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拉格朗日平均纳维-斯托克斯α模型的高度湍流解及其大涡模拟潜力。

Highly turbulent solutions of the Lagrangian-averaged Navier-Stokes alpha model and their large-eddy-simulation potential.

作者信息

Pietarila Graham Jonathan, Holm Darryl D, Mininni Pablo D, Pouquet Annick

机构信息

National Center for Atmospheric Research, P. O. Box 3000, Boulder, Colorado 80307, USA.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2007 Nov;76(5 Pt 2):056310. doi: 10.1103/PhysRevE.76.056310. Epub 2007 Nov 14.

Abstract

We compute solutions of the Lagrangian-averaged Navier-Stokes alpha - (LANS alpha ) model for significantly higher Reynolds numbers (up to Re approximately 8300 ) than have previously been accomplished. This allows sufficient separation of scales to observe a Navier-Stokes inertial range followed by a second inertial range specific to the LANS alpha model. Both fully helical and nonhelical flows are examined, up to Reynolds numbers of approximately 1300. Analysis of the third-order structure function scaling supports the predicted l3 scaling; it corresponds to a k-1 scaling of the energy spectrum for scales smaller than alpha. The energy spectrum itself shows a different scaling, which goes as k1. This latter spectrum is consistent with the absence of stretching in the subfilter scales due to the Taylor frozen-in hypothesis employed as a closure in the derivation of the LANS alpha model. These two scalings are conjectured to coexist in different spatial portions of the flow. The l3 [E(k) approximately k-1] scaling is subdominant to k1 in the energy spectrum, but the l3 scaling is responsible for the direct energy cascade, as no cascade can result from motions with no internal degrees of freedom. We demonstrate verification of the prediction for the size of the LANS alpha attractor resulting from this scaling. From this, we give a methodology either for arriving at grid-independent solutions for the LANS alpha model, or for obtaining a formulation of the large eddy simulation optimal in the context of the alpha models. The fully converged grid-independent LANS alpha model may not be the best approximation to a direct numerical simulation of the Navier-Stokes equations, since the minimum error is a balance between truncation errors and the approximation error due to using the LANS alpha instead of the primitive equations. Furthermore, the small-scale behavior of the LANS alpha model contributes to a reduction of flux at constant energy, leading to a shallower energy spectrum for large alpha. These small-scale features, however, do not preclude the LANS alpha model from reproducing correctly the intermittency properties of the high-Reynolds-number flow.

摘要

我们计算了拉格朗日平均纳维-斯托克斯α-(LANSα)模型的解,其雷诺数(高达Re约8300)比之前所能达到的显著更高。这使得尺度有足够的分离,从而能够观察到一个纳维-斯托克斯惯性范围,随后是特定于LANSα模型的第二个惯性范围。研究了高达约1300雷诺数的全螺旋流和非螺旋流。对三阶结构函数标度的分析支持了预测的l3标度;它对应于小于α的尺度下能量谱的k - 1标度。能量谱本身呈现出不同的标度,其形式为k1。后一种谱与由于在LANSα模型推导中用作封闭条件的泰勒冻结假设导致的子滤波尺度中不存在拉伸相一致。推测这两种标度在流动的不同空间部分共存。在能量谱中,l3[E(k)约为k - 1]标度比k1标度占比小,但l3标度负责直接能量级串,因为没有内部自由度的运动不会产生级串。我们证明了由这种标度得出的LANSα吸引子大小预测的验证。由此,我们给出了一种方法,要么用于得到LANSα模型与网格无关的解,要么用于获得在α模型背景下最优的大涡模拟公式。完全收敛的与网格无关的LANSα模型可能不是纳维-斯托克斯方程直接数值模拟的最佳近似,因为最小误差是截断误差与因使用LANSα而非原始方程导致的近似误差之间的平衡。此外,LANSα模型的小尺度行为导致在能量恒定的情况下通量减小,从而使大α时的能量谱更平缓。然而,这些小尺度特征并不妨碍LANSα模型正确再现高雷诺数流动的间歇性特性。

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