Ciencias,UNAM

GENERAL STABILITY CONDITIONS FOR A MULTILAYER MODEL

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dc.contributor.author RIPA, P
dc.date.accessioned 2011-01-22T10:28:52Z
dc.date.available 2011-01-22T10:28:52Z
dc.date.issued 1991
dc.identifier.issn 0022-1120
dc.identifier.uri http://hdl.handle.net/11154/3627
dc.description.abstract Sufficient conditions for the stability of steady solutions of a multi-layer model are found. The basic flow may be either parallel, axisymmetric or non-parallel. The lower boundary of the model may be either rigid, including the possibility of topography, or soft. The latter, 'reduced gravity', case represents an ideal situation in which the active layers are on top of an infinitely deep, motionless one. Two conditions are sufficient to assure the stability of the basic flow. It is conjectured that unstable flows for which only the first or second condition is violated decay through Rossby-like or Poincare-like growing perturbations, respectively. In order to understand the meaning of both conditions, assume that a quite general O(a) 'wave' is superimposed on the basic flow: an O(a2) energy integral, delta-2E can be calculated. This wave energy is neither conserved, because the wave might exchange energy with the O(a2) varying part of the the 'mean flow', nor positive definite, because the perturbation might lower the total energy by increasing the speed where it decreases the thickness, and vice versa. Now, the first condition determines that delta-2E has an upper bound, and the second one implies that delta-2E is positive definite en_US
dc.description.abstract hence the stability of the basic solution. In the particular case of two-dimensional divergenceless flow, as well as for quasi-geostropic models, delta-2E is a priori positive definite, and therefore the first condition suffices to guarantee the stability of the more basic solution. The conditions found here are indeed valid for more general perturbations, e.g. they prevent inertial (or 'symmetric') instability, a phenomenon for which there is no distinction between wave and the varying part of the mean flow. en_US
dc.language.iso en en_US
dc.title GENERAL STABILITY CONDITIONS FOR A MULTILAYER MODEL en_US
dc.type Article en_US
dc.identifier.idprometeo 3493
dc.source.novolpages 222:119-137
dc.subject.wos Mechanics
dc.subject.wos Physics, Fluids & Plasmas
dc.description.index WoS: SCI, SSCI o AHCI
dc.relation.journal Journal of Fluid Mechanics

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