Mobile riverway water quality detection equipment

By designing a mobile water quality testing device that combines solar panels and batteries with wireless charging in the river channel, the problem of unstable power supply for water surface monitoring devices has been solved, achieving self-powered and intelligent testing, and expanding the application scenarios.

CN223538868UActive Publication Date: 2025-11-11JIANGSU TIANCONG ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202422989353.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-11-11
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

Existing water quality monitoring devices suffer from unstable power supply on water surfaces, and are expensive, immobile, and unable to achieve intelligent detection, thus limiting their application scenarios.

Method used

Design a mobile river water quality testing device that uses solar panels and batteries combined with a wireless charging device to achieve self-powered operation and automatically travels through a control system to conduct water quality testing. Equipped with multiple detection probes and video probes to improve detection accuracy and range.

Benefits of technology

It achieves stable power supply under different weather conditions, reduces the installation difficulty and energy consumption of the device, improves the intelligence and scope of detection, and expands the application scenarios.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides mobile riverway water quality detection equipment which comprises a base station box, the base station box floats on the water level of a riverway, a vertical rod is arranged at the junction of the ground and the riverway, a solar panel is arranged at the top end of the vertical rod, a wireless charging device is arranged on the side, close to the base station box, of the bottom of the vertical rod, and the wireless charging device is arranged below the base station box. A storage battery is arranged on the side, close to the vertical rod, of the ground, the solar panel is connected with the storage battery and the wireless charging device and stores electric energy for the storage battery or supplies power to the wireless charging device, the storage battery is connected with the wireless charging device and supplies power to the wireless charging device, and a battery panel is arranged at the end, close to the wireless charging device, in the base station box. The solar panel is connected with the wireless charging device and used for charging the base station box, in sunny days, solar energy is converted into electric energy through the solar panel, the base station box is charged through the wireless charging device, the solar panel is used for charging, no mains supply needs to be connected, installation is more convenient, and more energy is saved.
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Description

Technical Field

[0001] This utility model belongs to the technical field of water quality testing equipment, and more specifically, relates to a mobile river water quality testing device. Background Technology

[0002] Water is the material basis for human survival and an indispensable natural resource for production and daily life. The constant changes in the external environment and internal factors of water bodies cause water quality to undergo dynamic changes; therefore, water quality monitoring is of great significance for water quality control and pollution prevention. Water quality monitoring is a complex system engineering project that evaluates water quality by monitoring and measuring the types, concentrations, and trends of pollutants in water bodies. The selection of water quality monitoring points is generally determined by the monitoring objectives and the type of cross-section. The water quality conditions of the monitoring cross-sections and their changes over time can provide a scientific basis for pollution prevention and control, and supervision and management.

[0003] Currently, most monitoring devices are placed in or on the surface of water. These devices periodically test the water quality and send the data to a monitoring center. The center can also send immediate testing commands to the devices, which then respond and perform water quality testing. Because these devices are submerged for extended periods, their power supply requires special design. Submerged devices cannot generate their own power and must use cable-connected power, while surface-mounted devices can utilize solar or wind power, eliminating the need for cabling.

[0004] In existing technologies, monitoring devices are generally placed on open water surfaces, where weather conditions can change rapidly, often resulting in prolonged periods of sunshine or overcast and rainy weather. If only solar energy is used, power shortages will occur. Although various water quality testing devices have been developed on the market, such as boat-shaped water quality testing devices and fixed floating water quality testing devices, these devices have drawbacks such as high cost, immobility, and inability to achieve intelligent testing, which limit their application scenarios. Utility Model Content

[0005] Therefore, to solve the above-mentioned technical problems, this utility model proposes a mobile river water quality testing device, including a base station box 10, which floats on the river water level. A pole 20 is installed at the junction of the ground and the river, with its bottom end extending below the river water level and its top end positioned above the water level and equipped with a solar panel 30. A wireless charging device 40 is installed on the bottom of the pole 20 near the base station box 10, and is located below the base station box 10. A battery 50 is installed on the ground near the pole 20. The solar panel 30 is connected to both the battery 50 and the wireless charging device 40, storing energy in the battery 50 or supplying power to the wireless charging device 40. The battery 50 is connected to the wireless charging device 40. The system provides power to the wireless charging device 40. A battery panel 60 is located inside the base station box 10 near the wireless charging device 40. The battery panel 60 is connected to the wireless charging device 40 to charge the base station box 10. On sunny days, the solar panel 30 converts solar energy into electrical energy, which is then used to charge the base station box 10 via the wireless charging device 40. On cloudy days, the battery 50 is connected to the wireless charging device 40 to charge the base station box 10. This allows the base station box 10 to charge under normal conditions, simultaneously via the solar panel 30. This eliminates the need for mains power, making installation more convenient and energy-efficient. Furthermore, it does not require fixing and can be installed on the riverbank. The system can automatically travel to any location on the river for water quality testing, exhibiting high intelligence, a wide detection range, and broader application scenarios.

