Water quality monitoring remote sensing device for physical examination of rivers and lakes

By combining a carrier, remote sensing sensor, processing module, and communication module, the water quality monitoring device utilizes multispectral remote sensing and an embedded processor to solve the problems of limited functionality and insufficient data processing capabilities of existing devices, thereby achieving real-time monitoring and comprehensive data processing of river and lake water quality.

CN223897436UActive Publication Date: 2026-02-10GUANGDONG HEHAI ENG CONSULTATION CO LTD
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Patent Information

Application Number
CN202520483951.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-18
Publication Date
2026-02-10
Estimated Expiration
2035-03-18

AI Technical Summary

Technical Problem

Existing water quality remote sensing monitoring devices have limited functions and data processing capabilities, making it difficult to meet the comprehensive needs of river and lake health checkups.

Method used

The device employs a combination of carrier, remote sensing sensor, processing module, communication module, and power management module. It uses a multispectral remote sensing sensor to collect data, an embedded processor to process the data, and transmits the monitoring results in real time via 4G/5G, Wi-Fi, or satellite communication technologies. Combined with solar panels and batteries for power supply, it ensures the stable operation of the device.

Benefits of technology

It has improved the real-time water quality monitoring and data processing capabilities, met the comprehensive needs of river and lake health check-ups, and ensured the continuous operation of the device and data transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a water quality monitoring remote sensing device for health examination of rivers and lakes. The water quality monitoring remote sensing device comprises a carrier, a remote sensing sensor, a processing module, a communication module and a power management module, the remote sensing sensor, the processing module, the communication module and the power management module are all arranged on the carrier; the output end of the remote sensing sensor is connected with the input end of the processing module, the output end of the processing module is connected with the input end of the communication module, and the remote sensing sensor, the processing module and the communication module are all electrically connected with the power management module. According to the water quality monitoring remote sensing device for river and lake health examination, the carrier, the remote sensing sensor, the processing module, the communication module and the power management module are installed in a matched mode, water quality monitoring can be well carried out through a remote sensing means, the data processing capacity is high, and the comprehensive requirements of river and lake health examination can be met.
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Description

Technical Field

[0001] This utility model relates to the field of water quality monitoring technology, and in particular to a remote sensing device for water quality monitoring for river and lake health checkups. Background Technology

[0002] Rivers and lakes, as vital natural resources, directly impact ecological balance and human health through their water quality. Traditional water quality monitoring methods often require manual sampling and laboratory analysis, which are not only time-consuming and labor-intensive but also difficult to implement in real-time. With the continuous development of remote sensing technology, water quality monitoring using remote sensing has become possible. However, most existing water quality remote sensing monitoring devices are single-function and have limited data processing capabilities, making it difficult to meet the comprehensive needs of river and lake health checks. Utility Model Content

[0003] To solve the above problems, the present invention adopts the following technical solution: a water quality monitoring remote sensing device for river and lake health check, comprising: a carrier, a remote sensing sensor, a processing module, a communication module and a power management module;

[0004] The remote sensing sensor, the processing module, the communication module, and the power management module are all mounted on the carrier.

[0005] The output terminal of the remote sensing sensor is connected to the input terminal of the processing module, the output terminal of the processing module is connected to the input terminal of the communication module, and the remote sensing sensor, the processing module, and the communication module are all electrically connected to the power management module.

[0006] Furthermore, the remote sensing sensor is a multispectral remote sensing sensor.

[0007] Furthermore, the multispectral remote sensing sensor is used to acquire multispectral image data of river and lake water bodies.

[0008] Furthermore, the carrier can be installed on a buoy or an unmanned vessel.

[0009] Furthermore, the processing module employs an embedded processor, and the processing module is used to receive and process multispectral image data to obtain estimated water quality parameters.

[0010] Furthermore, the communication module adopts 4G / 5G, Wi-Fi, or satellite communication technology.

[0011] Furthermore, the power management module includes a solar panel, a battery, and a power management system. The battery and the power management system are disposed inside the carrier, the solar panel is disposed on the top of the carrier, and the battery is connected to the solar panel and the power management system respectively.

