Water-saving device for secondary utilization of water resources
By designing a water-saving device for secondary water utilization, and utilizing a combination of interception, mixing, and filtration components, the problem of continuous treatment that cannot be achieved in existing technologies has been solved, thus realizing efficient purification and filtration of polluted water bodies.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2026-04-03
AI Technical Summary
Existing water resource recycling and water-saving treatment devices cannot achieve continuous treatment, and the filtration effect needs to be improved.
A water-saving device for secondary water utilization was designed, including a treatment tank, an interception component, a mixing component, a chemical solution component, and an outlet pipe. The interception component intercepts large particulate impurities, and the chemical solution component mixes with the mixing component and is then discharged directly. Combined with the filtration component, it is further purified to achieve continuous purification.
It achieves continuous purification of polluted water, is easy to operate, improves filtration efficiency, and has excellent performance.
Smart Images

Figure CN224077074U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water resource recycling technology, and more specifically, to a water-saving device for secondary utilization of water resources. Background Technology
[0002] my country is a country with scarce water resources, so water conservation is essential. One important way to conserve water is to recycle and reuse water resources.
[0003] Existing water resource recycling and water-saving treatment devices mostly rely on simple filter screens and manual addition of treatment agents for filtration and recycling. They have the following drawbacks: they require unified collection of polluted water before purification operations can be carried out, and they cannot continuously treat polluted water. Their performance needs to be improved. Utility Model Content
[0004] The purpose of this utility model is to solve the problems mentioned in the background art above, and then to propose a water-saving device for secondary utilization of water resources.
[0005] The technical solution adopted by this utility model to solve its technical problem is:
[0006] A water-saving device for secondary water utilization, comprising:
[0007] The treatment tank is equipped with a water inlet pipe, a medicine inlet pipe, and a drain pipe.
[0008] The interception component is located inside the treatment tank and connected to the inlet pipe;
[0009] The hybrid component is located inside the processing box and is connected to the interception component;
[0010] The liquid medicine component is located inside the processing tank and connected to the inlet pipe, and is also connected to the mixing component;
[0011] The outlet pipe is connected at one end to the overflow end of the mixing component and at the other end to the drain pipe.
[0012] Furthermore, the interception component in the above scheme includes:
[0013] An interception box is installed inside the treatment box and connected to the inlet pipe;
[0014] Two interceptor panels are horizontally installed inside the processing box.
[0015] The water guide pipe is located at the bottom of the interception box and connected to the mixing component.
[0016] Furthermore, the above solution includes an opening at the top of the interception box that extends to the outside of the processing box, forming a cleaning port at the top of the processing box, and a cover is installed at the cleaning port.
[0017] Furthermore, in the above scheme, the intercepting mesh plate is horizontally slidably disposed inside the intercepting box, and the outer end of the intercepting mesh plate extends to the outside of the processing box and is connected to a pull handle.
[0018] Furthermore, in the above scheme, the hybrid component includes:
[0019] A mixing tank is located inside the treatment tank and connected to the water supply pipe;
[0020] An overflow pipe is installed on the mixing tank and connected to the outlet pipe;
[0021] A mixing motor is mounted on the mixing chamber;
[0022] The mixing rod is located inside the mixing chamber and is connected to the mixing motor.
[0023] Furthermore, the above-described solution includes:
[0024] The liquid medicine tank is located inside the treatment tank and is connected to the inlet pipe;
[0025] The dispensing pipe is located at the bottom of the liquid medicine tank and connected to the mixing tank;
[0026] The opening valve is installed on the drug outlet pipe.
[0027] Furthermore, the above-described solution further includes:
[0028] The stirring motor is mounted on the medicine tank;
[0029] The stirring rod is located inside the liquid tank and connected to the stirring motor.
[0030] Furthermore, the above solution includes a filter assembly installed on the water outlet pipe.
[0031] Furthermore, in the above solution, the filtering component includes:
[0032] The filter box is installed on the water outlet pipe;
[0033] The filter element is installed inside the filter box.
[0034] Furthermore, in the above scheme, the filter element is zeolite or activated carbon.
