Meteorological monitoring platform and integrated power generation system
By introducing a meteorological monitoring platform into the integrated hydro-wind-solar power generation system, and using matrix-distributed support poles and installation platforms to uniformly install handheld meteorological equipment, combined with drones and portable devices, the problem of low accuracy caused by sparse meteorological monitoring devices has been solved, achieving high-precision meteorological data support and improving the efficiency and data coordination of the power generation system.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHINA THREE GORGES CORPORATION
- Filing Date
- 2025-05-22
- Publication Date
- 2026-04-17
AI Technical Summary
In existing technologies, the number of meteorological monitoring devices for integrated hydro-wind-solar power generation systems is sparse and unevenly distributed, resulting in low monitoring accuracy and affecting the accuracy of power generation prediction and resource assessment.
A meteorological monitoring platform is adopted, including multiple meteorological nodes, meteorological monitors and meteorological equipment correction structures. Handheld meteorological equipment is uniformly installed through matrix-distributed support rods and installation platforms. Combined with drones and portable devices, high-precision monitoring of multiple meteorological parameters is achieved.
It improved the accuracy and stability of meteorological monitoring, ensured the power generation efficiency and data coordination of the integrated hydro-wind-solar power generation system, and reduced the impact of environmental factors on monitoring accuracy.
Smart Images

Figure CN224137466U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of meteorological monitoring technology, and in particular to a meteorological monitoring platform and an integrated power generation system. Background Technology
[0002] With the continuous development of new energy technologies, integrated hydro-wind-solar power generation systems have emerged.
[0003] Integrated hydro-wind-solar power generation systems are a new type of power generation system that combines hydropower, wind power, and photovoltaic power generation. This can effectively improve energy utilization efficiency and reduce power generation costs. The operating efficiency of integrated hydro-wind-solar power generation systems is greatly affected by weather conditions; therefore, it is necessary to monitor various meteorological parameters in real time to adjust power generation strategies promptly and improve efficiency.
[0004] In meteorological monitoring devices of relevant technologies, only a single meteorological parameter can be monitored. The number of meteorological monitoring devices in a certain area is small and sparsely distributed. Furthermore, there are monitoring accuracy errors between different meteorological monitoring devices. If applied to integrated hydro-wind-solar power generation systems, it will lead to data inconsistency between power stations within the system, resulting in low monitoring accuracy and affecting the accuracy of power generation prediction and resource assessment of integrated hydro-wind-solar power generation systems. Utility Model Content
[0005] In view of the above problems, a meteorological monitoring platform and an integrated power generation system are proposed to overcome or at least partially solve the above problems, including:
[0006] A meteorological monitoring platform, comprising: multiple meteorological nodes, meteorological monitors, and a meteorological equipment calibration structure;
[0007] The meteorological node includes multiple handheld meteorological devices;
[0008] One end of the meteorological monitor is connected to the multiple meteorological nodes, and the other end of the meteorological monitor is connected to the control equipment of the integrated power generation system.
[0009] The meteorological equipment calibration structure includes an installation platform for detachable installation of the handheld meteorological equipment, as well as multiple first support rods and multiple connecting rods;
[0010] The plurality of first support rods are arranged in a matrix, and one end of each first support rod is fixed to the ground, while the other end is fixed to a single installation platform and has multiple connection points in multiple directions; both ends of each connecting rod are respectively fixed to the connection points of the first support rods at adjacent positions; one side of the installation platform is fixed to the first support rod, and the center of the other side is provided with a first thread, which is engaged with the second thread of the handheld meteorological device.
[0011] Optionally, the meteorological node further includes a portable meteorological device, the handheld meteorological device including a first handheld meteorological device, and the installation platform including a first installation platform; wherein, the portable meteorological device includes the first handheld meteorological device, the first installation platform and a support frame, the support frame including a triangular support plane, one side of the triangular support plane being connected to a plurality of second support rods, and the first installation platform being installed on the other side, the first installation platform being fixedly mounted on the first installation platform.
[0012] The second support rod is a telescopic structure and is equipped with ground height markings.
