Environment-friendly purification device for glass water production
By designing a filtration device consisting of a cylindrical tube and a funnel tube, along with a multi-layer composite filter element, the problems of complex structure and unsatisfactory purification effect in traditional glass cleaner production have been solved, achieving efficient and environmentally friendly glass cleaner production.
Patent Information
- Application Number
- CN202520181886.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Traditional glass cleaner production processes involve complex purification devices that occupy a large area, have unsatisfactory purification effects, and may generate secondary pollution, thus failing to meet environmental protection requirements.
The filter device consists of an upper cylindrical tube and a lower funnel tube, combined with a multi-layer composite filter element (coarse filter layer, activated carbon adsorption layer and fine filter membrane layer), and achieves efficient impurity removal through the rotation design of the filter element. It uses environmentally friendly materials to reduce waste generation.
It improves the purification efficiency and quality of windshield washer fluid, reduces production costs, minimizes environmental impact, and is suitable for windshield washer fluid manufacturers of different sizes.
Smart Images

Figure CN223774503U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of purification device technology, specifically to an environmentally friendly purification device for glass water production. Background Technology
[0002] Windshield washer fluid, a common consumable in automobiles, plays a crucial role in cleaning car windshields. With the continuous increase in car ownership, the demand for windshield washer fluid is also growing. At the same time, consumers are placing higher demands on the quality of windshield washer fluid, requiring not only excellent cleaning performance but also environmental friendliness.
[0003] In traditional windshield washer fluid production, the purification process often has some shortcomings. On the one hand, traditional purification devices are complex in structure and occupy a large area, increasing production costs and limiting production space. On the other hand, the purification effect is not ideal, failing to effectively remove various impurities in the water, such as microparticles, organic matter, and odors, thus affecting the quality and performance of the windshield washer fluid. Furthermore, some traditional purification devices generate secondary pollution during use, failing to meet environmental protection requirements.
[0004] To address the problems in traditional windshield washer fluid production, developing an environmentally friendly purification device for windshield washer fluid production is of great significance. This device, through optimized structural design, achieves high-efficiency purification while minimizing environmental impact. Employing a unique filtration structure, such as a filter consisting of an upper cylindrical tube and a lower funnel tube, it effectively removes impurities from the water, improving the quality of the windshield washer fluid. Furthermore, the device's design fully considers environmental factors, such as using replaceable filter cartridges to reduce waste generation and selecting environmentally friendly materials to minimize potential environmental harm. Simultaneously, the device's compact structure and small footprint make it suitable for windshield washer fluid manufacturers of varying sizes, helping to improve the efficiency and quality of windshield washer fluid production and meeting market demand for environmentally friendly windshield washer fluid. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this utility model provides an environmentally friendly purification device for glass water production, which solves the problems mentioned in the background section.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model specifically adopts the following technical solution:
[0009] An environmentally friendly purification device for producing glass water includes a frame with a ladder fixedly connected to its side wall. A filter device is installed on the frame, consisting of an upper cylindrical tube and a lower funnel tube. A valve is provided at the bottom of the funnel tube. A feed pipe is connected to one end of the cylindrical tube. A hollow fixed cylinder is fixedly connected to the middle of the cylindrical tube. A base plate is fixedly connected to the lower end of the inner part of the cylindrical tube. A ball bearing is rotatably connected and embedded in the base plate. An upper plate is rotatably connected and fitted onto the ball bearing. A filter element is placed on the upper plate. A cover plate is bolted to the cylindrical tube, and the cover plate has protrusions.
[0010] Furthermore, the feed pipe is located on the side of the cylindrical tube, and one end of the feed pipe is connected to a delivery pump.
[0011] Furthermore, the protruding clip is fitted and installed at the center of the fixed cylinder.
[0012] Furthermore, the filter element adopts a multi-layer composite structure, including a coarse filter layer, an activated carbon adsorption layer, and a fine filter membrane layer, which are fixed by a steel wire mesh outer layer structure.
[0013] Furthermore, the liquid inlet end of the feed pipe is located on the side of the filter element.
[0014] Furthermore, the filter element rotates along with the liquid.
[0015] (III) Beneficial Effects
[0016] Compared with the prior art, this utility model provides an environmentally friendly purification device for glass water production, which has the following beneficial effects:
[0017] This utility model, through its unique structural design, allows the filter element to rotate, improving filtration efficiency, preventing impurity accumulation, and extending the filter element's lifespan. The multi-layer composite filter element and the rationally designed feed pipe position work together to comprehensively purify water quality, ensuring the cleanliness of the glass cleaner. Precise component connections ensure the device's sealing and stability, reduce maintenance costs, and improve the production quality and efficiency of glass cleaner, demonstrating significant practical value. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0019] Figure 2 This is a schematic diagram of the internal structure of the cylindrical tube of this utility model;
[0020] Figure 3 This is a schematic diagram of the filter element installation structure of this utility model;
[0021] Figure 4 This is a schematic diagram of the cover plate structure of this utility model.
