System and method for setting operation condition of test equipment for offshore wind turbine generator

By integrating on-site testing, data acquisition, simulation analysis and simulation modules in the operating condition setting system of offshore wind turbine test equipment, the real-time data of offshore wind turbine units are directly obtained and utilized, and the problem of inaccurate working condition simulation in the existing technology is solved, and the reliability of accurate simulation of the operating status of offshore wind turbine units is achieved.

CN119916710AActive Publication Date: 2025-05-02SHANDONG UNIV

Patent Information

Application Number
CN202510078997.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-05-02
Estimated Expiration
2045-01-17

AI Technical Summary

Technical Problem

The existing offshore wind turbine operating status simulation methods cannot achieve on-site testing and real-time working condition mapping, resulting in low accuracy and reliability of working condition simulation and performance test results.

Method used

It provides a working condition setting system for offshore wind turbine test equipment, including on-site testing module, on-site data acquisition module, simulation analysis and control module, working condition setting and simulation module and test data management module. This system directly obtains real-time on-site data of real offshore wind turbines, conducts comprehensive multi-parameter testing, collects and displays test data in real time, and uses the test data as a training set for simulation analysis and control signals to generate control signals, achieving accurate simulation of the operating status of offshore wind turbines.

Benefits of technology

The accuracy and reliability of operating condition simulation and performance test results are improved, the authenticity of offshore environment simulation data is ensured, and the accurate simulation of the operating status of offshore wind turbines is achieved by verifying the working condition simulation effect.

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Abstract

The invention provides an operation condition setting system and method for test equipment for an offshore wind turbine generator, and belongs to the technical field of wind power generation. The field test module is used for carrying out omnibearing multi-parameter test on the offshore wind turbine generator; the field data acquisition module is used for acquiring and displaying the obtained test data in real time; the simulation analysis and control module is used for carrying out simulation analysis and controlling the working condition setting and simulation module; the working condition setting and simulation module is used for performing working condition simulation on the offshore wind turbine generator; and the test data management module is used for analyzing and managing the obtained simulation data. According to the invention, on the basis of directly obtaining real onsite real-time data of the offshore wind turbine generator, accurate simulation of the operation state of the offshore wind turbine generator can be realized.
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Description

Technical Field

[0001] The present invention belongs to the technical field of wind power generation, and in particular relates to a system and method for setting operating conditions of test equipment for offshore wind turbines. Background Art

[0002] The statements in this section merely provide background information related to the present invention and do not necessarily constitute prior art.

[0003] With the continuous growth of global energy demand and the urgent need for clean energy, offshore wind power has become a renewable energy field that has attracted much attention. The marine environment has advantages such as abundant wind resources, high energy density and less land occupation, and is widely regarded as an important scenario for achieving future energy transformation. However, the operating environment of offshore wind turbines is complex and changeable. How to accurately simulate the operating status of offshore wind turbines has become an important challenge.

[0004] After research, it is found that the existing simulation methods for the operation status of offshore wind turbines still have some technical problems, such as:

[0005] (1) In order to simulate the operating status of offshore wind turbines, ground test platforms for offshore wind turbines have been developed. However, these ground test platforms for offshore wind turbines are unable to conduct on-site testing and map the actual working conditions to the test equipment of the ground test platform in real time, which results in low accuracy and reliability of the working condition simulation and performance test results.

[0006] (2) Patent application number 202410577240.1 is an offshore wind turbine evaluation system based on ground tests and virtual tests. It uses a virtual test system to control the ground test platform to simulate the operating conditions, and transmits the operating status data and grid interaction data during the operation process to the virtual test system for performance evaluation. However, this method directly uses the virtual offshore environmental conditions constructed by the environmental simulation module, and cannot guarantee the data source and authenticity of the offshore environmental simulation, and has not verified the effect of the operating condition simulation. Therefore, the reliability and accuracy of the operating condition simulation and performance test results cannot be guaranteed. Summary of the invention

[0007] In order to overcome the deficiencies of the above-mentioned prior art, the present invention provides a system and method for setting operating conditions of test equipment for offshore wind turbines, which can accurately simulate the operating status of offshore wind turbines based on directly obtaining real-time data of actual offshore wind turbines.

