Long-term GRMHD Simulations of Neutron Star Merger Accretion Disks: Implications for Electromagnetic Counterparts
Rodrigo Fern\'andez, Alexander Tchekhovskoy, Eliot Quataert, Francois, Foucart, Daniel Kasen

TL;DR
This study presents long-term 3D GRMHD simulations of neutron star merger accretion disks, revealing mass ejection mechanisms, jet formation, and implications for electromagnetic counterparts like kilonovae and gamma-ray bursts.
Contribution
First long-duration 3D GRMHD simulation of neutron star merger disks showing detailed mass ejection and jet formation, improving understanding of electromagnetic signals.
Findings
Ejected mass is twice that in hydrodynamic models.
Ejecta velocity averages 0.1c with broad electron fraction distribution.
Simulation predicts potential kilonova precursor from neutron freezeout.
Abstract
We investigate the long-term evolution of black hole accretion disks formed in neutron star mergers. These disks expel matter that contributes to an -process kilonova, and can produce relativistic jets powering short gamma-ray bursts. Here we report the results of a three-dimensional, general-relativistic magnetohydrodynamic (GRMHD) simulation of such a disk which is evolved for long enough (s, or ) to achieve completion of mass ejection far from the disk. Our model starts with a poloidal field, and fully resolves the most unstable mode of the magnetorotational instability. We parameterize the dominant microphysics and neutrino cooling effects, and compare with axisymmetric hydrodynamic models with shear viscosity. The GRMHD model ejects mass in two ways: a prompt MHD-mediated outflow and a late-time, thermally-driven wind once the disk becomes…
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