[0013] Optionally, the meteorological node further includes a drone meteorological device, the handheld meteorological device further includes a second handheld meteorological device, and the installation platform further includes a second installation platform; wherein, the drone meteorological device includes the second handheld meteorological device, the second installation platform, and the drone, one side of the second installation platform is fixed to the drone, and the other side is fixed to the second handheld meteorological device, and the drone includes a fuselage, a power system component, a navigation system component, and an obstacle avoidance system component.
[0014] Optionally, the handheld meteorological device is also equipped with a meteorological sensor assembly and a level.
[0015] Optionally, the meteorological sensor assembly includes one or more of the following: wind speed sensor, wind direction sensor, light intensity sensor, temperature sensor, humidity sensor, air pressure sensor, and rainfall sensor.
[0016] Optionally, the weather monitor includes:
[0017] A meteorological monitoring equipment assembly, wherein the meteorological monitoring equipment assembly is connected to the meteorological node;
[0018] A data acquisition component, which is electrically connected to the meteorological monitoring equipment assembly;
[0019] A data transmission component, which is electrically connected to the data acquisition component and connected to the control device;
[0020] The power supply component is electrically connected to the meteorological monitoring equipment assembly, the data acquisition component, and the data transmission component.
[0021] Optionally, the power supply assembly includes a solar panel and a battery.
[0022] Optionally, the meteorological node may also include one or more of the following: meteorological station, wind measurement tower, rain gauge, radiation station, and hydrological station.
[0023] Optionally, the data transmission component includes a wired communication component and a wireless communication component, wherein the wired communication component is electrically connected to the control device, and the wireless communication component is wirelessly connected to the control device.
[0024] Optionally, the data acquisition component includes a signal conditioning circuit and a microprocessor.
[0025] Optionally, the data transmission component may further include a data display component.
[0026] An integrated power generation system, the integrated power generation system including control equipment and a meteorological monitoring platform as described above.
[0027] The present invention has the following advantages: By using the first support rods that form a matrix distribution in the meteorological equipment correction structure and the mounting platform on them, multiple handheld meteorological devices mounted on the mounting platform can be positioned at the same height and in the same area, facilitating unified monitoring accuracy correction for multiple handheld meteorological devices and reducing monitoring accuracy differences caused by environmental factors; moreover, by connecting the first support rods at adjacent positions to the connecting rods installed at the mounting points, the overall stability of the meteorological equipment correction structure can be ensured, reducing the impact of factors such as strong winds on the stability of the correction process; by connecting meteorological monitors to multiple meteorological nodes, accurate meteorological monitoring support can be provided for the integrated power generation system, meeting the complex and diverse meteorological monitoring needs of the integrated power generation system. Attached Figure Description
[0028] To more clearly illustrate the technical solution of this utility model, the drawings used in the description of this utility model 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.
[0029] Figure 1 This is a schematic diagram of the structure of a meteorological monitoring platform provided in one embodiment of the present invention;
[0030] Figure 2This is a schematic diagram of a meteorological equipment correction structure provided in one embodiment of the present invention;
[0031] Figure 3 This is a structural schematic diagram of a support frame provided in one embodiment of the present invention.
[0032] Explanation of reference numerals in the attached drawings: meteorological monitoring platform 10, meteorological monitor 101, meteorological node 102, handheld meteorological device 1021, meteorological device correction structure 103, installation platform 1031, first support rod 1032, connecting rod 1033, first thread 1034, control equipment of integrated power generation system 20, support frame 30, triangular support plane 301, second support rod 302, first installation platform 303, installation thread 304. Detailed Implementation
[0033] 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, not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present utility model.
[0034] The terms "first," "second," etc., used in the specification and claims of this utility model are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of this utility model can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, the first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0035] It should be understood that the phrase "some embodiments" throughout the specification means that a specific feature, structure, or characteristic related to an embodiment is included in at least one embodiment of the present invention. Therefore, "some embodiments" appearing throughout the specification does not necessarily refer to the same embodiment. Furthermore, these specific features, structures, or characteristics can be combined in any suitable manner in one or more embodiments.
