Continuum and line modeling of disks around young stars II. Line diagnostics for GASPS from the DENT grid
I. Kamp, P. Woitke, C. Pinte, I. Tilling, W.-F. Thi, F. Menard, G., Duchene, J.-C. Augereau

TL;DR
This study uses a large grid of disk models to analyze gas emission lines and ratios, aiming to improve diagnostics of disk properties like gas mass and structure around young stars.
Contribution
It provides a comprehensive statistical analysis of 300,000 disk models, revealing the diagnostic potential and limitations of various gas emission lines for understanding disk parameters.
Findings
CO is rarely the dominant carbon reservoir in disks.
[CII] 158 μm line flux traces outer disk radius and UV flux.
Low [OI] 63/145 line ratios indicate cool atomic O gas and self-absorption.
Abstract
Aims. We want to understand the chemistry and physics of disks on the basis of a large unbiased and statistically relevant grid of disk models. One of the main goals is to explore the diagnostic power of various gas emission lines and line ratios for deriving main disk parameters such as the gas mass. Methods. We explore the results of the DENT grid (Disk Evolution with Neat Theory) that consists of 300 000 disk models with 11 free parameters. Through a statistical analysis, we search for correlations and trends in an effort to find tools for disk diagnostic. Results. All calculated quantities like species masses, temperatures, continuum and line fluxes differ by several orders of magnitude across the entire parameter space. The broad distribution of these quantities as a function of input parameters shows the limitation of using a prototype T Tauri or Herbig Ae/Be disk model. The…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Spectroscopy and Laser Applications · Phase Equilibria and Thermodynamics
