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One-way mesoscale-microscale coupling for the simulation of atmospheric flows over complex terrain

机译:单向中尺度-微尺度耦合,用于模拟复杂地形上的大气流动

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The microscale model WINDIE, initially developed for the simulation of neutral atmospheric flows over complex topography, is here extended to the study of stratified atmospheric flows with Coriolis effects, with particular focus on its application to wind farm development projects. The code now uses E-l and E- E-l turbulence models, which have shown to be more adequate than the standard E- E model for the simulation of atmospheric flows. The validation tasks include 1D atmospheric boundary layers from the first two cases produced by the Global Energy and Water Cycle Experiment Atmospheric Boundary Layer Study: a stably stratified boundary layer and a diurnal-cycle over land, respectively. To test the applicability of the new code to real situations, a series of simulations were performed of the time-varying atmospheric flow (a 3-month period between February and May 2012) over a moderately complex topography in the Portuguese mainland, using the Weather Research and Forecasting with Advanced Research WRF (WRF-ARW) mesoscale code on a 3km mesh to produce time-varying boundary conditions for the microscale code, in a dynamic coupling fashion. Comparisons with sonic anemometer measurements at the hill top and with WRF-ARW results from a finer horizontal resolution mesh ( x,y=1/3km) showed that the code can adequately simulate real atmospheric flows over complex topography. Copyright (c) 2014 John Wiley & Sons, Ltd.
机译:最初为模拟复杂地形上的中性大气流动而开发的微尺度模型WINDIE,在此扩展到研究具有科里奥利效应的分层大气流动,特别是将其应用于风电场开发项目。该代码现在使用E-1和E-E-1湍流模型,已显示出比标准E-E模型更适合模拟大气流动。验证任务包括全球能源和水循环实验大气边界层研究产生的前两种情况的一维大气边界层:分别为稳定的边界层和陆地上的日循环。为了测试新规范在实际情况下的适用性,使用天气对在葡萄牙大陆中度复杂的地形上随时间变化的大气流量(2012年2月至2012年5月为期3个月)进行了一系列模拟在3 km网格上使用高级研究WRF(WRF-ARW)中尺度代码进行研究和预测,以动态耦合的方式为微尺度代码生成时变边界条件。与在山顶上的声速计测量结果和较细的水平分辨率网格(x,y = 1 / 3km)得到的WRF-ARW结果的比较表明,该代码可以充分模拟复杂地形上的真实大气流。版权所有(c)2014 John Wiley&Sons,Ltd.

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