Expansion kinematics of young clusters III. The kiloparsec sample
Artikel i vetenskaplig tidskrift, 2026

Context. Most stars form in clusters, but only a small fraction are thought to remain gravitationally bound for longer than similar to 10 Myr.
Aims. Cluster formation and dispersal can be investigated by analysing the spatial and kinematic structure in nearby young systems, particularly, by analysing expansion.
Methods. We combined Gaia DR3 five-parameter astrometry with calibrated radial velocities for 23 nearby (< 1 kpc) young (<60 Myr) clusters.
Results. We characterised the plane-of-sky structure of the clusters using the Q-parameter and angular dispersion parameter methods. We measured the plane-of-sky expansion using several methods. We determined the plane-of-sky orientations along which the expansion was maximised. We estimated expansion timescales and trace-back ages and compared them to the isochronal ages. We searched for correlations between the cluster properties and discuss sample-wide trends.
Conclusions. Most young clusters are more smoothly structured in their centres where the dynamical interaction rate is highest, while hierarchical structure can survive in the sparse outskirts for >10 Myr. The majority of nearby young clusters exhibit clear signatures of expansion in the plane of sky, which in many cases is significantly anisotropic, even at ages >30Myr. We find evidence that the directions of maximum expansion of older clusters tend to be oriented closer to parallel with the Galactic plane. The high degree of spatial structure and significant expansion anisotropy imply that the majority of these young clusters formed with significant spatial and kinematic substructure and not as dense, monolithic clusters. The kinematic ages estimated from expansion timescales and on-sky trace-back generally agree well with estimates inferred from stellar evolution models for clusters <10 Myr old. However, many clusters with older isochronal ages appear to have significantly younger kinematic ages. We discuss potential reasons for this discrepancy, including a prolonged embedded and/or gravitationally bound phase in the early stages of the clusters.

stars: kinematics and dynamics

stars: pre-main sequence

open clusters and associations: general

surveys

Författare

Joseph Armstrong

Chalmers, Rymd-, geo- och miljövetenskap, Astronomi och plasmafysik

Jonathan Tan

Chalmers, Fysik, Subatomär, högenergi- och plasmafysik

Astronomy and Astrophysics

0004-6361 (ISSN) 1432-0746 (eISSN)

Vol. 713 A9

Stjärnhopbildningens dynamik och den initiala massfunktionen av nybildade stjärnor

Rymdstyrelsen (2025-00239), 2026-01-01 -- 2029-12-31.

Massive Star Formation through the Universe (MSTAR)

Europeiska kommissionen (EU) (EC/H2020/788829), 2018-09-01 -- 2023-08-31.

Ämneskategorier (SSIF 2025)

Astronomi, astrofysik och kosmologi

DOI

10.1051/0004-6361/202660333

Mer information

Senast uppdaterat

2026-09-17