4.7 Article

Stratified disc wind models for the AGN broad-line region: ultraviolet, optical, and X-ray properties

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/staa136

关键词

accretion, accretion discs; line: formation; radiative transfer; galaxies: active; quasars: emission lines; quasars: general

资金

  1. Herchel Smith Research Fellowship at Cambridge
  2. Science and Technology Facilities Council [ST/M001326/1]
  3. NASA [NNG15PP48P]
  4. EPSRC Centre for Doctoral Training in Next Generation Computational Modelling [EP/L015382/1]
  5. STFC [ST/M001326/1, ST/P000312/1] Funding Source: UKRI

向作者/读者索取更多资源

The origin, geometry, and kinematics of the broad-line region (i3LR) gas in quasars and active galactic nuclei (AGN) are uncertain. We demonstrate that clumpy biconical disc winds illuminated by an AGN continuum can produce BLR-like spectra. We first use a simple toy model to illustrate that disc winds make quite good BLR candidates, because they are selfshielded flows and can cover a large portion of the ionizing flux-density 05H-nH) plane. We then conduct Monte Carlo radiative transfer and photoionization calculations, which fully account for self-shielding and multiple scattering in a non-spherical geometry. The emergent model spectra show broad emission lines with equivalent widths and line ratios comparable to those observed in AGN, provided that the wind has a volume filling factor offiz <; 0.1. Similar emission line spectra are produced for a variety of wind geometries (polar or equatorial) and for launch radii that differ by an order of magnitude. The line emission arises almost exclusively from plasma travelling below the escape velocity, implying that 'failed winds' are important BLR candidates. The behaviour of a line-emitting wind (and possibly any 'smooth flow- BLR model) is similar to that of the locally optimally emitting cloud model originally proposed by Baldwin et al. (1995), except that the gradients in ionization state and temperature are largescale and continuous, rather than within or between distinct clouds. Our models also produce UV absorption lines and X-ray absorption features, and the stratified ionization structure can partially explain the different classes of broad absorption line quasars.

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