Parsec-scale accretion and winds irradiated by a quasar
Anton Dorodnitsyn, Tim Kallman, Daniel Proga

TL;DR
This paper uses numerical simulations to explore how radiation pressure and X-ray heating influence the structure, winds, and accretion processes of a parsec-scale AGN torus, revealing conditions that affect obscuration and accretion flow.
Contribution
It introduces a comprehensive radiation hydrodynamics model that simultaneously investigates winds and accretion in AGN tori, highlighting the impact of radiation pressure on obscuration and accretion dynamics.
Findings
Radiation pressure on dust significantly shapes AGN obscuration.
High luminosity prevents sustained disk accretion but allows gas inflow via hot flows.
X-ray heated gas influences the torus structure and obscuration.
Abstract
We present numerical simulations of properties of a parsec-scale torus exposed to illumination by the central black hole in an active galaxy (AGN). Our physical model allows to investigate the balance between the formation of winds and accretion simultaneously. Radiation-driven winds are allowed by taking into account radiation pressure due to UV and IR radiation along with X-ray heating and dust sublimation. Accretion is allowed through angular momentum transport and the solution of the equations of radiation hydrodynamics. Our methods adopt flux-limited diffusion radiation-hydrodynamics for the dusty, infrared pressure driven part of the flow, along with X-ray heating and cooling. Angular momentum transport in the accreting part of the flow is modeled using effective viscosity. Our results demonstrate that radiation pressure on dust can play an important role in shaping AGN…
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