Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw

The dynamic yaw significantly affects the aerodynamic load distribution of wind turbines, and the aerodynamic load is one of the main influencing factors of wind turbine structural stress variation. Taking the NACA4415 horizontal axis wind turbine designed by the research group as the research objec...

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Main Authors: Yuanxing Zhao, Xuan Gong, Jianwen Wang, Liru Zhang, Yefei Bai
Format: Article
Language:English
Published: MDPI AG 2023-07-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/13/14/8418
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author Yuanxing Zhao
Xuan Gong
Jianwen Wang
Liru Zhang
Yefei Bai
author_facet Yuanxing Zhao
Xuan Gong
Jianwen Wang
Liru Zhang
Yefei Bai
author_sort Yuanxing Zhao
collection DOAJ
description The dynamic yaw significantly affects the aerodynamic load distribution of wind turbines, and the aerodynamic load is one of the main influencing factors of wind turbine structural stress variation. Taking the NACA4415 horizontal axis wind turbine designed by the research group as the research object, the numerical simulation was used to analyze the distribution characteristics of blade stress, surface thrust coefficient, and the wind turbine power output under periodic dynamic yaw conditions. The results show that the blade stress, blade axial thrust, and wind turbine output power were presented as a cosine distribution with yaw fluctuations. The distribution trend of blade stress showed an increase followed by a decrease from the inside out along the span direction. In addition, due to the influence of dynamic yaw and aerodynamic loads, the stress values near the blade root exhibited significant fluctuations. With the increase in tip speed ratio, the stress values of dynamic windward yaw gradually exceeded those of leeward yaw. Within the range of a 10° to 30° yaw variation period, the stress value with positive yaw was larger than that with negative yaw, and the highest stress value occurred in the range of −5° to 15°. The results can be provided as a theoretical basis for the structural design and yaw control strategies of wind turbines, considering dynamic yaw operation.
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spelling doaj.art-719945547a484e2eb6ac44fe974b082a2023-11-18T18:12:50ZengMDPI AGApplied Sciences2076-34172023-07-011314841810.3390/app13148418Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic YawYuanxing Zhao0Xuan Gong1Jianwen Wang2Liru Zhang3Yefei Bai4College of Energy and Transportation Engineering, Inner Mongolia Agricultural University, Hohhot 010018, ChinaCollege of Electrical Engineering, Inner Mongolia University of Technology, Hohhot 010051, ChinaCollege of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, ChinaCollege of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, ChinaSchool of Civil Engineering, Inner Mongolia University of Technology, Hohhot 010051, ChinaThe dynamic yaw significantly affects the aerodynamic load distribution of wind turbines, and the aerodynamic load is one of the main influencing factors of wind turbine structural stress variation. Taking the NACA4415 horizontal axis wind turbine designed by the research group as the research object, the numerical simulation was used to analyze the distribution characteristics of blade stress, surface thrust coefficient, and the wind turbine power output under periodic dynamic yaw conditions. The results show that the blade stress, blade axial thrust, and wind turbine output power were presented as a cosine distribution with yaw fluctuations. The distribution trend of blade stress showed an increase followed by a decrease from the inside out along the span direction. In addition, due to the influence of dynamic yaw and aerodynamic loads, the stress values near the blade root exhibited significant fluctuations. With the increase in tip speed ratio, the stress values of dynamic windward yaw gradually exceeded those of leeward yaw. Within the range of a 10° to 30° yaw variation period, the stress value with positive yaw was larger than that with negative yaw, and the highest stress value occurred in the range of −5° to 15°. The results can be provided as a theoretical basis for the structural design and yaw control strategies of wind turbines, considering dynamic yaw operation.https://www.mdpi.com/2076-3417/13/14/8418horizontal-axis wind turbineaerodynamic loaddynamic yawnumerical simulationstress characteristics
spellingShingle Yuanxing Zhao
Xuan Gong
Jianwen Wang
Liru Zhang
Yefei Bai
Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
Applied Sciences
horizontal-axis wind turbine
aerodynamic load
dynamic yaw
numerical simulation
stress characteristics
title Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
title_full Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
title_fullStr Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
title_full_unstemmed Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
title_short Stress Characteristics of Horizontal-Axis Wind Turbine Blades under Dynamic Yaw
title_sort stress characteristics of horizontal axis wind turbine blades under dynamic yaw
topic horizontal-axis wind turbine
aerodynamic load
dynamic yaw
numerical simulation
stress characteristics
url https://www.mdpi.com/2076-3417/13/14/8418
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AT xuangong stresscharacteristicsofhorizontalaxiswindturbinebladesunderdynamicyaw
AT jianwenwang stresscharacteristicsofhorizontalaxiswindturbinebladesunderdynamicyaw
AT liruzhang stresscharacteristicsofhorizontalaxiswindturbinebladesunderdynamicyaw
AT yefeibai stresscharacteristicsofhorizontalaxiswindturbinebladesunderdynamicyaw