Multi-parameter real-time water quality monitoring equipment
By integrating multiple sensors and wireless communication modules, the multi-parameter water quality monitoring equipment solves the problem of single-parameter monitoring, realizes real-time monitoring of multiple parameters and remote data transmission, and improves the timeliness and accuracy of water quality management.
Patent Information
- Application Number
- CN202422769252.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-11-14
AI Technical Summary
Existing water quality monitoring equipment is mostly for single-parameter monitoring, lacking equipment that can simultaneously monitor multiple water quality parameters and provide real-time feedback. This makes it difficult to obtain water quality data quickly and accurately during emergency response, affecting the timeliness and effectiveness of water quality management.
A multi-parameter real-time water quality monitoring device was designed, integrating a pH sensor, dissolved oxygen sensor, temperature sensor, turbidity sensor, ammonia nitrogen sensor, and total phosphorus sensor. Data is transmitted in real time through a wireless communication module, and a stabilizing wing and adjustable counterweight are used to improve the stability of the device in different water areas.
It achieves real-time and accurate multi-parameter water quality monitoring, can adapt to various aquatic environments, supports remote data transmission and timely response, and improves the efficiency of water quality management.
Smart Images

Figure CN223513214U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of multi-parameter real-time water quality monitoring equipment. BACKGROUND
[0002] With the advancement of industrialization, water pollution problem is increasingly serious, and water quality monitoring has become a key means to ensure water resources security. At present, the existing water quality monitoring equipment is mostly used for monitoring single water quality parameters, such as pH value, dissolved oxygen concentration, turbidity, etc., and lacks a device capable of monitoring multiple water quality parameters simultaneously and providing real-time feedback, which makes it difficult to quickly and accurately obtain water quality data in emergency response, thereby affecting the timeliness and effectiveness of water quality management. Therefore, there is an urgent need for a water quality monitoring device that can comprehensively monitor multiple water quality parameters, respond in real time and has high accuracy. SUMMARY
[0003] The utility model aims at solving the above prior art's insufficient, provide a kind of multi-parameter real-time water quality monitoring equipment.
[0004] A kind of multi-parameter real-time water quality monitoring equipment, including float, float is oval shell, the both sides of float are equipped with stabilizing wing, stabilizing wing includes spliced upper camber and lower camber, the outer surface of upper camber and lower camber is all outward convex arc, the bottom of lower camber is evenly distributed with anti-skid stripe, the inside of float includes upper half and lower half, lower half is water storage warehouse, upper half includes drain pipe warehouse, data processing module warehouse, power supply warehouse, sensor warehouse and wireless communication module warehouse, water storage warehouse is equipped with water pump, water pump is used for the water in water storage warehouse to be discharged from float, the drain pipe of water pump is from drain pipe warehouse inside to stretch to outside, power supply is arranged at the intermediate position of upper half, from left to right, it is drain pipe, data processing module, power supply, sensor module and wireless communication module in proper order, sensor module includes pH sensor, dissolved oxygen sensor, temperature sensor, turbidity sensor, ammonia nitrogen sensor and total phosphorus sensor, the probe part of sensor passes through the partition of sensor warehouse and extends into water storage warehouse, the connection of probe wire and partition is sealed, the bottom of float is equipped with T-shaped connecting frame, the both sides of T-shaped connecting frame are equipped with one electric winch respectively, electric winch is equipped with guide wheel beside, the cable of electric winch passes through guide wheel and is connected with counterweight in guide hole on T-shaped connecting frame, the bottom of float is equipped with two water inlets, water inlet is about T-shaped connecting frame symmetrically arranged, water inlet is equipped with electromagnetic valve that control opens and closes, water inlet is equipped with filter module, the outermost side of water inlet is equipped with metal filter screen.
[0005] As a further improvement, the filter module is circular and matches the water inlet, the circumference of the filter module is provided with four evenly distributed insertion blocks, the inner wall of the water inlet is provided with corresponding insertion slots, and the filter module is connected to the water inlet by insertion.
[0006] As a further improvement, the metal filter screen includes a screw cover connected with the water inlet through screw thread, and the top of the screw cover is provided with a metal screen, facilitating cleaning and replacement.
[0007] As a further improvement, the metal filter screen has a pore size of 1mm-5mm, which can prevent sundries from entering the buoy.
