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An optimisation approach for analysing nonlinear stability with transition to turbulence in fluids as an exemplar

2014/08/15 by R. R. Kerswell, C. C. T. Pringle, A. P. Willis · 1 citation
Physics and Astronomy · #physics.flu-dyn

paper · pdf · doi:10.1088/0034-4885/77/8/085901

published as Reports of Progress in Physics, 77, 085901, 2014 · submitted copy (33 pages, 9 figures)- accepted copy on first author's website

arxiv created 2014/08/15 · arxiv updated 2014/08/18

Abstract

This article introduces, and reviews recent work using, a simple optimisation technique for analysing the nonlinear stability of a state in a dynamical system. The technique can be used to identify the most efficient way to disturb a system such that it transits from one stable state to another. The key idea is introduced within the framework of a finite-dimensional set of ordinary differential equations (ODEs) and then illustrated for a very simple system of 2 ODEs which possesses bistability. Then the transition to turbulence problem in fluid mechanics is used to show how the technique can be formulated for a spatially-extended system described by a partial differential equation (the well-known Navier-Stokes equation). Within that context, the optimisation technique bridges the gap between (linear) optimal perturbation theory and the (nonlinear) dynamical systems approach to fluid flows. The fact that the technique has now been recently shown to work in this very high dimensional setting augurs well for its utility in other physical systems.

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