[0036] Reference Figure 1 The diagram shows a structural schematic of a meteorological monitoring platform 10 provided in an embodiment of the present invention, including: multiple meteorological nodes 102, a meteorological monitor 101, and a meteorological equipment correction structure 103;
[0037] The meteorological node 102 includes multiple handheld meteorological devices 1021;
[0038] One end of the meteorological monitor 101 is connected to the plurality of meteorological nodes 102, and the other end of the meteorological monitor 101 is connected to the control equipment 20 of the integrated power generation system;
[0039] like Figure 2 As shown, the meteorological equipment calibration structure 103 includes an installation platform 1031 for detachable installation of the handheld meteorological equipment 1021, as well as a plurality of first support rods 1032 and a plurality of connecting rods 1033;
[0040] The plurality of first support rods 1032 are arranged in a matrix, and one end of each first support rod 1032 is fixed to the ground, while the other end is fixed to a single installation platform 1031 and has multiple connection mounting points in multiple directions; both ends of each connecting rod 1033 are respectively fixed to the connection mounting points of the first support rod 1032 at adjacent positions; one side of the installation platform 1031 is fixed to the first support rod 1032, and the center of the other side is provided with a first thread 1034, which is mated with the second thread of the handheld meteorological device 1021.
[0041] Meteorological nodes can be related equipment or instruments for monitoring weather conditions;
[0042] The meteorological monitor is used to connect and integrate various meteorological nodes, and transmit the monitoring data of the meteorological nodes to the control equipment of the integrated power generation system, providing meteorological monitoring data support for the control equipment;
[0043] An integrated power generation system can specifically be a hydropower, wind power, and solar power integrated system. Hydropower generation requires monitoring meteorological data such as precipitation to optimize reservoir scheduling and power generation efficiency; wind power generation requires monitoring meteorological data such as wind speed and direction to ensure safe turbine operation and power generation forecasting; and solar power generation requires monitoring meteorological data such as solar radiation, cloud cover, and temperature to improve photovoltaic power generation efficiency and reduce the impact of cloudy weather.
[0044] The control equipment of the integrated power generation system can serve as the control center of the integrated power generation system, used for controlling and scheduling various system units.
[0045] Handheld meteorological devices are handheld meteorological monitoring devices that are small in size and lightweight, and can monitor meteorological data.
[0046] The meteorological equipment calibration structure is used to uniformly monitor and calibrate multiple handheld meteorological devices in the same area, which helps to reduce monitoring errors caused by environmental factors and individual differences.
[0047] Specifically, by forming a matrix distribution of first support rods and mounting platforms on them, handheld meteorological devices mounted on the mounting platforms can be positioned at the same height and level (ignoring minor errors) and in the same area. This facilitates uniform monitoring accuracy calibration of multiple handheld meteorological devices and reduces monitoring accuracy differences caused by environmental factors. Furthermore, by connecting the first support rods at adjacent locations to the connecting rods installed at the mounting points, the overall stability of the meteorological equipment calibration structure can be ensured, reducing the impact of factors such as strong winds on the stability of the calibration process.
[0048] In practical applications, multiple handheld meteorological devices can be periodically calibrated in batches on the meteorological equipment calibration structure to ensure consistent monitoring accuracy across all devices. The calibrated handheld meteorological devices are then connected and integrated through a meteorological monitor, enabling the data collected by these devices to be transmitted to the control unit of the integrated power generation system, providing meteorological data support for the system.
[0049] In some embodiments of this utility model, the meteorological node further includes a portable meteorological device, the handheld meteorological device includes a first handheld meteorological device, and the installation platform includes a first installation platform; wherein, the portable meteorological device includes the first handheld meteorological device, the first installation platform, and a support frame, the support frame includes a triangular support plane, one side of the triangular support plane is connected to a plurality of second support rods, and the first installation platform is installed on the other side, and the first handheld meteorological device is installed and fixed on the first installation platform.
[0050] like Figure 3 As shown, the support frame 30 includes a triangular support plane 301. One side of the triangular support plane 301 is connected to a plurality of second support rods 302, and the other side is equipped with a first mounting platform 303. The first mounting platform 303 is provided with mounting threads 304 that are matched with a first handheld meteorological device, and the first handheld meteorological device is mounted and fixed through the mounting threads 304.
[0051] In practical applications, some handheld meteorological devices that have been uniformly calibrated by the meteorological correction structure can be installed and fixed on the first installation platform and support structure as the first handheld meteorological device to complete the meteorological monitoring task of the corresponding area.
