Intelligent water plant dosing pump adjusting control device

By installing an auxiliary monitoring device at the bottom of the sensor and using a miniature submersible pump to expand the water flow and monitoring range, the problem of limited monitoring range due to fixed sensor installation points is solved, enabling rapid response of the dosing pump and wide-area monitoring of the sensor.

CN223984586UActive Publication Date: 2026-03-10GUOYUE WATER TECH (XIAMEN) CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

The fixed installation points of the sensors on the existing dosing pumps result in a limited monitoring range. Multiple sensors need to be distributed to meet the water quality monitoring requirements, which increases the workload of maintenance.

Method used

An auxiliary monitoring device is installed at the bottom of the sensor, including a monitoring tube, a micro submersible pump, and an extension mechanism. By activating the micro submersible pump, the water flow and monitoring range are expanded, and the sensor can quickly report changes in water quality parameters.

Benefits of technology

It improved the response speed of the dosing pump and the water body monitoring range of the sensor, while reducing the number of sensors and maintenance workload.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses an intelligent adjusting and controlling device for a dosing pump of a water plant. The intelligent adjusting and controlling device comprises a controller, a sensor and an auxiliary monitoring device, the auxiliary monitoring device is arranged at the bottom of the sensor, and water in the monitoring pipe is pumped from the liquid inlet and then discharged from the liquid outlet by starting the micro submersible pump, so that water circulation in the monitoring pipe is kept, and the water flow at the position where the sensor probe is located is increased; by arranging the extension mechanism at the head end of the monitoring pipe, when the micro submersible pump is started, water flow is sucked into the extension pipe from each liquid suction hole and then supplied to the monitoring pipe, the water body collection range of the monitoring pipe is expanded through the extension pipe, and the water quality monitoring accuracy is improved. The sensor can more easily acquire water quality data of surrounding water areas, so that the water body monitoring range of the sensor is effectively expanded.
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Description

Technical Field

[0001] This utility model relates to the field of water quality monitoring technology, specifically to an intelligent water plant dosing pump regulation and control device. Background Technology

[0002] With the rapid development of science and technology, traditional water treatment methods are gradually being replaced by advanced automation technology. Intelligent dosing pumps play an indispensable role in modern water treatment processes. The controller of the dosing pump can monitor water quality parameters in real time through sensors, and then dynamically adjust the dosing amount and frequency according to the water quality parameters. This allows for automatic matching of the agent concentration based on water quality fluctuations, reducing the risk of pollution caused by excessive or insufficient dosing.

[0003] In existing technologies, the installation points of sensors on dosing pumps are fixed, resulting in a limited monitoring range of the sensors in the water body. Multiple sensors need to be distributed at different points to meet the water quality monitoring requirements, which increases the workload of later maintenance. Therefore, the functional structure of the sensors needs to be improved to expand their water body monitoring range. To this end, we propose an intelligent water plant dosing pump regulation and control device to solve the above problems. Utility Model Content

[0004] The purpose of this invention is to provide an intelligent water plant dosing pump regulation and control device to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model adopts the following technical solution: an intelligent water plant dosing pump adjustment and control device, comprising a controller, a sensor, and an auxiliary monitoring device. The bottom terminal of the controller is wired to the sensor. The bottom of the sensor is equipped with an auxiliary monitoring device, which includes a monitoring tube, a pipe clamp, a micro submersible pump, an inlet, an outlet, and an expansion mechanism. The sensor is threadedly installed on the top of the monitoring tube, and the bottom probe of the sensor extends into the interior of the monitoring tube. A pipe clamp is fitted on the surface of the monitoring tube. A micro submersible pump is installed at the tail end of the monitoring tube. The head of the micro submersible pump is provided with an inlet, which is connected to the tail end of the monitoring tube. The bottom of the micro submersible pump is provided with an outlet, and the head of the monitoring tube is provided with an expansion mechanism.

[0006] Preferably, the expansion mechanism includes a threaded opening, an expansion tube, a threaded connector, and a suction hole. The first end of the monitoring tube is provided with a threaded opening, and the first end of the monitoring tube is connected to the expansion tube. The tail end of the expansion tube is provided with a threaded connector, which is threadedly screwed into the inner side of the threaded opening to connect and fix the monitoring tube and the expansion tube. The outer surface of the expansion tube is provided with suction holes arranged at equal intervals, and the suction holes penetrate into the interior of the expansion tube.