[0022] In the diagram: 1. Frame; 2. Ladder; 3. Cylindrical tube; 4. Funnel tube; 5. Valve; 6. Feed pipe; 7. Fixed tube; 8. Base plate; 9. Ball bearing; 10. Top plate; 11. Filter element; 12. Cover plate; 13. Protrusion. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Example
[0025] like Figure 1-4 As shown, an embodiment of this utility model proposes an environmentally friendly purification device for glass water production, which includes a frame 1;
[0026] The frame 1 is an overall frame structure, with the side wall fixedly connected to the escalator 2.
[0027] Function: To support and fix other components, providing a stable structural foundation for the entire device; escalator 2 facilitates personnel climbing for operation and maintenance.
[0028] Escalator 2 is fixedly connected to the side wall of frame 1.
[0029] Function: To facilitate operators to climb onto frame 1 and operate, inspect, and maintain the various components of the device.
[0030] Filtration device: Combination of cylindrical tube 3 and funnel tube 4
[0031] One end of the cylindrical tube 3 is connected to the feed pipe 6, the middle has a fixed tube 7, the lower end of the inside has a bottom plate 8, the bottom plate 8 has a ball bearing 9, the ball bearing 9 has an upper plate 10, the upper plate 10 holds the filter element 11, and the cover plate 12 is installed by bolts, the cover plate 12 has a protrusion 13.
[0032] Function: The cylindrical tube 3 provides the main space for filtration, the feed pipe 6 introduces the liquid to be filtered, the fixed tube 7 assists in the installation of the cover plate 12, the bottom plate 8, the ball bearing 9, and the top plate 10 enable the filter element 11 to rotate, the filter element 11 filters impurities, and the cover plate 12 seals the top of the cylindrical tube 3.
[0033] The funnel-shaped cylinder 4 is located at the lower end of the cylindrical cylinder 3, and there is a valve 5 at the bottom.
[0034] Function: Collects and guides the liquid after preliminary filtration; valve 5 controls the liquid discharge.
[0035] Valve 5 is installed at the bottom of funnel cylinder 4.
[0036] Function: Controls the discharge of filtered liquid; can be turned on or off as needed to adjust the flow rate.
[0037] One end of the feed pipe 6 is on the side of the cylindrical tube 3 and located on the side of the filter element 11, and the other end is connected to the delivery pump.
[0038] Function: To transport the water to be purified into the cylindrical tube 3, the position of which is conducive to the uniform contact of the liquid with the filter element 11.
[0039] The fixing cylinder 7 is hollowed out and fixed in the middle of the cylindrical cylinder 3, engaging with the protrusion 13 of the cover plate 12.
[0040] Function: Positioning cover 12 ensures accurate installation and does not affect liquid flow.
[0041] The base plate 8 is fixed inside the lower end of the cylindrical tube 3 and is rotatably connected to the ball bearing 9.
[0042] Function: To provide a mounting base for the ball bearing 9 and support the rotation of the upper plate 10 and the filter element 11.
[0043] The ball bearing 9 is embedded in the base plate 8 and is engaged and rotated with the upper plate 10.
[0044] Function: Connects the bottom plate 8 and the upper plate 10, so that the upper plate 10 drives the filter element 11 to rotate, reducing friction.
[0045] The upper plate 10 is engaged and rotatably connected with the ball bearing 9 to place the filter element 11.
[0046] Function: To support filter element 11 and make it rotate with the liquid to ensure uniform filtration.
[0047] The filter element has a multi-layer composite structure, including a coarse filter layer, an activated carbon adsorption layer, and a fine filter membrane layer, with an outer layer fixed by a wire mesh.
[0048] Functions: The coarse filter layer removes large particles, the activated carbon adsorption layer removes odors and some organic matter, the fine filter membrane layer traps tiny impurities, and the wire mesh provides structural support.
[0049] The cover plate 12 is bolted to the cylindrical tube 3 and has a protrusion 13.
[0050] Function: Seals the top of the cylindrical tube 3 to prevent liquid from overflowing; the protrusion 13 is positioned in conjunction with the fixed tube 7.
[0051] The protrusion 13 is on the cover plate 12 and engages with the fixing cylinder 7.
[0052] Function: To ensure that the cover plate 12 is accurately installed on the cylindrical tube 3, guaranteeing sealing and connection stability. For example... Figure 1 As shown, in some embodiments, the feed pipe 6 is on the side of the cylindrical tube 3, and one end of the feed pipe 6 is connected to a delivery pump.
