Star Clusters Under Stress: Why Small Systems Cannot Dynamically Relax
arXiv:1009.2050 · doi:10.1111/j.1365-2966.2010.17653.x
Abstract
Utilizing a series of N-body simulations, we argue that gravitationally bound stellar clusters of modest population evolve very differently from the picture presented by classical dynamical relaxation theory. The system's most massive stars rapidly sink towards the center and form binary systems. These binaries efficiently heat the cluster, reversing any incipient core contraction and driving a subsequent phase of global expansion. Most previous theoretical studies demonstrating deep and persistent dynamical relaxation have either conflated the process with mass segregation, ignored three-body interactions, or else adopted the artificial assumption that all cluster members are single stars of identical mass. In such a uniform-mass cluster, binary formation is greatly delayed, as we confirm here both numerically and analytically. The relative duration of core contraction and global expansion is effected by stellar evolution, which causes the most massive stars to die out before they form binaries. In clusters of higher N, the epoch of dynamical relaxation lasts for progressively longer periods. By extrapolating our results to much larger populations, we can understand, at least qualitatively, why some globular clusters reach the point of true core collapse.
33 pages, 13 figures, accepted to MNRAS
References in corpus (2)
Cited by in corpus (11)
- Importance of the Initial Conditions for Star Formation - III: Statistical Properties of Embedded Protostellar Clusters
- An analytical description of the evolution of binary orbital-parameter distributions in N-body computations of star clusters
- Analysing star cluster populations with stochastic models: the HST/WFC3 sample of clusters in M83
- The Panchromatic Hubble Andromeda Treasury V: Ages and Masses of the Year 1 Stellar Clusters
- Stellar dynamics in gas: The role of gas damping
- Multi-colour photometry and Gaia EDR3 astrometry of two couples of binary clusters (NGC 5617 and Trumpler 22) and (NGC 3293 and NGC 3324)
- X-ray Binaries and Star Clusters in the Antennae: Optical Cluster Counterparts
- Two paths of cluster evolution: global expansion versus core collapse
- Study of the Open Clusters in Kepler Prime Field
- Mass-Dependent Radial Distribution of Single and Binary Stars in the Pleiades and their Dynamical Implications
- A Dynamical Evolution Study of the Open Clusters: Berkeley 10, Berkeley 81, Berkeley 89 and Ruprecht 135