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February 21, 2026IET conference proceedings.0 citations

Study on the structural and aeroelastic response of long flexible wind turbine blade based on wavelet time-frequency analysis

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JQJingru QiHMHang MengGCGuangchuan Cao

Key Points

  • The research aims to explore the nonlinear structural and aeroelastic response of large wind turbine blades due to geometric nonlinearity and deformation.
  • Utilized geometrically exact beam theory model (GEBT)
  • Applied NREL FAST8 for aeroelastic response analysis
  • Conducted wavelet time-frequency analysis to assess vibration characteristics
  • Dominant frequency changed periodically under large deflection conditions
  • Observed nonlinear structural coupling between torsion and deflection
  • Identified clear time-frequency characteristics linked to design challenges

Abstract

In order to achieve higher power generation efficiency, modern wind turbine blades are showing a clear trend towards larger size. The length of largest wind turbine blade has already exceeded 140 meters. The structural and aeroelastic response of long flexible wind turbine blade becomes nonlinear because of geometric nonlinearity from the large deformation, which will cause time-frequency vibration characteristics and pose challenges to the safety of wind turbine blade. To study the nonlinear characteristics of structural and aeroelastic response of large wind turbine blade, wavelet time-frequency analysis will be carried out based on the structural response from geometrically exact beam theory model (GEBT) and aeroelastic response from NREL FAST8 for IEA 22MW wind turbine. From the time-frequency analysis result, it can be found that the dominant frequency is changing periodically under large deflection condition, and the nonlinear structural coupling between torsion and deflection exhibit an obvious time-frequency characteristics.

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Cite This Study

Qi et al. (2026) studied this question.

synapsesocial.com/papers/69994bef873532290d020139https://doi.org/10.1049/icp.2025.3904
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