Test particles in relativistic resistive magnetohydrodynamics

Open Access
Authors
Publication date 05-2019
Journal Journal of Physics: Conference Series
Article number 12018
Volume | Issue number 1225
Number of pages 13
Organisations
  • Faculty of Science (FNWI) - Anton Pannekoek Institute for Astronomy (API)
Abstract
The Black Hole Accretion Code (BHAC) has recently been extended with the ability to evolve charged test particles according to the Lorentz force within resistive relativistic magnetohydrodynamics simulations. We apply this method to evolve particles in a reconnecting current sheet that forms due to the coalescence of two magnetic flux tubes in 2D Minkowski spacetime. This is the first analysis of charged test particle evolution in resistive relativistic magnetohydrodynamics simulations. The energy distributions of an ensemble of 100.000 electrons are analyzed, as well as the acceleration of particles in the plasmoids that form in the reconnection layer. The effect of the Lundquist number, magnetization, and plasma-β on the particle energy distribution is explored for a range of astrophysically relevant parameters. We find that electrons accelerate to non-thermal energies in the thin current sheets in all cases. We find two separate acceleration regimes: An exponential increase of the Lorentz factor during the island coalescence where the acceleration depends linearly on the resistivity and a nonlinear phase with high variability. These results are relevant for determining energy distributions and acceleration sites obtaining radiation maps in large-scale magnetohydrodynamics simulations of black hole accretion disks and jets.
Document type Article
Note 13th International Conference on Numerical Modeling of Space Plasma Flows (ASTRONUM-2018) 25–29 June 2018, Panama City Beach, Florida, USA
Language English
Published at https://doi.org/10.1088/1742-6596/1225/1/012018
Other links https://ui.adsabs.harvard.edu/abs/2019JPhCS1225a2018R/abstract
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