[0053] The working principle is as follows:
[0054] The raw water for glass cleaning, to be purified, enters the cylindrical cylinder 3 through the feed pipe 6 under the action of the delivery pump. Since the feed pipe 6 is located on the side of the filter element 11, the liquid forms a swirling flow around the filter element 11 upon entry. As the liquid continues to enter, it accumulates inside the cylindrical cylinder 3 and begins to be filtered through the filter element 11. The coarse filter layer of the filter element 11 first intercepts larger particulate impurities in the water, followed by the activated carbon adsorption layer adsorbing odors, organic matter, etc., and the fine filter membrane layer further traps small particulate impurities. During the liquid flow, its impact force pushes the upper plate 10, which, under the action of the ball bearings 9, drives the filter element 11 to rotate, ensuring uniform filtration across all parts of the filter element 11 and preventing localized accumulation of impurities. The purified water after filtration by the filter element 11 falls into the funnel cylinder 4. The operator can open the valve 5 at the bottom of the funnel cylinder 4 as needed to discharge and collect the purified water for subsequent glass cleaning production. Throughout the process, the frame 1 provides stable support for the device, the ladder 2 facilitates personnel operation and maintenance, the fixed cylinder 7 ensures accurate installation of the cover plate 12, and the cover plate 12 and the protrusion 13 ensure good sealing of the top of the cylindrical cylinder 3. All components work together to achieve efficient purification of the glass water raw material.
[0055] like Figure 3 As shown, in some embodiments, the protrusion 13 is fitted and installed at the center of the fixing cylinder 7; located on the cover plate 12, its shape and size match the slot or hole at the center of the fixing cylinder 7, and can be tightly inserted therein to achieve a snap-fit connection.
[0056] like Figure 3 As shown, in some embodiments, the filter element 11 adopts a multi-layer composite structure, including a coarse filter layer, an activated carbon adsorption layer, and a fine filter membrane layer, which are fixed by a wire mesh outer layer structure; through the synergistic effect of these three layers, the filter element 11 can comprehensively and efficiently filter various impurities in the glass water raw material water, significantly improving water quality.
[0057] like Figure 2 As shown, in some embodiments, the inlet end of the feed pipe 6 is on the side of the filter element 11; when liquid enters the cylindrical tube 3 tangentially from the inlet end of the feed pipe 6 and rushes toward the side of the filter element 11, a swirling flow is formed around the filter element 11. This swirling flow causes the liquid to generate a tangential velocity on the surface of the filter element 11, increasing the contact area and contact time between the liquid and the filter element 11, and improving the filtration efficiency.
[0058] like Figure 2As shown, in some embodiments, the filter element 11 rotates with the liquid; during rotation, each part of the filter element 11 can sequentially and fully contact the incoming liquid to be purified. Compared to a stationary filter element 11, a rotating filter element 11 can avoid local over-filtration while other parts are under-filtered, allowing the entire surface of the filter element 11 to perform the filtration function uniformly, thereby improving the interception efficiency of impurities.
[0059] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. An environmentally friendly purification device for glass water production, comprising a frame (1), characterized in that: A ladder (2) is fixedly connected to the side wall of the frame (1). A filter device is installed on the frame (1). The filter device consists of an upper cylindrical tube (3) and a lower funnel tube (4). A valve (5) is provided at the bottom of the funnel tube (4). One end of the cylindrical tube (3) is connected to a feed pipe (6). A hollow fixed tube (7) is fixedly connected to the middle of the cylindrical tube (3). A bottom plate (8) is fixedly connected to the lower end of the inner part of the cylindrical tube (3). A ball bearing (9) is inlaid and rotatably connected on the bottom plate (8). An upper plate (10) is inlaid and rotatably connected on the ball bearing (9). A filter element (11) is placed on the upper plate (10). A cover plate (12) is installed on the cylindrical tube (3) with a bolt. A protrusion (13) is provided on the cover plate (12).
2. The environmentally friendly purification device for glass water production according to claim 1, characterized in that: The feed pipe (6) is located on the side of the cylindrical tube (3), and one end of the feed pipe (6) is connected to the delivery pump.
3. The environmentally friendly purification device for glass water production according to claim 1, characterized in that: The protrusion (13) is fitted and installed at the center of the fixed cylinder (7).
4. The environmentally friendly purification device for glass water production according to claim 1, characterized in that: The filter element (11) adopts a multi-layer composite structure, including a coarse filter layer, an activated carbon adsorption layer and a fine filter membrane layer, which are fixed by a steel wire mesh outer layer structure.
5. The environmentally friendly purification device for glass water production according to claim 1, characterized in that: The liquid inlet end of the feed pipe (6) is on the side of the filter element (11).
6. The environmentally friendly purification device for glass water production according to claim 5, characterized in that: The filter element (11) rotates with the liquid.