[0008] To achieve the above objectives, one or more embodiments of the present invention provide the following technical solutions:

[0009] A first aspect of the present invention provides an operating condition setting system for a test equipment for an offshore wind turbine.

[0010] An operating condition setting system for a test equipment for an offshore wind turbine generator system, comprising:

[0011] The field test module is configured to: conduct a full range of multi-parameter tests on offshore wind turbines;

[0012] The field data acquisition module is configured to: collect and display the obtained test data in real time, and send the test data to the simulation analysis and control module;

[0013] The simulation analysis and control module is configured to: perform simulation analysis using the test data transmitted by the field data acquisition module as a training set, and generate control signals to control the working condition setting and simulation module; after receiving the simulation data returned by the test data management module, optimize the working condition setting and simulation module using the obtained simulation data as a test set;

[0014] The working condition setting and simulation module is configured to: simulate the working condition of the offshore wind turbine according to the obtained control signal, and send the simulation data generated during the working condition simulation to the test data management module;

[0015] The test data management module is configured to: return the obtained simulation data to the simulation analysis and control module; at the same time, analyze the simulation data and visualize the analysis results.

[0016] Furthermore, the field test module includes an environmental test unit, a working power supply test unit, a field device test unit, an AD unit and an acquisition interface; wherein the environmental test unit, the working power supply test unit and the field device test unit are connected to the acquisition interface via the AD unit.

[0017] Furthermore, the field data acquisition module includes a main controller, a storage unit, a display unit, a communication unit connected to the main controller, and a remote monitoring unit connected to the communication unit.

[0018] Furthermore, the main controller is used to parse and execute the instructions sent by the remote monitoring unit; at the same time, it is also used to call the data stored in the storage unit and transmit the called data to the remote monitoring unit through the communication unit.

[0019] Furthermore, the working condition setting and simulation module includes a traction motor, a five-degree-of-freedom loading device, a tested wind turbine, a power grid simulator, a cooling device, a controller, a transmission shaft and a sensor.

[0020] A second aspect of the present invention provides a method for setting operating conditions of a test equipment for an offshore wind turbine.

[0021] A method for setting operating conditions of a test device for an offshore wind turbine generator system, comprising:

[0022] Conduct all-round multi-parameter testing on offshore wind turbines;

[0023] Collect and display the obtained test data in real time;

[0024] Perform simulation analysis using the test data as a training set, and generate control signals to control the working condition setting and simulation module;

[0025] Performing operating condition simulation on offshore wind turbines based on the obtained control signals;

[0026] The obtained simulation data is used as a test set to optimize the working condition setting and the simulation module; at the same time, the simulation data is analyzed and the analysis results are visualized.

[0027] Furthermore, the test data is used as a training set for simulation analysis and generation of control signals, including: establishing a finite element model; identifying the loading signal of the working condition; and generating a control signal according to the identified loading signal.

[0028] Furthermore, a finite element model is established, specifically: the CAD model is geometrically cleaned, then the CAD model is meshed, and materials are assigned to the CAD model.

[0029] A third aspect of the present invention provides a computer-readable storage medium having a program stored thereon, which, when executed by a processor, implements the steps in a method for setting operating conditions of a test equipment for an offshore wind turbine as described in the second aspect of the present invention.

[0030] The fourth aspect of the present invention provides an electronic device, including a memory, a processor, and a program stored in the memory and executable on the processor. When the processor executes the program, the steps in the method for setting operating conditions of a test equipment for an offshore wind turbine as described in the second aspect of the present invention are implemented.