[0006] A mobile river water quality monitoring device includes a base station box 10, which floats on the river water level. A pole 20 is installed at the junction of the ground and the river, with its bottom end extending below the river water level and its top end positioned above the water level and equipped with a solar panel 30. A wireless charging device 40 is located on the bottom of the pole 20 near the base station box 10, and is positioned below the base station box 10. A battery 50 is located on the ground near the pole 20. The solar panel 30 is connected to both the battery 50 and the wireless charging device 40, storing electrical energy in the battery 50 or charging the wireless charging device 40. The power supply is provided by connecting the storage battery 50 to the wireless charging device 40. A solar panel 60 is located inside the base station box 10 near the wireless charging device 40, and is connected to the wireless charging device 40 to charge the base station box 10. On sunny days, the solar panel 30 converts solar energy into electrical energy, which is then used to charge the base station box 10 via the wireless charging device 40. On cloudy days, the storage battery 50 is connected to the wireless charging device 40 to charge the base station box 10. This allows the base station box 10 to be charged under normal conditions, simultaneously via the solar panel 30, eliminating the need for mains power, making installation more convenient and energy-efficient.

[0007] Furthermore, the base station box 10 is equipped with a control module 70, and the bottom of the base station box 10 is equipped with a propeller 80. The propeller 80 is connected to the battery panel 60, and the battery panel 60 provides power to the propeller 80. The control module 70 drives the propeller 80 to move the base station box 10 to any position in the river for water quality testing. It has a high degree of intelligence and a wide detection range.

[0008] Furthermore, a video probe 90 is provided on the upper part of the base station box 10. The video probe 90 is connected to the control module 70 by signal. The video probe 90 is used to monitor whether there are obstacles or ships on the river and transmit the information to the control module 70. The control module 70 drives the propeller 80 to avoid obstacles or ships, so as to avoid the base station box 10 from affecting the normal passage of ships.

[0009] Furthermore, the base station box 10 is also equipped with a data transmission module 100. A detection probe 110 is provided at the bottom of the base station box 10 away from the solar panel 60. The data transmission module 100 is connected to the detection probe 110. The detection probe 110 transmits the detected signal to the monitoring platform through the data transmission module 100 to understand the water quality data of each point in real time.

[0010] Furthermore, the detection probe 110 has multiple probes, making the detection values ​​of water quality more accurate.

[0011] Furthermore, the detection probe 110 has 2-4 probes.

[0012] Furthermore, a protective cover 120 is provided on the side of the pole 20 near the base station box 10, and the protective cover 120 is placed above the base station box 10 to prevent debris and gravel from damaging the base station box 10 when it is being charged.

[0013] Furthermore, the length of the protective cover 120 is greater than or equal to the length of the base station box 10, which can better protect the base station box 10.

[0014] The beneficial effects of this utility model are as follows: This utility model proposes a mobile river water quality testing device, including a base station box 10, which floats on the river water level. A pole 20 is installed at the junction of the ground and the river, with its bottom end extending below the river water level and its top end positioned above the water level and equipped with a solar panel 30. A wireless charging device 40 is installed on the bottom of the pole 20 near the base station box 10, and is located below the base station box 10. A battery 50 is installed on the ground near the pole 20. The solar panel 30 is connected to both the battery 50 and the wireless charging device 40, storing energy in the battery 50 or supplying power to the wireless charging device 40. The battery 50 is connected to the wireless charging device 40. The wireless charging device 40 is powered by a solar panel 60 located at one end of the base station box 10 near the wireless charging device 40. The solar panel 60 is connected to the wireless charging device 40 to charge the base station box 10. On sunny days, the solar panel 30 converts solar energy into electrical energy, which is then used to charge the base station box 10 via the wireless charging device 40. On cloudy days, the battery 50 is connected to the wireless charging device 40 to charge the base station box 10. This allows the base station box 10 to be charged under normal conditions, simultaneously via the solar panel 30. This eliminates the need for mains power, making installation more convenient and energy-efficient. Furthermore, it does not require fixing and can be installed on the riverbank. The control system can automatically move to any location in the river to conduct water quality testing, resulting in a high degree of intelligence, a wide detection range, and broader application scenarios. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of a mobile river water quality testing device according to the present invention.

