2025/12/01 by Giuseppina Nigro, Nigro, Giuseppina
Biochemistry, Genetics and Molecular Biology · Engineering · Physics and Astronomy · #Earth and Planetary Astrophysics (astro-ph.EP) #FOS: Physical sciences #Fluid dynamics and aerodynamics studies #Geomagnetism and Paleomagnetism Studies #Solar and Space Plasma Dynamics #Solar and Stellar Astrophysics (astro-ph.SR)
paper · pdf · doi:10.48550/arxiv.2512.02219
openalex publication_date 2025/12/01 · openalex created_date 2025/12/04 · openalex updated_date 2026/07/28
Stellar activity and planetary magnetospheres are powered by an underlying dynamo mechanism generated by magnetoconvection coupled with rotation. In astrophysical contexts, magnetoconvection typically occurs in parameter regimes that are currently inaccessible to direct numerical simulations (DNS). We investigate convective heat transfer in a magneto-convection and dynamo model under extreme parameter conditions, specifically high Rayleigh and Prandtl numbers, in a plasma flow with maximum kinetic helicity compatible with fast-rotating objects. Our approach to studying magneto-convection and dynamo mechanisms employs a simplified thermally driven shell model. Magnetic polarity reversals are obtained by including a pitchfork bifurcation term in the large-scale magnetic field equation, while nonlinear dynamics are described by a shell model formulation. The low computational cost of the model allows us to explore the asymptotic behavior of convective heat transfer in regimes beyond those reached by current DNS. Our results reveal that the Nusselt number Nu -- a dimensionless measure of convective heat transport -- generally increases with turbulence, following a power-law scaling and showing a strong correlation with Ra and Pr. This relationship appears to be more pronounced than that observed in non-magnetized fluids, suggesting that magnetic fields may significantly enhance convective heat transfer. Despite the assumption to neglect spatial information such as density stratification -- an assumption that is necessary in the shell model approach -- our model captures the gross dynamical features of turbulent magnetoconvection in asymptotic regimes. It allows for a broad exploration of parameter space, indicating that magnetic fields may play a central role in modulating heat transport in stellar and planetary interiors.