High-refractive-index glass bead cleaning device adopting microbubble method

By introducing the recycling filter components of the aggregate mesh plate and the carbon fiber filter plate into the glass microbead cleaning device, the problem of sewage cannot be recycled is solved, and the recycling of water resources and the cleaning efficiency are improved.

CN223185105UActive Publication Date: 2025-08-05MIANYANGYAO NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202422286251.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-08-05
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The existing glass microbead cleaning device lacks circulating filter components, which leads to the inability to recycle the cleaned sewage, resulting in waste of water resources, and reducing the practicality of the cleaning device.

Method used

A microbubble method high-refractive index glass microbead cleaning device is designed, and a circulation filtering component composed of a aggregate mesh plate and a carbon fiber filter plate is used to separate the glass microbeads and water through the aggregate mesh plate, and then the water is purified by the carbon fiber filter plate, and the sewage recycling is realized through the water pump and the water pipe.

Benefits of technology

The recycling of water resources after cleaning is realized, the practicality of the cleaning device is improved, the waste of water resources is avoided, and chemical cleaning agents are not required, which reduces costs and pollution.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of glass bead cleaning devices, in particular to a microbubble method high-refractive-index glass bead cleaning device which comprises a supporting table. The circulating filtering assembly comprises a filtering box, a top plate, a material collecting net plate, a pulling plate, a carbon fiber filtering plate, a water pumping pipe, a water pump and a water conveying pipe, the top of the supporting table is provided with a cleaning cylinder, the bottom of the supporting table is provided with the filtering box, the top plate is installed at the top of the filtering box, and the material collecting net plate is arranged at the upper end in the filtering box; a pulling plate is arranged at the position, corresponding to the material collecting screen plate, of the front side of the filter box, and the front side of the material collecting screen plate is connected with the rear side of the pulling plate; according to the glass bead cleaning device, the circulating filtering assembly is arranged, sewage generated after cleaning can be filtered and recycled, and the problems that due to the fact that a common glass bead cleaning device is lack of the circulating filtering assembly, sewage generated after cleaning cannot be recycled, filtered and used, waste of water resources is caused, and the practicability of the cleaning device is reduced are solved.
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Description

Technical Field

[0001] The utility model relates to the field of glass microbead cleaning devices, in particular to a micro-bubble method high-refractive index glass microbead cleaning device. Background Art

[0002] The glass bead cleaning device is a device used to clean the surface of glass beads. It is designed to clean the dust on the surface of glass beads by water washing and improve the quality of the finished glass beads.

[0003] According to the search, Chinese patent literature, announcement number: CN221209171U, discloses a glass bead cleaning device, including a barrel and a stirring shaft, the stirring shaft is driven by a motor, the stirring shaft is arranged to move along the axial direction of the barrel, a piston plate is coaxially provided at the bottom of the stirring shaft, the stirring shaft is arranged to rotate around the axis relative to the piston plate, the outer wall of the piston plate is in sliding contact with the inner wall of the barrel, and a circumferential sealing structure is provided between the outer wall of the piston plate and the inner wall of the barrel, the outer wall of the barrel is provided with a ring-shaped material receiving trough, and a discharge trough is provided on one side of the material receiving trough; this solution is convenient for discharging sewage and quickly and thoroughly discharging glass beads, but the utility model only cleans the glass beads by stirring, resulting in low cleaning efficiency, and the sewage after cleaning cannot be recycled, thereby causing a waste of water resources.

[0004] Therefore, in view of the fact that the above-mentioned glass bead cleaning device lacks a circulating filtration component and cannot circulate and filter the cleaned sewage, a micro-bubble method high-refractive index glass bead cleaning device can be designed. The glass beads and water can be separated by the aggregate mesh plate, so that the cleaned water flows to the carbon fiber filter plate at the lower end. The water can be filtered and purified by the carbon fiber filter plate, so that the clean water settles to the bottom of the filter box. At the same time, the water pump can control the suction pipe to extract the filtered water in the filter box, and discharge the water back into the interior of the cleaning cylinder through the water pipe, thereby achieving the purpose of circulating filtration and use, avoiding the waste of water resources and improving the practicality of the cleaning device. Utility Model Content

[0005] In order to overcome the problem that common glass bead cleaning devices lack a circulation filtration component and cannot circulate and filter the sewage after cleaning, thereby causing a waste of water resources and reducing the practicality of the cleaning device.

