A self-consistent dynamical model of the Milky Way disc adjusted to Gaia data
A.C. Robin, O. Bienaym\'e, J.B. Salomon, C. Reyl\'e, N. Lagarde, F., Figueras, R. Mor, J. G. Fern\'andez-Trincado, J. Montillaud

TL;DR
This paper develops a self-consistent dynamical model of the Milky Way using Gaia data, fitting the gravitational potential and stellar distributions to observed kinematics and densities, revealing detailed structure and dark matter halo characteristics.
Contribution
It introduces a novel self-consistent dynamical model of the Milky Way that fits Gaia data to determine detailed structural and kinematic properties, including disc characteristics and dark matter halo shape.
Findings
Disc flaring observed in the thin disc
Distinct density and kinematic features of thin and thick discs
Dark matter halo is nearly spherical
Abstract
This paper shows how a self-consistent dynamical model can be obtained by fitting the gravitational potential of the Milky Way to the stellar kinematics and densities from Gaia data. Using the Besancon Galaxy Model we derive a potential and the disc stellar distribution functions are computed based on three integrals of motion to model stationary stellar discs. The gravitational potential and the stellar distribution functions are built self-consistently, and then adjusted to be in agreement with the kinematics and the density distributions obtained from Gaia observations. A Markov chain Monte Carlo (MCMC) is used to fit the free parameters of the dynamical model to Gaia parallax and proper motion distributions. The fit is done on several sets of Gaia eDR3 data, widely spread in longitudes and latitudes. We are able to determine the velocity dispersion ellipsoid and its tilt for…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Astronomy and Astrophysical Research · Scientific Research and Discoveries