[0052] For example, multiple portable meteorological devices can be deployed within a certain range around other meteorological nodes (such as weather stations, rain gauges, and radiation stations), or within a designated area (such as a 3km×3km or 5km×5km grid) in the area where the integrated power generation system is located. These portable meteorological devices should be positioned at the same height as these meteorological nodes to complete the meteorological monitoring and data collection tasks. This allows the portable meteorological devices to be used in conjunction with fixed meteorological monitoring sites such as weather stations, rain gauges, and radiation stations, retaining the high-precision monitoring capabilities of portable devices and the long-sequence monitoring capabilities of fixed meteorological monitoring sites, thus ensuring the coordination and continuity of meteorological monitoring in the area where the integrated power generation system is located.
[0053] In some embodiments of this utility model, the second support rod is a telescopic structure, and the second support rod is provided with ground height markings.
[0054] In practical applications, the triangular support plane can be a horizontal plane, and the support frame can be fixed at an angle to the triangular support plane. The extension range of the second support rod can be 50cm-200cm from the ground. The ground height scale set on the second support rod allows the monitoring height of the portable meteorological equipment to be set according to actual conditions, avoiding the need for measuring with tools such as rulers and improving the convenience of the portable meteorological equipment.
[0055] In some embodiments of this utility model, the meteorological node further includes a UAV meteorological device, the handheld meteorological device further includes a second handheld meteorological device, and the installation platform further includes a second installation platform; wherein, the UAV meteorological device includes the second handheld meteorological device, the second installation platform, and the UAV, one side of the second installation platform is fixedly mounted to the UAV, and the other side is fixedly mounted with the second handheld meteorological device, and the UAV includes a fuselage, a power system component, a navigation system component, and an obstacle avoidance system component.
[0056] Power system components, which may include components such as motors, propellers and batteries, are used to provide flight power for the drone;
[0057] Navigation system components may include GPS (Global Positioning System) and inertial navigation systems to ensure accurate flight and positioning of the drone;
[0058] Obstacle avoidance system components are used to ensure the flight safety of drones, enabling them to avoid obstacles in their flight path.
[0059] In practical applications, some handheld meteorological devices, after being uniformly calibrated using a meteorological correction structure, can be mounted on drones as secondary handheld meteorological devices via a corresponding secondary mounting platform to complete aerial meteorological monitoring tasks. For example, drone meteorological equipment can be deployed within a certain range around a wind measurement tower within the integrated power generation system area, maintaining the same height as the tower, to collect and monitor wind energy-related parameters. This allows drone meteorological equipment to be used in conjunction with fixed meteorological monitoring stations such as wind measurement towers, retaining the high-precision meteorological monitoring capabilities of drones and the long-sequence meteorological monitoring capabilities of fixed stations, ensuring the coordination and continuity of meteorological monitoring in the area where the integrated power generation system is located.
[0060] In some embodiments of this utility model, the handheld meteorological device is further equipped with a meteorological sensor assembly and a level.
[0061] The meteorological sensor component is used to collect meteorological data, such as rainfall and wind speed, in the area where the handheld meteorological device is located.
[0062] Level instruments are used to ensure that handheld meteorological equipment remains level, or to ensure that the equipment remains level after being mounted on other equipment (such as drone meteorological equipment or portable meteorological equipment) via a mounting platform, thus ensuring the accuracy of data collection.
[0063] In some embodiments of this utility model, the meteorological sensor assembly includes one or more of a wind speed sensor, a wind direction sensor, a light intensity sensor, a temperature sensor, a humidity sensor, a barometric pressure sensor, and a rainfall sensor.
[0064] Wind speed and wind direction sensors are used to monitor wind speed and direction in the area where the integrated power generation system is located.
[0065] A light intensity sensor is used to monitor the light intensity in the area where the integrated power generation system is located.
[0066] Temperature sensors are used to monitor the temperature, humidity, and air pressure in the area where the integrated power generation system is located.
[0067] A humidity sensor is used to monitor the humidity in the area where the integrated power generation system is located.
[0068] A barometric pressure sensor is used to monitor the air pressure in the area where the integrated power generation system is located.
[0069] Rainfall sensors are used to monitor rainfall in the area where the integrated power generation system is located.