[0006] The technical solution of the utility model is: a micro-bubble method high-refractive index glass bead cleaning device, comprising a support platform; also comprising a circulation filtering component, the circulation filtering component comprising a filter box, a top plate, a collection mesh plate, a pull plate, a carbon fiber filter plate, a suction pipe, a water pump and a water supply pipe, a cleaning cylinder is provided on the top of the support platform, a filter box is provided at the bottom of the support platform, a top plate is installed on the top of the filter box, an upper end of the interior of the filter box is provided with a collection mesh plate, a pull plate is provided on the front side of the filter box corresponding to the position of the collection mesh plate, the front side of the collection mesh plate is connected to the rear side of the pull plate, a carbon fiber filter plate is provided at the lower end of the interior of the filter box, the lower end of the rear side of the filter box is connected with a suction pipe, the other end of the suction pipe is connected to the water pump, the top of the water pump is connected with the water supply pipe, and the other end of the water supply pipe is connected to the upper end of the side wall of the cleaning cylinder.

[0007] Preferably, the aggregate mesh plate can be moved back and forth in the slot on the front side of the filter box by pulling the pull plate, so that the glass beads on the top of the aggregate mesh plate can be collected. The aggregate mesh plate can also separate the glass beads from the water, so that the cleaned water flows to the carbon fiber filter plate at the lower end. The water can be filtered and purified by the carbon fiber filter plate, so that the clean water settles to the bottom of the filter box. At the same time, the water pump can control the suction pipe to extract the filtered water in the filter box, and discharge the water back into the interior of the cleaning cylinder through the water pipe, so as to achieve the purpose of circulating filtration and use, avoid the waste of water resources, and improve the practicality of the cleaning device.

[0008] Preferably, two support columns are symmetrically provided on the top of the support platform, and the tops of the support columns are welded to the bottom of the cleaning cylinder.

[0009] Preferably, a feed pipe is installed at the bottom center of the cleaning cylinder, a solenoid valve is installed on the outside of the feed pipe, the top of the feed pipe is connected to the interior of the cleaning cylinder, and the bottom of the feed pipe passes through the support platform and is connected to the interior of the filter box.

[0010] Preferably, an ultrasonic generator is installed on the upper end of the side wall of the cleaning cylinder, and a top cover is installed on the top of the cleaning cylinder.

[0011] Preferably, a feed pipe is connected to the left side of the top of the top cover, a rotating shaft is provided inside the cleaning cylinder, stirring blades are symmetrically installed on the side walls of the rotating shaft, a first motor is installed at the position of the rotating shaft corresponding to the top of the top cover, and the output end of the first motor is connected to the top of the rotating shaft.

[0012] Preferably, a second motor is provided on the right side of the bottom of the cleaning cylinder, the output end of the second motor is connected to a rotating rod, a connecting plate is provided at the position of the rotating rod at the inner bottom end of the cleaning cylinder corresponding to the position of the rotating rod, and the top end of the rotating rod passes through the cleaning cylinder and is connected to the connecting plate.

[0013] Preferably, a sealing ring is provided at the connection between the rotating rod and the connecting plate, and a filter disc is connected to the left end of the connecting plate.

[0014] Beneficial effects of the utility model:

[0015] 1. By pulling the pull plate, the aggregate mesh plate can be moved back and forth in the slot on the front side of the filter box, so that the glass beads on the top of the aggregate mesh plate can be collected. The aggregate mesh plate can also separate the glass beads from the water, so that the cleaned water flows to the carbon fiber filter plate at the lower end. The water can be filtered and purified by the carbon fiber filter plate, so that the clean water settles to the bottom of the filter box. At the same time, the water pump can control the suction pipe to extract the filtered water in the filter box, and discharge the water back into the cleaning cylinder through the water pipe, thereby achieving the purpose of circulating filtration, avoiding the waste of water resources, and improving the practicality of the cleaning device. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 Shown is a schematic diagram of the three-dimensional structure of a micro-bubble method high-refractive index glass micro-bead cleaning device of the present invention;

