sliding frame, and the other sleeve frame is rotationally connected to the linkage frame.

[0020] By adopting the above technical scheme, the linkage is arranged, so that when the sliding frame slides, the sliding frame can drive one of the sleeve frames to slide, and then the sleeve frame drives the linkage rod to rotate, and then drives the sleeve frame on the other end of the linkage rod to displace, so that the linkage frame rotationally connected to the sleeve frame slides relative to the lifting frame, thereby achieving the driving of the linkage frame, effectively realizing the linkage between the linkage frame and the sliding frame, and ensuring the stable driving of the linkage frame.

[0021] Preferably, the device body is further provided with an output mechanism and a drying box on one side, the drying box is provided with an opening through the side close to the device body, the drying box is used for heating the gas in the opening to dry the glass in the drying box, and the output mechanism is used for moving the dried glass out of the drying box.

[0022] By adopting the above technical scheme, the glass output by the conveying mechanism can be conveyed to the drying box by the output mechanism, so that the drying box can dry the cleaned glass, effectively replacing manual drying and transportation of the glass, thereby effectively facilitating the operation of the relevant personnel and improving the drying efficiency of the glass.

[0023] Preferably, each of the cleaning tanks is further provided with an additional tank body, the top of the side wall of each of the additional tank bodies is connected to the inner side wall of the corresponding cleaning tank, and a gap is left between each of the additional tank bodies and the corresponding cleaning tank, each of the additional tank bodies is used for placing the film coating cleaning agent, and the device body is further provided with a reflux box, and the bottom of each of the cleaning tanks is in communication with the reflux box.

[0024] By adopting the above technical scheme, when the glass is placed in the additional tank body, the film coating cleaning agent overflowing from the additional tank body can flow into the cleaning tank and eventually flow into the reflux box, thereby achieving the collection of the overflowing film coating cleaning agent, and the film coating cleaning agent in the additional tank body can be gradually replaced, thereby effectively ensuring the cleaning effect of the glass.

[0025] In a third aspect, the application provides a film coating cleaning process, which adopts the following technical scheme:

[0026] A film coating cleaning process comprises the following steps:

[0027] Wiping glass: wipe the front and back of the glass to remove dirt and dust adhered to the surface of the glass;

[0028] Cleaning glass: place the glass to be cleaned into the additional groove body on one side of the equipment body, so that the glass is soaked in the coating cleaning agent, take it out after a period of time, and place the glass into another adjacent additional groove body, repeat this step until the coating cleaning agent in each additional groove body has soaked the glass;

[0029] Drying glass: drying the cleaned glass.

[0030] As described above, the present application includes at least one of the following beneficial technical effects:

[0031] 1. The setting of the coating cleaning agent is composed of Triton X-100 and isopropanol, which cancels the water component in the ultrasonic cleaning agent, effectively reduces the probability of chemical reaction between FCD100 material glass and water during cleaning, thereby improving the subsequent coating yield and ensuring the quality of the coating;

[0032] 2. The setting of the conveying mechanism enables the conveyed glass to enter between a plurality of conveying rollers on the corresponding lifting frame, so that the rotating assembly can drive each conveying roller to rotate, thereby enabling the conveying roller to move the glass, and then enabling the glass to be completely moved to the lifting frame, realizing the transfer of the glass. At the same time, the lifting member can also drive the lifting frame to lift, so that the lifting frame drives the glass on it to move into the coating cleaning agent in the corresponding cleaning tank, realizing automatic soaking of the glass, and thereby enabling the conveying mechanism to replace manual transfer and soaking, effectively improving the cleaning efficiency of the glass of the present application and facilitating the operation of the relevant personnel;

[0033] 3. The setting of the tilting mechanism enables the glass on the tilting frame to rotate when entering or taking out the coating cleaning agent, thereby enabling the glass clamped by the tilting frame to rotate, reducing the resistance when the glass just enters the liquid surface and the size of the water splashed when entering the liquid surface. At the same time, it can also make the residual liquid on the surface of the glass flow back to the groove along the tilting direction of the glass, effectively reducing the amount of residual liquid on the surface of the glass, thereby increasing the efficiency of subsequent drying of the glass. BRIEF DESCRIPTION OF DRAWINGS

[0034] Figure 1 is a schematic view of the present application embodiment 1 for embodying the whole coating cleaning equipment.

