Photovoltaic cell panel support control method and device based on wind power data

By collecting and analyzing wind and sunlight data, the posture of the photovoltaic panel support is dynamically adjusted, solving the efficiency and safety issues of traditional photovoltaic panel supports under changing wind and sunlight conditions, and achieving the optimal operating state of the photovoltaic panels.

CN121386918APending Publication Date: 2026-01-23HUANENG XINJIANG ENERGY DEVELOPMENT CO LTD SOUTHERN XINJIANG CLEAN ENERGY BRANCH +2
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Patent Information

Application Number
CN202511464045.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-14
Publication Date
2026-01-23

AI Technical Summary

Technical Problem

Traditional photovoltaic panel supports cannot be dynamically adjusted according to wind and sunlight conditions, which means they cannot effectively reduce the impact of wind on photovoltaic panels in windy weather, and cannot adjust the tilt angle to maximize power generation efficiency when sunlight conditions change.

Method used

By collecting wind and solar data of the photovoltaic panel environment, the control mode is determined based on wind speed, and the target attitude of the photovoltaic panel support is calculated by combining wind and solar data, so as to balance the impact of wind on photovoltaic panels and the impact of solar conditions on power generation efficiency.

Benefits of technology

It achieves optimal operating conditions for photovoltaic panels under different environmental conditions, improves power generation efficiency and equipment safety, and reduces the risk of equipment damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a photovoltaic cell panel support control method and device based on wind power data, and relates to the field of photovoltaic technology, and the method comprises the steps: collecting wind power data and illumination data of an environment where a photovoltaic cell panel is located, the wind power data comprising a wind direction and a wind speed; the illumination data comprises illumination intensity and illumination direction; determining a control mode of a photovoltaic cell panel support according to the wind speed; and determining a target attitude of the photovoltaic cell panel bracket according to the wind power data and the illumination data in a corresponding control mode. The control mode of the photovoltaic cell panel support is determined through the wind speed, and the target attitude of the photovoltaic cell panel support is determined through a series of calculation and analysis in combination with wind power data and illumination data under the determined control mode. The determination of the target attitude aims to balance the influence of wind power on the photovoltaic cell panel and the influence of light conditions on the power generation efficiency so as to realize the optimal operation state of the photovoltaic cell panel.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of photovoltaic technology, and particularly relates to a photovoltaic cell panel support control method and device based on wind data. BACKGROUND

[0002] With the increasing demand for clean energy worldwide, solar photovoltaic power generation, as a renewable and pollution-free energy form, has been widely used and rapidly developed. Photovoltaic cell panels are the core components of solar photovoltaic power generation systems, and the complexity of their installation and operating environment poses challenges to the performance and safety of the system. In practical applications, photovoltaic cell panels are usually installed outdoors and need to be exposed to various natural environments, including wind, rain, snow, sunlight, etc. Among them, the influence of wind on photovoltaic cell panels is particularly significant.

[0003] The influence of wind on photovoltaic cell panels mainly manifests in two aspects: one is the structural safety aspect, strong winds can cause the support of photovoltaic cell panels to loosen, deform or even be damaged, and in severe cases, the photovoltaic cell panels can fall off, causing equipment damage and economic losses; the other is the power generation efficiency aspect, wind can change the inclination angle of photovoltaic cell panels, making them deviate from the optimal light receiving angle, thereby reducing power generation efficiency. In addition, the changes in wind speed and direction are unpredictable, which further increases the uncertainty and risk of photovoltaic cell panel operation.

[0004] Currently, most traditional photovoltaic cell panel supports are fixed and cannot be dynamically adjusted according to wind and light conditions. Although this fixed support design is simple in structure, it has obvious limitations when facing complex natural environments. For example, in strong wind weather, it cannot effectively reduce the impact of wind on photovoltaic cell panels; when light conditions change, it also cannot adjust the inclination angle of photovoltaic cell panels to maximize power generation efficiency. Although some photovoltaic tracking systems can adjust the angle of photovoltaic cell panels according to the position of the sun, these systems usually do not consider the impact of wind on photovoltaic cell panels and cannot provide effective protection in strong wind weather. SUMMARY

[0005] The present application aims to at least partially solve one of the technical problems in the related art.