[0017] Figure 2 Shown is a rear view schematic diagram of a microbubble method high refractive index glass microbead cleaning device of the present invention;

[0018] Figure 3 Shown is a schematic diagram of the explosion structure of a cleaning cylinder of a micro-bubble method high-refractive index glass micro-bead cleaning device of the present invention when viewed from above;

[0019] Figure 4 Shown is a schematic diagram of the explosion structure of a filter box of a micro-bubble method high-refractive index glass micro-bead cleaning device of the present invention;

[0020] Figure 5 Shown is a schematic cross-sectional structure diagram of a microbubble method high-refractive index glass microbead cleaning device of the present invention;

[0021] Figure 6 Shown is a schematic diagram of the connection structure of the filter disc of a microbubble method high refractive index glass microbead cleaning device of the present invention.

[0022] Explanation of the accompanying symbols: 1. Support platform; 201. Filter box; 202. Top plate; 203. Collecting mesh plate; 204. Pull plate; 205. Carbon fiber filter plate; 206. Suction pipe; 207. Water pump; 208. Water supply pipe; 3. Support column; 4. Cleaning cylinder; 5. Feeding pipe; 6. Solenoid valve; 7. Ultrasonic generator; 8. Top cover; 9. Feeding pipe; 10. Rotating shaft; 11. Stirring blade; 12. First motor; 13. Second motor; 14. Rotating rod; 15. Connecting plate; 16. Sealing ring; 17. Filter disc. DETAILED DESCRIPTION

[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0024] See also Figures 1-6 , The utility model provides an embodiment: a micro-bubble method high-refractive index glass bead cleaning device, including a support platform 1; also including a circulation filtering component, the circulation filtering component including a filter box 201, a top plate 202, a collection mesh plate 203, a pulling plate 204, a carbon fiber filter plate 205, a water suction pipe 206, a water pump 207 and a water delivery pipe 208. A cleaning cylinder 4 is provided on the top of the support platform 1, and a filter box 201 is provided on the bottom of the support platform 1. The top plate 202 is installed on the top of the filter box 201, and the upper end of the interior of the filter box 201 is provided with a collection mesh plate 203, and the front side of the filter box 201 is provided with a pulling plate 204 corresponding to the position of the collection mesh plate 203. The front side of the collection mesh plate 203 is connected to the rear side of the pulling plate 204, and the lower end of the interior of the filter box 201 is provided with a carbon fiber filter plate 205. The lower end of the rear side of the filter box 201 is connected with a water suction pipe 206. The other end is connected to a water pump 207, and the top of the water pump 207 is connected to a water pipe 208. The other end of the water pipe 208 is connected to the upper end of the side wall of the cleaning cylinder 4. By pulling the pull plate 204, the collection mesh plate 203 can be moved back and forth in the slot on the front side of the filter box 201, so as to facilitate the collection of glass beads on the top of the collection mesh plate 203. The collection mesh plate 203 can also separate the glass beads from the water, so that the cleaned water flows to the carbon fiber filter plate 205 at the lower end. The carbon fiber filter plate 205 can filter and purify the water, so that the clean water settles to the bottom of the filter box 201. At the same time, the water pump 207 can control the suction pipe 206 to extract the filtered water in the filter box 201, and discharge the water back into the interior of the cleaning cylinder 4 through the water pipe 208, thereby achieving the purpose of circulating filtration and use, avoiding the waste of water resources and improving the practicality of the cleaning device.

