A glass polisher sludge filtering device
Patent Information
- Application Number
- CN202521821945.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-08-26
AI Technical Summary
[0004]然而,该技术没有涉及本申请的技术问题和技术方案
[0016]采用本实用新型的技术方案,工作原理及有益效果如下所述:
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Figure CN224735881U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of glass polishing machines, and more specifically, it relates to a sludge filtration device for glass polishing machines. Background Technology
[0002] Glass polishing requires the use of polishing fluid. Due to the special properties of polishing fluid, sedimentation occurs during use, forming sludge. Current technology involves directly pouring the polishing fluid into the drain after its expiration date. Over time, this practice causes impurities in the polishing sludge to accumulate in the waterways, leading to blockages. Another existing technology involves manually pouring the sludge from buckets onto a filter screen, rinsing it with clean water to dilute it, and then collecting and treating any remaining impurities before processing the next batch of sludge.
[0003] Existing technology includes a method for treating polishing wastewater, published under publication number CN110526524A. This technology relates to the field of wastewater treatment, specifically a method for treating polishing wastewater. The method comprises the following steps: a) sending wastewater into an equalization tank for stirring and pre-aeration; b) sending the wastewater from the equalization tank into a coagulation reaction tank to capture insoluble organic matter and degrade COD; c) the wastewater from the coagulation reaction tank flows into a sedimentation tank to separate supernatant and precipitate, with the precipitate discharged into a sludge thickening tank. This invention captures organic matter in wastewater and degrades COD through a coagulation reaction tank. A sedimentation tank separates water from precipitate. A hydrolysis acidification tank hydrolyzes suspended solids and soluble organic matter in the wastewater into organic acids. A contact oxidation tank removes BOD and absorbs phosphorus from the wastewater. A continuous membrane filtration system filters the wastewater into reusable water. This application can treat wastewater into reusable water, thereby achieving water recycling.
[0004] However, this technology does not address the technical issues and solutions of this application. Utility Model Content
[0005] The technical problem to be solved by this utility model is to provide a glass polishing machine sludge filtration device that is simple in structure, can efficiently treat polishing sludge, dilutes the sludge to facilitate its discharge, and can reliably filter impurities in the polishing sludge, thereby achieving centralized collection and treatment of impurities and meeting the needs of polishing sludge treatment.
[0006] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:
[0007] This utility model is a sludge filtration device for a glass polishing machine. The upper part of the device frame is provided with a guide rail, the bottom of the screen frame is provided with a guide groove, the guide rail and the guide groove are movably connected, the bottom of the screen frame is installed with a filter screen, and the device frame is provided with a telescopic component, which is connected to the screen frame.
[0008] The device frame is arranged in a water tank, the filter screen is located below the water surface, and the height of the upper surface of the screen frame is higher than the height of the water surface in the tank.
[0009] The guide rail is a T-shaped block, and a T-shaped groove is provided at the bottom of the screen frame.
[0010] The T-slot of the screen frame is used to movably mount the T-block of the guide rail.
[0011] The device frame is provided with a support on the side, and the telescopic component is installed on the support. The telescopic rod of the telescopic component is connected to the side of the screen frame.
[0012] The telescopic component is arranged parallel to the upper surface of the screen frame, and the filter screen has a basket-shaped structure and is clipped into the bottom position inside the screen frame.
[0013] The device frame includes a support frame and multiple support legs. A guide rail is provided on the upper part of the support frame near the front, and another guide rail is provided on the upper part of the support frame near the rear. The two guide rails are arranged in parallel.
[0014] The bottom of the screen frame is provided with two guide grooves, which are arranged in parallel, and each guide rail is movably connected to the corresponding guide groove.
[0015] The filter screen is located above the opening of the supporting frame, and the support legs are fixed to the bottom of the pool by bolts.
[0016] The working principle and beneficial effects of this utility model are as follows:
[0017] The glass polishing machine sludge filtration device of this utility model includes a device frame and a screen frame, which are movably connected. Specifically, the guide rail on the upper part of the device frame and the guide groove on the bottom of the screen frame are movably engaged, allowing the screen frame to move linearly relative to the device frame. A filter screen is installed at the bottom of the screen frame. After polishing sludge is introduced into the screen frame, the filter screen processes the sludge, allowing the sludge to pass through the filter screen while undissolved impurities are isolated and retained in the filter screen for periodic collection and cleaning. Simultaneously, to automate the filtration operation, a telescopic component is installed on the device frame. This telescopic component is connected to the screen frame and is fixedly connected to the device frame. When the telescopic component is extended or retracted, it causes the screen frame to move horizontally, creating a swaying motion that effectively automates the processing of polishing sludge, effectively replacing manual labor. This not only reduces labor intensity but also improves processing efficiency. Attached Figure Description
[0018] The following is a brief explanation of the contents depicted in the accompanying drawings and the markings therein:
[0019] Figure 1 This is a schematic diagram of the structure of the sludge filtration device for the glass polishing machine described in this utility model;
[0020] Figure 2 This is a top view of the sieve frame of the sludge filtration device for the glass polishing machine described in this utility model.