[0031] One or more of the above technical solutions have the following beneficial effects:

[0032] (1) The present invention provides an operating condition setting system for a test equipment for an offshore wind turbine, comprising a field test module for conducting all-round multi-parameter tests on the offshore wind turbine, a field data acquisition module for collecting and displaying the obtained test data in real time, and a simulation analysis and control module for performing simulation analysis and controlling the operating condition setting and simulation module. Therefore, the present invention can directly conduct on-site tests on the offshore wind turbine and map the actual operating conditions to the simulation analysis and control module through the field test module and the field data acquisition module, thereby effectively improving the accuracy and reliability of the operating condition simulation and performance test results.

[0033] (2) The present invention uses the actual field test data of the offshore wind turbine as the environmental working condition, and on this basis, uses the actual working condition test data shown by the test data as a training set for simulation analysis, and generates a control signal to control the working condition setting and simulation module; the working condition of the offshore wind turbine is simulated according to the obtained control signal, and then the working condition setting and simulation module are optimized using the obtained simulation data as a test set. Therefore, the present invention can not only ensure the data source and authenticity of the offshore environmental simulation, but also verify the effect of the working condition simulation, thereby realizing accurate simulation of the operating status of the offshore wind turbine.

[0034] Advantages of additional aspects of the present invention will be given in part in the following description, and in part will become obvious from the following description, or will be learned through practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] The accompanying drawings in the specification, which constitute a part of the present invention, are used to provide a further understanding of the present invention. The exemplary embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute improper limitations on the present invention.

[0036] Figure 1 This is a structural diagram of an operating condition setting system for a test equipment for an offshore wind turbine in Embodiment 1 of the present invention.

[0037] Figure 2 This is a structural diagram of the field test module in the first embodiment of the present invention.

[0038] Figure 3 This is a structural diagram of the field data acquisition module in the first embodiment of the present invention.

[0039] Figure 4 This is a structural diagram of the test data management module in Example 1 of the present invention.

[0040] Figure 5 This is a flow chart of a method for setting operating conditions of a test equipment for an offshore wind turbine in Embodiment 2 of the present invention. DETAILED DESCRIPTION

[0041] It should be noted that the following detailed descriptions are exemplary and are intended to provide further explanation of the present invention. Unless otherwise specified, all technical and scientific terms used herein have the same meanings as those commonly understood by those skilled in the art to which the present invention belongs.

[0042] It should be noted that the terms used herein are for describing specific embodiments only and are not intended to be limiting of exemplary embodiments according to the present invention.

[0043] In the absence of conflict, the embodiments of the present invention and the features of the embodiments may be combined with each other.

[0044] Embodiment 1

[0045] This embodiment discloses an operating condition setting system for a test equipment for an offshore wind turbine.

[0046] like Figure 1 As shown, a system for setting operating conditions of a test equipment for an offshore wind turbine generator system comprises:

[0047] The field test module is configured to: conduct a full range of multi-parameter tests on offshore wind turbines;

[0048] The field data acquisition module is configured to: collect and display the obtained test data in real time, and send the test data to the simulation analysis and control module;

[0049] The simulation analysis and control module is configured to: perform simulation analysis using the test data transmitted by the field data acquisition module as a training set, and generate control signals to control the working condition setting and simulation module; after receiving the simulation data returned by the test data management module, optimize the working condition setting and simulation module using the obtained simulation data as a test set;

[0050] The working condition setting and simulation module is configured to: simulate the working condition of the offshore wind turbine according to the obtained control signal, and send the simulation data generated during the working condition simulation to the test data management module;

[0051] The test data management module is configured to: return the obtained simulation data to the simulation analysis and control module; at the same time, analyze the simulation data and visualize the analysis results.

[0052] Based on the above system design, the present invention can realize accurate simulation of the operating status of offshore wind turbines on the basis of directly obtaining the real-time data of the actual offshore wind turbines. To facilitate the understanding of the technical solution of the present invention, the specific implementation steps in the technical solution of the present invention are further explained and illustrated below.

