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Article

Structure/Aerodynamic Nonlinear Dynamic Simulation Analysis of Long, Flexible Blade of Wind Turbine

1
Key Laboratory of High-Efficiency and Clean Mechanical Manufacture of MOE, School of Mechanical Engineering, Shandong University, Jinan 250061, China
2
State Key Laboratory of Advanced Equipment and Technology for Metal Forming, Shandong University, Jinan 250061, China
3
College of Shipbuilding Engineering, Harbin Engineering University, Harbin 150006, China
4
Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China
5
Goldwind Technology Co., Ltd., Beijing 100176, China
6
Department of Mechanical Engineering, Kyung Hee University, Yongin 17104, Republic of Korea
*
Authors to whom correspondence should be addressed.
Energies 2025, 18(16), 4362; https://doi.org/10.3390/en18164362
Submission received: 15 July 2025 / Revised: 7 August 2025 / Accepted: 14 August 2025 / Published: 15 August 2025

Abstract

To meet the requirements of geometric nonlinear modeling and bending–torsion coupling analysis of long, flexible offshore blades, this paper develops a high-precision engineering simplified model based on the Absolute Nodal Coordinate Formulation (ANCF). The model considers nonlinear variations in linear density, stiffness, and aerodynamic center along the blade span and enables efficient computation of 3D nonlinear deformation using 1D beam elements. Material and structural function equations are established based on actual 2D airfoil sections, and the chord vector is obtained from leading and trailing edge coordinates to calculate the angle of attack and aerodynamic loads. Torsional stiffness data defined at the shear center is corrected to the mass center using the axis shift theorem, ensuring a unified principal axis model. The proposed model is employed to simulate the dynamic behavior of wind turbine blades under both shutdown and operating conditions, and the results are compared to those obtained from the commercial software Bladed. Under shutdown conditions, the blade tip deformation error in the y-direction remains within 5% when subjected only to gravity, and within 8% when wind loads are applied perpendicular to the rotor plane. Under operating conditions, although simplified aerodynamic calculations, structural nonlinearity, and material property deviations introduce greater discrepancies, the x-direction deformation error remains within 15% across different wind speeds. These results confirm that the model maintains reasonable accuracy in capturing blade deformation characteristics and can provide useful support for early-stage dynamic analysis.
Keywords: wind turbine blade; geometric nonlinearity; absolute nodal coordinate formulation; aerodynamic load; dynamic modeling wind turbine blade; geometric nonlinearity; absolute nodal coordinate formulation; aerodynamic load; dynamic modeling

Share and Cite

MDPI and ACS Style

Zhu, X.; Yang, S.; Yang, Z.; Cai, C.; Zhang, L.; Li, Q.; Choi, J.-H. Structure/Aerodynamic Nonlinear Dynamic Simulation Analysis of Long, Flexible Blade of Wind Turbine. Energies 2025, 18, 4362. https://doi.org/10.3390/en18164362

AMA Style

Zhu X, Yang S, Yang Z, Cai C, Zhang L, Li Q, Choi J-H. Structure/Aerodynamic Nonlinear Dynamic Simulation Analysis of Long, Flexible Blade of Wind Turbine. Energies. 2025; 18(16):4362. https://doi.org/10.3390/en18164362

Chicago/Turabian Style

Zhu, Xiangqian, Siming Yang, Zhiqiang Yang, Chang Cai, Lei Zhang, Qing’an Li, and Jin-Hwan Choi. 2025. "Structure/Aerodynamic Nonlinear Dynamic Simulation Analysis of Long, Flexible Blade of Wind Turbine" Energies 18, no. 16: 4362. https://doi.org/10.3390/en18164362

APA Style

Zhu, X., Yang, S., Yang, Z., Cai, C., Zhang, L., Li, Q., & Choi, J.-H. (2025). Structure/Aerodynamic Nonlinear Dynamic Simulation Analysis of Long, Flexible Blade of Wind Turbine. Energies, 18(16), 4362. https://doi.org/10.3390/en18164362

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