[0006] To this end, the present application proposes a method, device, electronic equipment and storage medium.

[0007] An embodiment of the present application proposes a photovoltaic cell panel support control method based on wind data, comprising: collecting wind data and light data of the environment where the photovoltaic cell panel is located, the wind data including wind direction and wind speed; the light data including light intensity and light direction; determining the control mode of the photovoltaic cell panel support according to the wind speed; determining a target posture of the photovoltaic panel support according to the wind data and the illumination data in the corresponding control mode.

[0008] Optionally, the control mode of the photovoltaic panel support according to the wind speed comprises any one of the following: in a case where the wind speed is lower than a preset first wind speed threshold, determining the control mode as an illumination priority mode; in a case where the wind speed is higher than the first wind speed threshold and lower than a preset second wind speed threshold, determining the control mode as a balance mode; in a case where the wind speed is higher than the second wind speed threshold, determining the control mode as a windproof mode.

[0009] Optionally, in the illumination priority mode, the determining of the target posture of the photovoltaic panel support according to the wind data and the illumination data in the corresponding control mode comprises: simulating and calculating power generation of the photovoltaic panel in each posture according to the illumination intensity and the illumination direction; taking the posture with the highest power generation as the target posture.

[0010] Optionally, in the balance mode, the determining of the target posture of the photovoltaic panel support according to the wind data and the illumination data in the corresponding control mode comprises: calculating wind action force on the photovoltaic panel according to the wind direction and the wind speed to determine a candidate posture with the wind action force lower than a preset wind force threshold; simulating and calculating power generation of the photovoltaic panel in each candidate posture according to the illumination intensity and the illumination direction; taking the candidate posture with the highest power generation as the target posture.

[0011] Optionally, in the windproof mode, the determining of the target posture of the photovoltaic panel support according to the wind data and the illumination data in the corresponding control mode comprises: calculating wind action force on the photovoltaic panel according to the wind direction and the wind speed to determine a posture with the wind action force lower than a preset wind force threshold as the target posture.

[0012] Another aspect of the present application provides a photovoltaic panel support control device based on wind data, comprising: a collection module configured to collect wind data and illumination data of an environment where a photovoltaic panel is located, wherein the wind data comprises a wind direction and a wind speed, and the illumination data comprises an illumination intensity and an illumination direction; a mode determination module configured to determine a control mode of the photovoltaic panel support according to the wind speed; A support control module is configured to determine a target posture of the photovoltaic panel support according to the wind data and the illumination data in a corresponding control mode.

[0013] In an embodiment of the present application, an electronic device is provided, which includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the program, the method according to any one of the preceding aspects is implemented.

[0014] In an embodiment of the present application, a non-transitory computer-readable storage medium is provided, which stores a computer program. When the computer program is executed by a processor, the method according to any one of the preceding aspects is implemented.

[0015] In an embodiment of the present application, a chip is provided, which includes a processing circuit configured to execute the method according to any one of the preceding aspects.

[0016] In an embodiment of the present application, a computer program product is provided, which includes a program executable by a processor. When the program is executed by the processor, the method according to any one of the preceding aspects is implemented.

[0017] The photovoltaic panel support control method, device, electronic device, chip, and storage medium based on wind data provided by the present application determine the control mode of the photovoltaic panel support through the wind speed, and determine the target posture of the photovoltaic panel support through a series of calculations and analyses in the determined control mode in combination with the wind data and the illumination data. The determination of the target posture aims to balance the influence of wind on the photovoltaic panel and the influence of the illumination condition on the power generation efficiency, so as to achieve the best operation state of the photovoltaic panel.

