Intelligent water quality detection device for ecological monitoring

By introducing a spiral power mechanism and an ultrasonic fish repellent into the water quality testing device, the problem of limited detection range in existing technologies has been solved, enabling comprehensive testing and automated water quality monitoring of large water areas.

CN223770195UActive Publication Date: 2026-01-06SHANGHAI JULANG ENVIRONMENTAL TECH DEV CO LTD
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Patent Information

Application Number
CN202520010559.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-03
Publication Date
2026-01-06
Estimated Expiration
2035-01-03

AI Technical Summary

Technical Problem

Existing intelligent micro-ecological instruments cannot move in water, have a limited detection range, and are difficult to cover large areas of water.

Method used

An intelligent water quality detection device for ecological monitoring was designed. It uses a spiral power mechanism to drive the outer shell to move, and combines an ultrasonic fish repeller and a positioning module to detect water quality at different locations, thereby expanding the detection range. The detection results are fed back in real time through a communication module.

Benefits of technology

It enables comprehensive detection of large bodies of water, improves the detection range and automation, avoids fish interference, and ensures detection accuracy and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an intelligent water quality detection device for ecological monitoring, which comprises a shell, a detection probe is arranged at one end of the shell, a master control mechanism is arranged in the shell, a second protective cover is arranged outside the detection probe and is connected with the shell, a second ultrasonic fish driving device is mounted in the second protective cover, and the second ultrasonic fish driving device is connected with the master control mechanism. The shell is provided with a spiral power mechanism, the spiral power mechanism is externally provided with a first protective cover assembled with the first connecting structure, the first protective cover is internally provided with a first ultrasonic fish driving device, and the end of the first protective cover and the end of the second protective cover are each provided with a transmission opening; a positioning module and a communication module are installed on the top of the shell. According to the device, the shell, the detection probe, the second circulation opening, the second protective cover, the spiral power mechanism, the first circulation opening, the first ultrasonic fish driving device, the second ultrasonic fish driving device and the first protective cover are arranged, so that the detection range is effectively expanded for a large-range water area.
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Description

Technical Field

[0001] This utility model relates to the field of water quality testing technology, and in particular to an intelligent water quality testing device for ecological monitoring. Background Technology

[0002] Ecological monitoring projects include water quality testing. Aquaculture and marine aquaculture require regular routine testing. An existing patent (publication number: CN216669726U) discloses an intelligent micro-ecological instrument for rapid water quality testing in aquaculture. This invention uses a transparent glass cover, which not only does not affect the infrared detection sensor's ability to detect water pollution but also prevents the sensor from contacting water, achieving a waterproof effect and extending its lifespan. However, in practical applications, while this invention can be used in water, it cannot move within the water, limiting its detection range, and its effectiveness is restricted for larger bodies of water. Therefore, we propose an intelligent water quality testing device for ecological monitoring. Utility Model Content

[0003] To address the aforementioned problems, this utility model provides an intelligent water quality detection device for ecological monitoring.

[0004] To achieve the above objectives, this utility model provides the following technical solution:

[0005] Design an intelligent water quality detection device for ecological monitoring, comprising a housing with a detection probe at one end, a central control mechanism inside the housing, a protective cover second outside the detection probe, and sterilization lamps evenly arranged around the detection probe. The protective cover second is connected to the housing via a connecting structure second, an ultrasonic fish repeller second is installed inside the protective cover second, and a flow port second is provided on the protective cover second. The other end and the front and rear sides of the housing are provided with connecting structures first, a spiral power mechanism is provided on the connecting structures first, and a protective cover first is assembled with the connecting structures first outside the spiral power mechanism. The ultrasonic fish repeller first is installed inside the protective cover first, and a transmission port is provided at the ends of both the protective cover first and the protective cover second. A positioning module and a communication module are installed on the top of the housing.

[0006] In the above scheme, the second connection structure includes a support column fixed to the outer shell, a threaded cylinder is fixed on the support column, and the second protective cover is provided with a threaded groove that matches the threaded cylinder.

[0007] In the above scheme, the first connection structure includes a fixed post disposed on the outer shell, and a threaded block that is threadedly connected to the first protective cover is fixed on the fixed post.

[0008] In the above scheme, the spiral power mechanism includes a servo motor mounted on the threaded block, a propeller mounted on the output shaft of the servo motor, and a flow port opened on one side of the protective cover.

[0009] In the above scheme, a connector is installed inside the threaded cylinder, and a connecting base for installing a detection probe is inserted into the connector.

