paper

Fe K Profiles from Simulations of Accreting Black Holes

arXiv:1604.01126 · doi:10.3847/0004-637X/826/1/52

Abstract

We present first results from a new technique for the prediction of Fe K profiles directly from general relativistic magnetohydrodynamic (GRMHD) simulations. Data from a GRMHD simulation are processed by a Monte Carlo global radiation transport code, which determines the X-ray flux irradiating the disk surface and the coronal electron temperature self-consistently. With that irradiating flux and the disk's density structure drawn from the simulation, we determine the reprocessed Fe K emission from photoionization equilibrium and solution of the radiation transfer equation. We produce maps of the surface brightness of Fe K emission over the disk surface, which---for our example of a , Schwarzschild black hole accreting at the Eddington value---rises steeply one gravitational radius outside the radius of the innermost stable circular orbit and then falls at larger radii. We explain these features of the Fe K radial surface brightness profile as consequences of the disk's ionization structure and an extended coronal geometry, respectively. We also present the corresponding Fe K line profiles as would be seen by distant observers at several inclinations. Both the shapes of the line profiles and the equivalent widths of our predicted K lines are qualitatively similar to those typically observed from accreting black holes. Most importantly, this work represents a direct link between theory and observation: in a fully self-consistent way, we produce observable results---iron fluorescence line profiles---from the theory of black hole accretion with almost no phenomenological assumptions.

27 pages, 13 figures

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