[0018] The additional aspects and advantages of the present application will be partially given in the following description, partially become obvious from the following description, or be understood by the practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0019] The above and / or additional aspects and advantages of the present application will become apparent and be readily understood from the following description, taken in conjunction with the accompanying drawings, in which: Figure 1 A flowchart of a photovoltaic panel support control method based on wind data provided by an embodiment of the present application; Figure 2 A structural diagram of a photovoltaic panel support control device based on wind data provided by an embodiment of the present application; Figure 3 A structural diagram of an electronic device provided by an embodiment of the present application; Figure 4 A structural diagram of a chip provided by an embodiment of the present application. DETAILED DESCRIPTION

[0020] Embodiments of the present application are described below in detail, examples of which are shown in the accompanying drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are intended to explain the present application, and cannot be understood as a limitation of the present application.

[0021] The wind force data based photovoltaic cell panel support control method, device, electronic device, chip and storage medium of the embodiments of the present application are described below with reference to the accompanying drawings.

[0022] Figure 1 A flowchart of the wind force data based photovoltaic cell panel support control provided by the embodiments of the present application.

[0023] As an implementation manner, the wind force data based photovoltaic cell panel support control method of the embodiments of the present application can be configured in a wind force data based photovoltaic cell panel support control device, which can be applied in any electronic device, so that the electronic device can perform the wind force data based photovoltaic cell panel support control function.

[0024] The electronic device can be any device with computing capability, for example, a mobile terminal, such as a mobile phone, a tablet computer, a personal digital assistant, a wearable device, and the like, which has various operating systems, touch screens and / or display screens.

[0025] As another implementation manner, the wind force data based photovoltaic cell panel support control method of the embodiments of the present application can also be executed by a chip with processing capability, including an image signal processing chip (ISP), a central processing unit (CPU), an application-specific integrated circuit (ASIC), a digital signal processor (DSP), a field-programmable gate array (FPGA), a system on a chip (SOC), a reduced instruction set computer (RISC), and the like, which are not listed one by one.

[0026] It should be noted that the collection of user-related data in this application is carried out with the authorization of the user and in strict compliance with relevant laws and regulations such as privacy security.

[0027] As Figure 1 indicated, the method can include the following steps: Step 101, collecting wind data and light data of the environment where the photovoltaic panel is located, the wind data including wind direction and wind speed; the light data including light intensity and light direction; Step 102, determining the control mode of the photovoltaic panel support according to the wind speed; Step 103, determining the target posture of the photovoltaic panel support according to the wind data and light data in the corresponding control mode.

[0028] In this embodiment, data collection: through various sensors, wind data and light data of the environment where the photovoltaic panel is located are collected. Specifically, the wind data covers two key elements of wind direction and wind speed, which are used to evaluate the wind condition of the current environment; the light data includes light intensity and light direction, which are used to judge the good or bad of the light condition. These data can provide accurate environmental information for the subsequent adjustment of the support posture, ensuring that the photovoltaic panel can generate electricity in the optimal posture under different environmental conditions.

[0029] Control mode determination: taking wind speed as the core basis, the control mode of the photovoltaic panel support is determined. As a key indicator to measure the size of wind, wind speed is directly related to the stability and safety of the photovoltaic panel. When the wind speed is small, the light condition can be considered to adjust the support posture to maximize the power generation efficiency; when the wind speed is large, the stability of the support and the windproof performance of the photovoltaic panel need to be focused on to avoid equipment damage or a significant decrease in power generation efficiency caused by strong wind.

[0030] Target posture determination: under the determined control mode, the wind data and light data are comprehensively considered to calculate and determine the target posture of the photovoltaic panel support. This target posture aims to improve the power generation efficiency of the photovoltaic panel as much as possible under the premise of ensuring the safety of the equipment, achieving the balance between economic benefit and equipment safety.