[0010] In the above scheme, the outer shell is provided with an installation compartment and a water storage compartment arranged vertically. The main control mechanism includes a central control module, a power supply module, a data processing module, a probe start / stop module and a sterilization lamp start / stop module installed in the installation compartment. The top of the outer shell is provided with a watertight power connector.

[0011] In the above scheme, one end of the water storage tank is provided with an installation cavity, and a water pump is installed in the installation cavity. One end of the water pump is connected to a water pumping pipe that extends out of the outer shell, and a valve is installed on the water pumping pipe. The other end of the water pump is connected to a water delivery pipe. A level gauge is installed in the water storage tank, and a drain pipe is connected through the bottom of the water storage tank. A valve is installed on the drain pipe.

[0012] The advantages and beneficial effects of this utility model are as follows: By setting up an outer shell, a detection probe, a second flow port, a second protective cover, a spiral power mechanism, a first flow port, an ultrasonic fish repeller, an ultrasonic fish repeller, and a first protective cover, the detection probe is used to detect the water quality of the water flowing into the second protective cover through the second flow port. Combined with the first and second ultrasonic fish repellers, the fish are driven away from the outer shell. With the help of the spiral power mechanism, the outer shell moves left and right and forward and backward. Compared with the prior art, by moving the outer shell in the water, the detection probe can detect the water quality of the water flow at different locations in the water. For a larger area of ​​water, the detection range is effectively expanded. By setting up a positioning module and a communication module, the current position of this utility model can be detected in real time, and the feedback can be sent to the central control mechanism through the communication module to systematically plan the movement trajectory of this utility model and improve the degree of automation. Attached Figure Description

[0013] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0014] Figure 1 This is a top view of an intelligent water quality detection device for ecological monitoring proposed in this utility model;

[0015] Figure 2 This is a front view of an intelligent water quality detection device for ecological monitoring proposed in this utility model;

[0016] Figure 3This is a schematic diagram of the internal structure of the protective cover of an intelligent water quality testing device for ecological monitoring proposed in this utility model;

[0017] Figure 4 This is a cross-sectional view of the outer casing of an intelligent water quality detection device for ecological monitoring proposed in this utility model.

[0018] In the diagram: 1. Outer shell; 2. Connection structure one; 3. Fixed column 201; 4. Threaded block 202; 5. Servo motor; 6. Propeller 4; 7. Protective cover one; 8. Ultrasonic fish repeller one; 9. Transmission port; 10. Flow port one; 11. Connection structure two; 12. Threaded cylinder; 13. Protective cover two; 14. Connector; 15. Detection probe; 16. Sterilization lamp; 17. Flow port two; 18. Ultrasonic fish repeller two; 19. Communication module; 20. Threaded groove; 21. Installation chamber; 22. Water storage chamber; 23. Water pump; 24. Mounting cavity; 25. Watertight power connector; 26. Pumping pipe; 27. Valve one; 28. Water supply pipe; 29. ​​Level gauge; 20. Drainage pipe; 31. Valve two; 32. Central control module; 33. Power supply module; 34. Data processing module; 35. Probe start / stop module; 36. Sterilization lamp start / stop module; 37. Positioning module. Detailed Implementation

[0019] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings and examples. The following examples are only used to more clearly illustrate the technical solution of this utility model and should not be construed as limiting the scope of protection of this utility model.

[0020] Please see Figure 1-4 This utility model provides a technical solution: an intelligent water quality detection device for ecological monitoring, including a shell 1 with a detection probe 13 at one end, a central control mechanism inside the shell 1, a protective cover 10 outside the detection probe 13, the protective cover 10 is used to block animals and debris in the water and protect the detection probe 13, and sterilization lamps 14 are evenly arranged around the detection probe 13, the sterilization lamps 14 are used to sterilize the detection probe 13 which is frequently in contact with water flow, effectively inhibiting the reproduction of microorganisms, avoiding affecting water quality detection, and improving detection accuracy; the protective cover 10 is connected to the shell 1 through a connecting structure 9.

[0021] Furthermore, the second connection structure 9 includes a support column 91 fixed to the outer shell 1, a threaded cylinder 92 fixed on the support column 91, and a threaded groove 18 matching the threaded cylinder 92 inside the second protective cover 10; the second protective cover 10 is connected to the threaded cylinder 92 by means of threaded connection, which is convenient for disassembly, so as to maintain and repair the relevant structures inside the second protective cover 10.

[0022] Furthermore, a connector 11 is installed inside the threaded cylinder 92, and a connecting base 12 for mounting the detection probe 13 is inserted into the connector 11; the connecting base 12 and the connector 11 are electrically connected, thereby enabling the detection probe 13 to be electrically connected to the connector 11 for connection and convenient installation.

