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Dynamics of homogeneous shear turbulence: A key role of the nonlinear transverse cascade in the bypass concept

Authors :
George Chagelishvili
George Mamatsashvili
George Khujadze
Holger Foysi
Siwei Dong
Javier Jiménez
Source :
Physical Review E 94(2016), 023111-1-023111-19, Physical Review E
Publication Year :
2016
Publisher :
American Physical Society (APS), 2016.

Abstract

To understand the self-sustenance of subcritical turbulence in spectrally stable shear flows, we performed direct numerical simulations of homogeneous shear turbulence for different aspect ratios of the flow domain and analyzed the dynamical processes in Fourier space. There are no exponentially growing modes in such flows and the turbulence is energetically supported only by the linear growth of perturbation harmonics due to the shear flow non-normality. This non-normality-induced, or nonmodal growth is anisotropic in spectral space, which, in turn, leads to anisotropy of nonlinear processes in this space. As a result, a transverse (angular) redistribution of harmonics in Fourier space appears to be the main nonlinear process in these flows, rather than direct or inverse cascades. We refer to this type of nonlinear redistribution as the nonlinear transverse cascade. It is demonstrated that the turbulence is sustained by a subtle interplay between the linear nonmodal growth and the nonlinear transverse cascade that exemplifies a well-known bypass scenario of subcritical turbulence. These two basic processes mainly operate at large length scales, comparable to the domain size. Therefore, this central, small wave number area of Fourier space is crucial in the self-sustenance; we defined its size and labeled it as the vital area of turbulence. Outside the vital area, the nonmodal growth and the transverse cascade are of secondary importance. Although the cascades and the self-sustaining process of turbulence are qualitatively the same at different aspect ratios, the number of harmonics actively participating in this process varies, but always remains quite large. This implies that the self-sustenance of subcritical turbulence cannot be described by low-order models.<br />22 pages, 24 figures

Details

ISSN :
24700053 and 24700045
Volume :
94
Database :
OpenAIRE
Journal :
Physical Review E
Accession number :
edsair.doi.dedup.....3d4988cff1525bc47018e28315a30745
Full Text :
https://doi.org/10.1103/physreve.94.023111