Intelligent integrated water quality monitoring and pollutant removal system
The intelligent integrated water quality monitoring and pollutant removal system solves the problems of clogging sewage filtration devices and manual intervention, realizes automated detection and efficient filtration, and simplifies the operation process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZAOZHUANG GUOHUI SEWAGE TREATMENT CO LTD
- Filing Date
- 2025-08-27
- Publication Date
- 2026-08-04
AI Technical Summary
Existing wastewater filtration devices are prone to clogging during the filtration process and require manual intervention for testing and re-filtration, resulting in cumbersome operation and increased manpower input.
An intelligent integrated water quality monitoring and pollutant removal system was designed, including components such as mounting brackets, filter screens, water quality sensors, delivery pumps, and electromagnetic control valves. It realizes automated water quality detection and re-filtration, prevents water backflow through delivery pumps and check valves, and uses a reducer to drive the filter screens to rotate. Dispersion plates and spray nozzles improve filtration efficiency.
It achieves automated water quality testing and re-filtration, avoids clogging by floating debris, improves filtration efficiency, reduces manual intervention, and simplifies the operation process.
Smart Images

Figure CN224585489U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of water quality testing and filtration technology, specifically, it relates to an intelligent integrated water quality monitoring and pollutant removal system. Background Technology
[0002] Municipal engineering refers to civil engineering, pipeline and equipment installation projects for urban roads, public transportation, water supply, drainage, gas, heating, landscaping, sanitation, sewage treatment, garbage disposal, flood control, underground public facilities and ancillary facilities. Among them, sewage treatment requires the use of filtration devices to filter sewage so that it meets the water quality requirements for discharge into a water body or for reuse.
[0003] Chinese utility model patent CN222641470U discloses a sewage filtration and discharge device. A lifting and leveling rod is threaded onto the sewage filter tank for easy raising and lowering. This allows for convenient leveling of the device itself, solving the problem that filters directly fixed to the ground with bolts are prone to tilting due to uneven ground, making it inconvenient to add leveling measures. The device also allows water flow to drive an anti-clogging rotating fan, which in turn rotates an anti-clogging rotating brush to clean dirt adhering to the outer surface of the metal filter column. This addresses the issue of pollutants in sewage easily adhering to the filter material surface, clogging the pores and affecting its use, and the inconvenience of adding cleaning measures to the filter device.
[0004] After wastewater filtration, it is necessary to test whether the floating matter meets the standards. If it does not meet the standards, it needs to be filtered again, which undoubtedly increases the operation steps, making the wastewater filtration process extremely cumbersome and increasing the input of manpower. In view of this, this utility model is proposed. Utility Model Content
[0005] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide an intelligent integrated water quality monitoring and pollutant removal system that can overcome or at least partially solve the above problems.
[0006] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows: An intelligent integrated water quality monitoring and pollutant removal system includes a mounting bracket, an internally detachably connected mounting frame, a detachably connected wastewater storage tank at the top of the mounting bracket, a detachably connected conveying pipe to the outer wall of the wastewater storage tank near its bottom, a filter screen barrel mounted on one side of the mounting bracket, the end of the conveying pipe inserted into the filter screen barrel, a first conveying pump detachably connected to the conveying pipe, a detection tank detachably connected to the bottom inner side of the mounting frame, a water quality detection sensor inserted into the detection tank mounted on the inner wall of the mounting frame, and a return pipe inserted into the mounting frame detachably connected to the bottom of the wastewater storage tank, with a second conveying pump detachably connected to the return pipe.
[0007] Furthermore, a check valve is detachably connected to the return pipe, which prevents water from flowing into the test tank from the first delivery pump.
[0008] Furthermore, a collection bucket is detachably connected to the bottom of the mounting frame, and a drain pipe inserted into the collection bucket is detachably connected to the bottom of the detection bucket. An electromagnetic control valve is detachably connected to the drain pipe, and a discharge pipe is installed on the outer wall of the detection bucket.
