Perturbed distribution functions with accurate action estimates for the Galactic disc
H. Al Kazwini, Q. Agobert, A. Siebert, B. Famaey, G. Monari, S., Rozier, P. Ramos, R. Ibata, S. Gausland, C. Riviere, D. Spolyar

TL;DR
This paper advances the theoretical modeling of Galactic disc perturbations by incorporating more accurate action-angle variables and time-dependent perturbations, enhancing the understanding of stellar dynamics in the Gaia era.
Contribution
It introduces an improved framework using AGAMA for better action estimates and models transient perturbations, extending previous work beyond the epicyclic approximation.
Findings
Resonances identified at higher azimuthal velocities.
Extended analysis above the Galactic plane.
Potential to constrain 3D Galactic potential structure.
Abstract
In the Gaia era, understanding the effects of the perturbations of the Galactic disc is of major importance in the context of dynamical modelling. In this theoretical paper we extend previous work in which, making use of the epicyclic approximation, the linearized Boltzmann equation had been used to explicitly compute, away from resonances, the perturbed distribution function of a Galactic thin-disc population in the presence of a non-axisymmetric perturbation of constant amplitude. Here we improve this theoretical framework in two distinct ways in the new code that we present. First, we use better estimates for the action-angle variables away from quasi-circular orbits, computed from the AGAMA software, and we present an efficient routine to numerically re-express any perturbing potential in these coordinates with a typical accuracy at the per cent level. The use of more accurate…
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