A water flow monitoring device suitable for hydrodynamic simulation
By introducing a water flow parameter monitoring module and a photovoltaic panel adjustment component into the hydrodynamic simulation device, the problems of data transmission lag and insufficient energy were solved, realizing remote real-time monitoring of water flow parameters and efficient power generation of photovoltaic panels, thus improving the timeliness of monitoring and the stability of energy supply.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SUZHOU YISHUI TWIN INFORMATION TECH CO LTD
- Filing Date
- 2025-06-27
- Publication Date
- 2026-05-26
AI Technical Summary
Existing hydrodynamic simulation flow monitoring devices cannot transmit multiple key parameters in real time, and the photovoltaic panels cannot automatically adjust their angles, resulting in data transmission delays and insufficient energy supply, which affects the timeliness and accuracy of monitoring.
The detection component, consisting of a water flow parameter monitoring module, a light intensity sensor, a data processing module, a wireless transmission module, and a drive module, combined with a photovoltaic panel adjustment component, enables real-time monitoring of water flow parameters and automatic adjustment of the photovoltaic panel, ensuring real-time data transmission and stable energy supply.
It enables remote real-time monitoring of water flow parameters and efficient power generation from photovoltaic panels, improving the timeliness of data transmission and the stability of energy supply, and ensuring the continuous operation of the monitoring device.
Smart Images

Figure CN224286006U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water flow monitoring technology, specifically a water flow monitoring device suitable for hydrodynamic simulation. Background Technology
[0002] In hydrodynamic simulation research, accurately obtaining various parameters of water flow is of vital importance for studying the laws of water flow, predicting hydrodynamic phenomena, and optimizing the design of water conservancy projects.
[0003] Existing hydrodynamic simulation flow monitoring devices suffer from lagging data transmission capabilities, failing to transmit key parameters such as flow velocity, flow direction, water temperature, water level, and water quality to remote monitoring centers in real time. This makes it difficult for researchers to obtain dynamic data in a timely manner, thus restricting the timeliness and accuracy of hydrodynamic simulations. Furthermore, the energy supply systems of existing hydrodynamic simulation flow monitoring devices are flawed. The photovoltaic panels they are equipped with are mostly fixed structures that cannot automatically adjust their angle according to changes in the sun's position, resulting in low solar energy utilization and insufficient energy to provide for the continuous and stable operation of the device. This, in turn, affects the continuity and accuracy of monitoring data and fails to meet current needs. Utility Model Content
[0004] The purpose of this invention is to provide a water flow monitoring device suitable for hydrodynamic simulation, so as to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a water flow monitoring device suitable for hydrodynamic simulation, comprising a mounting frame, a detection component, an adjustment component, and a photovoltaic panel, wherein the detection component is disposed inside the mounting frame, the adjustment component is disposed on the top of the mounting frame, and the photovoltaic panel is disposed on the top of the adjustment component.
[0006] The detection component consists of a water flow parameter monitoring module, a light intensity sensor, a data processing module, a wireless transmission module, a drive module, and a lithium battery. The water flow parameter monitoring module is fixedly installed inside the mounting frame, the light intensity sensor is fixedly installed on the top of the photovoltaic panel, the data processing module is fixedly installed inside the mounting frame, the wireless transmission module is fixedly installed inside the mounting frame, the drive module is fixedly installed inside the mounting frame, and the lithium battery is fixedly installed inside the mounting frame.
[0007] The adjustment assembly consists of a shaft, a first gear, a first motor, a second gear, a U-shaped frame, a rotating shaft, a third gear, a second motor, a fourth gear, a limiting rod, and a connecting seat. The shaft is rotatably mounted on the top of the mounting frame. The first gear is fixedly mounted on the surface of the shaft. The first motor is fixedly mounted on the top of the mounting frame. The second gear is fixedly mounted on the output shaft of the first motor. The U-shaped frame is fixedly mounted on the top of the shaft. The rotating shaft is rotatably mounted inside the U-shaped frame. The third gear is fixedly mounted on the surface of the rotating shaft. The second motor is fixedly mounted on the side of the U-shaped frame. The fourth gear is fixedly mounted on the output shaft of the second motor. The limiting rod is fixedly mounted inside the U-shaped frame. The connecting seat is fixedly mounted on the surface of the rotating shaft.
