English

Sgr A* near-infrared flares from reconnection events in a magnetically arrested disc

High Energy Astrophysical Phenomena 2020-08-19 v2 Astrophysics of Galaxies

Abstract

Large-amplitude Sgr A* near-infrared flares result from energy injection into electrons near the black hole event horizon. Astrometry data show continuous rotation of the emission region during bright flares, and corresponding rotation of the linear polarization angle. One broad class of physical flare models invokes magnetic reconnection. Here we show that such a scenario can arise in a general relativistic magnetohydrodynamic simulation of a magnetically arrested disc. Saturation of magnetic flux triggers eruption events, where magnetically dominated plasma is expelled from near the horizon and forms a rotating, spiral structure. Dissipation occurs via reconnection at the interface of the magnetically dominated plasma and surrounding fluid. This dissipation is associated with large increases in near-infrared emission in models of Sgr A*, with durations and amplitudes consistent with the observed flares. Such events occur at roughly the timescale to re-accumulate the magnetic flux from the inner accretion disc, 10h for Sgr A*. We study near-infrared observables from one sample event to show that the emission morphology tracks the boundary of the magnetically dominated region. As the region rotates around the black hole, the near-infrared centroid and linear polarization angle both undergo continuous rotation, similar to the behavior seen in Sgr A* flares.

Keywords

Cite

@article{arxiv.2006.03657,
  title  = {Sgr A* near-infrared flares from reconnection events in a magnetically arrested disc},
  author = {J. Dexter and A. Tchekhovskoy and A. Jiménez-Rosales and S. M. Ressler and M. Bauböck and Y. Dallilar and P. T. de Zeeuw and F. Eisenhauer and S. von Fellenberg and F. Gao and R. Genzel and S. Gillessen and M. Habibi and T. Ott and J. Stadler and O. Straub and F. Widmann},
  journal= {arXiv preprint arXiv:2006.03657},
  year   = {2020}
}

Comments

revised version, MNRAS, in press