Articles | Volume 11, issue 9
https://doi.org/10.5194/wes-11-3321-2026
https://doi.org/10.5194/wes-11-3321-2026
Research article
 | 
07 Sep 2026
Research article |  | 07 Sep 2026

Dynamic response and loads analysis of a large offshore wind turbine under low-frequency wind fluctuations

Abdul Haseeb Syed, Ásta Hannesdóttir, and Jakob Mann

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Cited articles

absywind: absywind/2D_turbulence_simulation: General (Version v1.0), Zenodo [software], https://doi.org/10.5281/zenodo.12202047, 2024. a
Allen, C., Viscelli, A., Dagher, H., Goupee, A., Gaertner, E., Abbas, N., Hall, M., and Barter, G.: Definition of the UMaine VolturnUS-S Reference Platform Developed for the IEA Wind 15-Megawatt Offshore Reference Wind Turbine, Tech. rep., National Renewable Energy Laboratory, https://doi.org/10.2172/1660012, 2020. a, b
Bachynski, E. E. and Eliassen, L.: The effects of coherent structures on the global response of floating offshore wind turbines, Wind Energy, 22, 219–238, https://doi.org/10.1002/we.2280, 2019. a
Cheynet, E., Jakobsen, J. B., and Reuder, J.: Velocity spectra and coherence estimates in the marine atmospheric boundary layer, Bound.-Lay. Meteorol., 169, 429–460, 2018. a
Chougule, A., Mann, J., Segalini, A., and Dellwik, E.: Spectral tensor parameters for wind turbine load modeling from forested and agricultural landscapes, Wind Energy, 18, 1–12, https://doi.org/10.1002/we.1709, 2010. a
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Large offshore wind turbines are exposed to slow changes in wind speed, which are often overlooked in design studies. We investigate how these slow wind variations impact the forces and motions of both fixed and floating wind turbines through computer simulations. Slow wind changes can lead to increased long-term structural wear and significantly impact platform motion in floating turbines. Accounting for these variations is crucial for the design and lifetime assessment of future turbines.
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