4.7 Article

Mean zonal flows induced by weak mechanical forcings in rotating spheroids

期刊

JOURNAL OF FLUID MECHANICS
卷 916, 期 -, 页码 -

出版社

CAMBRIDGE UNIV PRESS
DOI: 10.1017/jfm.2021.220

关键词

rotating flows

资金

  1. European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme via the THEIA project [847433]
  2. European Union [823844]
  3. Labex OSUG@2020 [ANR10 LABX56]
  4. European Research Council (ERC) [847433] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

The study investigates the generation mechanism of mean zonal flows in rapidly rotating fluid-filled spheroids, with theoretical predictions validated by numerical simulations. It further considers the impact of spatial and temporal perturbations, as well as spheroidal geometry on the zonal flows.
The generation of mean flows is a long-standing issue in rotating fluids. Motivated by planetary objects, we consider here a rapidly rotating fluid-filled spheroid, which is subject to weak perturbations of either the boundary (e.g. tides) or the rotation vector (e.g. in direction by precession, or in magnitude by longitudinal librations). Using boundary-layer theory, we determine the mean zonal flows generated by nonlinear interactions within the viscous Ekman layer. These flows are of interest because they survive in the relevant planetary regime of both vanishing forcings and viscous effects. We extend the theory to take into account (i) the combination of spatial and temporal perturbations, providing new mechanically driven zonal flows (e.g. driven by latitudinal librations), and (ii) the spheroidal geometry relevant for planetary bodies. Wherever possible, our analytical predictions are validated with direct numerical simulations. The theoretical solutions are in good quantitative agreement with the simulations, with expected discrepancies (zonal jets) in the presence of inertial waves generated at the critical latitudes (as for precession). Moreover, we find that the mean zonal flows can be strongly affected in spheroids. Guided by planetary applications, we also revisit the scaling laws for the geostrophic shear layers at the critical latitudes, and the influence of a solid inner core.

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