Angular momentum transport and large eddy simulations in magnetorotational turbulence: the small Pm limit
H. Meheut, S. Fromang, G. Lesur, M. Joos, P.-Y. Longaretti

TL;DR
This study investigates magnetorotational turbulence in accretion disks at very low magnetic Prandtl numbers, demonstrating convergence of angular momentum transport and validating subgrid models for large eddy simulations to reduce computational costs.
Contribution
The paper provides the first large-scale, high-resolution simulations of MRI turbulence at small Pm, showing convergence of transport and validating LES models for this regime.
Findings
Angular momentum transport converges at small Pm with a mean magnetic field.
Implicit LES and Chollet-Lesieur models accurately reproduce key turbulence metrics.
Large eddy simulation methods significantly reduce computational costs.
Abstract
Angular momentum transport in accretion discs is often believed to be due to magnetohydrodynamic turbulence mediated by the magnetorotational instability. Despite an abundant literature on the MRI, the parameters governing the saturation amplitude of the turbulence are poorly understood and the existence of an asymptotic behavior in the Ohmic diffusion regime is not clearly established. We investigate the properties of the turbulent state in the small magnetic Prandtl number limit. Since this is extremely computationally expensive, we also study the relevance and range of applicability of the most common subgrid scale models for this problem. Unstratified shearing boxes simulations are performed both in the compressible and incompressible limits, with a resolution up to 800 cells per disc scale height. The latter constitutes the largest resolution ever attained for a simulation of MRI…
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