[0016] Explanation of key component symbols:

[0017] Base station box 10, pole 20, solar panel 30, wireless charging device 40, storage battery 50, solar panel 60, control module 70, propeller 80, video probe 90, data transmission module 100, detection probe 110, protective cover 120.

[0018] The following detailed description, in conjunction with the accompanying drawings, will further illustrate this utility model. Detailed Implementation

[0019] The following embodiments are described to aid in understanding this application. These embodiments are not, and should not be, construed in any way as limiting the scope of protection of this application.

[0020] In the following description, those skilled in the art will recognize that throughout this discussion, components may be described as individual functional units (which may include subunits), but those skilled in the art will recognize that various components or portions thereof may be divided into individual components or may be integrated together (including integrated within a single system or component).

[0021] Furthermore, the connection between components or systems is not intended to be limited to a direct connection; on the contrary, data between these components may be modified, reformatted, or otherwise altered by intermediate components. Additionally, other or fewer connections may be used. It should also be noted that the terms "connection," "link," or "input" should be understood to include direct connections, indirect connections via one or more intermediate devices, and wireless connections. Example 1:

[0022] like Figure 1 The diagram shown is a structural schematic of a mobile river water quality testing device according to this utility model.

[0023] A mobile river water quality monitoring device includes a base station box 10, which floats on the river water level. A pole 20 is installed at the junction of the ground and the river, with its bottom end extending below the river water level and its top end positioned above the water level and equipped with a solar panel 30. A wireless charging device 40 is located on the bottom of the pole 20 near the base station box 10, and is positioned below the base station box 10. A battery 50 is located on the ground near the pole 20. The solar panel 30 is connected to both the battery 50 and the wireless charging device 40, storing electrical energy in the battery 50 or charging the wireless charging device 40. The power supply is provided by connecting the storage battery 50 to the wireless charging device 40. A solar panel 60 is located inside the base station box 10 near the wireless charging device 40, and is connected to the wireless charging device 40 to charge the base station box 10. On sunny days, the solar panel 30 converts solar energy into electrical energy, which is then used to charge the base station box 10 via the wireless charging device 40. On cloudy days, the storage battery 50 is connected to the wireless charging device 40 to charge the base station box 10. This allows the base station box 10 to be charged under normal conditions, simultaneously via the solar panel 30, eliminating the need for mains power, making installation more convenient and energy-efficient.

[0024] The base station box 10 is equipped with a control module 70. The bottom of the base station box 10 is equipped with a propeller 80. The propeller 80 is connected to the battery panel 60. The battery panel 60 provides power to the propeller 80. The control module 70 drives the propeller 80 to move the base station box 10 to any position in the river for water quality testing. It has a high degree of intelligence and a wide detection range.

[0025] The upper part of the base station box 10 is equipped with a video probe 90, which is connected to the control module 70. The video probe 90 is used to monitor whether there are obstacles or ships on the river and transmit the information to the control module 70. The control module 70 drives the propeller 80 to avoid obstacles or ships, so as to prevent the base station box 10 from affecting the normal passage of ships.

[0026] The base station box 10 is also equipped with a data transmission module 100. A detection probe 110 is provided at the bottom of the base station box 10 away from the solar panel 60. The data transmission module 100 is connected to the detection probe 110. The detection probe 110 transmits the detected signal to the monitoring platform through the data transmission module 100 to understand the water quality data of each point in real time.

[0027] The detection probe 110 has multiple probes, which makes the detection values ​​of water quality more accurate.

[0028] There are 2-4 detection probes 110.

[0029] The pole 20 is also provided with a protective cover 120 on the side near the base station box 10, and the protective cover 120 is placed above the base station box 10 to prevent debris and gravel from damaging the base station box 10 when it is being charged.

[0030] The length of the protective cover 120 is greater than or equal to the length of the base station box 10, which can better protect the base station box 10.

