Radiation driven outflow in active galactic nuclei: the feedback effects of scattered and reprocessed photons
Chao Liu (SHAO), Feng Yuan (SHAO), Jeremiah P. Ostriker (Princeton, U./Columbia U.), Zhaoming Gan (SHAO), Xiaohong Yang (SHAO)

TL;DR
This study uses advanced simulations to explore how scattered and reprocessed photons influence AGN accretion flows, revealing significant impacts on inflow/outflow rates and energy transfer, with implications for understanding AGN luminosity and feedback.
Contribution
It introduces a detailed treatment of re-radiation effects in AGN accretion flow simulations, improving understanding of their impact on flow dynamics and feedback mechanisms.
Findings
Re-radiation significantly reduces inflow rates and enhances outflows.
The efficiency of converting radiation to kinetic outflow power is about 10^{-3}.
Even with re-radiation effects, AGN luminosity can remain super-Eddington.
Abstract
We perform time-dependent, 2DHD numerical simulations to study the dynamics of a slowly rotating accretion flow from sub-pc to pc scales under the irradiation from the central AGN. Compared to previous work, we improve the calculation of the radiative force due to X-rays. More importantly, in addition to radiative pressure and radiative heating/cooling directly from the central AGN, in the momentum equation we also include the force due to the scattered and reprocessed photons. We find that the accretion flow properties change significantly due to this "re-radiation" effect. The inflow rate at the inner boundary is reduced, while the outflow rate at the outer boundary is enhanced by about one order of magnitude. This effect is more significant when the density at the outer boundary is higher. The properties of outflows such as velocity, momentum and energy fluxes, and the ratio of…
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