[0053] like Figure 2As shown, the field test module includes an environmental test unit, a working power supply test unit, a field equipment test unit, an AD unit (i.e., a digital-to-analog conversion unit) and an acquisition interface; wherein the environmental test unit, the working power supply test unit and the field equipment test unit are connected to the acquisition interface via the AD unit. The field test module is specifically used to conduct all-round multi-parameter testing of offshore wind turbines, and to conduct real-time and comprehensive monitoring and testing of the actual operating status of wind turbines.

[0054] Furthermore, the environmental testing unit includes a temperature sensor, a humidity sensor, a wind speed sensor, a wind direction sensor, an air pressure sensor, a smoke sensor, a wave height and direction sensor, a profile flow velocity sensor, etc. The environmental testing unit and the communication unit are used to measure environmental data at the location of the offshore wind turbine.

[0055] Furthermore, the working power supply test unit includes a current transformer and a voltage transformer, which are used to measure current and voltage data of the working power supply.

[0056] Furthermore, the field equipment testing unit includes a torque strain gauge, a frequency meter, a power meter and an encoder meter, etc., which are used to measure the working status parameters of the field equipment.

[0057] Furthermore, the AD unit is connected to the field data acquisition module through an acquisition interface, and is used to convert the analog signals generated by all sensors in the field test module into digital signals, so that the data is transmitted to the main controller in the field data acquisition module for subsequent processing and finally stored in the storage unit.

[0058] In actual application, based on the various functional units set in the field test module, multiple parameters including the electrical characteristics of offshore wind turbines, load characteristics of various structural components, foundation load characteristics, meteorological characteristics, ocean current characteristics and wave characteristics can be measured in real time.

[0059] like Figure 3 As shown, the field data acquisition module includes a main controller, a storage unit, a display unit, a communication unit connected to the main controller, and a remote monitoring unit connected to the communication unit. The field data acquisition module is responsible for collecting and processing the data obtained by the field test module, storing the data, and displaying the collected data in real time to achieve real-time monitoring. At the same time, the data is transmitted to the simulation analysis and control module to complete the process of inputting the test data into the ground test platform.

[0060] Furthermore, the main controller is responsible for parsing and executing the instructions sent by the remote monitoring unit; the main controller is connected to the storage unit and can call the data stored in the storage unit; at the same time, the main controller is also connected to the display module and can display the collected data so that the monitoring personnel can intuitively monitor the on-site conditions; the main controller is connected to the communication unit and can transmit the called data to the remote monitoring unit. Preferably, in this embodiment, the display unit uses a liquid crystal screen; the specific medium used by the display unit for display can be selected according to actual conditions.

[0061] like Figure 3 As shown, the remote monitoring unit of the field data acquisition module is connected to the main controller through the communication unit to obtain the collected real-time data; at the same time, the communication unit is connected to the simulation analysis and control module for data transmission.

[0062] Furthermore, the communication unit is RS485 communication, and the remote monitoring unit includes a monitoring center and workstation computers at different monitoring points. The workstations set up at each monitoring point are used to monitor different environments and equipment data, and monitor and manage the corresponding equipment by sending instructions to the main controller, while refreshing the data source regularly to ensure the validity of the current data; the monitoring center can also obtain data collected on site, and can also obtain the operating data of the workstations at each monitoring point in real time, and refresh the data source regularly to ensure the validity of the current data. The monitoring center can also process and analyze the acquired data and transmit the data to the simulation analysis and control module through the communication unit.

[0063] The simulation analysis and control module is used to perform simulation analysis using the test data transmitted by the field data acquisition module as a training set, and to control the working condition setting and simulation module by generating control signals. In addition, the simulation analysis and control module can receive the simulation data generated by the working condition setting and simulation module through the test data management module. After receiving the simulation data returned by the test data management module, the obtained simulation data can be used as a test set to optimize the working condition setting and simulation module.

[0064] The working condition setting and simulation module is responsible for simulating the performance of offshore wind turbines under various working conditions. The working condition setting and simulation module includes a traction motor, a five-degree-of-freedom loading device, a tested wind turbine, a power grid simulator, a cooling device, a controller, a transmission shaft, and a sensor.