[0009] Furthermore, the filter grid barrel is detachably connected to two mounting side plates. One mounting side plate is fixedly connected to the inside of a mounting inner plate, while the other mounting side plate is rotatably connected to the inside of a mounting inner plate. Multiple through holes are provided on both mounting inner plates. A drive motor and a reducer are detachably connected to one outer wall of the mounting frame. The rotating end of the drive motor is detachably connected to the input end of the reducer, and the output end of the reducer is fixedly connected to the inner wall of the other mounting side plate. The first delivery pump is inserted into the through hole on the rotatably connected mounting inner plate.
[0010] Furthermore, after the delivery pipe is inserted into the interior of the filter grid barrel and tilted to one side, the filter grid barrel rotates counterclockwise.
[0011] Furthermore, a dispersing plate is detachably connected to the end of the conveying pipe. The outer wall of the dispersing plate is provided with multiple spray nozzles communicating with the conveying pipe. The size of the dispersing plate is the same as the width of the filter grid barrel. By adopting the above technical solution, this utility model has the following beneficial effects compared with the prior art: 1. The water filtered by the filter bar falls into the testing tank. The water quality is detected by the water quality detection sensor. If the floating matter does not meet the standard, the second transfer pump is started to transfer the water in the testing tank back to the sewage storage tank through the return pipe, so that it can be filtered again without manual transfer and testing. The one-way valve can prevent the water in the first transfer pump from flowing into the testing tank.
[0012] 2. Add the wastewater to be filtered into the wastewater storage tank. The wastewater is then transported through the first delivery pump to the inside of the filter grid tank via the delivery pipe and falls downwards, thereby filtering the floating objects in the wastewater through the filter grid tank.
[0013] 3. After the water quality sensor detects that the floating matter in the water inside the testing tank meets the standards, the electromagnetic control valve is opened to allow the water inside the testing tank to flow into the collection tank and finally outward.
[0014] 4. The filter screen is driven to rotate by the speed reducer after the drive motor is reduced in speed. This prevents floating objects from clogging the filter screen during filtration, resulting in better filtration. The mounting inner plate connected to one side can prevent interference with the conveying pipeline.
[0015] 5. By tilting the delivery pipe to one side, the sprayed water can enter the interior of the testing tank. The counterclockwise rotation of the filter grid tank allows the impurities after filtering floating matter to fall to the bottom of the filter grid tank, thus preventing clogging during the next filtration.
[0016] 6. The dispersion plate and spray nozzles allow the sprayed water to cover the entire width of the filter grid, thereby improving the filtration effect and preventing all the water that needs to be filtered from concentrating in one place, which would prevent other filtration parts of the filter grid from participating in the filtration work, thus improving filtration efficiency.
[0017] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0018] In the attached diagram: Figure 1 This is a schematic diagram of the structure of an intelligent integrated water quality monitoring and pollutant removal system according to the present invention; Figure 2 This is a cross-sectional structural diagram of the water quality monitoring and pollutant removal system of this utility model; Figure 3 This is a schematic diagram of the structure of the distributed component of this utility model.
[0019] In the diagram: 100, mounting bracket; 101, mounting frame; 200. Filter bar; 201. Side mounting plate; 202. Inner mounting plate; 203. Through hole; 204. Reducer; 205. Drive motor; 300. Conveying pipeline; 301. First conveying pump; 302. Sewage storage tank; 303. Return pipe; 304. Check valve; 305. Second conveying pump; 306. Detection tank; 307. Electromagnetic control valve; 308. Drain pipe; 309. Collection tank; 310. Dispersion plate; 311. Spray nozzle; 312. Water quality detection sensor. Detailed Implementation
[0020] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.
