Equatorially Trapped Convection in a Rapidly Rotating Shallow Shell
Abstract
Motivated by the recent discovery of subsurface oceans on planetary moons and the interest they have generated, we explore convective flows in shallow spherical shells of dimensionless gap width in the rapid rotation limit , where is the Ekman number. We employ direct numerical simulations (DNS) of the Boussinesq equations to compute the local heat flux as a function of the latitude and use the results to characterize the trapping of convection at low latitudes, around the equator. We show that these results are quantitatively reproduced by an asymptotically exact nonhydrostatic equatorial -plane convection model at a much more modest computational cost than DNS. We identify the trapping parameter as the key parameter that controls the vigor and latitudinal extent of convection for moderate thermal forcing when and . This model provides a new theoretical paradigm for nonlinear investigations.
Keywords
Cite
@article{arxiv.1804.10293,
title = {Equatorially Trapped Convection in a Rapidly Rotating Shallow Shell},
author = {Miquel Benjamin and Xie Jin-Han and Featherstone Nicholas and Julien Keith and Knobloch Edgar},
journal= {arXiv preprint arXiv:1804.10293},
year = {2018}
}
Comments
26 pages, 10 figures. Accepted for publication in Physical Review Fluids