[0023] An ultrasonic fish repeller 16 is installed inside the protective cover 2 10, and a flow port 2 15 is provided on the protective cover 2 10. The flow port 2 15 facilitates the flow of water in the water area to enter the protective cover 2 10 and come into contact with the detection probe 13, thereby realizing the detection task. The other end of the outer shell 1 and the front and rear sides are provided with a connecting structure 1 2. The connecting structure 1 2 is provided with a spiral power mechanism. The spiral power mechanism is provided with a protective cover 1 5 assembled with the connecting structure 1 2. The ultrasonic fish repeller 1 6 is installed inside the protective cover 1 5. The ends of the protective cover 1 5 and the protective cover 2 10 are provided with a propagation port 7. The propagation port 7 can promote the outward transmission of sound waves, thereby preventing fish and other animals in the water area from approaching this utility model. On the one hand, it avoids damage to this utility model, and on the other hand, it also protects the animals in the water area from harm.

[0024] Furthermore, the connection structure 2 includes a fixing post 201 disposed on the outer shell 1, and a threaded block 202 that is threadedly connected to the protective cover 5 is fixed on the fixing post 201; the threaded connection facilitates the disassembly of the protective cover 5 so as to maintain and repair the relevant structures inside the protective cover 5.

[0025] Furthermore, the spiral power mechanism includes a servo motor 3 mounted on the threaded block 202, a propeller 4 mounted on the output shaft of the servo motor 3, and a flow port 8 opened on the side of the protective cover 10. The servo motor 3 provides power to drive the propeller 4 to rotate. In conjunction with the flow port 8, the propeller 4 generates thrust in the water. For the spiral power mechanism opposite to the protective cover 10, the direction of thrust can be adjusted by adjusting the driving direction of the servo motor 3, so that the present invention can move to the left or right. For the spiral power mechanisms on the front and rear sides, the spiral power mechanism on the front side is responsible for pushing the present invention to move backward, and the spiral power mechanism on the rear side is responsible for pushing the present invention to move forward.

[0026] Specifically, by setting up a shell 1, a detection probe 13, a flow port 2 15, a protective cover 2 10, a spiral power mechanism, a flow port 1 8, an ultrasonic fish repeller 1 6, an ultrasonic fish repeller 2 16, and a protective cover 1 5, the detection probe 13 is used to detect the water quality of the water flowing into the protective cover 2 10 through the flow port 2 15. Combined with the ultrasonic fish repeller 1 6 and ultrasonic fish repeller 2 16, the fish are driven away from the shell 1. With the help of the spiral power mechanism, the shell 1 moves left and right and forward and backward. Compared with the existing technology, by moving the shell 1 in the water area, the detection probe 13 can detect the water quality of the water flow at different locations in the water area, effectively expanding the detection range for a larger area of ​​water.

[0027] The top of the outer casing 1 is equipped with a positioning module 35 and a communication module 17;

[0028] Specifically, by setting up a positioning module 35 and a communication module 17, the current location of this utility model can be detected in real time, and the communication module 17 can be used to feed back to the central control mechanism to systematically plan the movement trajectory of this utility model and improve the degree of automation.

[0029] Furthermore, the outer shell 1 is provided with an installation chamber 19 and a water storage chamber 20 arranged vertically. The water storage chamber 20 can be used to control the depth of the present invention in water. The overall control mechanism includes a central control module 30, a power supply module 31, a data processing module 32, a probe start / stop module 33, and a sterilization lamp start / stop module 34 installed in the installation chamber 19. A watertight power connector 23 is provided on the top of the outer shell 1.

[0030] Specifically, the power supply module 31 is responsible for supplying power to the entire utility model. All electrical equipment is connected to the power supply module 31, including the connector 11, which in turn connects the sterilization lamp 14 to the power supply module 31. The power supply module 31 can be charged through the watertight power connector 23 to supply power. The probe start / stop module 33 is connected to the detection probe 13 to control the start and end of the water quality detection work. The sterilization lamp start / stop module 34 is connected to the sterilization lamp 14 to control the start and end of the sterilization work of the sterilization lamp 14. The data processing module 32 is used to receive the data detected by the detection probe 13, analyze, process and store the data, and then send the final detection result to the central control module 30. In addition, the detection result can be fed back to the staff in real time through the communication module 17 so as to quickly obtain the detection result.