[0031] Optionally, the control mode of the photovoltaic panel support is determined according to the wind speed, including any one of the following: In the case where the wind speed is lower than a preset first wind speed threshold, the control mode is determined to be a light priority mode; In the case where the wind speed is higher than the first wind speed threshold and lower than a preset second wind speed threshold, the control mode is determined to be a balanced mode; In the case where the wind speed is higher than the second wind speed threshold, the control mode is determined to be a windproof mode.

[0032] In this embodiment, the control mode of the photovoltaic panel support is determined based on the wind speed, including any one of the following: Sunlight Priority Mode: When the wind speed is below the preset first wind speed threshold, it indicates that the current wind force is weak and has little impact on the stability and safety of the photovoltaic panels. At this time, in order to maximize power generation efficiency, the control mode is set to sunlight priority mode. In this mode, the adjustment of the support posture is mainly based on the sunlight data, so that the photovoltaic panels are oriented as much as possible towards the position with high sunlight intensity and optimal direction, thereby increasing power generation.

[0033] Balanced Mode: When the wind speed is higher than the first wind speed threshold but lower than the preset second wind speed threshold, it indicates that the current wind force is at a moderate level. In this case, a balance needs to be struck between the power generation efficiency of the photovoltaic panels and the safety of the equipment; therefore, the control mode is determined to be the balanced mode. In this mode, the impact of wind on the equipment cannot be completely ignored, nor can the importance of sunlight conditions be overemphasized. Instead, both factors must be considered comprehensively, and the support posture must be adjusted reasonably to ensure that the equipment can maintain good power generation performance under relatively safe conditions.

[0034] Windproof Mode: When the wind speed exceeds the second wind speed threshold, it indicates strong winds that may pose a significant threat to the photovoltaic panels. In this mode, power generation efficiency is no longer the primary consideration; equipment safety becomes the most important objective. Therefore, the control mode is set to windproof mode. In this mode, the adjustment of the support structure's posture primarily aims to resist strong winds and reduce wind damage to the equipment, adjusting the photovoltaic panels to a relatively safe and stable position to prevent damage or collapse.

[0035] Optionally, in the light priority mode, determining the target orientation of the photovoltaic panel support based on the wind and light data in the corresponding control mode includes: The power generation of the photovoltaic panel under various postures is simulated and calculated based on the light intensity and light direction. The posture with the highest power generation is taken as the target posture.

[0036] In this embodiment, the power generation simulation calculation is performed as follows: Based on the collected data on light intensity and direction, a pre-established photovoltaic panel power generation model is used to simulate and calculate the power generation of the photovoltaic panel under various postures. This model can comprehensively consider the influence of factors such as the incident angle of light and the attenuation of light intensity on the power generation. Through extensive calculations and analysis, the power generation values ​​corresponding to different postures are obtained. In this way, the power generation potential under each posture can be accurately assessed, providing a scientific basis for the subsequent selection of the target posture.

[0037] Target Attitude Determination: After completing the power generation simulation calculations under various attitudes, the attitude with the highest power generation is determined as the target attitude. This attitude maximizes the power generation efficiency of the photovoltaic panels under current illumination conditions, thus providing users with comprehensive and detailed environmental information and strong support for the reasonable adjustment of the support posture. In this mode, the adjustment of the support mainly revolves around how to improve power generation efficiency, make full use of solar resources, and maximize economic benefits. This process fully reflects the pursuit of ultimate power generation efficiency and the maximization of photovoltaic panel performance in the light-priority mode.

[0038] Optionally, in the balanced mode, determining the target attitude of the photovoltaic panel support based on the wind and solar illumination data in the corresponding control mode includes: The wind force acting on the photovoltaic panel is calculated based on the wind direction and wind speed, and candidate postures where the wind force is less than a preset wind force threshold are determined. The power generation of the photovoltaic panel under each of the candidate postures is simulated and calculated based on the light intensity and light direction. The candidate posture with the highest power generation is selected as the target posture.

