Particle-in-cell Simulations of the Magnetorotational Instability in Stratified Shearing Boxes
Astor Sandoval, Mario Riquelme, Anatoly Spitkovsky, Fabio Bacchini

TL;DR
This study uses particle-in-cell simulations to explore the collisionless magnetorotational instability in stratified accretion disks, revealing magnetic dynamo activity, particle acceleration, and disk outflows, relevant for low-luminosity black hole systems.
Contribution
It presents the first detailed PIC simulation analysis of the collisionless MRI in stratified disks, highlighting dynamo processes and nonthermal particle acceleration.
Findings
Disk expansion and outflows observed.
Magnetic pressure dominated disks with high viscosity parameter.
Nonthermal particle acceleration with power-law spectra.
Abstract
The magnetorotational instability (MRI) plays a crucial role in regulating the accretion efficiency in astrophysical accretion disks. In low-luminosity disks around black holes, such as Sgr A* and M87, Coulomb collisions are infrequent, making the MRI physics effectively collisionless. The collisionless MRI gives rise to kinetic plasma effects that can potentially affect its dynamic and thermodynamic properties. We present 2D and 3D particle-in-cell (PIC) plasma simulations of the collisionless MRI in stratified disks using shearing boxes with net vertical field. We use pair plasmas, with initial and concentrate on sub-relativistic plasma temperatures (). Our 2D and 3D runs show disk expansion, particle and magnetic field outflows, and a dynamo-like process. They also produce magnetic pressure dominated disks with (Maxwell stress dominated) viscosity…
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Taxonomy
TopicsAstrophysical Phenomena and Observations · Astrophysics and Star Formation Studies · Heat Transfer Mechanisms
