Cluster assembly and the origin of mass segregation in the STARFORGE simulations
arXiv:2201.01781 · doi:10.1093/mnras/stac1737
Abstract
Stars form in dense, clustered environments, where feedback from newly formed stars eventually ejects the gas, terminating star formation and leaving behind one or more star clusters. Using the STARFORGE simulations, it is possible to simulate this process in its entirety within a molecular cloud, while explicitly evolving the gas radiation and magnetic fields and following the formation of individual, low-mass stars. We find that individual star-formation sites merge to form ever larger structures, while still accreting gas. Thus clusters are assembled through a series of mergers. During the cluster assembly process a small fraction of stars are ejected from their clusters; we find no significant difference between the mass distribution of the ejected stellar population and that of stars inside clusters. The star-formation sites that are the building blocks of clusters start out mass segregated with one or a few massive stars at their center. As they merge the newly formed clusters maintain this feature, causing them to have mass-segregated substructures without themselves being centrally condensed. The merged clusters relax to a centrally condensed mass segregated configuration through dynamical interactions between their members, but this process does not finish before feedback expels the remaining gas from the cluster. In the simulated runs the gas-free clusters then become unbound and break up. We find that turbulent driving and a periodic cloud geometry can significantly reduce clustering and prevent gas expulsion. Meanwhile, the initial surface density and level of turbulence have little qualitative effect on cluster evolution, despite the significantly different star formation histories.
18 pages, 15 figures, submitted to MNRAS
References in corpus (20)
- The effect of photo-ionization on the cooling rates of enriched, astrophysical plasmas
- A comprehensive set of simulations studying the influence of gas expulsion on star cluster evolution
- Star formation through gravitational collapse and competitive accretion
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- Using the minimum spanning tree to trace mass segregation
- Modeling jet and outflow feedback during star cluster formation
- The Spatial Structure of Young Stellar Clusters. I. Subclusters
- The dynamics and outcome of star formation with jets, radiation, winds, and supernovae in concert
- The Physics of Star Cluster Formation and Evolution
- The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
- IN-SYNC II: Virial Stars from Sub-Virial Cores -- The Velocity Dispersion of Embedded Pre-Main-Sequence Stars in NGC 1333
- Stars with Photometrically Young Gaia Luminosities Around the Solar System (SPYGLASS) I: Mapping Young Stellar Structures and their Star Formation Histories
- Identifying star clusters in a field: A comparison of different algorithms
- Dynamics versus structure: breaking the density degeneracy in star formation
- The Mass-Size Relation and the Constancy of GMC Surface Densities in the Milky Way
- The formation of massive stellar clusters in converging galactic flows with photoionisation
- The formation and early evolution of embedded star clusters in spiral galaxies
- The young massive star cluster Westerlund 2 observed with MUSE. III. A cluster in motion -- the complex internal dynamics
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- Early-Forming Massive Stars Suppress Star Formation and Hierarchical Cluster Assembly
- SPYGLASS. II. The Multi-Generational and Multi-Origin Star Formation History of Cepheus Far North
- Novel Conservative Methods for Adaptive Force Softening in Collisionless and Multi-Species N-Body Simulations