[0012] Furthermore, a connecting component is provided on the outer side of the carrier, and the carrier is mounted on a buoy or unmanned vessel through the connecting component.

[0013] Furthermore, the connecting assembly includes a clamp and an adsorbent, the clamp being disposed on both sides of the carrier and the adsorbent being disposed on one side of the carrier.

[0014] Furthermore, the adsorber is a suction cup.

[0015] The beneficial effects of this utility model are as follows: By using this water quality monitoring remote sensing device for river and lake health check, through the coordinated installation of the carrier, remote sensing sensor, processing module, communication module and power management module, water quality monitoring can be carried out well by remote sensing, with strong data processing capabilities, and can meet the comprehensive needs of river and lake health check. Attached Figure Description

[0016] The accompanying drawings further illustrate the present invention, but the embodiments in the drawings do not constitute any limitation on the present invention.

[0017] Figure 1 A schematic diagram of the module connection of a water quality monitoring remote sensing device for river and lake health checkup is provided as an embodiment.

[0018] Figure 2 This is a schematic diagram of a water quality monitoring remote sensing device for river and ocean health check-ups, provided as an embodiment. Detailed Implementation

[0019] The technical solution of this utility model will be further described below with reference to the accompanying drawings of the embodiments. This utility model is not limited to the following specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features in the embodiments of this utility model can be combined with each other.

[0020] like Figures 1 to 2 As shown, a water quality monitoring remote sensing device for river and lake health check-ups includes: a carrier 100, a remote sensing sensor 200, a processing module 300, a communication module 400, and a power management module 500; the remote sensing sensor 200, the processing module 300, the communication module 400, and the power management module 500 are all mounted on the carrier 100; the output terminal of the remote sensing sensor 200 is connected to the input terminal of the processing module 300, the output terminal of the processing module 300 is connected to the input terminal of the communication module 400, and the remote sensing sensor 200, the processing module 300, and the communication module 400 are all electrically connected to the power management module 500.

[0021] Specifically, the remote sensing sensor 200 is a multispectral remote sensing sensor 200. The multispectral remote sensing sensor 200 is used to collect multispectral image data of river and lake water bodies. The carrier 100 can be installed on a buoy or an unmanned surface vessel. The processing module 300 uses an embedded processor and is used to receive and process multispectral image data to obtain estimated water quality parameters. The communication module 400 uses 4G / 5G, Wi-Fi, or satellite communication technology. The power management module 500 includes a solar panel 510, a battery, and a power management system. The battery and the power management system are located inside the carrier 100, the solar panel 510 is located on top of the carrier 100, and the battery is connected to both the solar panel 510 and the power management system.

[0022] In the above embodiments, a connecting assembly is provided on the outer side of the carrier 100, and the carrier 100 is mounted on a buoy or unmanned surface vessel via the connecting assembly. The connecting assembly includes a clamp 610 and an absorber 620. The clamp 610 is disposed on both sides of the carrier 100, and the absorber 620 is disposed on one side of the carrier 100. The absorber 620 is a suction cup.

[0023] In other words, to use this remote sensing device, the installation method of the carrier 100 must first be determined based on the specific location of use. For example, if the entire device needs to be fixed in the center of a river or lake, the carrier 100 needs to be installed on a buoy. Monitoring can begin by fixing the buoy in the center of the river or lake. Alternatively, if monitoring of an entire body of water is required sequentially, the carrier 100 needs to be installed on an unmanned surface vessel (USV). The USV can then move the carrier 100 across the entire body of water while monitoring, thus achieving comprehensive monitoring of the entire area.

[0024] In other words, by using a remote sensing sensor 200, specifically a multispectral remote sensing sensor 200, multispectral image data of river and lake water bodies is collected. The collected data is then transmitted to a processing module 300, which receives and processes the data. Specifically, this processing can be achieved using existing technologies; for example, the processing module 300 can be an embedded processor. In other words, as long as the data can be processed, the estimated water quality parameters obtained after processing are sent to an externally connected backend management system via a communication module 400. This means that staff can directly access the specific monitoring results in real time through an external system.

