The Milky Way in motion: gauging stellar trajectories that shape the Galactic thin disc

Fuente: arXiv
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Main Authors: Dantas, M. L. L., Smiljanic, R., de Souza, R. S., Tissera, P. B., Magrini, L.
Format: Preprint
Published: 2025
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author Dantas, M. L. L.
Smiljanic, R.
de Souza, R. S.
Tissera, P. B.
Magrini, L.
author_facet Dantas, M. L. L.
Smiljanic, R.
de Souza, R. S.
Tissera, P. B.
Magrini, L.
contents As stars traverse the Milky Way, their orbits evolve through perturbations that alter their orbital radii. These changes arise from two mechanisms: churning, which modifies angular momentum, and blurring, which induces eccentric orbits without major angular momentum change. To assess whether churning or blurring dominates the dynamical evolution of Gaia-ESO stars, we refine Galactic chemical-evolution models by constructing finer grids that span a wider age range. Using a generalised additive model (GAM), we estimate stellar birth radii beyond the limits of binned metallicity models and compare them with dynamical parameters derived from Gaia parallaxes and proper motions, and Galpy. Our metallicity-stratified sample, grouped through hierarchical clustering of 21 chemical abundances, reveals clear migratory signatures: metal-rich stars formed in the inner disc preferentially move outwards, while more metal-poor stars formed at larger radii tend to migrate inwards. About 75% of stars show signs of churning, while the remainder are largely undisturbed or shaped by blurring. These patterns vary among chemical groups, likely reflecting interactions with the Galactic bar and spiral arms.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15670
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Milky Way in motion: gauging stellar trajectories that shape the Galactic thin disc
Dantas, M. L. L.
Smiljanic, R.
de Souza, R. S.
Tissera, P. B.
Magrini, L.
Astrophysics of Galaxies
Solar and Stellar Astrophysics
As stars traverse the Milky Way, their orbits evolve through perturbations that alter their orbital radii. These changes arise from two mechanisms: churning, which modifies angular momentum, and blurring, which induces eccentric orbits without major angular momentum change. To assess whether churning or blurring dominates the dynamical evolution of Gaia-ESO stars, we refine Galactic chemical-evolution models by constructing finer grids that span a wider age range. Using a generalised additive model (GAM), we estimate stellar birth radii beyond the limits of binned metallicity models and compare them with dynamical parameters derived from Gaia parallaxes and proper motions, and Galpy. Our metallicity-stratified sample, grouped through hierarchical clustering of 21 chemical abundances, reveals clear migratory signatures: metal-rich stars formed in the inner disc preferentially move outwards, while more metal-poor stars formed at larger radii tend to migrate inwards. About 75% of stars show signs of churning, while the remainder are largely undisturbed or shaped by blurring. These patterns vary among chemical groups, likely reflecting interactions with the Galactic bar and spiral arms.
title The Milky Way in motion: gauging stellar trajectories that shape the Galactic thin disc
topic Astrophysics of Galaxies
Solar and Stellar Astrophysics
url https://arxiv.org/abs/2512.15670