4.7 Article

Modes and instabilities in magnetized spherical Couette flow

Journal

JOURNAL OF FLUID MECHANICS
Volume 716, Issue -, Pages 445-469

Publisher

CAMBRIDGE UNIV PRESS
DOI: 10.1017/jfm.2012.551

Keywords

boundary layer stability; geodynamo; MHD turbulence

Funding

  1. CNRS
  2. Universite de Grenoble

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Several teams have reported peculiar frequency spectra for flows in a spherical shell. To address their origin, we perform numerical simulations of the spherical Couette flow in a dipolar magnetic field, in the configuration of the DTS experiment. The frequency spectra computed from time-series of the induced magnetic field display similar bumpy spectra, where each bump corresponds to a given azimuthal mode number m. The bumps appear at moderate Reynolds number (similar or equal to 2600) if the time-series are long enough (>300 rotations of the inner sphere). We present a new method that permits retrieval of the dominant frequencies for individual mode numbers m, and extraction of the modal structure of the full nonlinear flow. The maps of the energy of the fluctuations and the spatio-temporal evolution of the velocity field suggest that fluctuations originate in the outer boundary layer. The threshold of instability is found at Re-c = 1860. The fluctuations result from two coupled instabilities: high-latitude Bodewadt-type boundary layer instability, and secondary non-axisymmetric instability of a centripetal jet forming at the equator of the outer sphere. We explore the variation of the magnetic and kinetic energies with the input parameters, and show that a modified Elsasser number controls their evolution. We can thus compare with experimental determinations of these energies and find a good agreement. Because of the dipolar nature of the imposed magnetic field, the energy of magnetic fluctuations is much larger near the inner sphere, but their origin lies in velocity fluctuations that are initiated in the outer boundary layer.

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