[0025] In the above embodiments, since a solar panel 510 is installed on the carrier 100, whether it is installed on a buoy or on an unmanned vessel, it can generate electricity during use and then store the electricity in a battery. That is, when the power management system fails and cannot provide power normally, it can be temporarily powered by the battery to ensure that the entire device can continue to operate.

[0026] Furthermore, since the connecting assembly includes a clamp 610 and an absorber 620, that is, one side of the carrier 100 has a clamp 610, and the corresponding other side also has a clamp 610, and then an absorber 620 is provided on the bottom surface. Specifically, the clamp 610 is mounted on a rotating base 700, and one clamp 610 is provided with a winding device 800, on which a tightening strap 910 is wound, and the other clamp 610 is provided with a retainer 920. That is to say, in use, the clamping position of the clamp 610 can be adjusted by rotating the base 700, and then clamped from both sides. For example, when installed on a buoy, it needs to be installed on the side of the buoy, that is, the side of the buoy has two places where two clamps 610 can be provided for clamping and fixing. To ensure stable installation, after the two clamps 610 have secured the buoy, the operator can pull the tightening strap 910 on the retractor 800 to wrap it around the buoy once and then fix it to the fixing device 920. Specifically, a fixing insert 911 is attached to one end of the tightening strap 910, and the fixing device 920 is a fixing socket. When fixing is needed, the fixing insert 911 is inserted into the fixing socket for effective tightening and securing. It is worth mentioning that the entire carrier 100 can also be adhered to an external surface using the suction device 620, thus forming a strong fixation. Similarly, when installing the carrier 100 on the unmanned surface vessel, the tightening strap 910 can also be used to secure the carrier 100 to the side of the unmanned surface vessel.

[0027] In summary, the above embodiments are not limiting embodiments of this utility model. Any modifications or equivalent variations made by those skilled in the art based on the substantive content of this utility model are within the technical scope of this utility model.

Claims

1. A remote sensing device for water quality monitoring in river and lake health checkups, characterized in that, include: Carrier, remote sensing sensor, processing module, communication module, and power management module; The remote sensing sensor, the processing module, the communication module, and the power management module are all mounted on the carrier. The output terminal of the remote sensing sensor is connected to the input terminal of the processing module, the output terminal of the processing module is connected to the input terminal of the communication module, and the remote sensing sensor, the processing module, and the communication module are all electrically connected to the power management module.

2. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 1, characterized in that: The remote sensing sensor is a multispectral remote sensing sensor.

3. The water quality monitoring remote sensing device for river and lake health checkups according to claim 2, characterized in that: The multispectral remote sensing sensor is used to collect multispectral image data of river and lake water bodies.

4. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 3, characterized in that: The carrier can be installed on a buoy or an unmanned vessel.

5. The water quality monitoring remote sensing device for river and lake health checkups according to claim 4, characterized in that: The processing module employs an embedded processor and is used to receive and process multispectral image data to obtain estimated water quality parameters.

6. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 1, characterized in that: The communication module uses 4G / 5G, Wi-Fi, or satellite communication technology.

7. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 6, characterized in that: The power management module includes a solar panel, a battery, and a power management system. The battery and the power management system are located inside the carrier, the solar panel is located on the top of the carrier, and the battery is connected to both the solar panel and the power management system.

8. The water quality monitoring remote sensing device for river and lake health checkups according to claim 4, characterized in that: The carrier is provided with a connecting component on its outer side, and the carrier is mounted on a buoy or unmanned vessel through the connecting component.

9. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 8, characterized in that: The connecting assembly includes a clamp and an adsorber, with the clamp disposed on both sides of the carrier and the adsorber disposed on one side of the carrier.

10. The water quality monitoring remote sensing device for river and lake health check-ups according to claim 9, characterized in that: The adsorber is a suction cup.