[0070] In some embodiments of this utility model, the weather monitor includes:
[0071] A meteorological monitoring equipment assembly, wherein the meteorological monitoring equipment assembly is connected to the meteorological node;
[0072] A data acquisition component, which is electrically connected to the meteorological monitoring equipment assembly;
[0073] A data transmission component, which is electrically connected to the data acquisition component and connected to the control device;
[0074] The power supply component is electrically connected to the meteorological monitoring equipment assembly, the data acquisition component, and the data transmission component.
[0075] Meteorological monitoring equipment modules are used to connect and integrate various meteorological nodes, and the connection methods include wired connection and wireless connection;
[0076] The data acquisition component is used to collect and process data transmitted from various meteorological nodes through the combination of meteorological monitoring equipment components;
[0077] The data transmission component is used to transmit the data collected by the data acquisition component to the control equipment of the integrated power generation system via wired, wireless or other means, so as to provide data support for the integrated power generation system.
[0078] The power supply unit is used to power the entire weather monitor, ensuring its continuous and stable operation.
[0079] In some embodiments of this invention, the power supply assembly includes a solar panel and a battery.
[0080] Solar panels are used to convert solar energy into electrical energy to power weather monitors;
[0081] The battery is used to store the electrical energy converted by the solar panels and to power the entire weather monitor at night or on rainy days.
[0082] In some embodiments of this utility model, the meteorological node further includes one or more of the following: meteorological station, wind measurement tower, rain gauge, radiation station, and hydrological station.
[0083] Meteorological stations are used to monitor atmospheric environmental parameters and provide meteorological data support for integrated power generation systems.
[0084] Wind measurement towers are used to measure wind energy parameters such as wind speed and wind direction, providing wind energy parameter support for integrated power generation systems.
[0085] Rain gauges are used to record rainfall data, providing rainfall data support for integrated power generation systems.
[0086] Radiation stations are used to monitor solar radiation (such as ultraviolet radiation and total radiation) and provide radiation data support for integrated power generation systems.
[0087] Hydrological stations are used to observe the water level and flow of rivers and lakes, providing hydrological data support for integrated power generation systems.
[0088] In practical applications, meteorological nodes such as weather stations, wind towers, and rain gauges are fixed meteorological monitoring sites. While fixed meteorological monitoring sites collect data over long time series, they typically only monitor a single meteorological parameter, and the number of sites is sparse. However, by using meteorological monitoring equipment modules, these fixed meteorological monitoring sites can be connected and integrated with handheld meteorological devices, drone meteorological devices, and portable meteorological devices, providing meteorological monitoring support for integrated power generation systems.
[0089] In some embodiments of this utility model, the data transmission component includes a wired communication component and a wireless communication component, wherein the wired communication component is electrically connected to the control device, and the wireless communication component is wirelessly connected to the control device.
[0090] Wired communication components are used to transmit the data collected and processed by the data acquisition components to the control equipment of the integrated power generation system via lines;
[0091] Wireless communication components are used to wirelessly transmit the data collected and processed by the data acquisition components to the control equipment of the integrated power generation system.
[0092] In some embodiments of this utility model, the data acquisition component includes a signal conditioning circuit and a microprocessor.
[0093] The signal conditioning circuit is used to amplify, filter, and convert analog to digital signals transmitted from various meteorological nodes.
[0094] A microprocessor is used to process the digital signals output by the signal conditioning circuit, including data fusion, error compensation, and data calibration.
[0095] In some embodiments of this invention, the data transmission component further includes a data display component.
[0096] The data display component is used to display the monitored meteorological data in the form of charts, curves, etc., so that users can easily view and analyze it.
[0097] In some embodiments of this utility model, an integrated power generation system is also provided, which includes control equipment and a meteorological monitoring platform as described above.
[0098] In practical applications, the control equipment can also be used to control UAV flight missions, monitor the status of various handheld meteorological devices, portable meteorological devices, and UAV meteorological devices in the system, and receive and process data transmitted by meteorological monitors.