[0065] Specifically, the working condition setting and simulation module drags the wind turbine under test by dragging the motor to simulate various load states of offshore wind turbines under various working conditions; at the same time, a circular loading plate is fixed on the main transmission shaft to simulate the gravity and moment of inertia of load-bearing components such as blades, hubs, and cabin covers, and serves as the object of the five-degree-of-freedom loading device. The unit under test contains test pieces such as gearboxes and generators; the power grid simulator is used to detect whether the electricity generated by the wind turbine meets the requirements of grid-connected power quality; the cooling device is used to control the system temperature; and the sensor is used to measure the required data, including mechanical and electrical quantities.

[0066] Furthermore, the working condition setting and simulation module measures mechanical and electrical quantities through various sensors; the measured mechanical quantity data include: stress, force, torque, pressure, temperature, displacement, position, acceleration and flow, etc.; the measured electrical quantity data include: voltage, current, frequency, active power, reactive power, etc. of the traction motor, the tested wind turbine set and the power grid simulator.

[0067] Furthermore, the working condition setting and simulation module receives control signals from the simulation analysis and control module through RS485 communication, and controls the actions of the five-degree-of-freedom loading device, power grid simulator, etc. In this way, the working condition setting and simulation module can realize the setting simulation of complex working conditions under complete working condition loads and power grid conditions.

[0068] like Figure 4 As shown, the test data management module includes a data acquisition unit, a data analysis unit, a data storage unit, an alarm unit, and a visual interface unit. The test data management module is responsible for returning the simulation data generated by the working condition setting and simulation module during the entire working condition simulation process to the simulation analysis and control module to verify the accuracy of the working condition simulation and further optimize the working condition setting to make the working condition simulation test more accurate; at the same time, the simulation data is collected, analyzed, processed, and stored, and the analysis results are visualized.

[0069] Furthermore, the test data management module is connected to the working condition setting and simulation module through the data acquisition unit, and is used to collect mechanical and electrical quantities measured by various sensors in the working condition setting and simulation module; the data analysis unit is used to process and analyze the collected data and output the analysis results.

[0070] Furthermore, the test data management module is connected to the simulation analysis and control module through the data storage unit, is responsible for storing the collected and analyzed data and the results of the analysis, and transmits the data to the simulation analysis and control module.

[0071] Furthermore, the alarm unit is connected to the data analysis unit to receive the data analysis results and trigger the alarm signal, so as to monitor and alarm the abnormal situation in real time, and remind the personnel to take corresponding measures to optimize the processing in time. The visualization interface unit is connected to the data analysis unit to receive the data analysis results and display them to the staff in a visual way, so as to facilitate the staff to analyze and improve the working condition setting, so as to make the working condition simulation more accurate.

[0072] Embodiment 2

[0073] This embodiment discloses a method for setting operating conditions of a test equipment for an offshore wind turbine.

[0074] A method for setting operating conditions of a test device for an offshore wind turbine generator system, comprising:

[0075] Step S1, conducting a comprehensive multi-parameter test on the offshore wind turbine;

[0076] Step S2, collecting and displaying the obtained test data in real time;

[0077] Step S3, using the test data as a training set for simulation analysis, and generating a control signal to control the working condition setting and the simulation module;

[0078] Step S4, simulating the operating condition of the offshore wind turbine according to the obtained control signal;

[0079] Step S5: Optimize the working condition setting and the simulation module using the obtained simulation data as a test set; at the same time, analyze the simulation data and visualize the analysis results.

[0080] Furthermore, if Figure 5 As shown, the specific implementation steps of steps S1-S5 can be implemented in the following ways:

[0081] Step S1, conducting a comprehensive multi-parameter test on the offshore wind turbine.

[0082] The actual operating status of offshore wind turbines is monitored and tested in real time and comprehensively through the on-site test module, with real-time measurement of multiple parameters including the electrical characteristics of the unit, the load characteristics of each structural component, the foundation load characteristics, meteorological characteristics, ocean current characteristics, wave characteristics, etc.

[0083] Step S2: Collect and display the obtained test data in real time.

