Numerical Simulations of Dynamos Generated in Spherical Couette Flows
C\'eline Guervilly (LGIT), Philippe Cardin (LGIT)

TL;DR
This study uses numerical simulations to explore how spherical Couette flows generate magnetic fields, revealing the conditions for dynamo action, the effects of rotation and boundary conditions, and implications for experiments.
Contribution
It demonstrates the conditions under which spherical Couette flows produce self-sustained magnetic fields, including the roles of flow symmetry, rotation, and boundary conditions, which were not fully understood before.
Findings
Dynamo occurs only with non-axisymmetric flow instabilities.
Critical magnetic Reynolds number is a few thousand without rotation.
Ferromagnetic boundary conditions slightly lower the dynamo threshold and enhance magnetic fields.
Abstract
We numerically investigate the efficiency of a spherical Couette flow at generating a self-sustained magnetic field. No dynamo action occurs for axisymmetric flow while we always found a dynamo when non-axisymmetric hydrodynamical instabilities are excited. Without rotation of the outer sphere, typical critical magnetic Reynolds numbers are of the order of a few thousands. They increase as the mechanical forcing imposed by the inner core on the flow increases (Reynolds number ). Namely, no dynamo is found if the magnetic Prandtl number is less than a critical value . Oscillating quadrupolar dynamos are present in the vicinity of the dynamo onset. Saturated magnetic fields obtained in supercritical regimes (either or ) correspond to the equipartition between magnetic and kinetic energies. A global rotation of the system (Ekman…
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