Highly supercritical thermal convection in a rotating spherical shell: Centrifugal vs. radial gravity
- 1 June 1993
- journal article
- research article
- Published by Taylor & Francis in Geophysical & Astrophysical Fluid Dynamics
- Vol. 70 (1-4) , 113-136
- https://doi.org/10.1080/03091929308203589
Abstract
Numerical calculations of fully-developed thermal convection in a rapidly rotating spherical shell are presented. We analyze the three-dimensional structure of convection driven by basal heating at Rayleigh number Ra = 6.67 × 106 and Ekman number E=10−4 in a shell with the geometry of the Earth's liquid outer core. Calculations using two different body force distributions are compared: radial gravity and centrifugal acceleration. In both cases the flow consists of a chaotic array of small-scale, time-dependent columnar vortices aligned parallel to the rotation axis plus large-scale zonal and meridional circulations. The columnar vortices are driven by thermal plumes localized in the equatorial region. The zonal flow consists mainly of two parts: a cylindrical (geostrophic) part driven by Reynolds stresses derived from the small-scale convection and a thermal wind driven by large-scale temperature gradients. For both body force distributions, convective heat transfer occurs mostly in the equatorial region. The overall structure of the convection, and the resulting zonal flow and longitudinally-averaged helicity are remarkably similar for the two body force distributions outside of the inner core tangent cylinder. In that region of the spherical shell, the component of gravity perpendicular to the rotation axis is the dynamically important component for convection at these Rayleigh and Ekman numbers.Keywords
This publication has 30 references indexed in Scilit:
- Experiments on convection in rotating hemispherical shells: Transition to a quasi‐periodic stateGeophysical Research Letters, 1992
- Convection in a rapidly rotating spherical shell at infinite Prandtl number: steadily drifting rollsPhysics of the Earth and Planetary Interiors, 1991
- Numerical simulations of mantle convection: Time-dependent, three-dimensional, compressible, spherical shellGeophysical & Astrophysical Fluid Dynamics, 1988
- On the onset of convection in rotating spherical shellsGeophysical & Astrophysical Fluid Dynamics, 1987
- Space-laboratory and numerical simulations of thermal convection in a rotating hemispherical shell with radial gravityJournal of Fluid Mechanics, 1986
- Numerical simulations of stellar convective dynamos. II - Field propagation in the convection zoneThe Astrophysical Journal, 1985
- Nonlinear dynamics of boussinesq convection in a deep rotating spherical shell-iGeophysical & Astrophysical Fluid Dynamics, 1977
- A simple model of convection in the Jovian atmosphereIcarus, 1976
- A Model of the GeodynamoGeophysical Journal of the Royal Astronomical Society, 1975
- On the motion of solids in a liquid possessing vorticityProceedings of the Royal Society of London. Series A, Containing Papers of a Mathematical and Physical Character, 1916