[0025] See also Figures 1-6, in this embodiment, two support columns 3 are symmetrically provided on the top of the support platform 1, and the top of the support column 3 is welded to the bottom of the cleaning cylinder 4. The support column 3 can be used to support the bottom of the cleaning cylinder 4, thereby improving the stability of the cleaning cylinder 4 during operation. A discharge pipe 5 is installed at the bottom center of the cleaning cylinder 4, and an electromagnetic valve 6 is installed on the outside of the discharge pipe 5. The top of the discharge pipe 5 is connected with the interior of the cleaning cylinder 4, and the bottom of the discharge pipe 5 passes through the support platform 1 and is connected with the interior of the filter box 201. The water and glass beads in the cleaning cylinder 4 can be discharged into the filter box 201 through the discharge pipe 5, and the discharge time and discharge speed of the discharge pipe 5 can be controlled by the electromagnetic valve 6. An ultrasonic generator 7 is installed at the upper end of the side wall of the cleaning cylinder 4, and a top cover 8 is installed on the top of the cleaning cylinder 4. The ultrasonic generator 7 can generate a large number of bubbles in the water in the cleaning cylinder 4. These bubbles can make the surface of the glass beads clean more cleanly, and there is no need to add chemical cleaning agents, which not only reduces costs but also reduces pollution to water resources. The top cover 8 can be used to seal the top of the cleaning cylinder 4.

[0026] See also Figures 1-6 In this embodiment, a feed pipe 9 is connected to the left side of the top of the top cover 8, a rotating shaft 10 is provided inside the cleaning cylinder 4, and stirring blades 11 are symmetrically installed on the side walls of the rotating shaft 10. A first motor 12 is installed at the position of the rotating shaft 10 on the top of the top cover 8. The output end of the first motor 12 is connected to the top of the rotating shaft 10. Glass beads and water can be transported to the inside of the cleaning cylinder 4 through the feed pipe 9, and the first motor 12 can be used to drive the rotating shaft 10 to rotate. The rotation of the rotating shaft 10 will drive the stirring blades 11 to rotate synchronously, thereby achieving the purpose of stirring and cleaning the glass beads. A second motor 13 is provided on the right side of the bottom of the cleaning cylinder 4. The output end of the second motor 13 is connected to the rotating rod 14. The bottom end of the interior of the cleaning cylinder 4 A connecting plate 15 is provided at the position corresponding to the rotating rod 14. The top of the rotating rod 14 passes through the cleaning cylinder 4 and is connected to the connecting plate 15. The rotating rod 14 can be driven to rotate by the second motor 13. When the rotating rod 14 rotates, the connecting plate 15 will drive the filter disc 17 to move synchronously at the bottom of the cleaning cylinder 4. A sealing ring 16 is provided at the connection between the rotating rod 14 and the connecting plate 15, and the left end of the connecting plate 15 is connected to the filter disc 17. The sealing ring 16 can be used to seal the connection between the rotating rod 14 and the connecting plate 15 to avoid water leakage or seepage, and the filter disc 17 can be used to block the top of the discharge pipe 5, so that the cleaning cylinder 4 will not discharge the glass beads and water through the discharge pipe 5 during the water change process.

[0027] During operation, glass beads and water can be transported to the interior of the cleaning cylinder 4 through the feed pipe 9, and the first motor 12 can be used to drive the rotating shaft 10 to rotate. The rotation of the rotating shaft 10 will drive the stirring blade 11 to rotate synchronously, thereby achieving the purpose of stirring and cleaning the glass beads, and the ultrasonic generator 7 can be used to generate a large number of bubbles in the water in the cleaning cylinder 4. These bubbles can make the surface of the glass beads cleaned more cleanly, and there is no need to add chemical cleaning agents, which not only reduces costs but also reduces pollution to water resources. At the same time, the water and glass beads in the cleaning cylinder 4 can be discharged into the filter box 201 through the discharge pipe 5, and the discharge time and discharge speed of the discharge pipe 5 can be controlled by the solenoid valve 6. When the glass beads need to be repeatedly cleaned and the water is changed, the second motor 13 can drive the rotating rod 14 to rotate. When the rotating rod 14 rotates, the connecting plate 15 drives the filter disc 17 to move to the discharge position. The top of the tube 5 is formed by the glass beads and the water is not discharged through the discharge pipe 5 together with the cleaning cylinder 4 during the water change process, so as to achieve the purpose of repeatedly cleaning the beads, and by pulling the pull plate 204, the collection mesh plate 203 can be moved back and forth in the slot on the front side of the filter box 201, so as to facilitate the collection of the glass beads on the top of the collection mesh plate 203, and the collection mesh plate 203 can also separate the glass beads from the water, so that the cleaned water flows to the carbon fiber filter plate 205 at the lower end, and the water can be filtered and purified by the carbon fiber filter plate 205, so that the clean water settles to the bottom of the filter box 201, and the water pump 207 can control the water pump 206 to extract the filtered water in the filter box 201, and discharge the water back into the interior of the cleaning cylinder 4 through the water pipe 208, so as to achieve the purpose of circulating filtration and use, avoid the waste of water resources, and improve the practicality of the cleaning device.