[0035] Figure 2 is a structure schematic view of the present application embodiment 1 for embodying the reflux box.

[0036] Figure 3 is a schematic diagram of the embodiment 2 of the application for embodying the whole of the coating cleaning device.

[0037] Figure 4 is a structural schematic diagram of the embodiment 2 of the application for embodying the tilting frame.

[0038] Figure 5 is a structural schematic diagram of the embodiment 2 of the application for embodying the linkage assembly.

[0039] Legend: 1, device body; 11, cleaning tank; 2, ultrasonic generator; 3, additional tank body; 4, material pipe; 5, reflux box; 51, reflux pipe; 52, cooler; 6, input mechanism; 7, conveying mechanism; 71, lifting piece; 72, lifting frame; 73, tilting frame; 74, rotating assembly; 75, conveying roller; 8, tilting mechanism; 81, driving piece; 82, sliding frame; 83, transmission frame; 84, blocking frame; 85, linkage assembly; 851, linkage frame; 852, gear and rack set; 8521, linkage gear; 8522, linkage rack; 853, linkage piece; 8531, linkage rod; 8532, sleeve frame; 9, output mechanism; 10, drying box. DETAILED DESCRIPTION

[0040] The following will be described in detail in combination with the accompanying drawings. Figures 1-5 The application will be further described in detail.

[0041] Embodiment 1:

[0042] The embodiment 1 of the application discloses a coating cleaning agent. The coating cleaning agent comprises curdlan and isopropyl alcohol, and the proportion of curdlan is less than or equal to 2%. As the most preferred, the proportion of isopropyl alcohol in the coating cleaning agent in the application is 98%, and the proportion of curdlan is 2%, or the proportion of isopropyl alcohol is 97%, and the proportion of curdlan is 2%, and the rest is unavoidable impurities.

[0043] The embodiment 1 of the application also discloses a coating cleaning device. Referring to Figure 1 , the coating cleaning device comprises a device body 1, and a plurality of cleaning tanks 11 are further formed on the top of the device body 1. An ultrasonic generator 2 is arranged in each cleaning tank 11, and a coating cleaning agent is contained in each additional tank body 3. In the embodiment of the application, the number of cleaning tanks 11 is three, and the three cleaning tanks 11 are distributed along the length direction of the device body 1.

[0044] Referring to Figure 1Each cleaning tank 11 is equipped with an additional tank body 3. A gap is left between the outer wall of each additional tank body 3 and the inner wall of the cleaning tank 11. The top periphery of each additional tank body 3 is serrated to guide any overflowing coating cleaning agent. Each additional tank body 3 is rectangular and has a groove on its top to accommodate the coating cleaning agent. The four corners of the top of each additional tank body 3 are fixedly connected to the inner wall of the cleaning tank 11 by welding. Each ultrasonic generator 2 is fixedly installed on the outer wall of the corresponding additional tank body 3.

[0045] Reference Figure 1 Each cleaning tank 11 has two feed pipes 4 on its inner wall. One end of each feed pipe 4 passes into the cleaning tank 11 and extends directly above the corresponding additional tank 3. In this embodiment, one feed pipe 4 on each additional tank 3 is connected to a box containing Triton (not shown in the figures), and the other feed pipe 4 is connected to a box containing isopropanol (not shown in the figures), so as to allow the introduction of the coating cleaning agent of this application. In this embodiment, each additional tank 3 contains 50L of isopropanol and 1L of Triton to prepare the coating cleaning agent with a content of 2% Triton in this application.

[0046] Reference Figure 1 and Figure 2 The equipment body 1 is also equipped with a return box 5, which has an opening at the top and is fixedly installed on the equipment body 1. The return box 5 is also equipped with a return pipe 51, one end of which extends into the cavity of the return box 5, and the other end extends upward and is connected to the bottom of each cleaning tank 11 through other pipes, so that the coating cleaning agent overflowing from the additional tank 3 can flow into the return box 5 through the return pipe 51 when it enters the corresponding cleaning tank 11.

[0047] Reference Figure 2 The return box 5 is also equipped with a cooler 52, which is used to cool the coating cleaning agent in the return box 5. The cooler 52 is fixedly installed in the return box 5 and is existing technology, so it will not be described in detail here.