[0007] Preferably, the diameter of the expansion tube is the same as that of the monitoring tube.

[0008] Preferably, the length of the expansion tube is 20-80cm.

[0009] Preferably, the spacing between the liquid suction holes is 5-10 cm.

[0010] Preferably, an end cap is fitted inside the opening of the first end of the expansion tube to seal the opening of the first end of the expansion tube.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] This invention incorporates an auxiliary monitoring device at the bottom of the sensor. By activating a miniature submersible pump, water is drawn into the monitoring tube from the inlet and discharged through the outlet, maintaining water flow within the tube. This increases the water flow at the sensor probe location, enabling the sensor to quickly relay changes in water quality parameters to the controller and improving the response speed of the dosing pump.

[0013] This invention features an expansion mechanism at the head of the monitoring tube. When the miniature submersible pump is activated, water is drawn into the expansion tube from each suction hole and then supplied to the monitoring tube. The expansion tube expands the water collection range of the monitoring tube, making it easier for the sensor to collect water quality data from the surrounding waters, thereby effectively expanding the water monitoring range of the sensor. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall front view of the present invention;

[0015] Figure 2 This is a frontal disassembly diagram of the auxiliary monitoring device in this utility model;

[0016] Figure 3 This is a front view cross-sectional structural diagram of the circulation pipe in this utility model;

[0017] Figure 4 This is a front view schematic diagram of the expansion tube in this utility model.

[0018] In the diagram: Controller-1, Sensor-2, Auxiliary Monitoring Device-3, Monitoring Tube-31, Tube Clamp-32, Miniature Submersible Pump-33, Inlet-34, Outlet-35, Expansion Mechanism-36, Threaded Port-361, Expansion Tube-362, Threaded Connector-363, Suction Hole-365, End Cap-366. Detailed Implementation

[0019] To further explain the technical solution of this utility model, a detailed description is provided below through specific embodiments.

[0020] Please see Figure 1This utility model provides an intelligent water plant dosing pump adjustment and control device, including a controller 1, a sensor 2 and an auxiliary monitoring device 3. The bottom terminal of the controller 1 is wired to the sensor 2, and the auxiliary monitoring device 3 is installed at the bottom of the sensor 2.

[0021] Please see Figure 2-3 This utility model provides an intelligent water plant dosing pump adjustment and control device. The auxiliary monitoring device 3 includes a monitoring tube 31, a pipe clamp 32, a micro submersible pump 33, an inlet 34, an outlet 35, and an expansion mechanism 36. The sensor 2 is threadedly installed on the top of the monitoring tube 31, and the bottom probe of the sensor 2 extends into the interior of the monitoring tube 31. The pipe clamp 32 is fitted on the surface of the monitoring tube 31. The micro submersible pump 33 is installed at the tail end of the monitoring tube 31. The inlet 34 is provided at the head of the micro submersible pump 33 and is connected to the tail end of the monitoring tube 31. The outlet 35 is provided at the bottom of the micro submersible pump 33. The expansion mechanism 36 is provided at the head end of the monitoring tube 31.

[0022] Before use, first connect the miniature submersible pump 33 to an external power source, and then fix the pipe clamp 32 to the mounting surface with screws to complete the installation of the sensor 2.

[0023] When in use, start the micro submersible pump 33. During this process, the water inside the monitoring tube 31 will be drawn in from the inlet 34 and discharged through the outlet 35, so that the water inside the monitoring tube 31 is kept circulating, thereby increasing the water flow at the location of the sensor 2 probe. This allows the sensor 2 to quickly report the changes in water quality parameters to the controller 1 and improve the response speed of the dosing pump.

[0024] Please see Figure 4 This utility model provides an intelligent water plant dosing pump adjustment and control device. The expansion mechanism 36 includes a threaded port 361, an expansion tube 362, a threaded connector 363, and a suction hole 365. The first end of the monitoring tube 31 is provided with a threaded port 361, and the first end of the monitoring tube 31 is connected to the expansion tube 362. The tail end of the expansion tube 362 is provided with a threaded connector 363. The threaded connector 363 is threadedly screwed into the inner side of the threaded port 361, so that the monitoring tube 31 and the expansion tube 362 are connected and fixed. The outer surface of the expansion tube 362 is provided with suction holes 365 arranged at equal intervals, and the suction holes 365 penetrate into the interior of the expansion tube 362.

