Impact of Rotor Misalignment due to Platform Motions on Floating Offshore Wind Turbine Blade Loads

Rachael E. Smith, A. Pillai, G. Tabor, P. Thies, L. Johanning
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Abstract

The rotor of a horizontal-axis floating offshore wind turbine is more frequently misaligned with the oncoming wind than that of a fixed offshore or onshore wind turbine due to the pitch and yaw motions of the floating support structure. This can lead to increased unsteady loading and fatigue on the components beyond those considered in the standard load cases. In this work, the Simulator fOr Wind Farm Applications (SOWFA) tool within the CFD toolbox OpenFOAM is used to perform simulations of a wind turbine at different stationary angles to the oncoming wind flow that a floating wind turbine may experience, so that the impact of misaligned flow on power production and blade loading can be studied. The turbine is modelled using an actuator line method which is coupled with NREL’s aeroelastic code FAST to compute the structural response. The results of this study will be used in future work to optimise the rotor geometry of a floating offshore wind turbine.
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平台运动引起的转子错位对浮式海上风力机叶片载荷的影响
由于浮动支承结构的俯仰和偏航运动,水平轴浮动式海上风电机组的转子与迎面风的错位比固定式海上或陆上风电机组的转子更频繁。这可能导致非定常载荷和疲劳的增加,超出了标准载荷情况下的考虑范围。在这项工作中,使用CFD工具箱OpenFOAM中的Simulator fOr Wind Farm Applications (soffa)工具对浮动式风力涡轮机可能遇到的迎面风流进行不同静止角度的风力涡轮机模拟,从而研究失调气流对发电和叶片负荷的影响。采用执行器线法对涡轮进行建模,并结合NREL气动弹性代码FAST进行结构响应计算。这项研究的结果将用于未来的工作,以优化浮式海上风力涡轮机的转子几何形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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