[0039] In this embodiment, under the balanced mode, determining the target posture of the photovoltaic panel support based on the wind and solar radiation data under the corresponding control mode includes: Wind Force Calculation and Candidate Attitude Determination: First, based on the collected wind direction and speed data, the wind forces acting on the photovoltaic panels under different attitudes are calculated using principles and formulas from fluid mechanics and other related fields. This method allows for an accurate assessment of the impact of wind on the equipment. Next, candidate attitudes where the wind force is less than a preset wind force threshold are determined. This wind force threshold is set after rigorous safety assessments and experimental verification to ensure that wind forces within this threshold range do not pose a significant threat to the stability and safety of the photovoltaic panels and support structures. The selected candidate attitudes not only meet the basic safety requirements of the equipment but also provide possibilities for further optimization under subsequent sunlight conditions.

[0040] Simulation calculation of power generation under candidate postures: After determining the candidate postures that meet the wind safety conditions, the power generation of the photovoltaic panels under each candidate posture is further simulated and calculated based on the data of light intensity and direction. Similar to the calculation method in the light-priority mode, but at this stage, the focus is on maximizing power generation efficiency while meeting safety conditions. Through detailed calculation and analysis of each candidate posture, the posture with the highest power generation is identified as the final target posture. This step fully embodies the core idea of ​​the balanced mode: seeking the optimal balance between safety and efficiency, ensuring stable equipment operation while fully utilizing solar resources, thus maximizing overall benefits.

[0041] Target attitude determination: After the above two steps of screening and calculation, the candidate attitude with the highest power generation was finally determined as the target attitude. Under this attitude, the photovoltaic panels can achieve good power generation performance while ensuring their own safety, achieving an effective balance between wind and sunlight conditions. This process fully considers the comprehensive impact of environmental factors. Through the collection, calculation, and analysis of various data, precise control of the photovoltaic panel support was achieved, improving the adaptability and reliability of the photovoltaic system in complex environments.

[0042] Optionally, in windproof mode, determining the target orientation of the photovoltaic panel support based on the wind force data and sunlight data in the corresponding control mode includes: The wind force acting on the photovoltaic panel is calculated based on the wind direction and wind speed, and the posture in which the wind force is less than a preset wind force threshold is determined as the target posture.

[0043] In this embodiment, under windproof mode, due to the high wind speed, the impact of wind on the photovoltaic panels becomes the primary consideration. At this time, the wind force acting on the photovoltaic panels is accurately calculated based on wind direction and speed data. This calculation process needs to take into account the characteristics of the wind and parameters such as the shape and area of ​​the photovoltaic panels to ensure the accuracy of the calculation results and provide a reliable basis for subsequent attitude adjustments.

[0044] The target posture is defined as the posture where the wind force is less than a preset wind force threshold. This wind force threshold is set based on the equipment's design load-bearing capacity and safety standards, aiming to ensure that the photovoltaic panels and supports can withstand the impact of wind in strong wind environments, avoiding damage, collapse, and other safety accidents. In determining the target posture, the primary focus is on reducing the impact of wind on the equipment, improving its stability and wind resistance. At this point, although the impact of sunlight conditions on power generation efficiency is temporarily secondary, reasonable posture adjustments can still, to some extent, maintain power generation efficiency, allowing the photovoltaic panels to minimize the decline in power generation efficiency while ensuring safety. This reflects the high priority placed on equipment safety in wind-resistant mode and the design philosophy of maintaining power generation function as much as possible while ensuring safety.

[0045] To achieve the above embodiments, this application also proposes a photovoltaic panel support control device based on wind power data.

[0046] Figure 2 This is a schematic diagram of a photovoltaic panel support control device based on wind power data, provided as an embodiment of this application.

