Ginzburg–Landau description of laminar-turbulent oblique band formation in transitional plane Couette flow

被引:0
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作者
J. Rolland
P. Manneville
机构
[1] Laboratoire d’hydrodynamique de l’École Polytechnique,
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Reynolds Number; Direct Numerical Simulation; Turbulent Energy; Perturbation Energy; Turbulent Quantity;
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摘要
Plane Couette flow, the flow between two parallel planes moving in opposite directions, is an example of wall-bounded flow experiencing a transition to turbulence with an ordered coexistence of turbulent and laminar domains in some range of Reynolds numbers [Rg, Rt] . When the aspect-ratio is sufficiently large, this coexistence occurs in the form of alternately turbulent and laminar oblique bands. As R goes up trough the upper threshold Rt, the bands disappear progressively to leave room to a uniform regime of featureless turbulence. This continuous transition is studied here by means of under-resolved numerical simulations understood as a modelling approach adapted to the long time, large aspect-ratio limit. The state of the system is quantitatively characterised using standard observables (turbulent fraction and turbulence intensity inside the bands). A pair of complex order parameters is defined for the pattern which is further analysed within a standard Ginzburg–Landau formalism. Coefficients of the model turn out to be comparable to those experimentally determined for cylindrical Couette flow.
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页码:529 / 544
页数:15
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