[0031] Furthermore, the water storage tank 20 has a sealed installation cavity 22 at one end, and a water pump 21 is installed in the installation cavity 22. One end of the water pump 21 is connected to a water suction pipe 24 that extends out of the outer shell 1. A valve 25 is installed on the water suction pipe 24. The other end of the water pump 21 is connected to a water delivery pipe 26 that extends out of the installation cavity 22. A level gauge 27 is installed in the sealed area on the right side of the water storage tank 20. A drain pipe 28 is connected through the bottom of the water storage tank 20. A valve 29 is installed on the drain pipe 28.

[0032] Specifically, the water pump 21 is connected to the power supply module 31. Valves 25 and 29 are both solenoid valves and are connected to the central control module 30. The level gauge 27 is a digital level gauge and is connected to the central control module 30. The level gauge 27 transmits the detected liquid level data to the central control module 30 to adjust the depth of the device in water. If the device needs to sink, close valve 29, open valve 25, and start the water pump 21 to allow water to flow through the pumping pipe 24 into the sealed area on the right side of the water storage tank 20. The level gauge 27 detects the current liquid level. When the appropriate level is reached, stop water injection, stop the water pump 21, and close valve 25. If the device needs to float, keep the water pump 21 closed, close valve 25, open valve 29, and allow water to flow through the drain pipe 28 out of the water storage tank 20. The level gauge 27 detects the current liquid level. When the appropriate level is reached, stop draining and close valve 29.

[0033] 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. An intelligent water quality detection device for ecological monitoring, comprising a shell (1) provided with a detection probe (13) at one end, characterized in that, The shell (1) is internally provided with a general control mechanism, the detection probe (13) is externally provided with a protective cover two (10), the detection probe (13) is uniformly provided with a sterilization lamp (14) around, the protective cover two (10) is connected with the shell (1) through a connecting structure two (9), the protective cover two (10) is internally provided with an ultrasonic fish expeller two (16), and a flow-through opening two (15) is formed in the protective cover two (10), the other end of the shell (1) and the front and rear sides are all provided with a connecting structure one (2), the connecting structure one (2) is provided with a spiral power mechanism, the spiral power mechanism is externally provided with a protective cover one (5) assembled with the connecting structure one (2), the protective cover one (5) is internally provided with an ultrasonic fish expeller one (6), the protective cover one (5) and the protective cover two (10) are all provided with a propagation opening (7), and the top of the shell (1) is provided with a positioning module (35) and a communication module (17). 2.The intelligent water quality detection device for ecological monitoring of claim 1, characterized in that, The connecting structure two (9) comprises a supporting column (91) fixed with the shell (1), and the supporting column (91) is fixedly provided with a threaded cylinder (92). 3.The intelligent water quality detection device for ecological monitoring of claim 1, characterized in that, The connecting structure one (2) comprises a fixed column (201) arranged on the shell (1), and the fixed column (201) is fixedly provided with a threaded block (202) threadedly connected with the protective cover one (5).

4. The intelligent water quality detection device for ecological monitoring according to claim 3, characterized in that, The spiral power mechanism comprises a servo motor (3) mounted on the threaded block (202), a propeller (4) mounted on the output shaft of the servo motor (3), and a flow-through opening one (8) formed in the side of the protective cover one (5). 5.The intelligent water quality detection device for ecological monitoring of claim 2, characterized in that, The threaded cylinder (92) is internally provided with a connector (11), and the connector (11) is inserted with a connecting base (12) for mounting the detection probe (13). 6.The intelligent water quality detection device for ecological monitoring of claim 1, characterized in that, The shell (1) is internally provided with an installation bin (19) and a water storage bin (20) arranged in a vertical mode, the general control mechanism comprises a central control module (30), a power supply module (31), a data processing module (32), a probe start-stop module (33) and a sterilization lamp start-stop module (34) mounted in the installation bin (19), and the top of the shell (1) is provided with a water-proof power connector (23). 7.The intelligent water quality detection device for ecological monitoring of claim 6, characterized in that, One end of the water storage bin (20) is provided with a mounting cavity (22), the mounting cavity (22) is internally provided with a water pump (21), one end of the water pump (21) is connected with a water suction pipe (24) penetrating out of the shell (1), the water suction pipe (24) is provided with a valve one (25), the other end of the water pump (21) is connected with a water delivery pipe (26), the water storage bin (20) is internally provided with a liquid level meter (27), and the bottom of the water storage bin (20) is provided with a drain pipe (28) penetratingly connected, and the drain pipe (28) is provided with a valve two (29).

Citation Information

Patent Citations

  • Intelligent micro-ecological instrument for rapidly detecting water quality for cultivation

    CN216669726U