The Interplay of Parametric and Magnetorotational Instabilities in Oscillatory Shear Flows
Callum W. Fairbairn, James M. Stone

TL;DR
This study investigates how parametric and magnetorotational instabilities interact in oscillatory shear flows within warped disks, revealing their combined effects on internal stresses and flow dynamics through detailed simulations.
Contribution
It provides the first detailed analysis of the interplay between parametric instability and MRI in warped disk flows using 3D MHD simulations.
Findings
Parametric instability creates strong vertical elevator flows that resist sloshing.
Above a critical forcing amplitude, these flows dominate vertical stress.
MRI can suppress the parametric instability at lower forcing amplitudes.
Abstract
The evolution of warped disks is governed by internal, oscillatory shear flows driven by their distorted geometry. However, these flows are known to be vigorously unstable to a hydrodynamic parametric instability. In many warped systems, this might coexist and compete with the magnetorotational instability (MRI). The interplay of these phenomena and their combined impact on the internal flows has not been studied. To this end, we perform three-dimensional, magnetohydrodynamic unstratified shearing box simulations with an oscillatory radial forcing function to mimic the effects of a warped disk. In the hydrodynamic study, we find that the parametric instability manifests as strong, vertical `elevator' flows that resist the sloshing motion. Above a critical forcing amplitude, these also emerge in our magnetized runs and dominate the vertical stress, although they are partially weakened by…
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