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首页> 外文期刊>Journal of Computational Physics >Error scaling of large-eddy simulation in the outer region of wall-bounded turbulence
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Error scaling of large-eddy simulation in the outer region of wall-bounded turbulence

机译:壁限湍流外部大涡模拟误差

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摘要

We study the error scaling properties of large-eddy simulation (LES) in the outer region of wall-bounded turbulence at moderately high Reynolds numbers. In order to avoid the additional complexity of wall-modeling, we perform LES of turbulent channel flows in which the no-slip condition at the wall is replaced by a Neumann condition supplying the exact mean wall-stress. The statistics investigated are the mean velocity profile, turbulence intensities, and kinetic energy spectra. The errors follow (Delta/L)(alpha) Re-tau(gamma), where Delta is the characteristic grid resolution, Re-tau is the friction Reynolds number, and L is the meaningful length-scale to normalize Delta in order to collapse the errors across the wall-normal distance. We show that Delta can be expressed as the L-2-norm of the grid vector and that L is well represented by the ratio of the friction velocity and mean shear. The exponent alpha is estimated from theoretical arguments for each statistical quantity of interest and shown to roughly match the values computed by numerical simulations. For the mean profile and kinetic energy spectra, alpha approximate to 1, whereas the turbulence intensities converge at a slower rate alpha < 1. The exponent gamma is approximately 0, i.e. the LES solution is independent of the Reynolds number. The expected behavior of the turbulence intensities at high Reynolds numbers is also derived and shown to agree with the classic log-layer profiles for grid resolutions lying within the inertial range. Further examination of the LES turbulence intensities and spectra reveals that both quantities resemble their filtered counterparts from direct numerical simulation (DNS) data, but that the mechanism responsible for this similarity is related to the balance between the input power and dissipation rather than to filtering. (C) 2019 Elsevier Inc. All rights reserved.
机译:我们研究了中度高雷诺数的墙面湍流外部大区域中大涡模拟(LES)的误差缩放特性。为了避免壁式建模的额外复杂性,我们执行湍流通道流动,其中壁上的无滑移条件被供应精确均衡的Neumann条件取代。调查的统计数据是平均速度曲线,湍流强度和动能谱。遵循的错误(Delta / L)(alpha)Re-Tau(伽玛),其中Delta是特色网格分辨率,Re-Tau是摩擦雷诺数,L是标准化Delta的有意义的长度规模,以崩溃墙上正常距离的错误。我们表明Δ可以表示为电网向量的L-2 - 标准,并且L很好地表示摩擦速度和平均剪切的比率。指数alpha估计来自每个统计数量的理论参数,并显示大致匹配由数值模拟计算的值。对于平均轮廓和动力学能谱,α近似为1,而湍流强度会聚在较慢的速率α<1。指数伽马约为0,即LES溶液与雷诺数无关。还导出了高雷诺数的湍流强度的预期行为,并显示了与位于惯性范围内的网格分辨率的经典日志层配置文件同意。进一步检查LES湍流强度和光谱显示,两种数量都类似于来自直接数值模拟(DNS)数据的过滤的对应物,但是负责这种相似性的机制与输入功率和耗散之间的平衡有关,而不是过滤。 (c)2019 Elsevier Inc.保留所有权利。

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