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Wind Turbine Performance Analysis Under Uncertainty

机译:不确定性下的风力发电机性能分析

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The performance of wind turbines can be negatively affected by the presence of uncertainties. We introduce a comprehensive multi-physics computational model EOLO that enables the estimation of aerodynamic and structural characteristics assiociated with horizontal axis wind turbines, and use it to study the impact of uncertainties on the aerodynamic performance and noise. We consider variability in the wind conditions, manufacturing tolerances and roughness induced by insect contamination as sources of uncertainties and treat them within a probabilistic framework using Latin Hypercube Sampling and Stochastic Simplex Colocation. The results demonstrate that these two methods lead to a statistical characterization of the quantity of interest which is considerably faster than classical Monte Carlo methods. In addition, we demonstrate how the uncertainties impact the aerodynamics and noise leading to a largely inferior performance compared to the nominal design.
机译:不确定性的存在会对风力涡轮机的性能产生负面影响。我们引入了一个综合的多物理场计算模型EOLO,该模型可以估算与水平轴风力发电机相关的空气动力学和结构特征,并使用它来研究不确定性对空气动力学性能和噪声的影响。我们将风的可变性,制造容差和昆虫污染引起的粗糙度视为不确定性来源,并使用拉丁超立方采样和随机单纯形并置在概率框架内对其进行处理。结果表明,这两种方法导致感兴趣量的统计表征,这比经典的蒙特卡洛方法要快得多。此外,我们证明了不确定性如何影响空气动力学和噪声,从而导致与标称设计相比性能大大降低。

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