[0021] Figure 3 This is a partial cross-sectional view of the connection between the guide groove and the guide rail of the sludge filtration device for the glass polishing machine described in this utility model.
[0022] The labels in the attached diagram are as follows: 1. Device frame; 2. Guide rail; 3. Screen frame; 4. Guide channel; 5. Filter screen; 6. Telescopic component; 7. Water tank; 8. Support; 9. Telescopic rod; 10. Bearing frame; 11. Support leg; 12. Water surface. Detailed Implementation
[0023] The following description, with reference to the accompanying drawings, provides a more detailed explanation of the specific embodiments of this utility model, including the shape and structure of each component, the relative positions and connections between the parts, the functions and working principles of each part:
[0024] As attached Figure 1 -Appendix Figure 3As shown, this utility model is a sludge filtration device for a glass polishing machine. The device frame 1 has a guide rail 2 on its upper part, and a guide groove 4 on the bottom of the screen frame 3. The guide rail 2 and the guide groove 4 are movably connected. A filter screen 5 is installed at the bottom of the screen frame 3. A telescopic component 6 is installed on the device frame 1, and the telescopic component 6 connects to the screen frame 3. This structure addresses the shortcomings of the prior art by proposing an improved technical solution. In this structural design, the device frame 1 and the screen frame 3 are movably connected. Specifically, the guide rail 2 on the upper part of the device frame 1 and the guide groove 4 at the bottom of the screen frame 3 are movably engaged, allowing the screen frame 3 to move linearly relative to the device frame 1. A filter screen 5 is installed at the bottom of the screen frame 3. After polishing sludge is introduced into the screen frame 3, the filter screen 5 processes the sludge. The sludge leaks through the filter screen 5, while undissolved impurities are isolated by the filter screen 5 and remain in the filter screen 5. These impurities can be periodically collected and removed for cleaning. Meanwhile, to automate the filtration process, a telescopic component 6 is installed on the device frame 1. The telescopic component 6 connects to the screen frame 3 and is fixedly connected to the device frame 1. When the telescopic component 6 is extended or retracted, it drives the screen frame 3 to move horizontally, causing the screen frame 3 to sway. This effectively automates the processing of polishing sludge, replacing manual labor and reducing labor intensity while improving processing efficiency. The glass polishing machine sludge filtration device described in this invention has a simple structure and can efficiently process polishing sludge. It dilutes the sludge for easy discharge and reliably filters impurities from the polishing sludge, enabling centralized collection and treatment of impurities, thus meeting the needs of polishing sludge treatment.
[0025] The device frame 1 is arranged in the water tank 7, with the filter screen 5 located below the water surface. The upper surface of the screen frame 3 is higher than the water surface in the tank 7. In this structure, with the device frame 1 positioned in the water tank 7, during polishing sludge treatment, the sludge is submerged in water. As the screen frame 3 moves linearly, it brings the sludge into contact with the water, effectively diluting it. The sludge passes through the filter screen into the water, while impurities remain in the filter screen 5. Because the horizontal movement of the screen frame is only near the water surface, the water at the bottom of the tank 7 is not disturbed, allowing the sludge to sink to the bottom. Thus, the water at the surface of the tank 7 remains essentially clear. This ensures that the polishing sludge being filtered is not affected by sludge that has already fallen into the tank.
[0026] The guide rail 2 is a T-shaped block, and the bottom of the screen frame 3 is provided with a T-shaped groove. The T-shaped groove of the screen frame 3 movably engages with the T-shaped block of the guide rail 2. In the above structure, the device frame 1 and the screen frame 3 are reliably connected. The device frame 1 limits the movement direction of the screen frame 3, and the extension and retraction of the telescopic component 6 drives the screen frame to move relative to the device frame, thereby achieving automated filtration.
[0027] A support 8 is provided on the side of the device frame 1, and a telescopic component 6 is mounted on the support 8. The telescopic rod 9 of the telescopic component 6 is connected to the side of the screen frame 3. With the above structure, the support 8 can achieve both a fixed connection with the device frame 1 and a fixed connection with the telescopic component 6.