[0035] Compared with the prior art, the beneficial effects of this utility model are:
[0036] This invention, through the coordinated arrangement of a treatment tank, an interception component, a mixing component, a chemical solution component, and an outlet pipe, can achieve continuous purification of polluted water. The water intercepted by the interception component and the chemical solution injected by the chemical solution component continuously enter the mixing component, where they are directly mixed and treated before being discharged for reuse. The operation is simple and has excellent performance. Attached Figure Description
[0037] Figure 1 This is a schematic diagram of the structure of this utility model;
[0038] Figure 2 This is a diagram showing the installation position of the pull handle;
[0039] Figure 3 This is a schematic diagram showing the installation location of the stirring motor;
[0040] Figure 4 This is a schematic diagram showing the installation location of the filter components;
[0041] The components are as follows: 1. Treatment tank; 11. Water inlet pipe; 12. Medicine inlet pipe; 13. Drain pipe; 14. Cover plate; 2. Interception assembly; 21. Interception box; 211. Through port; 22. Interception mesh plate; 221. Pull handle; 23. Water guide pipe; 3. Mixing assembly; 31. Mixing box; 32. Overflow pipe; 33. Mixing motor; 34. Mixing rod; 4. Medicine liquid assembly; 41. Medicine liquid tank; 42. Medicine outlet pipe; 43. Opening valve; 44. Stirring motor; 45. Stirring rod; 5. Water outlet pipe; 6. Filter assembly; 61. Filter box; 62. Filter element. Detailed Implementation
[0042] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model. The present utility model will be further described with reference to the accompanying drawings and embodiments:
[0043] See attached document Figure 1 As shown, a water-saving device for secondary water utilization includes:
[0044] The treatment tank 1 is equipped with a water inlet pipe 11, a medicine inlet pipe 12 and a drain pipe 13.
[0045] Interception component 2 is installed inside the treatment tank 1 and connected to the water inlet pipe 11 to filter large particles of garbage and impurities entering the water body through the water inlet pipe 11.
[0046] The mixing component 3 is located inside the treatment tank 1 and is connected to the interception component 2 for the collection and treatment of water intercepted by the interception component 2.
[0047] The liquid medicine component 4 is installed in the treatment tank 1 and connected to the inlet pipe 12 and the mixing component 3, so that the liquid medicine component 4 injects the liquid medicine into the mixing component 3 and mixes it with the water.
[0048] One end of the outlet pipe 5 is connected to the overflow end of the mixing component 3, and the other end is connected to the drain pipe 13, so that the overflow water after being mixed by the mixing component 3 is discharged through the outlet pipe 5 into the drain pipe 13.
[0049] In the specific implementation of this utility model, the inlet pipe 11 is connected to the external sewage pipe. The polluted water enters the interception component 2 through the inlet pipe 11. The interception component 2 filters out large particles of garbage and impurities in the polluted water and discharges them to the mixing component 3. At the same time, the chemical component 4 discharges the chemical solution into the mixing component 3 at a certain flow rate, so that the chemical solution mixes with the polluted water. As the polluted water and chemical solution are injected, the mixing component 3 continuously mixes the two. When the water in the mixing component 3 reaches a certain amount, it is directly discharged to the outlet pipe 5 through the overflow end. Finally, the outlet pipe 5 guides the water to the drain pipe 13 for discharge and reuse. In this way, the continuous purification treatment of the polluted water is achieved, and the water resources are reused.
[0050] For the above scheme, please refer to the appendix. Figure 1 As shown, interception component 2 includes:
[0051] Interception box 21 is installed inside treatment box 1 and connected to water inlet pipe 11;
[0052] Two interception mesh panels 22 are horizontally installed inside the treatment box 1 to intercept large particles of garbage and impurities in polluted water.
[0053] Water pipe 23 is located at the bottom of interception box 21 and connected to mixing component 3.
[0054] In particular, considering the cleaning of large particles of debris and impurities after being intercepted by the interception mesh 22, therefore, refer to the appendix. Figure 1 As shown, the top of the interception box 21 is provided with a through opening 211 extending to the outside of the processing box 1, so as to form a cleaning opening on the top of the processing box 1, and a cover plate 14 is installed at the cleaning opening.
[0055] In addition, considering the potential for clogging during use, and to facilitate disassembly and cleaning of the interceptor mesh panel 22, please refer to the attached document. Figure 2 As shown, the interception mesh plate 22 is horizontally slidably disposed inside the interception box 21, and the outer end of the interception mesh plate 22 extends to the outside of the processing box 1 and is connected to a pull handle 221.
[0056] For the above scheme, please refer to the appendix. Figure 1 As shown, the hybrid component 3 includes:
[0057] The mixing tank 31 is located inside the treatment tank 1 and is connected to the water pipe 23;
[0058] An overflow pipe 32 is installed on the mixing tank 31 and connected to the outlet pipe 5 so that the water in the mixing tank 31 is discharged through the overflow pipe 32 after reaching a certain amount.
[0059] A mixing motor 33 is mounted on a mixing box 31;
[0060] The mixing rod 34 is located inside the mixing box 31 and connected to the mixing motor 33, so that the mixing motor 33 operates to rotate the mixing rod 34, ultimately achieving the mixing of water and medicine.
