Dust shell model of the water fountain source IRAS 16342--3814
K. Murakawa, and H. Izumiura

TL;DR
This study models the dust shell of IRAS 16342-3814, revealing an inner thick disk within a massive torus, explaining observed spectral and imaging data and suggesting a formation mechanism involving mass loss and possible binary interaction.
Contribution
It introduces a new dust shell model with an inner thick disk inside a massive torus, improving the fit to observations and proposing a formation scenario involving mass loss and binary dynamics.
Findings
Inner thick disk is essential for fitting observations.
Massive torus and disk masses are estimated at 1 and 0.01 solar masses.
Mass loss likely influenced by binary interaction.
Abstract
We investigate the circumstellar dust shell of the water fountain source IRAS 16342-3814. We performed two-dimensional radiative transfer modeling of the dust shell, taking into account previously observed spectral energy distributions (SEDs) and our new -band imaging and - and -band imaging polarimetry obtained using the VLT/NACO instrument. Previous observations expect an optically thick torus in the equatorial plane because of a striking bipolar appearance and a large viewing angle of 30 - 40. However, models with such a torus as well as a bipolar lobe and an AGB shell cannot fit the SED and the images simultaneously. We find that an additional optically and geometrically thick disk located inside a massive torus solves this problem. The masses of the disk and the torus are estimated to be 0.01 at the m dust and 1 at…
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