[0028] The telescopic component 6 is arranged parallel to the upper surface of the screen frame 3, and the filter screen 5 has a basket-like structure, which is snapped into place at the bottom of the screen frame 3. With this structure, the filter screen 5 is snapped into place within the screen frame during use, but can be easily removed from the screen frame for cleaning when removing impurities.
[0029] The device frame 1 includes a support frame 10 and multiple support legs 11. A guide rail 2 is arranged near the front of the upper part of the support frame 10, and another guide rail 2 is arranged near the rear of the upper part of the support frame 10. The two guide rails 2 are arranged in parallel. Two guide grooves 4 are arranged in parallel at the bottom of the screen frame 3. Each guide rail 2 is movably and snap-fitted to a corresponding guide groove 4.
[0030] The filter screen 5 is located above the opening of the support frame 10, and the support leg 11 is fixedly connected to the bottom of the water tank 7 by bolts. In the above structure, the support frame 10 has a U-shaped structure, which will not affect the sludge in the polishing sludge from passing through the filter screen 5 into the water in the water tank.
[0031] This utility model discloses a sludge filtration device for a glass polishing machine. The structure includes a frame 1 and a screen frame 3, which are movably connected. Specifically, the guide rail 2 on the upper part of the frame 1 and the guide groove 4 at the bottom of the screen frame 3 are movably engaged, allowing the screen frame 3 to move linearly relative to the frame 1. A filter screen 5 is installed at the bottom of the screen frame 3. After polishing sludge is introduced into the screen frame 3, the filter screen 5 processes it. The sludge falls through the filter screen 5, while undissolved impurities are isolated and retained within it, allowing for periodic collection and cleaning. Simultaneously, to automate the filtration process, a telescopic component 6 is installed on the frame 1. This component connects to the screen frame 3 and is fixedly connected to the frame 1. When the telescopic component 6 is extended or retracted, it causes the screen frame 3 to move horizontally, creating a swaying motion that effectively automates the processing of polishing sludge, replacing manual labor and reducing labor intensity while improving efficiency.
[0032] 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 improvements made using the inventive concept and technical solution of the present invention, or the direct application of the inventive concept and technical solution to other situations without modification, are all within the protection scope of the present invention.
Claims
1. A glass polisher sludge filtration apparatus, characterized by: The upper part of the device frame (1) is provided with a guide rail (2), the bottom of the screen frame (3) is provided with a guide groove (4), the guide rail (2) and the guide groove (4) are movably connected, the bottom of the screen frame (3) is installed with a filter screen (5), the device frame (1) is provided with a telescopic component (6), and the telescopic component (6) is connected to the screen frame (3).
2. The glass polisher sludge filtration apparatus of claim 1, wherein: The device frame (1) is arranged in the water tank (7), the filter screen (5) is located below the water surface, and the height of the upper surface of the screen frame (3) is higher than the height of the water surface in the water tank (7).
3. The glass polisher sludge filtration apparatus of claim 1 or 2, wherein: The guide rail (2) is a T-shaped block, and the bottom of the screen frame (3) is provided with a T-shaped groove.
4. The glass polisher sludge filtration apparatus of claim 3, wherein: The T-slot of the sieve frame (3) is used to movably mount the T-block of the guide rail (2).
5. The glass polisher sludge filtration apparatus of claim 1 or 2, wherein: The device frame (1) is provided with a support (8) on the side, and the telescopic component (6) is installed on the support (8). The telescopic rod (9) of the telescopic component (6) is connected to the side of the screen frame (3).
6. The sludge filtration device for a glass polishing machine according to claim 5, characterized in that: The telescopic component (6) is arranged parallel to the upper surface of the sieve frame (3), and the filter screen (5) is a basket-shaped structure. The filter screen (5) is installed at the bottom inside the sieve frame (3).
7. The glass polisher sludge filtration apparatus of claim 1 or 2, wherein: The device frame (1) includes a support frame (10) and multiple support legs (11). A guide rail (2) is provided on the upper part of the support frame (10) near the front, and another guide rail (2) is provided on the upper part of the support frame (10) near the rear. The two guide rails (2) are arranged in parallel.
8. The glass polisher sludge filtration apparatus of claim 7, wherein: The bottom of the sieve frame (3) is provided with two guide grooves (4), which are arranged in parallel. Each guide rail (2) is movably connected to the corresponding guide groove (4).
9. The glass polisher sludge filtration apparatus of claim 1 or 2, wherein: The filter screen (5) is located above the opening of the support frame (10), and the support leg (11) is fixedly connected to the bottom of the pool (7) by bolts.
Citation Information
Patent Citations
Method for treating grinding and polishing wastewater
CN110526524A