Bistability and hysteresis of axisymmetric thermal convection between differentially rotating spheres
File(s)Bistability_accepted.pdf (21.18 MB)
Accepted version
Author(s)
Mannix, Paul
Mestel, Andrew
Type
Journal Article
Abstract
Heating a quiescent fluid from below gives rise to cellular convective motion as the temperature gradient becomes sufficiently steep. Typically, this transition increases heat transfer. Differentially rotating spherical shells also generate a state of cellular motion, which in this case transports angular momentum. When both effects are present, it is often assumed that the fluid adopts a configuration which maximises the transfer of angular momentum and heat. Depending on how the equilibrium is reached, however, this maximisation may not always be achieved, with two different stable equilibria often co-existing for the same heating and rotation strengths. We want to understand why the fluid motion in a spherical shell is bistable, and how this scenario might arise. We consider a deep, highly viscous fluid layer, of relevance to the ice shells of Saturn's and Jupiter's moons. We find that bistability depends largely on the relative strength of heating and differential rotation, as characterised by the Rayleigh number Ra and inner sphere Reynolds number Re1, and that the nature of the transition between bistable states depends strongly on the ratio of momentum diffusivity ν to thermal diffusivity κ defined by the Prandtl number Pr=ν/κ. In particular, we find that the transition between solutions at large Pr, depends on the strength of thin thermal layers and can occur either due to the destabilisation of an equatorial jet by buoyancy forces, or alternatively of a polar thermal plume by differential rotation. Our results demonstrate that, although bistability in this system cannot be simply explained by the flow maximising its torque or heat transfer, the polar and equatorial regions are of particular significance.
Keywords
Keywords
Date Issued
2021-03-25
Date Acceptance
2020-11-09
Citation
Journal of Fluid Mechanics, 2021, A12
ISSN
0022-1120
Publisher
Cambridge University Press
Journal / Book Title
Journal of Fluid Mechanics
Volume
A12
Copyright Statement
© The Author(s), 2021. Published by Cambridge University Press
Identifier
https://www.cambridge.org/core/journals/journal-of-fluid-mechanics/article/bistability-and-hysteresis-of-axisymmetric-thermal-convection-between-differentially-rotating-spheres/7DACBC45ABB6A0D9ADD259C778D9B33F
Subjects
Fluids & Plasmas
01 Mathematical Sciences
09 Engineering
Publication Status
Published
Date Publish Online
2021-01-25