[0084] The data acquired by the field test module is collected and processed through the field data acquisition module, the data is stored, and the collected data is displayed in real time to realize real-time monitoring; at the same time, the data is transmitted to the simulation analysis and control module to complete the process of inputting the test data into the ground test platform.

[0085] Step S3: Use the test data as a training set to perform simulation analysis, and generate control signals to control the operating condition setting and simulation module.

[0086] Through the simulation analysis and control module, the test data transmitted by the field data acquisition module is used as the training set for simulation analysis, and control signals are generated to control the working condition setting and simulation module. Specifically:

[0087] Step S3-1, establishing a finite element model, specifically: cleaning the geometry of the CAD model, then meshing the CAD model, and assigning materials to the CAD model.

[0088] Step S3-2: Identify the loading signal of the working condition.

[0089] For specific analysis assemblies and specific working conditions, features are extracted from the training set, and a classification template is obtained by classifier training, and the loading signal is identified through the classification template. The training process is as follows: after the training set is preprocessed and feature extracted, it is learned, trained by the classifier, and identified to obtain the identification result; the identification process is as follows: after the loading signal to be identified is preprocessed and feature extracted, it is identified and the identification result is obtained.

[0090] Step S3-3, generating a control signal according to the identified loading signal, and transmitting the generated control signal to the main controller of the working condition setting and simulation module to control the working condition loading of the working condition setting and simulation module to complete the working condition loading.

[0091] Step S4, simulate the working condition of the offshore wind turbine according to the obtained control signal. Under the control of the simulation analysis and control module, the working condition setting and simulation module is used to simulate the performance of the offshore wind turbine under various working conditions; at the same time, simulation data is generated and sent to the test data management module.

[0092] Step S5: Optimize the working condition setting and the simulation module using the obtained simulation data as a test set; at the same time, analyze the simulation data and visualize the analysis results.

[0093] The test data management module collects, analyzes, processes and stores the simulation data generated during the entire working condition simulation process, visualizes the analysis results, and returns the data to the simulation analysis and control module to verify the accuracy of the working condition simulation and further optimize the working condition settings to make the working condition simulation test more accurate.

[0094] Furthermore, after receiving the simulation data returned by the test data management module, the simulation analysis and control module uses the obtained simulation data as a test set to optimize the working condition setting and simulation module. It should be noted that when performing simulation analysis at this time, the simulation analysis and control module extracts features from the test set and performs secondary recognition of the loading signal; then, it further generates control signals and executes subsequent processes such as working condition setting and simulation.

[0095] Based on the above process, the present invention can realize accurate simulation of the operating status of the offshore wind turbine generator set on the basis of directly acquiring the real-time data of the actual offshore wind turbine generator set on site.

[0096] Embodiment 3

[0097] The purpose of this embodiment is to provide a computer-readable storage medium.

[0098] A computer-readable storage medium stores a computer program thereon, which, when executed by a processor, implements the steps in a method for setting operating conditions of a test equipment for an offshore wind turbine as described in the second embodiment of the present disclosure.

[0099] Embodiment 4

[0100] The purpose of this embodiment is to provide an electronic device.

[0101] An electronic device includes a memory, a processor, and a program stored in the memory and executable on the processor. When the processor executes the program, the steps in a method for setting operating conditions of a test equipment for an offshore wind turbine set as described in Embodiment 2 of the present disclosure are implemented.

[0102] The steps involved in the apparatuses of the above embodiments 2, 3 and 4 correspond to the method embodiment 1, and the specific implementation methods can refer to the relevant description part of embodiment 1. The term "computer-readable storage medium" should be understood as a single medium or multiple media including one or more instruction sets; it should also be understood to include any medium that can store, encode or carry an instruction set for execution by a processor and enable the processor to execute any method in the present invention.

[0103] Those skilled in the art should understand that the modules or steps of the present invention described above can be implemented by a general-purpose computer device, or alternatively, they can be implemented by a program code executable by a computing device, so that they can be stored in a storage device and executed by the computing device, or they can be made into individual integrated circuit modules, or multiple modules or steps therein can be made into a single integrated circuit module for implementation. The present invention is not limited to any specific combination of hardware and software.