[0047] like Figure 2 As shown, the device may include: The data acquisition module 210 is used to collect wind and sunlight data of the environment where the photovoltaic panel is located. The wind data includes wind direction and wind speed; the sunlight data includes sunlight intensity and sunlight direction. The mode determination module 220 is used to determine the control mode of the photovoltaic panel support according to the wind speed. The bracket control module 230 is used to determine the target posture of the photovoltaic panel bracket based on the wind power data and sunlight data in the corresponding control mode.

[0048] It should be noted that the foregoing explanation of the method embodiments also applies to the apparatus of this embodiment, and will not be repeated here.

[0049] To implement the above embodiments, this application also proposes a non-transitory computer-readable storage medium storing a computer program thereon, which, when executed by a processor, implements the method described in the foregoing method embodiments.

[0050] To implement the above embodiments, this application also proposes a computer program product having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the method described in the foregoing method embodiments.

[0051] To implement the above embodiments, this application also proposes an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein when the processor executes the program, it implements the method described in the foregoing method embodiments.

[0052] Figure 3 This is a schematic diagram of the structure of an electronic device provided in an embodiment of this application. For example, the electronic device 800 may be a mobile phone, computer, digital broadcasting terminal, messaging device, game console, tablet device, medical device, fitness equipment, personal digital assistant, etc.

[0053] Reference Figure 3 The electronic device 800 may include one or more of the following components: processing component 802, memory 804, power component 806, multimedia component 808, audio component 810, input / output (I / O) interface 812, sensor component 814, and communication component 816.

[0054] Processing component 802 typically controls the overall operation of electronic device 800, such as operations associated with display, telephone calls, data communication, camera operation, and recording operations. Processing component 802 may include one or more processors 820 to execute instructions to complete all or part of the steps of the methods described above. Furthermore, processing component 802 may include one or more modules to facilitate interaction between processing component 802 and other components. For example, processing component 802 may include a multimedia module to facilitate interaction between multimedia component 808 and processing component 802.

[0055] Memory 804 is configured to store various types of data to support the operation of electronic device 800. Examples of such data include instructions for any application or method operating on electronic device 800, contact data, phonebook data, messages, pictures, videos, etc. Memory 804 can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic storage, flash memory, magnetic disk, or optical disk.

[0056] Power component 806 provides power to various components of electronic device 800. Power component 806 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to electronic device 800.

[0057] Multimedia component 808 includes a screen that provides an output interface between the electronic device 800 and the user. In some embodiments, the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touchscreen to receive input signals from the user. The touch panel includes one or more touch sensors to sense touches, swipes, and gestures on the touch panel. The touch sensors may sense not only the boundaries of the touch or swipe action but also the duration and pressure associated with the touch or swipe operation. In some embodiments, multimedia component 808 includes a front-facing camera and / or a rear-facing camera. When the electronic device 800 is in an operating mode, such as a shooting mode or a video mode, the front-facing camera and / or the rear-facing camera may receive external multimedia data. Each front-facing camera and rear-facing camera may be a fixed optical lens system or have focal length and optical zoom capabilities.

[0058] Audio component 810 is configured to output and / or input audio signals. For example, audio component 810 includes a microphone (MIC) configured to receive external audio signals when electronic device 800 is in an operating mode, such as call mode, recording mode, and voice recognition mode. The received audio signals may be further stored in memory 804 or transmitted via communication component 816. In some embodiments, audio component 810 also includes a speaker for outputting audio signals.

[0059] I / O interface 812 provides an interface between processing component 802 and peripheral interface modules, such as keyboards, click wheels, buttons, etc. These buttons may include, but are not limited to, home buttons, volume buttons, power buttons, and lock buttons.

[0060] Sensor assembly 814 includes one or more sensors for providing state assessments of various aspects of electronic device 800. For example, sensor assembly 814 can detect the on / off state of electronic device 800, the relative positioning of components such as the display and keypad of electronic device 800, changes in position of electronic device 800 or a component of electronic device 800, the presence or absence of user contact with electronic device 800, orientation or acceleration / deceleration of electronic device 800, and temperature changes of electronic device 800. Sensor assembly 814 may include a proximity sensor configured to detect the presence of nearby objects without any physical contact. Sensor assembly 814 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, sensor assembly 814 may also include an accelerometer, gyroscope, magnetometer, pressure sensor, or temperature sensor.

