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Unsteady aerodynamic analysis for offshore floating wind turbines under different wind conditions

机译:不同风况下海上漂浮式风力发电机的非定常空气动力学分析

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摘要

A free-vortex wake (FVW) model is developed in this paper to analyse the unsteady aerodynamic performance of offshore floating wind turbines. A time-marching algorithm of third-order accuracy is applied in the FVW model. Owing to the complex floating platform motions, the blade inflow conditions and the positions of initial points of vortex filaments, which are different from the fixed wind turbine, are modified in the implemented model. A three-dimensional rotational effect model and a dynamic stall model are coupled into the FVW model to improve the aerodynamic performance prediction in the unsteady conditions. The effects of floating platform motions in the simulation model are validated by comparison between calculation and experiment for a small-scale rigid test wind turbine coupled with a floating tension leg platform (TLP). The dynamic inflow effect carried by the FVW method itself is confirmed and the results agree well with the experimental data of a pitching transient on another test turbine. Also, the flapping moment at the blade root in yaw on the same test turbine is calculated and compares well with the experimental data. Then, the aerodynamic performance is simulated in a yawed condition of steady wind and in an unyawed condition of turbulent wind, respectively, for a large-scale wind turbine coupled with the floating TLP motions, demonstrating obvious differences in rotor performance and blade loading from the fixed wind turbine. The non-dimensional magnitudes of loading changes due to the floating platform motions decrease from the blade root to the blade tip.
机译:本文建立了自由涡流(FVW)模型,以分析海上漂浮式风力涡轮机的非稳态气动性能。在FVW模型中应用了三阶精度的时间行进算法。由于复杂的浮动平台运动,在实施模型中修改了叶片流入条件和涡旋丝起始点的位置,这些条件与固定风力涡轮机不同。将三维旋转效应模型和动态失速模型耦合到FVW模型中,以改善非稳态条件下的空气动力性能预测。通过对带有浮动张力腿平台(TLP)的小型刚性测试风力涡轮机的计算和实验进行比较,验证了仿真模型中浮动平台运动的影响。 FVW方法本身具有的动态流入效应已得到确认,其结果与另一台测试涡轮机上的俯仰瞬变的实验数据吻合良好。同样,在同一台测试涡轮机上,在偏航时叶片根部的扑动力矩被计算出来并与实验数据进行了很好的比较。然后,分别针对大型风力涡轮机和浮动TLP运动,分别在稳定风的偏航条件和湍流的非偏航条件下模拟了空气动力性能,证明了转子性能和叶片载荷与风速的明显差异。固定式风力发电机。由于浮动平台运动而导致的载荷的无量纲大小从叶根到叶尖减小。

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