Our Galaxy's youngest disc
arXiv:2205.01455 · doi:10.1093/mnras/stac1788
Abstract
We investigate the structure of our Galaxy's young stellar disc by fitting the distribution functions (DFs) of a new family to five-dimensional Gaia data for a sample of OB stars. Tests of the fitting procedure show that the young disc's DF would be strongly constrained by Gaia data if the distribution of Galactic dust were accurately known. The DF that best fits the real data accurately predicts the kinematics of stars at their observed locations, but it predicts the spatial distribution of stars poorly, almost certainly on account of errors in the best-available dust map. We argue that dust models could be greatly improved by modifying the dust model until the spatial distribution of stars predicted by a DF agreed with the data. The surface density of OB stars is predicted to peak at $R\simeq5.5\mbox{kpc}$, slightly outside the reported peak in the surface density of molecular gas; we suggest that the latter radius may have been under-estimated through the use of poor kinematic distances. The velocity distributions predicted by the best-fit DF for stars with measured line-of-sight velocities reveal that the outer disc is disturbed at the level of 10 $\mbox{km}~\mbox{s}^{-1}$ in agreement with earlier studies, and that the measured values of have significant contributions from the orbital velocities of binaries. Hence the outer disc is colder than it is sometimes reported to be.
18 pages, 20 figures, accepted to publish on MNRAS
References in corpus (9)
- The Gaia mission
- The Radial Velocity Experiment (RAVE): first data release
- The GALAH Survey: Scientific Motivation
- Star formation near the Sun is driven by expansion of the Local Bubble
- The age-metallicity structure of the Milky Way disk
- A new, large-scale map of interstellar reddening derived from HI emission
- Three-dimensional extinction mapping using Gaussian random fields
- Completeness of the Gaia-verse IV: The Astrometry Spread Function of Gaia DR2
- Completeness of the Gaia-verse III: using hidden states to infer gaps, detection efficiencies and the scanning law from the DR2 light curves