[0031] The beneficial effects of this utility model are as follows: This utility model proposes a mobile river water quality testing device, including a base station box 10, which floats on the river water level. A pole 20 is installed at the junction of the ground and the river, with its bottom end extending below the river water level and its top end positioned above the water level and equipped with a solar panel 30. A wireless charging device 40 is installed on the bottom of the pole 20 near the base station box 10, and is located below the base station box 10. A battery 50 is installed on the ground near the pole 20. The solar panel 30 is connected to both the battery 50 and the wireless charging device 40, storing energy in the battery 50 or supplying power to the wireless charging device 40. The battery 50 is connected to the wireless charging device 40. The wireless charging device 40 is powered by a solar panel 60 located at one end of the base station box 10 near the wireless charging device 40. The solar panel 60 is connected to the wireless charging device 40 to charge the base station box 10. On sunny days, the solar panel 30 converts solar energy into electrical energy, which is then used to charge the base station box 10 via the wireless charging device 40. On cloudy days, the battery 50 is connected to the wireless charging device 40 to charge the base station box 10. This allows the base station box 10 to be charged under normal conditions, simultaneously via the solar panel 30. This eliminates the need for mains power, making installation more convenient and energy-efficient. Furthermore, it does not require fixing and can be installed on the riverbank. The control system can automatically move to any location in the river to conduct water quality testing, resulting in a high degree of intelligence, a wide detection range, and broader application scenarios.

[0032] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A mobile river water quality monitoring device, comprising a base station box (10), wherein the base station box (10) floats on the river water level, characterized in that: A pole (20) is installed at the junction of the ground and the river channel. The bottom end of the pole (20) extends below the river water level, and the top end of the pole (20) is located above the river water level and is equipped with a solar panel (30). A wireless charging device (40) is installed on the side of the bottom of the pole (20) near the base station box (10), and the wireless charging device (40) is placed below the base station box (10). A storage battery (50) is installed on the ground near the pole (20). The solar panel (30) is connected to the storage battery (50) and the wireless charging device (40) respectively, storing electrical energy in the storage battery (50) or supplying power to the wireless charging device (40). The storage battery (50) and the wireless charging device... (40) Connect to power the wireless charging device (40). A battery panel (60) is provided at one end of the base station box (10) near the wireless charging device (40). The battery panel (60) is connected to the wireless charging device (40) to charge the base station box (10). On sunny days, the solar energy is converted into electrical energy through the solar panel (30) and charged through the wireless charging device (40). On cloudy days, the battery (50) is connected to the wireless charging device (40) to charge the base station box (10). This allows the base station box (10) to be charged under normal conditions, and it is also charged through the solar panel (30). It does not need to be connected to the mains power, making installation more convenient and energy-saving.

2. The mobile river water quality testing equipment according to claim 1, characterized in that: The base station box (10) is equipped with a control module (70). The bottom of the base station box (10) is equipped with a propeller (80). The propeller (80) is connected to the battery panel (60). The battery panel (60) provides power to the propeller (80). The control module (70) drives the propeller (80) to move the base station box (10) to any position in the river for water quality testing. It has a high degree of intelligence and a wide detection range.

3. The mobile river water quality testing equipment according to claim 2, characterized in that: The upper part of the base station box (10) is equipped with a video probe (90). The video probe (90) is connected to the control module (70) by signal. The video probe (90) is used to monitor whether there are obstacles or ships on the river and transmit the information to the control module (70). The control module (70) drives the propeller (80) to avoid obstacles or ships, so as to avoid the base station box (10) from affecting the normal passage of ships.

4. The mobile river water quality testing equipment according to claim 3, characterized in that: The base station box (10) is also equipped with a data transmission module (100). A detection probe (110) is provided at the bottom of the base station box (10) away from the battery panel (60). The data transmission module (100) is connected to the detection probe (110) by signal. The detection probe (110) transmits the detected signal to the monitoring platform through the data transmission module (100) to understand the water quality data of each point in real time.

5. The mobile river water quality testing equipment according to claim 4, characterized in that: The detection probe (110) has multiple probes, which makes the detection values ​​of water quality more accurate.

6. The mobile river water quality testing equipment according to claim 5, characterized in that: There are 2-4 detection probes (110).

7. The mobile river water quality testing equipment according to claim 1, characterized in that: The pole (20) is also provided with a protective cover (120) on the side near the base station box (10), and the protective cover (120) is placed above the base station box (10) to prevent debris and gravel from damaging the base station box (10) when it is being charged.

8. The mobile river water quality testing equipment according to claim 7, characterized in that: The length of the protective cover (120) is greater than or equal to the length of the base station box (10), which can better protect the base station box (10).