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A Comparative Analysis on the Response of a Wind-Turbine Model to Atmospheric and Terrain Effects

机译:风力机模型对大气和地形效应响应的比较分析

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In a series of wind-tunnel experiments conducted at the St. Anthony Falls Laboratory, a wind-turbine model was exposed to three different thermal regimes (neutral, weakly stable and weakly convective flows) in three simple arrangements relevant to wind-farm applications: single turbine in the boundary-layer, aligned turbine-turbine, and an upwind three-dimensional sinusoidal hill aligned with the turbine. Results focus on the spatial evolution of large-scale motions developing over the different thermal and topographic boundary conditions, and on their influence on the mean and fluctuating angular velocity of the turbine rotor. As compared to the single turbine case, both the upwind hill and turbine caused a reduction in the mean angular velocity regardless of the thermal regime; the turbine angular velocity fluctuations always decreased with a turbine upwind, which depleted the energy of the large structures of the flow; however such fluctuations decreased (increased) under stably stratified (convective) conditions when the hill was present. Pre-multiplied spectra of the rotor angular velocity and two-point correlation contours of the streamwise velocity component confirmed a non-trivial link between thermal stratification and terrain complexity. It is inferred that the thermal effects occurring in the three different boundary-layer regimes modulate the spanwise motion of the hill wake and define whether the hill shelters or exposes the turbine to enhanced large-scale energetic motions.
机译:在圣安东尼瀑布实验室进行的一系列风洞实验中,风轮机模型以三种与风电场应用相关的简单布置暴露于三种不同的热态(中性,弱稳定和弱对流):边界层中的单个涡轮机,对齐的涡轮机涡轮机以及与涡轮机对齐的迎风三维正弦丘陵。结果集中于在不同的热学和地形学边界条件下发展的大型运动的空间演化,以及它们对涡轮转子平均速度和脉动角速度的影响。与单涡轮机相比,无论热态如何,迎风山和涡轮机均导致平均​​角速度减小。涡轮的角速度波动总是随涡轮的上风而减小,从而耗尽了大型结构的能量。但是,在有丘陵的稳定分层(对流)条件下,这种波动减少(增加)。转子角速度的预乘谱和水流速度分量的两点相关轮廓证实了热分层与地形复杂性之间的重要联系。可以推断,在三种不同边界层状态下发生的热效应调节了小山尾流的翼展方向运动,并确定了小山遮挡涡轮机还是使涡轮机暴露于增强的大规模能量运动。

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