[0048] The implementation principle of the coating cleaning equipment in Embodiment 1 of this application is as follows: During use, the glass to be cleaned is placed in the additional tank 3 at one end of the equipment body 1, allowing the glass to be immersed in the coating cleaning agent within the additional tank 3 for a certain period of time. Then, the glass is removed from the additional tank 3 and placed in the middle additional tank 3, where it continues to be immersed for a certain period of time. Finally, the glass is removed from the middle additional tank 3 and placed in the last additional tank 3, where it continues to be immersed for a certain period of time, completing the cleaning process.

[0049] The embodiment 1 of the present application also discloses a coating cleaning process, comprising the following steps:

[0050] S1, wiping the glass: wiping the front and back of the glass to remove the dirt and dust adhered to the surface of the glass;

[0051] S2, cleaning the glass: placing the glass to be cleaned into the additional groove 3 on one side of the equipment body 1, so that the glass is soaked in the coating cleaning agent, taking out after a period of time, and placing the glass into another adjacent additional groove 3, repeating this step until the coating cleaning agent in each additional groove 3 soaks the glass;

[0052] S3, drying the glass: drying the cleaned glass.

[0053] Embodiment 2:

[0054] The difference between the embodiment 2 of the present application and the embodiment 1 is that Figure 3 , one side of the equipment body 1 is provided with an input mechanism 6, in the embodiment of the present application, the input mechanism 6 is a roller conveyor, the height of the roller in the roller conveyor is higher than the top height of the additional groove 3, and the roller conveyor is used to continuously transport the glass to the vicinity of the equipment body 1, the roller conveyor is prior art, so it will not be described here.

[0055] Referring to Figure 3 and Figure 4 , the top of the equipment body 1 is extended upward along the width direction of the equipment body 1. The equipment body 1 is also provided with a plurality of conveying mechanisms 7, in the embodiment of the present application, the number of the conveying mechanisms 7 is set to three groups, and each group is correspondingly provided with an additional groove 3. Each group is provided with two conveying mechanisms 7, and the two conveying mechanisms 7 are located at the two ends of the corresponding additional groove 3 along the length direction of the additional groove 3, and are located above the corresponding additional groove 3.

[0056] The purpose of the conveying mechanism 7 in the present application is to realize automatic soaking of the glass, so that the conveying mechanism 7 can replace manual transfer and soaking, effectively improving the cleaning efficiency of the glass, facilitating the operation of the relevant personnel, effectively solving the technical problems of increasing the workload of the relevant personnel due to manual soaking in the prior art, and effectively ensuring the safety of the relevant personnel, solving the technical problem that the relevant personnel are easily injured by manual soaking.

[0057] Referring to Figure 3 and Figure 4Each conveying mechanism 7 comprises a lifting piece 71, a lifting frame 72, an inclined frame 73, a rotating assembly 74 and a plurality of conveying rollers 75. In the embodiment, each lifting piece 71 is provided as a cylinder, the cylinder body of which is fixedly installed on the equipment body 1, and the output shaft is vertically downward arranged and fixedly connected with the top end of the corresponding lifting frame 72. In other embodiments, the lifting piece 71 can also be provided as an electric push rod, a hydraulic cylinder or a motor lead screw structure.

[0058] Referring to Figure 4 and Figure 5 Each inclined frame 73 is rotatably connected with the corresponding lifting frame 72 through a pin shaft at one end of the length direction of the inclined frame 73. Each lifting frame 72 is provided with an inclination mechanism 8 for driving the corresponding inclined frame 73 to rotate. The plurality of conveying rollers 75 are arranged on the corresponding inclined frame 73 and rotatably connected with the corresponding inclined frame 73.

[0059] Referring to Figure 4 The plurality of conveying rollers 75 on each inclined frame 73 are provided as two groups, which are distributed along the height direction of the inclined frame 73 so that the two groups of conveying rollers 75 are located on the upper and lower sides of the glass respectively. The conveying rollers 75 in each group are arranged as a plurality of rollers and distributed along the length direction of the corresponding inclined frame 73. Each conveying roller 75 is in contact with the upper or lower surface of the glass on the inclined frame 73, so that the conveying roller 75 can drive the glass to move when the conveying roller 75 rotates.