[0008] As a further improvement, the filter module is made of glass fiber or ceramic fiber, which can filter out small particle impurities.
[0009] As a further improvement, the shell at the top of the power supply compartment is provided with a heat dissipation hole, and a breathable waterproof film is arranged on the inside of the heat dissipation hole of the shell, which improves the heat dissipation efficiency and also plays a waterproof role.
[0010] Beneficial effects:
[0011] The multi-parameter real-time water quality monitoring equipment can monitor multiple key water quality indexes at the same time, and remotely transmit data through a wireless communication module, solving the problem that the traditional equipment can only monitor single. At the same time, the device adopts the design of stable wings and adjustable counterweight blocks, which improves the stability of the device in different environments of various water areas, so that the device can adapt to various different working conditions and environments. BRIEF DESCRIPTION OF DRAWINGS
[0012] Fig. 1 It is a general structure schematic diagram of a multi-parameter real-time water quality monitoring equipment;
[0013] Fig. 2 It is a connection schematic diagram of a filter module and a water inlet;
[0014] 1. buoy 2. stabilizing wing 21. upper curved surface 22. lower curved surface 23. anti-skid stripes 3. water storage compartment 4. drain pipe compartment 5. data processing module compartment 6. power supply compartment 7. sensor compartment 8. wireless communication module compartment 9. water pump 10. T-shaped connecting frame 11. electric winch 12. guide wheel 13. counterweight block 14. water inlet 141. electromagnetic valve 142. filter module 143. filter screen 15. waterproof film. DETAILED DESCRIPTION
[0015] In order to deepen the understanding of the utility model, the utility model will be further described in combination with examples and drawings below, and the examples are only used to explain the utility model, and do not constitute a limitation on the protection scope of the utility model.
[0016] As Figs. 1-2As shown, a multi-parameter real-time water quality monitoring device, including a float 1, a stabilizing wing 2, an upper arc surface 21, a lower arc surface 22, an anti-skid stripe 23, a water storage bin 3, a drain pipe bin 4, a data processing module bin 5, a power supply bin 6, a sensor bin 7, a wireless communication module bin 8, a water pump 9, a T-shaped connecting frame 10, an electric winch 11, a guide wheel 12, a counterweight 13, a water inlet 14, an electromagnetic valve 141, a filter module 142, a filter screen 143 and a waterproof membrane 15.
[0017] A multi-parameter real-time water quality monitoring device, including a float 1, the float 1 is an oval shell, both sides of the float 1 are provided with stabilizing wings 2, the stabilizing wings 2 include spliced upper arc surfaces 21 and lower arc surfaces 22, the outer surfaces of the upper arc surfaces 21 and the lower arc surfaces 22 are outwardly convex arcs, the bottom of the lower arc surfaces 22 is uniformly distributed with anti-skid stripes 23, the inside of the float 1 includes an upper half and a lower half, the lower half is a water storage bin 3, the upper half includes a drain pipe bin 4, a data processing module bin 5, a power supply bin 6, a sensor bin 7 and a wireless communication module bin 8, a heat dissipation hole is arranged on the top of the shell of the power supply bin 6, a waterproof membrane 15 that can permeate air is arranged inside the heat dissipation hole on this side of the shell, which improves the heat dissipation efficiency and also plays a waterproof role, a water pump 9 is arranged in the water storage bin 3, the water pump 9 is used for draining water in the water storage bin 3 out of the float 1, the drain pipe of the water pump 9 extends from the drain pipe bin 4 to the outside, the power supply is arranged at the middle position of the upper half, and the power supply, the sensor module and the wireless communication module are sequentially arranged from left to right, the sensor module includes a pH sensor, a dissolved oxygen sensor, a temperature sensor, a turbidity sensor, an ammonia nitrogen sensor and a total phosphorus sensor, the probe part of the sensor extends into the water storage bin 3 through the partition plate of the sensor bin 7, the connection part of the probe wire and the partition plate is sealed, the bottom of the float 1 is provided with a T-shaped connecting frame 10, one electric winch 11 is arranged on each side of the T-shaped connecting frame 10, a guide wheel 12 is arranged beside the electric winch 11, the cable of the electric winch 11 is connected with the counterweight 13 through the guide hole on the T-shaped connecting frame 10 and the guide wheel 12, two water inlets 14 are arranged at the bottom of the float 1, the water inlets 14 are symmetrically arranged about the T-shaped connecting frame 10, an electromagnetic valve 141 for controlling opening and closing is arranged on the water inlet 14, a filter module 142 is arranged in the water inlet 14, the filter module 142 is circular and matched with the water inlet 14, four evenly distributed insertion blocks are arranged on the circumference of the filter module 142, corresponding insertion grooves are arranged on the inner wall of the water inlet 14, the filter module 142 is connected with the water inlet 14 in a plug-in manner, which is convenient for cleaning and replacement, a metal filter screen 143 is arranged at the outermost side of the water inlet 14, the metal filter screen 143 includes a screw cap connected with the water inlet 14 through threads, a metal mesh is arranged on the top of the screw cap, which is convenient for cleaning and replacement, the pore size of the metal filter screen 143 is 1mm-5mm, which can prevent sundries from entering the float 1, the material of the filter module 142 is glass fiber or ceramic fiber, which can filter out small particle impurities.
