Turbulent geodynamo simulations: a leap towards Earth's core
Nathana\"el Schaeffer, Dominique Jault, Henri-Claude Nataf, Alexandre, Fournier (IPGP)

TL;DR
This paper reports advanced geodynamo simulations achieving Earth's core-like turbulence, revealing key magnetic and flow features that enhance understanding of Earth's magnetic field generation.
Contribution
It presents the first high-resolution, turbulent geodynamo simulations at Earth's core parameters, capturing realistic magnetic and flow dynamics.
Findings
Magnetic energy exceeds kinetic energy by an order of magnitude.
Heterogeneous magnetic field distribution with a strong interior and weaker exterior.
Emergence of a large-scale m=1 eddy without heterogeneity.
Abstract
We present an attempt to reach realistic turbulent regime in direct numerical simulations of the geodynamo. We rely on a sequence of three convection-driven simulations in a rapidly rotating spherical shell. The most extreme case reaches towards the Earth's core regime by lowering viscosity (magnetic Prandtl number Pm=0.1) while maintaining vigorous convection (magnetic Reynolds number Rm>500) and rapid rotation (Ekman number E=1e-7), at the limit of what is feasible on today's supercomputers. A detailed and comprehensive analysis highlights several key features matching geomagnetic observations or dynamo theory predictions -- all present together in the same simulation -- but it also unveils interesting insights relevant for Earth's core dynamics.In this strong-field, dipole-dominated dynamo simulation, the magnetic energy is one order of magnitude larger than the kinetic energy. The…
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