Early Evolution and 3D Structure of Embedded Star Clusters
arXiv:2302.08536 · doi:10.1093/mnras/stad568
Abstract
We perform simulations of star cluster formation to investigate the morphological evolution of embedded star clusters in the earliest stages of their evolution. We conduct our simulations with Torch, which uses the AMUSE framework to couple state-of-the-art stellar dynamics to star formation, radiation, stellar winds, and hydrodynamics in FLASH. We simulate a suite of M clouds at 0.0683 pc resolution for 2 Myr after the onset of star formation, with virial parameters = 0.8, 2.0, 4.0 and different random samplings of the stellar initial mass function and prescriptions for primordial binaries. Our simulations result in a population of embedded clusters with realistic morphologies (sizes, densities, and ellipticities) that reproduce the known trend of clouds with higher initial having lower star formation efficiencies. Our key results are as follows: (1) Cluster mass growth is not monotonic, and clusters can lose up to half of their mass while they are embedded. (2) Cluster morphology is not correlated with cluster mass and changes over 0.01 Myr timescales. (3) The morphology of an embedded cluster is not indicative of its long-term evolution but only of its recent history: radius and ellipticity increase sharply when a cluster accretes stars. (4) The dynamical evolution of very young embedded clusters with masses 1000 M is dominated by the overall gravitational potential of the star-forming region rather than by internal dynamical processes such as two- or few-body relaxation.
15 pages, 10 figures, to be published in MNRAS
References in corpus (12)
- Array Programming with NumPy
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- A multiphysics and multiscale software environment for modeling astrophysical systems
- The Solar Neighborhood XLV. The Stellar Multiplicity Rate of M Dwarfs Within 25 pc
- The effect of magnetic fields on star cluster formation
- The Spatial Structure of Young Stellar Clusters. I. Subclusters
- A Direct Multigrid Poisson Solver for Oct-Tree Adaptive Meshes
- A large catalogue of molecular clouds with accurate distances within 4 kpc of the Galactic disk
- A simple method to convert sink particles into stars
- Implementing Primordial Binaries in Simulations of Star Cluster Formation with a Hybrid MHD and Direct N-Body Method
- The formation of clusters and OB associations in different density spiral arm environments
- Constraining the shape of dark matter haloes with globular clusters
Cited by in corpus (7)
- Pre-supernova feedback sets the star cluster mass function to a power law and reduces the cluster formation efficiency
- Massive star cluster formation I. High star formation efficiency while resolving feedback of individual stars
- Star clusters forming in a low metallicity starburst -- rapid self-enrichment by (very) massive stars
- Massive star cluster formation II. Runaway stars as fossils of sub-cluster mergers
- Centrally concentrated star formation in young clusters
- Revealing the Connection Between the Filamentary Hierarchy and Star Cluster Formation in a Simulated NGC 628 Galaxy
- Transferring Data from a Voronoi Mesh to an Adaptive Cartesian Grid in Pursuit of Self-consistent Top-down Star Formation