Constrained synthetic wind fields from high-resolution 3D WindScanner measurements

Paul J. Meyer, Ashim Giyanani, J. Gottschall
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Abstract

The limited spatial and temporal resolution of wind measurements within the inflow of a wind turbine requires statistical modeling of synthetic wind fields, integrating actual measurements or derived statistics along with selected turbulence models. The short-range WindScanner technology enhances atmospheric wind measurements with high resolution in both spatial and temporal dimensions. This contribution utilizes 3D turbulent inflow measurements from three synchronized WindScanner to generate synthetic turbulent wind fields. Both, mean wind field parameters and turbulent time series are analyzed, and different input configurations for the constrained wind field generation are evaluated. Our findings indicate the presence of periods characterized by dominant horizontal shear and veer events, with wind speed and direction differences up to 1.53 ms−1 or 8.45° across the rotor span. Additionally, the study reveals that the optimal measurement configuration for constrained turbulence modeling varies depending on the specific evaluated location and velocity component being analyzed. Another observation is that excessive constraints, placed too closely, may lead to overfitting, thereby diminishing the representativeness of the synthetic field for the lateral velocity component.
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从高分辨率 3D WindScanner 测量中得到的受约束合成风场
由于风力涡轮机导流内风测量的空间和时间分辨率有限,因此需要对合成风场进行统计建模,将实际测量结果或推导出的统计数据与选定的湍流模型结合起来。短程 WindScanner 技术提高了大气风测量在空间和时间维度上的高分辨率。本文利用三台同步 WindScanner 的三维湍流流入测量数据生成合成湍流风场。对平均风场参数和湍流时间序列进行了分析,并对约束风场生成的不同输入配置进行了评估。我们的研究结果表明,存在以主要水平切变和偏转事件为特征的时段,转子跨度上的风速和风向差异高达 1.53 ms-1 或 8.45°。此外,研究还表明,约束湍流建模的最佳测量配置因具体的评估位置和分析的速度分量而异。另一个观察结果是,过多、过密的约束可能会导致过度拟合,从而降低横向速度分量合成场的代表性。
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