[0025] In use, tighten the threaded connector 363 inside the threaded opening 361 to assemble and fix the monitoring tube 31 and the expansion tube 362. During use, water is drawn into the expansion tube 362 from each suction hole 365 and then supplied to the monitoring tube 31. The expansion tube 362 expands the water collection range of the monitoring tube 31, making it easier for the sensor 2 to collect water quality data of the surrounding water area, thereby effectively expanding the water monitoring range of the sensor 2.

[0026] To further explain, the expansion pipe 362 and the monitoring pipe 31 have the same diameter, which ensures that the water flow velocity inside the expansion pipe 362 and the monitoring pipe 31 is the same, thus guaranteeing operational stability.

[0027] To further explain, the length of the expansion tube 362 is 20-80cm, and users can choose the appropriate length of expansion tube 362 according to the usage environment, making it highly adaptable.

[0028] To further explain, the spacing between the suction holes 365 is 5-10cm, which allows the sensor 2 to collect water samples from different locations, thereby expanding the water monitoring range of the sensor 2.

[0029] To further explain, an end cap 366 is embedded inside the opening at the head of the expansion tube 362. The end cap 366 seals the opening at the head of the expansion tube 362, so that water can only be drawn into the expansion tube 362 from each suction hole 365, thereby expanding the water collection range.

[0030] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present 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 the present utility model should be included within the protection scope of the present utility model.

Claims

1. A kind of intelligent water plant dosing pump regulating control device, including controller (1) and sensor (2), the bottom terminal of controller (1) is connected with sensor (2) wired connection is established;Its characterized in that: Also include auxiliary monitoring device (3), the bottom of the sensor (2) is provided with auxiliary monitoring device (3), the auxiliary monitoring device (3) includes monitoring tube (31), pipe clamp (32), micro submersible pump (33), liquid inlet (34), liquid outlet (35) and expansion mechanism (36), the sensor (2) is threadedly mounted at the top of the monitoring tube (31), the sensor (2) bottom probe extends into the monitoring tube (31) inside, the monitoring tube (31) surface is sleeved with pipe clamp (32), the monitoring tube (31) tail end is provided with micro submersible pump (33), the micro submersible pump (33) is provided with liquid inlet (34) at the head, the liquid inlet (34) is communicated with the tail end of the monitoring tube (31), the bottom of the micro submersible pump (33) is provided with liquid outlet (35), the monitoring tube (31) first end is provided with expansion mechanism (36).

2. The adjusting and controlling device for the dosing pump of the intelligent water plant according to claim 1, characterized in that: The expansion mechanism (36) includes a threaded port (361), an expansion tube (362), a threaded joint (363) and a liquid suction hole (365), the monitoring tube (31) is provided with a threaded port (361) at the first end, the monitoring tube (31) is provided with an expansion tube (362) at the first end, the expansion tube (362) is provided with a threaded joint (363) at the tail end, the threaded joint (363) is threadedly connected with the inner side of the threaded port (361), so that the monitoring tube (31) is connected and fixed with the expansion tube (362), the expansion tube (362) is provided with a plurality of liquid suction holes (365) arranged at equal intervals on the outer surface, and the liquid suction holes (365) penetrate into the expansion tube (362).

3. The adjusting and controlling device for the dosing pump of the intelligent water plant according to claim 2, characterized in that: The expansion tube (362) is consistent with the pipe diameter of the monitoring tube (31).

4. The adjusting and controlling device for the dosing pump of the intelligent water plant according to claim 2, characterized in that: The length of the expansion tube (362) is 20-80cm.

5. The adjusting and controlling device for the dosing pump of the intelligent water plant according to claim 2, characterized in that: The interval distance of the liquid suction hole (365) is 5-10cm.

6. The adjusting and controlling device for the dosing pump of the intelligent water plant according to claim 2, characterized in that: The expansion tube (362) is provided with an end cover (366) embedded in the inside of the first end tube opening, and the first end tube opening of the expansion tube (362) is closed by the end cover (366).