[0061] Communication component 816 is configured to facilitate wired or wireless communication between electronic device 800 and other devices. Electronic device 800 can access wireless networks based on communication standards, such as WiFi, 4G, or 5G, or combinations thereof. In one exemplary embodiment, communication component 816 receives broadcast signals or broadcast-related information from an external broadcast management system via a broadcast channel. In one exemplary embodiment, communication component 816 also includes a near-field communication (NFC) module to facilitate short-range communication. For example, the NFC module may be implemented based on radio frequency identification (RFID) technology, Infrared Data Association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology, and other technologies.

[0062] In an exemplary embodiment, the electronic device 800 may be implemented by one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field-programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors, or other electronic components to perform the methods described above.

[0063] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a memory 804 including instructions, which can be executed by a processor 820 of an electronic device 800 to perform the above-described method. For example, the non-transitory computer-readable storage medium may be a ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, and optical data storage device, etc.

[0064] To implement the above embodiments, this application also proposes a chip, including: the chip includes a processing circuit configured to perform the methods provided in the foregoing embodiments.

[0065] Figure 4 This is a schematic diagram of the structure of a chip according to an embodiment of this application. See also... Figure 4 The diagram shown is a schematic representation of the structure of chip 1100, but it is not limited to this.

[0066] Chip 1100 includes processing circuitry 1101, which is configured to perform any of the above methods.

[0067] In some embodiments, chip 1100 further includes one or more interface circuits 1102. Optionally, the interface circuit 1102 is connected to memory 1103, and the interface circuit 1102 can be used to receive signals from memory 1103 or other devices, and the interface circuit 1102 can be used to send signals to memory 1103 or other devices. For example, the interface circuit 1102 can read instructions stored in memory 1103 and send the instructions to processing circuit 1101.

[0068] In some embodiments, the interface circuit 1102 performs at least one of the communication steps such as sending and / or receiving in the above method, while the processing circuit 1101 performs other steps.

[0069] In some embodiments, the terms interface circuit, interface, transceiver pin, transceiver, etc., can be used interchangeably.

[0070] In some embodiments, chip 1100 further includes one or more memories 1103 for storing instructions. Optionally, all or part of the memories 1103 may be located outside of chip 1100.

[0071] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.

[0072] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0073] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing custom logic functions or processes, and the scope of the preferred embodiments of this application includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the functions involved, as should be understood by those skilled in the art to which embodiments of this application pertain.

[0074] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered as a sequenced list of executable instructions for implementing logical functions, and can be embodied in any computer-readable medium for use by, or in conjunction with, an instruction execution system, apparatus, or device (such as a computer-based system, a processor-included system, or other system that can fetch and execute instructions from, an instruction execution system, apparatus, or device). For the purposes of this specification, "computer-readable medium" can be any means that can contain, store, communicate, propagate, or transmit programs for use by, or in conjunction with, an instruction execution system, apparatus, or device. More specific examples (a non-exhaustive list) of computer-readable media include: an electrical connection having one or more wires (electronic device), a portable computer disk drive (magnetic device), random access memory (RAM), read-only memory (ROM), erasable and editable read-only memory (EPROM or flash memory), fiber optic devices, and portable optical disc read-only memory (CDROM). Alternatively, the computer-readable medium may be paper or other suitable media on which the program can be printed, since the program can be obtained electronically, for example, by optically scanning the paper or other medium, followed by editing, interpreting, or otherwise processing as necessary, and then stored in a computer memory.