[0060] Referring to Figure 3 and Figure 4 In the embodiment, a non-slip washer is sleeved on each conveying roller 75 to increase the friction between the conveying roller 75 and the glass and ensure the conveying effect of the glass. The height of the top of the lower conveying roller 75 is the same as the height of the top of the roller in the input mechanism 6 (i.e. the roller conveyor), so that the conveyed glass can smoothly enter between the two groups of conveying rollers 75.

[0061] Referring to Figure 4 In the embodiment, the rotating assembly 74 is provided as a combination structure of a speed reducer, a gear set and two chain sprocket structures. The speed reducer is fixedly installed on the inclined frame 73, and the output shaft is used to drive one of the sprockets to rotate, so that the sprocket drives the corresponding chain to transmit, thereby achieving the driving of the conveying rollers 75. Meanwhile, the two chain sprocket structures are drivingly connected through the gear set, so that the two groups of conveying rollers 75 rotate at the same time.

[0062] Referring to Figure 4 and Figure 5Each of the tilting mechanisms 8 comprises a driving member 81, a sliding frame 82 and a transmission frame 83. In the embodiment, the driving member 81 is an electric telescopic rod which is fixedly installed on the lifting frame 72 away from the corresponding tilting frame 73, and the extension direction of the piston rod is the width direction of the lifting frame 72. The piston rod of each electric telescopic rod is fixedly connected with the corresponding sliding frame 82, and each sliding frame 82 is slidably connected with the corresponding tilting frame 73 through a sliding rail, and the sliding direction is the width direction of the corresponding lifting frame 72.

[0063] With reference to Figure 4 and Figure 5 One end of each transmission frame 83 is rotatably connected with the corresponding sliding frame 82 through a pin shaft, and the other end is rotatably connected with the corresponding tilting frame 73 along the length direction of the tilting frame 73 and away from the rotatable connection between the tilting frame 73 and the lifting frame 72, so that the sliding frame 82 can drive the corresponding tilting frame 73 to rotate through the transmission frame 83.

[0064] With reference to Figure 4 and Figure 5 Each tilting mechanism 8 further comprises an obstacle frame 84 and a linkage assembly 85. Each linkage assembly 85 comprises a linkage frame 851, a gear and rack set 852 and a linkage member 853. Each linkage member 853 comprises a linkage rod 8531 and two sleeve frames 8532. The middle part of each linkage rod 8531 in the length direction is rotatably connected with the corresponding lifting frame 72 through a pin shaft. The two sleeve frames 8532 are respectively sleeved on the middle part of the corresponding linkage rod 8531 and are slidably connected with the corresponding linkage rod 8531, and the sliding direction is the length direction of the linkage rod 8531.

[0065] With reference to Figure 4 and Figure 5 One of the sleeve frames 8532 on each linkage rod 8531 is rotatably connected with the corresponding sliding frame 82 through a pin shaft, and the other sleeve frame 8532 on each linkage rod 8531 is rotatably connected with the corresponding linkage frame 851 through a pin shaft. Each linkage frame 851 is slidably connected with the corresponding tilting frame 73 through a sliding rail, and the sliding direction is the height direction of the corresponding tilting frame 73.

[0066] With reference to Figure 4 and Figure 5Each gear rack set 852 includes two linkage gears 8521 and one linkage rack 8522, one linkage rack 8522 is fixedly connected with the corresponding linkage frame 851, and the other linkage rack 8522 is fixedly connected with the corresponding blocking frame 84. Each linkage gear 8521 is rotatably connected with the corresponding tilting frame 73 through a pin shaft, the linkage gears 8521 are located between the corresponding two linkage racks 8522 and are engaged with the corresponding two linkage racks 8522, so as to realize the transmission between the linkage racks 8522 and make the sliding directions of the two linkage racks 8522 opposite.

[0067] With reference to Figure 4 and Figure 5 Each blocking frame 84 is slidably connected with the corresponding tilting frame 73 through a slide rail, and the sliding direction is the height direction of the corresponding tilting frame 73. The sliding path of the bottom end of each blocking frame 84 intersects with the displacement path of the glass plate when the glass plate is conveyed by the conveying roller 75 on the corresponding tilting frame 73, so that the bottom of the blocking frame 84 can slide downward to the displacement path of the glass plate, thereby blocking the displacement of the glass plate.

