Saturation of the MRI in Strongly Radiation Dominated Accretion Disks
Yan-Fei Jiang, James M. Stone, Shane W. Davis

TL;DR
This study investigates how the magneto-rotational instability saturates in strongly radiation dominated accretion disks, revealing increased Maxwell stress and altered turbulence properties due to radiation effects.
Contribution
It introduces a new radiation MHD simulation approach and demonstrates how radiation influences MRI saturation and stress ratios in accretion disks.
Findings
MRI turbulence is highly compressible in radiation dominated regimes.
Maxwell stress exceeds gas pressure dominated cases in radiation pressure disks.
Radiation drag acts like bulk viscosity, affecting magnetic Prandtl number.
Abstract
The saturation level of the magneto-rotational instability (MRI) in a strongly radiation dominated accretion disk is studied using a new Godunov radiation MHD code in the unstratified shearing box approximation. Since vertical gravity is neglected in this work, our focus is on how the MRI saturates in the optically thick mid-plane of the disk. We confirm that turbulence generated by the MRI is very compressible in the radiation dominated regime, as found by previous calculations using the flux-limited diffusion approximation. We also find little difference in the saturation properties in calculations that use a larger horizontal domain (up to four times the vertical scale height in the radial direction). However, in strongly radiation pressure dominated disks (one in which the radiation energy density reaches 1% of the rest mass energy density of the gas), we find Maxwell stress from…
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