[0075] It should be understood that various parts of this application can be implemented using hardware, software, firmware, or a combination thereof. In the above embodiments, multiple steps or methods can be implemented using software or firmware stored in memory and executed by a suitable instruction execution system. For example, if implemented in hardware as in another embodiment, it can be implemented using any one or a combination of the following techniques known in the art: discrete logic circuits having logic gates for implementing logical functions on data signals, application-specific integrated circuits (ASICs) having suitable combinational logic gates, programmable gate arrays (PGAs), field-programmable gate arrays (FPGAs), etc.

[0076] Those skilled in the art will understand that all or part of the steps of the methods described in the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, and when executed, it includes one or a combination of the steps of the method embodiments.

[0077] Furthermore, the functional units in the various embodiments of this application can be integrated into a processing module, or each unit can exist physically separately, or two or more units can be integrated into a module. The integrated module can be implemented in hardware or as a software functional module. If the integrated module is implemented as a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium.

[0078] The storage medium mentioned above can be a read-only memory, a disk, or an optical disk, etc. Although embodiments of this application have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting this application. Those skilled in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of this application.

Claims

1. A photovoltaic panel support control method based on wind power data, characterized in that, Includes the following steps: Collect wind and solar data of the environment where the photovoltaic panels are located. The wind data includes wind direction and wind speed; the solar data includes solar intensity and solar direction. The control mode of the photovoltaic panel support is determined based on the wind speed. In the corresponding control mode, the target posture of the photovoltaic panel support is determined based on the wind force data and sunlight data.

2. The method according to claim 1, characterized in that, The control mode for determining the photovoltaic panel support based on the wind speed includes any one of the following: If the wind speed is lower than a preset first wind speed threshold, the control mode is determined to be the light priority mode. When the wind speed is higher than the first wind speed threshold and lower than the preset second wind speed threshold, the control mode is determined to be the balanced mode. If the wind speed is higher than the second wind speed threshold, the control mode is determined to be a windproof mode.

3. The method according to claim 2, characterized in that, In the light-priority mode, determining the target orientation of the photovoltaic panel support based on the wind and light data in the corresponding control mode includes: The power generation of the photovoltaic panel under various postures is simulated and calculated based on the light intensity and light direction. The posture with the highest power generation is taken as the target posture.

4. The method according to claim 2, characterized in that, In the balanced mode, determining the target attitude of the photovoltaic panel support based on the wind and solar radiation data in the corresponding control mode includes: The wind force acting on the photovoltaic panel is calculated based on the wind direction and wind speed, and candidate postures where the wind force is less than a preset wind force threshold are determined. The power generation of the photovoltaic panel under each of the candidate postures is simulated and calculated based on the light intensity and light direction. The candidate posture with the highest power generation is selected as the target posture.

5. The method according to claim 2, characterized in that, In windproof mode, determining the target posture of the photovoltaic panel support based on the wind force data and sunlight data in the corresponding control mode includes: The wind force acting on the photovoltaic panel is calculated based on the wind direction and wind speed, and the posture in which the wind force is less than a preset wind force threshold is determined as the target posture.

6. A photovoltaic panel support control device based on wind power data, characterized in that, include: The data acquisition module is used to collect wind and solar data of the environment where the photovoltaic panels are located. The wind data includes wind direction and wind speed; the solar data includes solar intensity and solar direction. The mode determination module is used to determine the control mode of the photovoltaic panel support based on the wind speed. The support control module is used to determine the target posture of the photovoltaic panel support based on the wind and sunlight data in the corresponding control mode.

7. An electronic device, characterized in that, It includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein when the processor executes the program, it implements the method as described in any one of claims 1-5.

8. A non-transitory computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by a processor, it implements the method as described in any one of the preceding claims 1-5.

9. A chip, characterized in that, The chip includes processing circuitry configured to perform the method described in any one of claims 1-5.

10. A computer program product, characterized in that, It includes a computer program, which, when executed by a processor, implements the method as described in any one of claims 1-5.