[0068] With reference to Figure 3 , Figure 4 and Figure 5 In the initial state, at this time, the bottom of the lifting frame 72 is higher than the height of the additional groove body 3, at this time, the glass on the tilting frame 73 is horizontally arranged, and the blocking frame 84 is located at the top end of the sliding path thereof. During the process that the lifting member 71 drives the lifting frame 72 to slide downward, when the glass approaches the liquid level in the additional groove body 3, the driving member 81 drives the sliding frame 82 to slide. At this time, the sliding frame 82 drives the tilting frame 73 to tilt upward through the transmission frame 83, so that the tilting frame 73 rotates, and then the end where the blocking frame 84 is located tilts downward.

[0069] With reference to Figure 4 and Figure 5 During the process, the sliding frame 82 drives the set of setting frames 8532 to displace, and then the set of setting frames 8532 drives the linkage rod 8531 to rotate, so that the other end of the linkage rod 8531 drives the other set of setting frames 8532 to displace, thereby realizing the driving of the sliding of the linkage frame 851. At this time, the linkage frame 851 drives the other linkage rack 8522 to slide through the linkage rack 8522 and the linkage gear 8521, thereby realizing the driving of the sliding of the blocking frame 84, and then the end of the blocking frame 84 is located on the displacement path of the glass, thereby blocking the glass.

[0070] With reference to Figure 3 and Figure 4The side of the device body 1 away from the input mechanism 6 is also provided with an output mechanism 9 and a drying box 10. In the embodiment, the output mechanism 9 is a roller conveyor, the height of the roller in the roller conveyor is the same as the top of the conveying roller 75 below, for receiving the glass conveyed by the conveying roller 75 and conveying the dried glass out of the drying box 10. The roller conveyor is a prior art, and thus will not be described here.

[0071] Referring to Figure 3 In the embodiment, the drying box 10 is fixedly installed on the body of the roller conveyor in the output mechanism 9, and the side of the drying box 10 close to the device body 1 is provided with an opening for the glass to enter the drying box 10. In the embodiment, the drying box 10 is also provided with a drying device for heating the gas in the opening, to dry the glass.

[0072] The implementation principle of the coating cleaning device in the embodiment is as follows: in use, the input mechanism 6 continuously inputs the glass between the two groups of conveying rollers 75 on the corresponding inclined frame 73 of the device body 1, and then the lifting piece 71 drives the lifting frame 72 to descend. When the lifting frame 72 descends to a specified height, the driving piece 81 on the lifting frame 72 drives the sliding frame 82 to slide, so that the sliding frame 82 drives the inclined frame 73 to incline through the transmission frame 83, so that the glass inclines.

[0073] In this process, the sliding frame 82 drives the blocking frame 84 to slide through the linkage assembly 85, so that the end of the blocking frame 84 slides to the displacement path of the glass on the corresponding inclined frame 73, and blocks the glass. Then, the glass enters the liquid surface of the corresponding additional groove body 3. After soaking, the lifting piece 71 drives the lifting frame 72 to ascend, and when the glass completely separates from the liquid surface, the driving piece 81 drives the sliding frame 82 to return to the initial position. When the lifting frame 72 returns to the initial position, the driving piece 91 drives the conveying roller 75 to rotate, so that the glass enters between the two groups of conveying rollers 75 on the adjacent inclined frame 73, and the process is repeated.

[0074] When the coating cleaning agent in each additional groove body 3 soaks the glass, the conveying roller 75 on the inclined frame 73 close to the output mechanism 9 transports the glass to the output mechanism 9, so that the output mechanism 9 transports the glass to the drying box 10, so that the drying box 10 dries the glass. After drying, the output mechanism 9 transports the glass away from the drying box 10.

[0075] The above are preferred embodiments of the present application, and do not limit the protection scope of the present application, so: any equivalent changes made according to the structure, shape, principle of the present application should be covered within the protection scope of the present application.