[0021] Example 1: Reference Figure 1 This is a schematic diagram of an intelligent integrated water quality monitoring and pollutant removal system in this embodiment. The intelligent integrated water quality monitoring and pollutant removal system in this embodiment includes a mounting bracket 100, an mounting frame 101 detachably connected inside the mounting bracket 100, a sewage storage tank 302 detachably connected to the top of the mounting bracket 100, a conveying pipe 300 detachably connected to the outer wall of the sewage storage tank 302 near the bottom, a filter grid tank 200 installed on one side of the mounting bracket 100, the end of the conveying pipe 300 inserted into the interior of the filter grid tank 200, and a first conveying pump 301 detachably connected to the conveying pipe 300. In this embodiment, the sewage to be filtered is added into the sewage storage tank 302, and the sewage is conveyed through the first conveying pump 301 to the interior of the filter grid tank 200 via the conveying pipe 300 and falls downwards, thereby filtering the floating matter in the sewage through the filter grid tank 200.
[0022] like Figure 2As shown, this is a cross-sectional view of the water quality monitoring and pollutant removal system in this embodiment. A detection tank 306 is detachably connected to the bottom inner side of the mounting frame 101. A water quality sensor 312, inserted into the detection tank 306, is installed on the inner wall of the mounting frame 101. A return pipe 303, inserted into the mounting frame 101, is detachably connected to the bottom of the wastewater storage tank 302. A one-way valve 304 is detachably connected to the return pipe 303, and a second delivery pump 305 is detachably connected to the return pipe 303. In this embodiment, the water filtered by the filter grid 200 falls into the detection tank 306. The water quality is detected by the water quality sensor 312. When the floating matter does not meet the standard, the second delivery pump 305 is activated to transport the water inside the detection tank 306 back to the wastewater storage tank 302 through the return pipe 303, thus enabling further filtration without the need for manual transfer and subsequent testing. The one-way valve 304 prevents water from flowing into the detection tank 306 from the first delivery pump 301.
[0023] like Figure 2 As shown, a collection tank 309 is detachably connected to the bottom of the mounting frame 101, and a drain pipe 308 inserted into the collection tank 309 is detachably connected to the bottom of the detection tank 306. An electromagnetic control valve 307 is detachably connected to the drain pipe 308, and a discharge pipe is installed on the outer wall of the detection tank 306. In this embodiment, after the water quality detection sensor 312 detects that the floating matter in the water inside the detection tank 306 meets the standard, the electromagnetic control valve 307 is opened to allow the water inside the detection tank 306 to drain into the collection tank 309 and finally outward.
[0024] like Figure 1 As shown, mounting side plates 201 are detachably connected to both sides of the filter grid barrel 200. An inner mounting plate 202 is fixedly connected to the inside of one mounting side plate 201 and rotatably connected to the inside of the other mounting side plate 201. Multiple through holes 203 are provided on the inner mounting plates 202 on both sides. A drive motor 205 and a reducer 204 are detachably connected to one outer wall of the mounting frame 101. The rotating end of the drive motor 205 is detachably connected to the input end of the reducer 204, and the output end of the reducer 204 is fixedly connected to the inner wall of the other mounting side plate 201. The first delivery pump 301 is inserted into the through hole 203 on the rotatably connected inner mounting plate 202. In this embodiment, the filter grid barrel 200 is driven to rotate by the reducer 204 after the rotation of the drive motor 205 is reduced. This can prevent floating objects from clogging the filter grid barrel 200 during filtration, thereby improving the filtration effect. Furthermore, the rotatably connected inner mounting plate 202 on one side can prevent it from being restricted by the delivery pipe 300.
[0025] like Figure 2As shown, after the conveying pipe 300 is inserted into the filter grid barrel 200 and tilted to one side, the filter grid barrel 200 rotates counterclockwise. In this embodiment, by tilting the conveying pipe 300 to one side, the sprayed water can enter the interior of the detection barrel 306. By rotating the filter grid barrel 200 counterclockwise, the impurities after filtering the floating matter can fall to the bottom of the filter grid barrel 200, which can prevent clogging during the next filtration.
