论文标题

在低阶表示湍流流量中,强迫Orr-Sommerfeld和Squire模式的相互作用

Interaction of forced Orr-Sommerfeld and Squire modes in a low-order representation of turbulent channel flow

论文作者

McMullen, Ryan M., Rosenberg, Kevin, McKeon, Beverley J.

论文摘要

基于分解的减少阶表示,用于捕获湍流通道流动中时间平均的二阶统计。分解运营商最近验证的分解为与Orr-Sommerfeld和Squire操作员有关的两个不同的家庭[K. Rosenberg和B. J. McKeon,使用分解分析,流体动力学研究51,011401(2019)的Navier-Stokes方程的确切相干状态的有效表示,从而导致匹配能量光谱和$ UV $ COSPECTRUM的所有组件的能力急剧提高。新表示的成功依赖于乡绅模式与Orr-Sommerfeld模式产生的涡度竞争的能力,这可以通过将统计数据分解为每个家庭的贡献来证明。然后表明,该竞争可用于推断两组模式之间的相位关系。此外,Moarref等人提出的共线模式的普遍类别的分辨率类别得出了两个分解权重的家族的相对雷诺数量表。 [R. Moarref,A。S。Sharma,J。A。Tropp和B. J. McKeon,高雷诺德 - 数字湍流通道中基于模型的流向能量密度的缩放,流体力学杂志734,275(2013)]。这些发展可以看作是进一步建模努力以量化壁结合湍流中非线性相互作用的起点。

A resolvent-based reduced-order representation is used to capture time-averaged second-order statistics in turbulent channel flow. The recently-proposed decomposition of the resolvent operator into two distinct families related to the Orr-Sommerfeld and Squire operators [K. Rosenberg and B. J. McKeon, Efficient representation of exact coherent states of the Navier-Stokes equations using resolvent analysis, Fluid Dynamics Research 51, 011401 (2019)] results in dramatic improvement in the ability to match all components of the energy spectra and the $uv$ cospectrum. The success of the new representation relies on the ability of the Squire modes to compete with the vorticity generated by Orr-Sommerfeld modes, which is demonstrated by decomposing the statistics into contributions from each family. It is then shown that this competition can be used to infer a phase relationship between the two sets of modes. Additionally, the relative Reynolds number scalings for the two families of resolvent weights are derived for the universal classes of resolvent modes presented by Moarref et al. [R. Moarref, A. S. Sharma, J. A. Tropp, and B. J. McKeon, Model-based scaling of the streamwise energy density in high-Reynolds-number turbulent channels, Journal of Fluid Mechanics 734, 275 (2013)]. These developments can be viewed as a starting point for further modeling efforts to quantify nonlinear interactions in wall-bounded turbulence.

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