[0018] The sensor module integrates multiple sensors to monitor various water quality parameters, including but not limited to pH, dissolved oxygen, temperature, turbidity, ammonia nitrogen, and total phosphorus sensors. Each sensor collects water quality information in real time according to its detection principle and converts the data into electrical signals for output.
[0019] The data processing module receives electrical signals from the sensor module and processes the data in real time through an embedded processing system. Data processing includes signal amplification, filtering, noise removal, data conversion, and calibration to ensure the accuracy and stability of the monitoring data.
[0020] The wireless communication module transmits the processed data to the remote monitoring system via wireless networks such as Wi-Fi, Zigbee, and LoRa, supporting cloud platform data storage and analysis. Users can view water quality data in real time and receive alarm information through devices such as computers or mobile apps.
[0021] The power module uses a high-efficiency battery for power supply, supporting long-term operation.
[0022] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. 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 multi-parameter real-time water quality monitoring device, characterized in that, The system includes a pontoon, which is an elliptical hull with stabilizing fins on both sides. Each fin consists of an upper and lower arc-shaped surface, both convex outwards. The bottom of the lower arc-shaped surface has evenly distributed anti-slip stripes. The pontoon's interior is divided into an upper and lower section. The lower section is a water tank, while the upper section includes a drain pipe compartment, a data processing module compartment, a power supply compartment, a sensor compartment, and a wireless communication module compartment. A water pump is installed in the water tank to drain water from the pontoon. The pump's drain pipe extends from the drain pipe compartment to the outside. The power supply is located in the middle of the upper section. From left to right, the components are: drain pipe, data processing module, power supply, sensor module, and wireless communication module. The communication module and sensor module include a pH sensor, dissolved oxygen sensor, temperature sensor, turbidity sensor, ammonia nitrogen sensor, and total phosphorus sensor. The sensor probes extend into the water storage tank through the partition of the sensor compartment. The connection between the probe wires and the partition is sealed. The bottom of the float has a T-shaped connecting frame, and an electric winch is located on each side of the T-shaped connecting frame. A guide wheel is located next to the electric winch. The cable of the electric winch passes through the guide wheel and is connected to the counterweight through the guide hole on the T-shaped connecting frame. The bottom of the float has two water inlets, which are symmetrically arranged about the T-shaped connecting frame. The water inlets are equipped with solenoid valves that control their opening and closing. A filter module is located inside the water inlet, and a metal filter screen is located on the outermost side of the water inlet.
2. The multi-parameter real-time water quality monitoring device according to claim 1, characterized in that, The filter module is circular and matches the water inlet. There are four evenly distributed inserts on the circumference of the filter module. The inner wall of the water inlet has corresponding slots. The filter module is connected to the water inlet by plugging in.
3. The multi-parameter real-time water quality monitoring device according to claim 2, characterized in that, The metal filter screen includes a screw cap that is threadedly connected to the water inlet, and a metal mesh is provided on the top of the screw cap.
4. The multi-parameter real-time water quality monitoring device according to claim 1, characterized in that, The pore size of the metal filter screen is 1mm to 5mm.
5. A multi-parameter real-time water quality monitoring device according to claim 1, characterized in that, The filter module is made of glass fiber or ceramic fiber.
6. The multi-parameter real-time water quality monitoring device according to claim 1, characterized in that, The power supply compartment has heat dissipation holes on the top of the housing, and a breathable waterproof membrane is provided on the inside side of the heat dissipation holes.