[0099] The present invention has the following advantages: By using the first support rods that form a matrix distribution in the meteorological equipment correction structure and the mounting platform on them, multiple handheld meteorological devices mounted on the mounting platform can be positioned at the same height and in the same area, facilitating unified monitoring accuracy correction for multiple handheld meteorological devices and reducing monitoring accuracy differences caused by environmental factors; moreover, by connecting the first support rods at adjacent positions to the connecting rods installed at the mounting points, the overall stability of the meteorological equipment correction structure can be ensured, reducing the impact of factors such as strong winds on the stability of the correction process; by connecting meteorological monitors to multiple meteorological nodes, accurate meteorological monitoring support can be provided for the integrated power generation system, meeting the complex and diverse meteorological monitoring needs of the integrated power generation system.
[0100] Finally, it should be noted that in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or terminal device. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or terminal device that includes said element.
[0101] 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. A weather monitoring platform, characterized in that, The meteorological monitoring platform includes: multiple meteorological nodes, meteorological monitors, and a meteorological equipment calibration structure; The meteorological node includes multiple handheld meteorological devices; One end of the meteorological monitor is connected to the multiple meteorological nodes, and the other end of the meteorological monitor is connected to the control equipment of the integrated power generation system. The meteorological equipment calibration structure includes an installation platform for detachable installation of the handheld meteorological equipment, as well as multiple first support rods and multiple connecting rods; The plurality of first support rods are arranged in a matrix, and one end of each first support rod is fixed to the ground, while the other end is fixed to a single installation platform and has multiple connection points in multiple directions; both ends of each connecting rod are respectively fixed to the connection points of the first support rods at adjacent positions; one side of the installation platform is fixed to the first support rod, and the center of the other side is provided with a first thread, which is engaged with the second thread of the handheld meteorological device.
2. The weather monitoring platform of claim 1, wherein, The meteorological node also includes a portable meteorological device, the handheld meteorological device includes a first handheld meteorological device, and the installation platform includes a first installation platform; wherein, the portable meteorological device includes the first handheld meteorological device, the first installation platform and a support frame, the support frame includes a triangular support plane, one side of the triangular support plane is connected to a plurality of second support rods, and the first installation platform is installed on the other side, and the first handheld meteorological device is installed and fixed on the first installation platform.
3. The weather monitoring platform of claim 2, wherein, The second support rod is a telescopic structure and is equipped with ground height markings.
4. The weather monitoring platform of claim 1, wherein, The meteorological node also includes a drone meteorological device, the handheld meteorological device also includes a second handheld meteorological device, and the installation platform also includes a second installation platform; wherein, the drone meteorological device includes the second handheld meteorological device, the second installation platform and the drone, one side of the second installation platform is fixed to the drone, and the other side is fixed to the second handheld meteorological device, and the drone includes a fuselage, a power system component, a navigation system component and an obstacle avoidance system component.
5. The weather monitoring platform according to any of claims 1-4, characterized in that, The handheld meteorological device is also equipped with meteorological sensor components and a level.
6. The weather monitoring platform of claim 5, wherein, The meteorological sensor assembly includes one or more of the following: wind speed sensor, wind direction sensor, light intensity sensor, temperature sensor, humidity sensor, air pressure sensor, and rainfall sensor.
7. The weather monitoring platform of claim 1, wherein, The meteorological monitor includes: A meteorological monitoring equipment assembly, wherein the meteorological monitoring equipment assembly is connected to the meteorological node; A data acquisition component, which is electrically connected to the meteorological monitoring equipment assembly; A data transmission component, which is electrically connected to the data acquisition component and connected to the control device; The power supply component is electrically connected to the meteorological monitoring equipment assembly, the data acquisition component, and the data transmission component.
8. The weather monitoring platform of claim 7, wherein, The power supply components include solar panels and batteries.
9. The weather monitoring platform of claim 7, wherein, The meteorological nodes also include one or more of the following: meteorological stations, wind measurement towers, rain gauges, radiation stations, and hydrological stations.
10. The meteorological monitoring platform according to claim 7, characterized in that, The data transmission component includes a wired communication component and a wireless communication component. The wired communication component is electrically connected to the control device, and the wireless communication component is wirelessly connected to the control device.
11. The weather monitoring platform of claim 7, wherein, The data acquisition component includes a signal conditioning circuit and a microprocessor.
12. The weather monitoring platform of claim 7, wherein, The data transmission component also includes a data display component.
13. An integrated power generation system, characterized by, The integrated power generation system includes control equipment and a meteorological monitoring platform as described in any one of claims 1-12.