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Turbulence Modeling for the Stable Atmospheric Boundary Layer and Implications for Wind Energy

机译:稳定大气边界层的湍流建模及其对风能的影响

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摘要

The near-surface structure of atmospheric turbulence affects the design and operation of wind turbines and is especially difficult to predict under stably-stratified conditions. This study uses large-eddy simulation (LES) to explore properties of the stable boundary layer (SBL) using an explicit filtering and reconstruction turbulence modeling approach. Simulations of the atmospheric boundary layer over flat terrain, under both moderately and strongly stable conditions are performed. Results from high-resolution simulations are used to investigate SBL flow structures including mean profiles and turbulence statistics, which are relevant to wind energy applications. The applicability of power-law relations and empirical similarity formulations for predicting wind speed depend on the strength of stratification and are shown to be inadequate. Low-level jets form in the simulations. Under strong stability, vertical wind shear below the jet triggers intermittent turbulence. The associated sporadic “bursting” events are extremely energetic and last longer than the time scale of the largest eddies. Such phenomena can have adverse effects on turbine lifetime and performance.
机译:大气湍流的近地表结构影响着风力涡轮机的设计和运行,在稳定分层的条件下尤其难以预测。这项研究使用大涡模拟(LES),使用显式滤波和重构湍流建模方法探索稳定边界层(SBL)的属性。在中等和强烈稳定的条件下,对平坦地形上的大气边界层进行了模拟。高分辨率模拟的结果用于研究SBL流结构,包括与风能应用有关的均值轮廓和湍流统计数据。幂律关系和经验相似性公式在预测风速方面的适用性取决于分层的强度,并且显示不足。在模拟中会形成低空喷射流。在强稳定性下,射流下方的垂直风切变会触发间歇性湍流。相关的零星“爆发”事件非常活跃,并且持续时间比最大涡流的时间长。这种现象可能会对涡轮机的寿命和性能产生不利影响。

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