[0008] Preferably, the light intensity sensors are arranged in a rectangular array on the top of the photovoltaic panel. Multiple light intensity sensors are set on the top of the photovoltaic panel to form a light intensity sensor array, and each light intensity sensor monitors the light intensity of its area in real time.
[0009] Preferably, the output terminals of the water flow parameter monitoring module and the light intensity sensor are electrically connected to the input terminal of the data processing module. The output terminal of the data processing module is electrically connected to the input terminals of the wireless transmission module and the drive module. The output terminal of the photovoltaic panel is electrically connected to the input terminal of the lithium battery. The output terminal of the lithium battery is electrically connected to the input terminals of the first motor and the second motor. The water flow parameter monitoring module includes a flow velocity monitoring unit, a flow direction monitoring unit, a water temperature monitoring unit, a water level monitoring unit, and a water quality monitoring unit. It can monitor multiple indicators of water flow in real time and transmit the collected water flow parameter data to the data processing module for processing. Then, the processed data is transmitted to the remote monitoring center in real time to achieve remote real-time monitoring. The light intensity sensor monitors the light intensity of the area in real time and transmits the data to the data processing module. By comparing the light intensity data of the light intensity sensors at different locations, the direction and angle of the light can be determined. Subsequently, the first motor and the second motor are started through the drive module.
[0010] Preferably, the first gear and the second gear mesh to start the first motor, and the shaft can be rotated under the action of the first gear and the second gear.
[0011] Preferably, the third and fourth gears mesh to start the second motor, and the shaft can rotate under the action of the third and fourth gears.
[0012] Preferably, the side of the connecting seat is provided with an arc-shaped groove that matches the limiting rod, and this setting can guide the connecting seat through the limiting rod.
[0013] Preferably, the top of the connector is fixedly connected to the photovoltaic panel.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] (1) The water flow monitoring device applicable to hydrodynamic simulation monitors multiple indicators of water flow in real time through the water flow parameter monitoring module, transmits the collected water flow parameter data to the data processing module for processing, and then transmits the processed data to the remote monitoring center in real time to realize remote real-time monitoring.
[0016] (2) The water flow monitoring device suitable for hydrodynamic simulation monitors the light intensity of the area in real time through a light intensity sensor and transmits the data to the data processing module. By comparing the light intensity data of light intensity sensors at different locations, the direction and angle of the light can be determined. Subsequently, the first motor and the second motor are started through the drive module, so that the photovoltaic panel can efficiently follow the sun, significantly improving the power generation efficiency of the photovoltaic panel, enhancing the stability and reliability of the power supply of the device under different environments and time periods, and providing more sufficient energy guarantee for the continuous operation of the device. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a schematic diagram of the wireless transmission module, the driving module, and the lithium battery structure of this utility model;
[0019] Figure 3 This is a schematic diagram of the shaft, the first gear, and the first motor structure of this utility model;
[0020] Figure 4 This is a schematic diagram of the fourth gear, the limiting rod, and the connecting seat of this utility model.
[0021] In the diagram: 1. Mounting frame; 2. Detection component; 201. Water flow parameter monitoring module; 202. Light intensity sensor; 203. Data processing module; 204. Wireless transmission module; 205. Drive module; 206. Lithium battery; 3. Adjustment component; 301. Shaft; 302. First gear; 303. First motor; 304. Second gear; 305. U-shaped frame; 306. Rotating shaft; 307. Third gear; 308. Second motor; 309. Fourth gear; 310. Limiting rod; 311. Connecting seat; 4. Photovoltaic panel. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0023] Please see Figure 1-4 This utility model provides a technical solution: a water flow monitoring device suitable for hydrodynamic simulation, including a mounting frame 1, a detection component 2, an adjustment component 3, and a photovoltaic panel 4. The detection component 2 is disposed inside the mounting frame 1, the adjustment component 3 is disposed on the top of the mounting frame 1, and the photovoltaic panel 4 is disposed on the top of the adjustment component 3.
