Self-consistent 2-phase AGN torus models: SED library for observers
Ralf Siebenmorgen, Frank Heymann, Andreas Efstathiou

TL;DR
This paper introduces a library of self-consistent 3D radiative transfer models for AGN dust tori, enabling quick estimation of key parameters and matching observed spectral energy distributions across diverse AGN types.
Contribution
The work provides a comprehensive SED library for AGN tori with a self-consistent 3D radiative transfer approach, accounting for various geometries and dust properties, and demonstrates its effectiveness on real observations.
Findings
The library reproduces observed scatter in silicate feature strengths.
AGN models fit observed SEDs without requiring starburst activity in luminous objects.
No direct link between observed extinction and dust cross section wavelength dependence.
Abstract
We assume that dust near active galactic nuclei (AGN) is distributed in a torus-like geometry, which may be described by a clumpy medium or a homogeneous disk or as a combination of the two (i.e. a 2-phase medium). The dust particles considered are fluffy and have higher submillimeter emissivities than grains in the diffuse ISM. The dust-photon interaction is treated in a fully self-consistent three dimensional radiative transfer code. We provide an AGN library of spectral energy distributions (SEDs). Its purpose is to quickly obtain estimates of the basic parameters of the AGN, such as the intrinsic luminosity of the central source, the viewing angle, the inner radius, the volume filling factor and optical depth of the clouds, and the optical depth of the disk midplane, and to predict the flux at yet unobserved wavelengths. The procedure is simple and consists of finding an element in…
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Taxonomy
TopicsGalaxies: Formation, Evolution, Phenomena · Astrophysics and Star Formation Studies · Stellar, planetary, and galactic studies
