Peculiarities in Velocity Dispersion and Surface Density Profiles of Star Clusters
A.H.W. Kuepper, P. Kroupa, H. Baumgardt, D.C. Heggie

TL;DR
This study uses N-body simulations to analyze velocity dispersion and surface density profiles of star clusters, revealing the dominance of potential escapers beyond half the Jacobi radius and improving tidal radius estimation methods.
Contribution
It introduces an extended template for surface density profiles that accurately reconstructs the Jacobi radius across various cluster conditions, addressing limitations of previous models.
Findings
Potential escapers dominate beyond 50% of Jacobi radius.
Standard models fail to accurately estimate tidal radii for concentrated clusters.
Extended template achieves ~10% accuracy in reconstructing tidal radius.
Abstract
Based on our recent work on tidal tails of star clusters (Kuepper et al. 2009) we investigate star clusters of a few 10^4 Msun by means of velocity dispersion profiles and surface density profiles. We use a comprehensive set of -body computations of star clusters on various orbits within a realistic tidal field to study the evolution of these profiles with time, and ongoing cluster dissolution From the velocity dispersion profiles we find that the population of potential escapers, i.e. energetically unbound stars inside the Jacobi radius, dominates clusters at radii above about 50% of the Jacobi radius. Beyond 70% of the Jacobi radius nearly all stars are energetically unbound. The velocity dispersion therefore significantly deviates from the predictions of simple equilibrium models in this regime. We furthermore argue that for this reason this part of a cluster cannot be used to…
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