[0024] The detection component 2 consists of a water flow parameter monitoring module 201, a light intensity sensor 202, a data processing module 203, a wireless transmission module 204, a drive module 205, and a lithium battery 206. The water flow parameter monitoring module 201 is fixedly installed inside the mounting frame 1. The light intensity sensor 202 is fixedly installed on the top of the photovoltaic panel 4. The light intensity sensors 202 are distributed in a rectangular array on the top of the photovoltaic panel 4. Multiple light intensity sensors 202 are set on the top of the photovoltaic panel 4 to form a light intensity sensor array. Each light intensity sensor 202 monitors the light intensity of its area in real time. The data processing module 203, the wireless transmission module 204, the drive module 205, and the lithium battery 206 are fixedly installed inside the mounting frame 1.
[0025] The adjusting assembly 3 consists of a shaft 301, a first gear 302, a first motor 303, a second gear 304, a U-shaped frame 305, a rotating shaft 306, a third gear 307, a second motor 308, a fourth gear 309, a limiting rod 310, and a connecting seat 311. The shaft 301 is rotatably mounted on the top of the mounting frame 1. The first gear 302 is fixedly mounted on the surface of the shaft 301. The first motor 303 is fixedly mounted on the top of the mounting frame 1. The second gear 304 is fixedly mounted on the output shaft of the first motor 303. The first gear 302 and the second gear 304 mesh, starting the first motor 303. The first gear 302 and the second gear 304 act as a guide. The shaft 301 can rotate, the U-shaped frame 305 is fixedly installed on the top of the shaft 301, the rotating shaft 306 is rotatably installed inside the U-shaped frame 305, the third gear 307 is fixedly installed on the surface of the rotating shaft 306, the second motor 308 is fixedly installed on the side of the U-shaped frame 305, the output terminals of the water flow parameter monitoring module 201 and the light intensity sensor 202 are electrically connected to the input terminal of the data processing module 203, the output terminal of the data processing module 203 is electrically connected to the input terminal of the wireless transmission module 204 and the drive module 205, the output terminal of the photovoltaic panel 4 is electrically connected to the input terminal of the lithium battery 206, and the output terminal of the lithium battery 206 is connected to the first motor 308. 3 and the second motor 308 are electrically connected to the input terminal. The water flow parameter monitoring module 201 includes a flow velocity monitoring unit, a flow direction monitoring unit, a water temperature monitoring unit, a water level monitoring unit, and a water quality monitoring unit. It can monitor multiple indicators of water flow in real time and transmit the collected water flow parameter data to the data processing module 203 for processing. Then, the processed data is transmitted to the remote monitoring center in real time to achieve remote real-time monitoring. The light intensity sensor 202 monitors the light intensity of the area in real time and transmits the data to the data processing module 203. By comparing the light intensity data of the light intensity sensor 202 at different locations, the direction and angle of the light can be determined, and subsequent communication can be performed. The drive module 205 starts the first motor 303 and the second motor 308. The fourth gear 309 is fixedly installed on the output shaft of the second motor 308. The third gear 307 and the fourth gear 309 mesh to start the second motor 308. Under the action of the third gear 307 and the fourth gear 309, the rotating shaft 306 can be rotated. The limiting rod 310 is fixedly installed inside the U-shaped frame 305. The connecting seat 311 is fixedly installed on the surface of the rotating shaft 306. The side of the connecting seat 311 is provided with an arc-shaped groove that matches the limiting rod 310. This setting can guide the connecting seat 311 through the limiting rod 310. The top of the connecting seat 311 is fixedly connected to the photovoltaic panel 4.
[0026] During operation, the water flow parameter monitoring module 201 monitors multiple water flow indicators in real time and transmits the collected water flow parameter data to the data processing module 203 for processing. The processed data is then transmitted to the remote monitoring center in real time for remote real-time monitoring. The light intensity sensor 202 monitors the light intensity of the area in real time and transmits the data to the data processing module 203. By comparing the light intensity data of the light intensity sensor 202 at different locations, the direction and angle of the light can be determined. Subsequently, the drive module 205 starts the first motor 303 and the second motor 308. Under the action of the first gear 302 and the second gear 304, the shaft 301 can be rotated. Under the action of the third gear 307 and the fourth gear 309, the rotating shaft 306 can be rotated, which can adjust the position of the photovoltaic panel 4. The photovoltaic panel 4's efficient tracking of the sun significantly improves the power generation efficiency of the photovoltaic panel 4, enhances the stability and reliability of the power supply of the device under different environments and time periods, and provides a more sufficient energy guarantee for the continuous operation of the device.
Claims
1. A water flow monitoring device suitable for hydrodynamic simulation, comprising a mounting frame (1), a detection component (2), an adjustment component (3), and a photovoltaic panel (4), characterized in that: The detection component (2) is disposed inside the mounting frame (1), the adjustment component (3) is disposed on the top of the mounting frame (1), and the photovoltaic panel (4) is disposed on the top of the adjustment component (3); The detection component (2) consists of a water flow parameter monitoring module (201), a light intensity sensor (202), a data processing module (203), a wireless transmission module (204), a drive module (205), and a lithium battery (206). The water flow parameter monitoring module (201) is fixedly installed inside the mounting frame (1), the light intensity sensor (202) is fixedly installed on the top of the photovoltaic panel (4), the data processing module (203) is fixedly installed inside the mounting frame (1), the wireless transmission module (204) is fixedly installed inside the mounting frame (1), the drive module (205) is fixedly installed inside the mounting frame (1), and the lithium battery (206) is fixedly installed inside the mounting frame (1). The adjustment assembly (3) consists of a shaft (301), a first gear (302), a first motor (303), a second gear (304), a U-shaped frame (305), a rotating shaft (306), a third gear (307), a second motor (308), a fourth gear (309), a limiting rod (310), and a connecting seat (311). The shaft (301) is rotatably mounted on the top of the mounting frame (1), the first gear (302) is fixedly mounted on the surface of the shaft (301), the first motor (303) is fixedly mounted on the top of the mounting frame (1), and the second gear (304) is fixedly mounted on the top of the mounting frame (1). On the output shaft of the first motor (303), the U-shaped frame (305) is fixedly installed on the top of the shaft (301), the rotating shaft (306) is rotatably installed inside the U-shaped frame (305), the third gear (307) is fixedly installed on the surface of the rotating shaft (306), the second motor (308) is fixedly installed on the side of the U-shaped frame (305), the fourth gear (309) is fixedly installed on the output shaft of the second motor (308), the limiting rod (310) is fixedly installed inside the U-shaped frame (305), and the connecting seat (311) is fixedly installed on the surface of the rotating shaft (306).
2. The water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The light intensity sensor (202) is arranged in a rectangular array on the top of the photovoltaic panel (4).
3. A water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The output terminals of the water flow parameter monitoring module (201) and the light intensity sensor (202) are electrically connected to the input terminal of the data processing module (203). The output terminal of the data processing module (203) is electrically connected to the input terminal of the wireless transmission module (204) and the drive module (205). The output terminal of the photovoltaic panel (4) is electrically connected to the input terminal of the lithium battery (206). The output terminal of the lithium battery (206) is electrically connected to the input terminal of the first motor (303) and the second motor (308).
4. A water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The first gear (302) and the second gear (304) mesh.
5. A water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The third gear (307) and the fourth gear (309) mesh.
6. A water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The side of the connecting seat (311) is provided with an arc-shaped groove that matches the limiting rod (310).
7. A water flow monitoring device suitable for hydrodynamic simulation according to claim 1, characterized in that: The top of the connector (311) is fixedly connected to the photovoltaic panel (4).