[0026] like Figure 3 As shown, this is a schematic diagram of the dispersion component structure in this embodiment. A dispersion plate 310 is detachably connected to the end of the conveying pipe 300. The outer wall of the dispersion plate 310 is provided with multiple water spray nozzles 311 that communicate with the conveying pipe 300. The size of the dispersion plate 310 is the same as the width of the filter grid barrel 200. In this embodiment, the dispersion plate 310 and the water spray nozzles 311 can make the sprayed water cover the entire width of the filter grid barrel 200, thereby improving the filtration effect and preventing all the water that needs to be filtered from concentrating in one position, which would prevent other filtration parts of the filter grid barrel 200 from participating in the filtration work, thus improving the filtration efficiency.
[0027] The contents not described in detail in this specification are existing technologies known to those skilled in the art.
[0028] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model.
Claims
1. An intelligent integrated water quality monitoring and pollutant removal system, comprising a mounting bracket (100), the inside of the mounting bracket (100) is detachably connected with a mounting frame (101), characterized in that, The top of the mounting bracket (100) is detachably connected to a sewage storage tank (302). The outer wall of the sewage storage tank (302) near the bottom is detachably connected to a conveying pipe (300). A filter grid tank (200) is installed on one side of the mounting bracket (100). The end of the conveying pipe (300) is inserted into the filter grid tank (200). A first conveying pump (301) is detachably connected to the conveying pipe (300). A detection tank (306) is detachably connected to the bottom of the inner side of the mounting frame (101). A water quality detection sensor (312) inserted into the detection tank (306) is installed on the inner wall of the mounting frame (101). A return pipe (303) inserted into the mounting frame (101) is detachably connected to the bottom of the sewage storage tank (302). A second conveying pump (305) is detachably connected to the return pipe (303). 2.The intelligent integrated water quality monitoring and pollutant removal system according to claim 1, characterized in that, A one-way valve (304) is detachably connected to the return pipe (303), which prevents water inside the first delivery pump (301) from flowing into the test tank (306). 3.The intelligent integrated water quality monitoring and pollutant removal system according to claim 2, characterized in that, The bottom of the mounting frame (101) is detachably connected to a collection bucket (309), the bottom of the detection bucket (306) is detachably connected to a drain pipe (308) inserted into the collection bucket (309), an electromagnetic control valve (307) is detachably connected to the drain pipe (308), and a discharge pipe is installed on the outer wall of the detection bucket (306). 4.The intelligent integrated water quality monitoring and pollutant removal system of claim 3, wherein, The filter grid barrel (200) is detachably connected to two mounting side plates (201). The inner mounting plate (202) is fixedly connected to the inside of one mounting side plate (201) and rotatably connected to the inner mounting plate (202) of the other mounting side plate (201). Multiple through holes (203) are provided on the inner mounting plates (202) on both sides. The outer wall of one side of the mounting frame (101) is detachably connected to a drive motor (205) and a reducer (204). The rotating end of the drive motor (205) is detachably connected to the input end of the reducer (204). The output end of the reducer (204) is fixedly connected to the inner wall of the other mounting side plate (201). The first delivery pump (301) is inserted into the through hole (203) on the rotatably connected inner mounting plate (202). 5.The intelligent integrated water quality monitoring and pollutant removal system according to claim 4, characterized in that, After the delivery pipe (300) is inserted into the interior of the filter grid barrel (200) and tilted to one side, the filter grid barrel (200) rotates counterclockwise. 6.The intelligent integrated water quality monitoring and pollutant removal system of claim 5, wherein, A dispersing plate (310) is detachably connected to the end of the conveying pipe (300). The outer wall of the dispersing plate (310) is provided with multiple spray nozzles (311) that communicate with the conveying pipe (300). The size of the dispersing plate (310) is the same as the width of the filter grid barrel (200).