Water quality optimization system for slow pulling groove of ultra-thin flexible glass cleaning machine
By adding a 220V water pump and a 0.1µm pore size filter system between the high-level tank and the slow-pull tank of the ultrasonic cleaner, the problem of water source contamination in the slow-pull tank was solved, and the cleaning effect of ultra-thin flexible glass was improved.
Patent Information
- Application Number
- CN202423009848.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-06
AI Technical Summary
The water source in the slow-pull tank of existing ultrasonic cleaning machines is easily contaminated by impurities such as rust, which affects the purity of the pure water and results in poor cleaning effect on ultra-thin flexible glass.
A 220V water pump and filter cover are added between the high-level tank and the slow-pull tank. 0.1um pore size filter element is used to filter impurities. A reasonable filtration system is designed to improve the purity of pure water.
It effectively filters out impurities such as rust from pure water, improves the cleanliness of pure water in the slow-pull tank, reduces dirt, particulate matter and water stains, and improves the cleaning yield.
Smart Images

Figure CN223641438U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ultra-thin flexible glass cleaning technology, and in particular to a water quality optimization system for a slow-pull trough in an ultra-thin flexible glass cleaning machine. Background Technology
[0002] With the development and innovation of 5G technology, foldable screen phones have begun to enter the market and become an emerging trend in mobile phone development. Samsung, Huawei, and others have released foldable flexible OLED screen phones. Currently, the protective material for foldable phone screens mainly uses CPI film (colorless polyimide, transparent polyimide) as a protective cover. The advantages of using CPI as a protective material for foldable phone screens are that the material is inexpensive, has good toughness, and is easy to process. The disadvantages are that obvious creases appear after repeated folding, affecting the display effect. At the same time, the surface hardness is low, making it easy to scratch, and the transparency is low. It is also prone to yellowing after long-term use. Most importantly, it is not resistant to high temperatures, so processes requiring high-temperature treatment cannot be performed on its surface.
[0003] In comparison, ultrathing glass (UTG) inherently possesses superior performance in terms of surface flatness, scratch resistance, and impact protection for display components. Glass exhibits excellent optical properties, strong environmental stability, high surface hardness for scratch resistance, and high temperature resistance. Its advantages lie in its high surface hardness and its inherent self-healing ability; even after repeated bending over a long period, it can still restore its original flatness, avoiding the fatigue issues associated with film materials. Ultrathing glass solves the problems of creases and scratches, and its light transmittance is higher than that of CPI, making it the best choice for protective panels of foldable phones and flexible displays. The replacement of CPI with ultrathing glass as the cover material for foldable phones has become an unstoppable trend.
[0004] Current ultra-thin flexible glass production processes involve thinning, forming, and strengthening. After these processes, dirt and particles appear on the surface of the ultra-thin flexible glass. Therefore, it needs to be cleaned using a high-concentration alkaline cleaning agent in an ultrasonic cleaner to remove these contaminants. After cleaning the surface dirt and particles with the high-concentration alkaline cleaning solvent, the ultra-thin flexible glass and the baskets and fixtures containing the glass need to be rinsed in a pure water tank to remove any remaining high-concentration alkaline cleaning solvent, dirt, and particles. The cleanliness of the pure water in the slow-pull tank of the ultrasonic cleaner is particularly important. Currently, the water source for the slow-pull tank in existing ultrasonic cleaners is heated pure water from a high-level tank. Rust and other impurities easily accumulate in the high-level tank and pipes, affecting the cleanliness of the pure water in the slow-pull tank. This leads to the accumulation of dirt, particles, and water stains, ultimately impacting the cleaning yield.
[0005] For example, a silicon wafer cleaning machine disclosed in patent CN210120121U includes a conveying mechanism, and a slow pull groove is provided on the conveying track of the conveying mechanism. The slow pull groove includes a slow pull groove body and a defoaming mechanism, and the defoaming mechanism is located above the slow pull groove body; the above-mentioned problems exist when cleaning ultra-thin flexible glass. Utility Model Content
[0006] To address the shortcomings of existing technologies, this utility model provides a water quality optimization system for the slow-pull tank of an ultra-thin flexible glass cleaning machine. This system can effectively improve the purity of pure water in the slow-pull tank, reduce dirt, particulate matter, and water stains, and improve the cleaning yield.
[0007] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0008] The water quality optimization system for the slow-pull trough of the ultra-thin flexible glass cleaning machine includes a high-level trough and a slow-pull trough. The high-level trough is set at a higher height than the slow-pull trough. The high-level trough and the slow-pull trough are connected by a water pipe. The system also includes a water pump and a filter assembly. The high-level trough and the slow-pull trough are connected by a water pipe and a water pump and filter assembly installed on the water pipe.
[0009] Further:
[0010] The water pump is a 220V water pump.
[0011] The filter assembly is located behind the water pump.
[0012] The filter assembly includes a filter element cover and a filter element disposed inside the filter element cover, wherein the filter element cover is an openable cover structure.