[0061] For the above scheme, please refer to the appendix. Figure 1 As shown, the liquid medicine component 4 includes:
[0062] The liquid medicine tank 41 is located inside the processing tank 1 and is connected to the inlet pipe 12;
[0063] The medicine outlet pipe 42 is located at the bottom of the medicine tank 41 and connected to the mixing tank 31;
[0064] The opening valve 43 is installed on the drug outlet pipe 42. During the implementation process, the opening of the opening valve 43 is adaptively adjusted according to the water inlet speed in the mixing tank 31 so that the drug inlet speed in the mixing tank 31 matches the water inlet speed, thereby achieving better mixing and facilitating control of the ratio of drug inlet to water inlet.
[0065] In addition, to prevent the medicine in component 4 from settling due to sedimentation, please refer to the attached document. Figure 3 As shown, the liquid medicine component 4 also includes:
[0066] A stirring motor 44 is mounted on a medicine tank 41;
[0067] The stirring rod 45 is located inside the liquid tank 41 and is connected to the stirring motor 44.
[0068] In addition, to further improve the filtration effect on water bodies, please refer to the appendix. Figure 4 As shown, a filter assembly 6 is installed on the water outlet pipe 5. The filter assembly 6 includes:
[0069] Filter box 61 is installed on water outlet pipe 5;
[0070] The filter element 62 is installed inside the filter box 61. During the process, the filter element 62 is zeolite or activated carbon, so that the water treated by the chemical solution is introduced into the filter box 61 and finally discharged after being filtered by the filter element 62.
[0071] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A water resource secondary utilization water-saving device, characterized in that it comprises: a treatment box (1) provided with a water inlet pipe (11), a chemical inlet pipe (12) and a water outlet pipe (13); an intercepting assembly (2) arranged in the treatment box (1) and communicating with the water inlet pipe (11); a mixing assembly (3) arranged in the treatment box (1) and communicating with the intercepting assembly (2); a chemical liquid assembly (4) arranged in the treatment box (1) and communicating with the chemical inlet pipe (12) and the mixing assembly (3); and a water outlet pipe (5) connected at one end to the overflow end of the mixing assembly (3) and at the other end to the water outlet pipe (13).
2. The water resource secondary utilization water-saving device according to claim 1, characterized in that the intercepting assembly (2) comprises: an intercepting box (21) arranged in the treatment box (1) and communicating with the water inlet pipe (11); two intercepting mesh plates (22) arranged horizontally in the treatment box (1); and a water guide pipe (23) arranged at the bottom of the intercepting box (21) and communicating with the mixing assembly (3).
3. The water resource secondary utilization water-saving device according to claim 2, characterized in that the intercepting box (21) is provided at the top with a through hole (211) extending to the outside of the treatment box (1) to form a cleaning opening at the top of the treatment box (1), and a cover plate (14) is arranged at the cleaning opening.
4. The water resource secondary utilization water-saving device according to claim 3, characterized in that the intercepting mesh plates (22) are arranged horizontally and slidably in the intercepting box (21), and the outer ends of the intercepting mesh plates (22) extend to the outside of the treatment box (1) and are connected with pull handles (221).
5. The water resource secondary utilization water-saving device according to claim 4, characterized in that the mixing assembly (3) comprises: a mixing box (31) arranged in the treatment box (1) and communicating with the water guide pipe (23); an overflow pipe (32) arranged on the mixing box (31) and communicating with the water outlet pipe (5); a mixing motor (33) arranged on the mixing box (31); and a mixing rod (34) arranged in the mixing box (31) and connected with the mixing motor (33); the chemical liquid assembly (4) comprises: a chemical liquid box (41) arranged in the treatment box (1) and communicating with the chemical inlet pipe (12); a chemical outlet pipe (42) arranged at the bottom of the chemical liquid box (41) and communicating with the mixing box (31); and an opening valve (43) arranged on the chemical outlet pipe (42); the chemical liquid assembly (4) further comprises: a stirring motor (44) arranged on the chemical liquid box (41); and a stirring rod (45) arranged in the chemical liquid box (41) and connected with the stirring motor (44); and the water outlet pipe (5) is provided with a filter assembly (6); the filter assembly (6) comprises: a filter box (61) arranged on the water outlet pipe (5); and a filter element (62) arranged in the filter box (61); and the filter element (62) is zeolite or activated carbon. 6. The water resource secondary utilization water-saving device according to claim 5, characterized in that: 7. The water resource secondary utilization water-saving device according to claim 6, characterized in that: 8. The water resource secondary -use water saving device according to claim 7, characterized in that: 9. The water resource secondary -use water saving device, according to claim 8, wherein: 10. The water resource secondary -use water saving device, according to claim 9, wherein: