Water level measuring device for water conservancy
By designing a water level measuring device that automatically collects water level data, combining wind energy and photoelectric power generation, the problems of low manual measurement efficiency and poor data age in the prior art are solved, real-time water level monitoring and efficient data transmission are realized.
Patent Information
- Application Number
- CN202421537655.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-02
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-07-02
AI Technical Summary
Existing water level measurement devices require manual measurement or regular copying of data, resulting in large labor consumption and poor data timeliness, unable to reflect water level information in real time, and it is difficult to deal with emergencies in a timely manner.
Design a water level measurement device for water utilization, including monitoring components, wind energy components, light energy components, data components and power components. Through automated data collection, real-time water level detection and data summary through the network, real-time water level monitoring and data transmission are realized.
It realizes automatic collection and real-time monitoring of water level data, improves data timeliness, can respond to emergencies in a timely manner, reduces manpower consumption, and ensures the energy supply of the device through wind and photovoltaic power generation.
Smart Images

Figure CN222882096U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water level measurement, in particular to a water level measuring device. Background Art
[0002] Water level measurement refers to the on-site measurement of the water levels of rivers, lakes and groundwater. Water level data is closely related to human social life and production. The planning, design, construction and management of water conservancy projects require water level data. Bridges, ports, waterways, water supply and drainage and other engineering construction also require water level data. In flood control and drought relief, water level data is even more important. It is the basis of hydrological forecasts and hydrological intelligence. Water level data is important basic data in the study of the relationship between water level and flow and in the analysis of river sediment, ice conditions, etc. However, most water level measuring devices use manual measurement devices, or require manual data transcription of water level measuring devices on a regular basis. This method not only requires a lot of manpower to collect water level data, but also due to the low efficiency of manual data collection, the timeliness of the data obtained is poor, and it cannot reflect water level information in real time, which can easily lead to a lack of timely response in the event of an emergency. Utility Model Content
[0003] In order to overcome the problem that most water level measurement devices are manually measured using artificial devices, or manually record data from water level measurement devices on a regular basis, this method not only requires a lot of manpower to collect water level data, but also the low efficiency of manual data collection, resulting in poor timeliness of the data obtained, and the inability to reflect water level information in real time, which can easily lead to the problem of being unable to respond in time when an emergency occurs.
[0004] The technical solution of the utility model is: a water level measuring device utilizing water, comprising a pile body, a monitoring component, a wind energy component, a light energy component, a support component, a data component and a power supply component; a monitoring component is arranged on one side of the pile body, a wind energy component is arranged above the pile body, a light energy component is arranged on one side of the pile body, a support component is arranged on one side of the pile body, a data component is arranged above the support component, and a power supply component is arranged above the support component.
[0005] Preferably, various components are installed and fixed by setting up pile bodies, water level changes are monitored by monitoring components, separate power generation is performed by wind energy components, photovoltaic power generation is performed by light energy components, data components and power supply components are installed by supporting components, water level data is processed and sent by data components, and power supply components are used to supply and store electrical energy.
[0006] Preferably, the monitoring component includes a fixing seat and a radar ranging module; a fixing seat is provided on one side of the pile body, and a radar ranging module is provided on one side of the fixing seat; the radar ranging module is fixedly installed on the fixing seat to monitor water level changes.
[0007] Preferably, the wind energy component includes a rotating shaft, a connecting rod and vertical wind turbine blades; a rotating shaft is arranged above the pile body, a connecting rod is arranged on one side of the rotating shaft, and multiple groups of connecting rods are arranged; vertical wind turbine blades are arranged at one end of the connecting rod, and multiple groups of vertical wind turbine blades are arranged; wind power is used to drive the vertical wind turbine blades to rotate, drive the rotating shaft and the connecting rod to rotate, and generate wind power.
[0008] Preferably, the solar energy component includes a support rod, an oblique support rod and a solar panel; a support rod is arranged on one side of the pile body, an oblique support rod is arranged on one side of the support rod, and a solar panel is arranged at one end of the support rod; the solar panel is installed by supporting the support rod for photovoltaic power generation, and the strength of the support rod is strengthened by the oblique support rod.
[0009] Preferably, the support component includes a data support seat, a power supply support seat and a threaded connector; a data support seat is provided on one side of the pile body, a power supply support seat is provided on one side of the data support seat, and a threaded connector is provided on one side of the data support seat; the data component is installed and set through the data support seat, the power supply component is installed and set through the power supply support seat, and the data support seat and the power supply support seat are installed and fixed through the threaded connector.
[0010] Preferably, the data component includes a data module, an antenna and a data line; a data module is arranged above the data support seat, an antenna is arranged above the data module, and a data line is arranged above the data module; the water level data is transmitted to the data module via the data line, and the data module processes the data and sends it to the data center via the antenna for aggregation.
[0011] Preferably, the power supply assembly includes a battery, a power supply line and a charging line; a battery is arranged above the power supply support seat, a power supply line is arranged above the battery, and a charging line is arranged above the battery; the battery stores electrical energy, the power supply line is used to power the data module and the radar ranging module, and the electrical energy generated by wind power generation and photovoltaic power generation is sent to the battery through the charging line.
[0012] Beneficial effects of the utility model:
[0013] 1. Compared with the traditional water level measurement device, which uses manual measurement by manual use of the device, or requires manual data transcription of the water level measurement device on a regular basis, this method not only requires a lot of manpower to collect water level data, but also because of the low efficiency of manual data collection, the timeliness of the data obtained is poor, and the water level information cannot be reflected in real time, which makes it easy to fail to respond in time when an emergency occurs. This device collects data automatically, sets up water level data collection piles, detects water level data in real time, and sends the data to the data center through the network for aggregation, so as to obtain real-time water level maps at all ends of the river, helping people to deal with emergencies efficiently;
[0014] 2. In water level monitoring, the pile body is fixed with a radar ranging module through a fixed seat. The radar ranging module emits a laser to the water surface, and the water surface reflects the laser and is received by the radar ranging module. The water level height can be known by the time difference between the emission and reception. After the data module obtains the water level data through the data line, it transmits the data through the antenna network. In this process, the battery supplies power to the data module and the radar ranging module through the power supply line. The data support seat supports the installation of the data module, the power support seat supports the installation of the battery, and the threaded connector fixes the data support seat and the power support seat to solve the problem that most water level measurement devices need to collect water level data manually.
[0015] 3. When the wind blows, the wind drives the vertical wind turbine blades to move, and the connecting rod drives the rotating shaft to rotate to complete wind power generation. The electricity flows to the battery through the charging line and is stored. When the sun is shining, the support rod supports the solar panel, and the diagonal support rod increases the strength of the support rod, lifting the solar panel to receive sunlight for photovoltaic power generation. The electricity flows to the battery through the charging line and is stored, ensuring the energy supply of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 What is shown is a three-dimensional structural schematic diagram of a water level measuring device for water utilization of the utility model;
[0017] Figure 2 What is shown is a schematic diagram of the three-dimensional structure of a monitoring component of a water level measuring device for water utilization of the utility model;
[0018] Figure 3 What is shown is a three-dimensional structural schematic diagram of a light energy component of a water level measuring device of the utility model;
[0019] Figure 4 What is shown is a three-dimensional structural schematic diagram of a data component of a water level measuring device of the utility model.
[0020] Explanation of the accompanying drawings: 1. pile body; 2. monitoring component; 3. wind energy component; 4. light energy component; 5. support component; 6. data component; 7. power supply component; 201. fixing seat; 202. radar ranging module; 301. rotating shaft; 302. connecting rod; 303. vertical wind turbine blade; 401. supporting rod; 402. diagonal support rod; 403. solar panel; 501. data support seat; 502. power supply support seat; 503. threaded connector; 601. data module; 602. antenna; 603. data cable; 701. battery; 702. power supply line; 703. charging line. DETAILED DESCRIPTION
[0021] The utility model is further described below in conjunction with the accompanying drawings and embodiments.
[0022] See also Figure 1 The utility model provides an embodiment: a water level measuring device for water utilization, comprising a pile body 1, a monitoring component 2, a wind energy component 3, a light energy component 4, a support component 5, a data component 6 and a power supply component 7; a monitoring component 2 is arranged on one side of the pile body 1, a wind energy component 3 is arranged above the pile body 1, a light energy component 4 is arranged on one side of the pile body 1, a support component 5 is arranged on one side of the pile body 1, a data component 6 is arranged above the support component 5, and a power supply component 7 is arranged above the support component 5.
[0023] See also Figure 2 In this embodiment, the monitoring component 2 includes a fixed seat 201 and a radar ranging module 202, a fixed seat 201 is provided on one side of the pile body 1, and a radar ranging module 202 is provided on one side of the fixed seat 201, and the water level change is monitored by installing the fixed radar ranging module 202 on the fixed seat 201; the wind energy component 3 includes a rotating shaft 301, a connecting rod 302 and a vertical wind turbine blade 303, a rotating shaft 301 is provided above the pile body 1, a connecting rod 302 is provided on one side of the rotating shaft 301, and the connecting rod 302 is provided with multiple groups, and one end of the connecting rod 302 is provided with vertical wind turbine blades 303, and the vertical wind turbine blades 303 are provided with multiple groups, and the vertical wind turbine blades 303 are driven to rotate by wind force, and the rotating shaft 301 and the connecting rod 302 are driven to rotate to generate wind power.
[0024] See also Figure 3 In this embodiment, the light energy component 4 includes a support rod 401, an oblique support rod 402 and a solar panel 403; the support rod 401 is arranged on one side of the pile body 1, the oblique support rod 402 is arranged on one side of the support rod 401, and the solar panel 403 is arranged at one end of the support rod 401; the solar panel 403 is supported and installed by the support rod 401 for photovoltaic power generation, and the strength of the support rod 401 is strengthened by the oblique support rod 402.
[0025] See also Figure 4In this embodiment, the support component 5 includes a data support seat 501, a power support seat 502 and a threaded connector 503. The data support seat 501 is arranged on one side of the pile body 1, and the power support seat 502 is arranged on one side of the data support seat 501. The threaded connector 503 is arranged on one side of the data support seat 501. The data component 6 is installed and set through the data support seat 501, and the power component 7 is installed and set through the power support seat 502. The data support seat 501 and the power support seat 502 are fixedly installed through the threaded connector 503; the data component 6 includes a data module 601, an antenna 602 and a data line 603. The data module 601 is arranged above the data support seat 501, and the data module 601 is arranged above the data module 601. An antenna 602 is provided, and a data line 603 is provided above the data module 601. The water level data is transmitted to the data module 601 through the data line 603. The data module 601 processes the data and sends it to the data center through the antenna 602 for aggregation; the power supply component 7 includes a battery 701, a power supply line 702 and a charging line 703. The battery 701 is provided above the power support seat 502, the power supply line 702 is provided above the battery 701, and the charging line 703 is provided above the battery 701. Electric energy is stored by the battery 701, the data module 601 and the radar ranging module 202 are powered by the power supply line 702, and the electric energy generated by wind power generation and photovoltaic power generation is sent to the battery 701 through the charging line 703.
[0026] During water level monitoring, the pile body 1 is installed with a fixed radar ranging module 202 through a fixed seat 201. The radar ranging module 202 emits a laser to the water surface, and the water surface reflects the laser and is received by the radar ranging module 202. The water level height can be known by the time difference between the emission and the reception. After the data module 601 obtains the water level data through the data line 603, it transmits the data through the antenna 602. In this process, the battery 701 supplies power to the data module 601 and the radar ranging module 202 through the power supply line 702. The data support seat 501 supports the installation of the data module 601, the power support seat 502 supports the installation of the battery 701, and the threaded connector 503 fixes the data support seat 501 and the power support seat 502.
[0027] When the wind blows, the wind drives the vertical wind turbine blades 303 to move, and the connecting rod 302 drives the rotating shaft 301 to rotate to complete wind power generation. The electricity flows to the battery 701 through the charging line 703 and is stored;
[0028] When the sun is shining, the support rod 401 supports the solar panel 403, and the diagonal support rod 402 increases the strength of the support rod 401, lifting the solar panel 403 to receive sunlight for photovoltaic power generation, and the electricity flows to the battery 701 through the charging line 703 and is stored.
[0029] Through the above steps, the various components are installed and fixed by setting the pile body 1, the water level change is monitored by the monitoring component 2, the wind energy component 3 is used to separate and generate electricity, the light energy component 4 is used to generate photovoltaic electricity, the data component 6 and the power supply component 7 are installed through the support component 5, the water level data is processed and sent through the data component 6, and the power supply component 7 is used to supply and store electricity.
[0030] The embodiments of the present invention are described in detail above in conjunction with the accompanying drawings, but the present invention is not limited to the above embodiments, and various changes can be made within the knowledge scope of those skilled in the art without departing from the purpose of the present invention.
Claims
1. A water level measuring device for water utilization, comprising a pile body (1); characterized in that: The pile body (1) further comprises a monitoring component (2), a wind energy component (3), a light energy component (4), a support component (5), a data component (6) and a power supply component (7); the monitoring component (2) is arranged on one side of the pile body (1), the wind energy component (3) is arranged above the pile body (1), the light energy component (4) is arranged on one side of the pile body (1), the support component (5) is arranged on one side of the pile body (1), the data component (6) is arranged above the support component (5), and the power supply component (7) is arranged above the support component (5).
2. A water level measuring device for water utilization according to claim 1, characterized in that: The monitoring component (2) comprises a fixing seat (201) and a radar ranging module (202); the fixing seat (201) is arranged on one side of the pile body (1), and the radar ranging module (202) is arranged on one side of the fixing seat (201).
3. The water level measuring device according to claim 1, characterized in that: The wind energy component (3) comprises a rotating shaft (301), a connecting rod (302) and vertical wind turbine blades (303); the rotating shaft (301) is arranged above the pile body (1), a connecting rod (302) is arranged on one side of the rotating shaft (301), the connecting rod (302) is provided in multiple groups, and a vertical wind turbine blade (303) is arranged at one end of the connecting rod (302), and the vertical wind turbine blade (303) is provided in multiple groups.
4. The water level measuring device according to claim 1, characterized in that: The light energy assembly (4) comprises a support rod (401), an oblique support rod (402) and a solar panel (403); the support rod (401) is arranged on one side of the pile body (1), the oblique support rod (402) is arranged on one side of the support rod (401), and the solar panel (403) is arranged on one end of the support rod (401).
5. The water level measuring device according to claim 1, characterized in that: The support assembly (5) comprises a data support seat (501), a power supply support seat (502) and a threaded connector (503); the data support seat (501) is arranged on one side of the pile body (1), the power supply support seat (502) is arranged on one side of the data support seat (501), and the threaded connector (503) is arranged on one side of the data support seat (501).
6. A water level measuring device for water utilization according to claim 5, characterized in that: The data component (6) comprises a data module (601), an antenna (602) and a data line (603); the data module (601) is arranged above the data support seat (501), the antenna (602) is arranged above the data module (601), and the data line (603) is arranged above the data module (601).
7. The water level measuring device according to claim 5, characterized in that: The power supply assembly (7) comprises a battery (701), a power supply line (702) and a charging line (703); the battery (701) is arranged above the power supply support seat (502), the power supply line (702) is arranged above the battery (701), and the charging line (703) is arranged above the battery (701).