[0104] Although the above describes the specific implementation mode of the present invention in conjunction with the accompanying drawings, it is not intended to limit the scope of protection of the present invention. Those skilled in the art should understand that various modifications or variations that can be made by those skilled in the art on the basis of the technical solution of the present invention without creative work are still within the scope of protection of the present invention.

Claims

1. An operating condition setting system for a test equipment for an offshore wind turbine, characterized in that: include: The field test module is configured to: conduct a full range of multi-parameter tests on offshore wind turbines; The field data acquisition module is configured to: collect and display the obtained test data in real time, and send the test data to the simulation analysis and control module; The simulation analysis and control module is configured to: perform simulation analysis using the test data transmitted by the field data acquisition module as a training set, and generate control signals to control the working condition setting and simulation module; after receiving the simulation data returned by the test data management module, optimize the working condition setting and simulation module using the obtained simulation data as a test set; The working condition setting and simulation module is configured to: simulate the working condition of the offshore wind turbine according to the obtained control signal, and send the simulation data generated during the working condition simulation to the test data management module; The test data management module is configured to: return the obtained simulation data to the simulation analysis and control module; at the same time, analyze the simulation data and visualize the analysis results.

2. The operating condition setting system for offshore wind turbine test equipment according to claim 1, characterized in that: The field test module includes an environmental test unit, a working power supply test unit, a field device test unit, an AD unit and an acquisition interface; wherein the environmental test unit, the working power supply test unit and the field device test unit are connected to the acquisition interface via the AD unit.

3. The operating condition setting system for offshore wind turbine test equipment according to claim 1, characterized in that: The field data acquisition module includes a main controller, a storage unit, a display unit, a communication unit connected to the main controller, and a remote monitoring unit connected to the communication unit.

4. The operating condition setting system for offshore wind turbine test equipment according to claim 3, characterized in that: The main controller is used to parse and execute the instructions sent by the remote monitoring unit; at the same time, it is also used to call the data stored in the storage unit and transmit the called data to the remote monitoring unit through the communication unit.

5. The operating condition setting system for offshore wind turbine test equipment according to claim 1, characterized in that: The working condition setting and simulation module includes a traction motor, a five-degree-of-freedom loading device, a tested fan, a power grid simulator, a cooling device, a controller, a transmission shaft and a sensor.

6. A method for setting operating conditions of a test equipment for an offshore wind turbine, characterized in that: include: Conduct all-round multi-parameter testing on offshore wind turbines; Collect and display the obtained test data in real time; Perform simulation analysis using the test data as a training set, and generate control signals to control the working condition setting and simulation module; Performing operating condition simulation on offshore wind turbines based on the obtained control signals; The obtained simulation data is used as a test set to optimize the working condition setting and the simulation module; at the same time, the simulation data is analyzed and the analysis results are visualized.

7. A method for setting operating conditions of a test equipment for an offshore wind turbine as claimed in claim 6, characterized in that: Use the test data as a training set to perform simulation analysis and generate control signals, including: Establish finite element model; Identify the loading signal of the working condition; A control signal is generated according to the identified loading signal.

8. A method for setting operating conditions of a test equipment for an offshore wind turbine as claimed in claim 7, characterized in that: Establishing a finite element model, specifically: performing geometric cleaning on the CAD model, then meshing the CAD model, and assigning materials to the CAD model.

9. A computer-readable storage medium having a program stored thereon, characterized in that: When the program is executed by a processor, the steps in the method for setting operating conditions of a test equipment for an offshore wind turbine set as described in any one of claims 6 to 8 are implemented.

10. An electronic device comprising a memory, a processor, and a program stored in the memory and executable on the processor, characterized in that: When the processor executes the program, the steps in the method for setting operating conditions of a test equipment for an offshore wind turbine set as described in any one of claims 6 to 8 are implemented.

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