The Gaia-ESO Survey: New constraints on the Galactic disc velocity dispersion and its chemical dependencies
G. Guiglion, A. Recio-Blanco, P. de Laverny, G. Kordopatis, V. Hill,, \v{S}. Mikolaitis, I. Minchev, C. Chiappini, R. F. G. Wyse, G. Gilmore, S., Randich, S. Feltzing, T. Bensby, E. Flaccomio, S. E. Koposov, E. Pancino, A., Bayo, M. T. Costado, E. Franciosini, A. Hourihane

TL;DR
This study analyzes the velocity dispersion of Milky Way disc stars using Gaia-ESO data, revealing chemical dependencies and kinematic trends that inform galaxy formation models.
Contribution
It provides new empirical constraints on the relationship between stellar velocity dispersion and chemical abundances in the Galactic disc.
Findings
Detected an inversion of radial velocity dispersion with [Mg/Fe] in thick-disc stars.
Found a continuous increase of vertical velocity dispersion with [Mg/Fe].
Confirmed presence of [Mg/Fe]-rich thick-disc stars with cool kinematics.
Abstract
Understanding the history and the evolution of the Milky Way disc is one of the main goals of modern astrophysics. We study the velocity dispersion behaviour of Galactic disc stars as a function of the [Mg/Fe] ratio, which can be used as a proxy of relative age. This key relation is essential to constrain the formation mechanisms of the disc stellar populations as well as the cooling processes. We used the recommended parameters and chemical abundances of 7800 FGK Milky Way field stars from the second internal data release of the Gaia-ESO Survey. These stars were observed with the GIRAFFE spectrograph, and cover a large spatial volume (6<R<10kpc and |Z|<2kpc). Based on the [Mg/Fe] and [Fe/H] ratios, we separated the thin- from the thick-disc sequence. From analysing the Galactocentric velocity of the stars for the thin disc, we find a weak positive correlation between Vphi and [Fe/H],…
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