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Double Compton and Cyclo-Synchrotron in Super-Eddington Discs, Magnetized Coronae, and Jets

2016/08/31 by Jonathan C. McKinney, Jens Chluba, Maciek Wielgus +3 · 1 citation
Physics and Astronomy · #Accretion (finance) #Active galactic nucleus #Astrophysical Phenomena and Observations #Astrophysics #Bremsstrahlung #Compton scattering #Eddington luminosity #Galaxy #Nuclear physics #Optics #Photon #Physics #Pulsars and Gravitational Waves Research #Synchrotron #Synchrotron radiation #astro-ph.HE #gr-qc

paper · pdf · doi:10.1093/mnras/stx227

25 pages, 14 figures, 3 tables, submitted to MNRAS

arxiv created 2016/09/12 · openalex created_date 2016/09/16 · openalex publication_date 2017/01/30 · arxiv updated 2017/04/26 · openalex updated_date 2026/08/05

Abstract

Black hole accretion discs accreting near the Eddington rate are dominated by bremsstrahlung cooling, but above the Eddington rate, the double Compton process can dominate in radiation-dominated regions, while the cyclo-synchrotron can dominate in strongly magnetized regions like a corona or a jet. We present an extension to the general relativistic radiation magnetohydrodynamic code harmrad to account for emission and absorption by thermal cyclo-synchrotron, double Compton, bremsstrahlung, low-temperature opal opacities, as well as Thomson and Compton scattering. The harmrad code and associated analysis and visualization codes have been made open-source and are publicly available at the github repository website. We approximate the radiation field as a Bose–Einstein distribution and evolve it using the radiation number–energy–momentum conservation equations in order to track photon hardening. We perform various simulations to study how these extensions affect the radiative properties of magnetically arrested discs accreting at Eddington to super-Eddington rates. We find that double Compton dominates bremsstrahlung in the disc within a radius of r ∼ 15rg (gravitational radii) at hundred times the Eddington accretion rate, and within smaller radii at lower accretion rates. Double Compton and cyclo-synchrotron regulate radiation and gas temperatures in the corona, while cyclo-synchrotron regulates temperatures in the jet. Interestingly, as the accretion rate drops to Eddington, an optically thin corona develops whose gas temperature of T ∼ 109K is ∼100 times higher than the disc's blackbody temperature. Our results show the importance of double Compton and synchrotron in super-Eddington discs, magnetized coronae and jets.

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