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Hysteresis in a Rotating Differentially Heated Spherical Shell of Boussinesq Fluid
Author(s) -
Gregory Lewis,
William F. Langford
Publication year - 2008
Publication title -
siam journal on applied dynamical systems
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.218
H-Index - 61
ISSN - 1536-0040
DOI - 10.1137/070697306
Subject(s) - spherical shell , equator , spherical geometry , physics , cusp (singularity) , convection , annulus (botany) , bifurcation , temperature gradient , mechanics , geometry , bifurcation theory , prandtl number , classical mechanics , shell (structure) , mathematics , materials science , nonlinear system , meteorology , astronomy , quantum mechanics , composite material , latitude
A mathematical model of convection of a Boussinesq fluid in a rotating spherical shell is analyzed using numerical computations guided by bifurcation theory. The fluid is dierentially heated on its inner spherical surface, with the temperature increasing from both poles to a maximum at the equator. The model is assumed to be both rota- tionally symmetric about the polar axis and reflectionally symmetric across the equator. This work is an extension to spherical geometry of previous work on the dierentially heated rotating annulus. The spherical geometry is motivated by applications to plan- etary atmospheres. As the temperature gradient increases from zero, large Hadley cells extending from equator to poles form immediately. For larger temperature dierences, two or three convection cells appear in each hemisphere. An organizing centre is shown to exist, at which two saddle-node bifurcations come together in a codimension-2 hys- teresis bifurcation (or cusp) point, providing a mechanism for hysteretic transitions between dierent cell patterns as the temperature gradient is varied.

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