Coupling of Damped and Growing Modes in Unstable Shear Flow
arXiv:1610.06142 · doi:10.1063/1.4985322
Abstract
Analysis of the saturation of the Kelvin-Helmholtz (KH) instability is undertaken to determine the extent to which the conjugate linearly stable mode plays a role. For a piecewise-continuous mean flow profile with constant shear in a fixed layer, it is shown that the stable mode is nonlinearly excited, providing an injection-scale sink of the fluctuation energy similar to what has been found for gyroradius-scale drift-wave turbulence. Quantitative evaluation of the contribution of the stable mode to the energy balance at the onset of saturation shows that nonlinear energy transfer to the stable mode is as significant as energy transfer to small scales in balancing energy injected into the spectrum by the instability. The effect of the stable mode on momentum transport is quantified by expressing the Reynolds stress in terms of stable and unstable mode amplitudes at saturation, from which it is found that the stable mode can produce a sizable reduction in the momentum flux.
23 pages, 6 figures, accepted for publication in Physics of Plasmas, June 2017
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- The impact of magnetic fields on momentum transport and saturation of shear-flow instability by stable modes
- Nonlinear mode coupling and energetics of driven magnetized shear-flow turbulence
- Turbulence and order in magnetized flowing plasmas