Formation of runaway stars in a star-cluster potential
arXiv:1703.08551 · doi:10.1093/mnras/stx1408
Abstract
We study the formation of runaway stars due to binary-binary (2+2) interactions in young star-forming clusters and/or associations. This is done using a combination of analytic methods and numerical simulations of 2+2 scattering interactions, both in isolation and in a homogeneous background potential. We focus on interactions that produce two single stars and a binary, and study the outcomes as a function of the depth of the background potential, within a range typical of cluster cores. As reference parameters for the observational properties, we use those observed for the system of runaway stars AE Aur and Col and binary Ori. We find that the outcome fractions have no appreciable dependence on the depth of the potential, and neither do the velocities of the ejected single stars. However, as the potential gets deeper and a larger fraction of binaries remain trapped, two binary populations emerge, with the escaped component having higher speeds and shorter semi-major axes than the trapped one. Additionally, we find that the relative angles between the ejected products are generally large. In particular, the angle between the ejected fastest star and the escaped binary is typically , with a peak at around . However, as the potential gets deeper, the angle distribution becomes broader. Finally, we discuss the implications of our results for the interpretation of the properties of the runaway stars AE Aur and Col.
20 pages, 16 figures, 4 tables, accepted to MNRAS
References in corpus (8)
- Dependency of dynamical ejections of O stars on the masses of very young star clusters
- Predicted Space Motions for Hypervelocity and Runaway Stars: Proper Motions and Radial Velocities for the GAIA Era
- Hypervelocity stars from young stellar clusters in the Galactic Centre
- The chaotic four-body problem in Newtonian gravity I: Identical point-particles
- The central density of R136 in 30 Doradus
- Numerical study of the chaotic N=4 problem in a background potential
- Small-N collisional dynamics II: Roaming the realm of not-so-small-N
- An analytic method for identifying dynamically-formed runaway stars
Cited by in corpus (10)
- Planetary Architectures in Interacting Stellar Environments
- Impact of the Galactic Disk and Large Magellanic Cloud on the Trajectories of Hypervelocity Stars Ejected from the Galactic Center
- Small-N collisional dynamics III: The battle for the realm of not-so-small-N
- An analytic method for identifying dynamically-formed runaway stars
- Close Encounters of Tight Binary Stars with Stellar-mass Black Holes
- The fate of close encounters between binary stars and binary supermassive black holes
- Small-N collisional dynamics IV: Order in the realm of not-so-small-N
- Relativistic dynamical friction in stellar systems
- When do star clusters become multiple star systems? II. Toward a half-life formalism with four bodies
- A systematic method to identify runaways from star clusters produced from single-binary interactions: A case study of M67