Claims

1. A coating cleaning device, comprising a device body (1), characterized in that: The top of the device body (1) is also provided with several cleaning tanks (11), each of which is equipped with an ultrasonic generator (2), and each of which is used to place a coating cleaning agent. The coating cleaning agent includes Triton and isopropanol, and the proportion of Triton is less than or equal to 2%. The equipment body (1) is also provided with a plurality of conveying mechanisms (7). The conveying mechanisms (7) correspond to the cleaning tank (11) and are all located above the corresponding cleaning tank (11). Each conveying mechanism (7) includes a lifting component (71), a lifting frame (72), a rotating component (74) and a plurality of conveying rollers (75). The lifting component (71) is used to drive the lifting frame (72) to move along the opening direction of the corresponding cleaning tank (11). Each conveying roller (75) is provided on the corresponding lifting frame (72). The plurality of conveying rollers (75) are respectively used to abut against the upper and lower surfaces of the glass on the lifting frame (72). The rotating component (74) is used to drive each corresponding conveying roller (75) to rotate. Each of the lifting frames (72) is provided with a tilting frame (73), each of the tilting frames (73) is rotatably connected to the corresponding lifting frame (72), and each of the conveying rollers (75) is provided on the corresponding tilting frame (73). Each of the lifting frames (72) is provided with a tilting mechanism (8), and each of the tilting mechanisms (8) is used to drive the corresponding tilting frame (73) to rotate. The tilting mechanism (8) includes a drive member (81), a sliding frame (82), and a transmission frame (83). The sliding frame (82) is slidably connected to the corresponding lifting frame (72). The transmission frame (83) is rotatably connected to the sliding frame (82) and to the tilting frame (73). The rotatable connection between the tilting frame (73) and the transmission frame (83) is different from the rotatable connection between the sliding frame (82) and the transmission frame (83), and also different from the rotatable connection between the tilting frame (73) and the lifting frame (72). The drive member (81) is used to drive the sliding frame (82) to slide. This causes the glass held by the tilting frame (73) to rotate, reducing the resistance when the glass just enters the liquid surface and the size of the splash when it enters the liquid surface. It also allows the residual liquid on the glass surface to flow back into the tank along the tilting direction of the glass, reducing the amount of residual liquid on the glass surface. The tilting mechanism (8) further includes a blocking frame (84) and a linkage component (85). The blocking frame (84) is slidably connected to the end of the corresponding tilting frame (73), and the displacement path of the blocking frame (84) intersects with the displacement path of the glass on the corresponding tilting frame (73). The linkage component (85) includes a linkage frame (851), a gear and rack assembly (852), and a linkage member (853). The linkage frame (851) is slidably connected to the corresponding tilting frame (73). The linkage frame (851) drives the blocking frame (84) to slide through the gear and rack assembly (852), and the sliding frame (82) drives the corresponding linkage frame (851) to slide through the linkage member (853). The linkage component (853) includes a linkage rod (8531) and two sleeves (8532). The middle part of the linkage rod (8531) is rotatably connected to the corresponding lifting frame (72). The two sleeves (8532) are respectively sleeved on both ends of the corresponding linkage rod (8531) and are slidably connected to the corresponding linkage rod (8531). One sleeve (8532) is rotatably connected to the corresponding sliding frame (82), and the other sleeve (8532) is rotatably connected to the corresponding linkage frame (851).

2. The coating cleaning equipment according to claim 1, characterized in that: The device body (1) is also provided with an output mechanism (9) and a drying box (10) on one side. The drying box (10) has an opening through it on the side close to the device body (1). The drying box (10) is used to heat the gas in its own opening to dry the glass in the drying box (10). The output mechanism (9) is used to remove the dried glass out of the drying box (10).

3. The coating cleaning equipment according to claim 1, characterized in that: Each of the cleaning tanks (11) is further provided with an additional tank (3). The top of the side wall of each additional tank (3) is connected to the inner side wall of the corresponding cleaning tank (11), and there is a gap between each additional tank (3) and the corresponding cleaning tank (11). Each additional tank (3) is used to place the coating cleaning agent. The equipment body (1) is also provided with a return box (5), and the bottom of each cleaning tank (11) is connected to the return box (5).

4. A coating cleaning process, applied to the coating cleaning equipment as described in any one of claims 1-3, characterized in that: Includes the following steps: Wiping glass: Wipe both sides of the glass to remove debris and dust adhering to the glass surface; Cleaning glass: Place the glass to be cleaned into the additional tank (3) on one side of the equipment body (1) so that the glass is immersed in the coating cleaning agent. After a period of time, take it out and put the glass into another adjacent additional tank (3). Repeat this step until the coating cleaning agent in each additional tank (3) has soaked the glass. Drying glass: Drying the cleaned glass.

Citation Information

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