Star formation in self-gravitating disks in active galactic nuclei. II. Episodic formation of broad line regions
J.-M. Wang, P. Du, J. A. Baldwin, J.-Q. Ge, C. Hu, G. J. Ferland

TL;DR
This paper models episodic formation of broad line regions in quasars driven by star formation in accretion disks, explaining observed spectral sequences and outflows through a four-phase cycle of cloud and atmosphere evolution.
Contribution
It introduces a self-consistent model of episodic broad line region formation linked to star formation and disk dynamics, with predictions matching quasar spectral observations.
Findings
BLRs form episodically through four phases of cloud and atmosphere evolution.
Metallicity gradients influence cloud properties and emission line regions.
Spectral sequences correlate with phases of BLR formation and dissipation.
Abstract
(abridged) We study the consequence of star formation (SF) in an self-gravity dominated accretion disk in quasars. The warm skins of the SF disk are governed by the radiation from the inner part of the accretion disk to form Compton atmosphere (CAS). The CAS are undergoing four phases to form broad line regions. Phase I is the duration of pure accumulation supplied by the SF disk. During phase II clouds begin to form due to line cooling and sink to the SF disk. Phase III is a period of preventing clouds from sinking to the SF disk through dynamic interaction between clouds and the CAS. Finally, phase IV is an inevitable collapse of the entire CAS through line cooling. This CAS evolution drives the episodic appearance of BLRs. Geometry and dynamics of BLRs can be self-consistently derived from the thermal instability of the CAS during phases II and III by linear analysis. The metallicity…
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