[0028] Through the above steps, by setting up a circulation filtration component, the sewage after cleaning can be filtered and purified, so that the water can be recycled, so as to solve the problem that the common glass bead cleaning device cannot circulate and filter the sewage after cleaning due to the lack of a circulation filtration component, thereby causing a waste of water resources and reducing the practicality of the cleaning device.

Claims

1. A microbubble method high refractive index glass microbead cleaning device, comprising a support platform (1); characterized in that: The invention also includes a circulating filter assembly, which includes a filter box (201), a top plate (202), a material collection mesh plate (203), a pull plate (204), a carbon fiber filter plate (205), a water pump (206), a water pump (207) and a water pipe (208). A cleaning cylinder (4) is provided on the top of the support platform (1), a filter box (201) is provided on the bottom of the support platform (1), a top plate (202) is installed on the top of the filter box (201), a material collection mesh plate (203) is provided on the upper end of the interior of the filter box (201), and the filter box (201) is provided with a filter box (201). A pull plate (204) is provided at the front side of (201) corresponding to the position of the material collecting mesh plate (203), the front side of the material collecting mesh plate (203) is connected to the rear side of the pull plate (204), a carbon fiber filter plate (205) is provided at the lower end of the interior of the filter box (201), a water pump (206) is connected to the lower end of the rear side of the filter box (201), the other end of the water pump (206) is connected to a water pump (207), the top of the water pump (207) is connected to a water supply pipe (208), and the other end of the water supply pipe (208) is connected to the upper end of the side wall of the cleaning cylinder (4).

2. The microbubble method high refractive index glass microbead cleaning device according to claim 1, characterized in that: Two support columns (3) are symmetrically arranged on the top of the support platform (1), and the tops of the support columns (3) are welded to the bottom of the cleaning cylinder (4).

3. The microbubble method high refractive index glass microbead cleaning device according to claim 1, characterized in that: A feed pipe (5) is installed at the bottom center of the cleaning cylinder (4), a solenoid valve (6) is installed on the outside of the feed pipe (5), and the top of the feed pipe (5) is connected to the interior of the cleaning cylinder (4), and the bottom of the feed pipe (5) passes through the support platform (1) and is connected to the interior of the filter box (201).

4. The microbubble method high refractive index glass microbead cleaning device according to claim 1, characterized in that: An ultrasonic generator (7) is installed on the upper end of the side wall of the cleaning cylinder (4), and a top cover (8) is installed on the top of the cleaning cylinder (4).

5. The microbubble method high refractive index glass microbead cleaning device according to claim 4, characterized in that: A feeding pipe (9) is connected to the left side of the top of the top cover (8), a rotating shaft (10) is provided inside the cleaning cylinder (4), a stirring blade (11) is symmetrically installed on the side wall of the rotating shaft (10), a first motor (12) is installed at the position of the top of the top cover (8) corresponding to the rotating shaft (10), and the output end of the first motor (12) is connected to the top end of the rotating shaft (10).

6. The microbubble method high refractive index glass microbead cleaning device according to claim 1, characterized in that: A second motor (13) is provided on the right side of the bottom of the cleaning cylinder (4); an output end of the second motor (13) is connected to a rotating rod (14); a connecting plate (15) is provided at the inner bottom end of the cleaning cylinder (4) at a position corresponding to the rotating rod (14); and a top end of the rotating rod (14) passes through the cleaning cylinder (4) and is connected to the connecting plate (15).

7. The microbubble method high refractive index glass microbead cleaning device according to claim 6, characterized in that: A sealing ring (16) is provided at the connection between the rotating rod (14) and the connecting plate (15), and a filter disc (17) is connected to the left end of the connecting plate (15).

Citation Information

Patent Citations

  • Glass bead cleaning device

    CN221209171U