Scaling behaviour of rotating convection in a spherical shell with different Prandtl numbers
Wei Fan, Qi Wang, Yufeng Lin

TL;DR
This study investigates how rotating convection in spherical shells behaves across different Prandtl numbers, revealing flow regimes, transition mechanisms, and scaling laws relevant to planetary and stellar interiors.
Contribution
The paper provides a comprehensive numerical analysis of rotating convection across a wide Prandtl number range, identifying flow regimes, triadic resonances, and scaling behaviors.
Findings
Four flow regimes identified as Rayleigh number increases.
Evidence of triadic resonances in multiple modes regime.
Scaling laws for heat transfer and flow speeds depend on Prandtl number.
Abstract
Rayleigh-Benard convection in a rotating spherical shell provides a simplified model for convective dynamics of planetary and stellar interiors. In this study, we build more than 200 numerical models of rotating convection in a spherical shell over a wide range of (). As increasing the Rayleigh number , we characterise four different flow regimes, starting from the linear onset to multiple modes, then transiting to the geostrophic turbulence and eventually approaching the weakly rotating regime. In the multiple modes regime, we show evidence of triadic resonances in numerical models with different , which may provide a generic mechanism for the transition from laminar to turbulence in rotating convection. We analyse scaling behaviours of the heat transfer and convective flow speeds in numerical simulations, paying particular attention to the…
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