[0013] A pre-filter, which is a filter basket, is installed on the water pipe in front of the water pump.
[0014] The filter element has a pore size range of 0.08-0.15 μm.
[0015] The filter element has a pore size of 0.1 μm.
[0016] Compared with the prior art, this utility model has the following advantages:
[0017] The water quality optimization system for the slow-pull tank of the ultra-thin flexible glass cleaning machine is reasonably designed. By adding a 220V water pump between the high-level tank and the slow-pull tank of the ultrasonic cleaner and using a 0.1um pore size filter inside the filter cover, impurities such as rust in the pure water are filtered out, improving the purity of the pure water in the slow-pull tank, reducing dirt, particulate matter, and water stains, and improving the cleaning yield. Attached Figure Description
[0018] The following is a brief explanation of the contents of each of the accompanying drawings and the markings in the drawings:
[0019] Figure 1 This is a schematic diagram of the system structure of this utility model.
[0020] In the picture:
[0021] 1. High-level tank, 2. Pre-filter, 3. Water pump, 4. Filter assembly, 5. Slow pull tank. Detailed Implementation
[0022] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings and through the description of the examples.
[0023] like Figure 1 As shown, the water quality optimization system for the slow-pull trough of the ultra-thin flexible glass cleaning machine includes a high-level trough 1 and a slow-pull trough 5. The high-level trough is set at a higher height than the slow-pull trough, and the high-level trough and the slow-pull trough are connected by a water pipe.
[0024] To prevent impurities such as rust from appearing in the high-level tank and pipes, which could affect the purity of the pure water in the slow-pull tank, this utility model system adds a water pump 3 and a filter assembly 4. The high-level tank and the slow-pull tank are connected by a water pipe and a water pump and filter assembly installed on the water pipe.
[0025] The water pump is a 220V pump; the filter assembly is located behind the pump; the filter element has a pore size range of 0.08-0.15µm. Furthermore, a pre-filter 2, which is a filter basket, is installed on the water pipe in front of the pump. The pre-filter filters out large impurities, while the filter assembly filters out smaller impurities, removing impurities such as rust from the pure water, improving the cleanliness of the pure water in the slow-pull tank, reducing dirt, particulate matter, and water stains, and increasing the cleaning yield.
[0026] Preferably, the filter assembly includes a filter element cover and a filter element disposed inside the filter element cover, the filter element having a pore size of 0.1µm; the filter element cover is an openable cover structure, the cover is provided with a cover plate, the edge of the cover plate is provided with a sealing ring, the cover plate is disposed on the top of the cover body by a snap-fit structure, and the filter element replacement operation is simple.
[0027] This utility model is a reasonably designed water quality optimization system for the slow-pull tank of an ultra-thin flexible glass cleaning machine. By adding a 220V water pump between the high-level tank and the slow-pull tank of the ultrasonic cleaner and using a 0.1um pore size filter inside the filter cover, impurities such as rust in the pure water are filtered out, improving the cleanliness of the pure water in the slow-pull tank, reducing dirt, particulate matter, and water stains, and improving the cleaning yield.
[0028] The above description is only a preferred embodiment of the present utility model. The above technical features can be arbitrarily combined to form multiple embodiments of the present utility model.
[0029] The present invention has been described above with reference to the accompanying drawings. Obviously, the specific implementation of the present invention is not limited to the above-described manner. Any non-substantial improvements made using the concept and technical solution of the present invention, or the direct application of the concept and technical solution of the present invention to other occasions without modification, are all within the protection scope of the present invention.
Claims
1. A water quality optimization system for a slow-pull trough in an ultra-thin flexible glass washing machine, comprising an elevated trough and a slow-pull trough, wherein the elevated trough is positioned at a height higher than the slow-pull trough, and the elevated trough and the slow-pull trough are connected by a water pipe, characterized in that: It also includes a water pump and a filter assembly, and the high-level tank and the slow-pull tank are connected by a water pipe and a water pump and filter assembly installed on the water pipe.
2. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass cleaning machine as described in claim 1, characterized in that: The water pump is a 220V water pump.
3. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass cleaning machine as described in claim 1, characterized in that: The filter assembly is located behind the water pump.
4. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass washing machine as described in claim 1, characterized in that: The filter assembly includes a filter element cover and a filter element disposed inside the filter element cover, wherein the filter element cover is an openable cover structure.
5. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass washing machine as described in claim 3, characterized in that: A pre-filter, which is a filter basket, is installed on the water pipe in front of the water pump.
6. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass washing machine as described in claim 4, characterized in that: The filter element has a pore size range of 0.08-0.15 μm.
7. The water quality optimization system for slow-pull trough in an ultra-thin flexible glass washing machine as described in claim 6, characterized in that: The filter element has a pore size of 0.1 μm.
Citation Information
Patent Citations
Silicon wafer cleaning machine
CN210120121U