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Subfilter-Scale Modelling Using Transport Equations: Large-Eddy Simulation of the Moderately Convective Atmospheric Boundary Layer

机译:使用输运方程的子滤波器尺度建模:中度对流大气边界层的大涡模拟

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We perform large-eddy simulation (LES) of a moderately convective atmospheric boundary layer (ABL) using a prognostic subfilter-scale (SFS) model obtained by truncating the full conservation equations for the SFS stresses and fluxes. The truncated conservation equations contain production mechanisms that are absent in eddy-diffusivity closures and, thus, have the potential to better parametrize the SFS stresses and fluxes. To study the performance of the conservation-equation-based SFS closure, we compare LES results from the surface layer with observations from the Horizontal Array Turbulence Study (HATS) experiment. For comparison, we also show LES results obtained using an eddy-diffusivity closure. Following past studies, we plot various statistics versus the non-dimensional parameter, A_(omega)/DELTA, where A_(omega) is the wavelength corresponding to the peak in the vertical velocity spectrum and A is the filter width. The LES runs are designed using different domain sizes, filter widths and surface fluxes, in order to replicate partly the conditions in the HATS experiment. Our results show that statistics from the different LES runs collapse reasonably and exhibit clear trends when plotted against A_(omega)/DELTA. The trends exhibited by theproduction terms in the modelled SFS conservation equations are qualitatively similar to those seen in the HATS data with the exception of SFS buoyant production, which is underpredict-ed. The dominant production terms in the modelled SFS stress and flux budgets obtained from LES are found to approach asymptotically constant values at low A_(omega)/DELTA. For the SFS stress budgets, we show that several of these asymptotes are in good agreement with their corresponding theoretical values in the limit A_(omega)/DELTA -> 0. The modelled SFS conservation equations yield trends in the mean values and fluctuations of the SFS stresses and fluxes that agree better with the HATS data than do those obtained using an eddy-diffusivity closure. They, however, underpredict considerably the level of SFS anisotropy near the wall when compared to observations, which could be a consequence of the shortcomings in the model used for the pressure destruction terms. Finally, we address the computational cost incurred dueto the use of additional prognostic equations.
机译:我们使用通过截断SFS应力和通量的完整守恒方程而获得的预知子过滤器规模(SFS)模型,对中等对流大气边界层(ABL)进行大涡模拟(LES)。截断的守恒方程包含涡扩散封闭中不存在的生产机制,因此有可能更好地参数化SFS应力和通量。为了研究基于守恒方程的SFS封闭的性能,我们将表面层的LES结果与水平阵列湍流研究(HATS)实验的观察结果进行了比较。为了进行比较,我们还显示了使用涡流扩散闭合获得的LES结果。根据过去的研究,我们绘制了各种统计数据与无量纲参数A_ω/ DELTA的关系图,其中A_ω是与垂直速度谱中的峰相对应的波长,A是滤光片的宽度。 LES运行设计使用不同的域大小,滤波器宽度和表面通量,以部分复制HATS实验中的条件。我们的结果表明,根据A_(ω)/ DELTA绘制时,来自不同LES的统计合理地崩溃并且显示出清晰的趋势。在建模的SFS守恒方程中,生产项所表现出的趋势在质量上类似于HATS数据中所看到的趋势,但SFS的浮力生产却被低估了。从LES获得的模型SFS应力和通量预算中的主要生产项已发现在低A_ω/ DELTA时渐近恒定值。对于SFS应力预算,我们表明其中一些渐近线与它们的相应理论值在极限A_(ω)/ DELTA-> 0中非常吻合。模型化的SFS守恒方程产生平均值和波动的趋势。与使用涡流扩散封闭获得的应力和通量相比,SFS与HATS数据更吻合。但是,与观测值相比,它们大大低估了壁附近的SFS各向异性水平,这可能是由于压力破坏项所使用的模型存在缺陷所致。最后,我们解决了由于使用其他预测方程而导致的计算成本。

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