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Kinematical evolution of Globular Clusters

Published online by Cambridge University Press:  11 March 2020

Maria A. Tiongco
Affiliation:
Department of Astronomy, Indiana University, 727 E 3rd St, Bloomington, IN47405, USA email: mtiongco@iu.edu
Enrico Vesperini
Affiliation:
Department of Astronomy, Indiana University, 727 E 3rd St, Bloomington, IN47405, USA email: mtiongco@iu.edu
Anna Lisa Varri
Affiliation:
Institute for Astronomy, University of Edinburgh, Royal Observatory Blackford Hill, EdinburghEH9 3HJ, UK Department of Astronomy, Graduate School of Science, The University of Tokyo 7-3-1 Hongo, Bunkyo-ku, Tokyo, 113-0033, Japan
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Abstract

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We present several results of the study of the evolution of globular clusters’ internal kinematics, as driven by two-body relaxation and the interplay between internal angular momentum and the external Galactic tidal field. Via a large suite of N-body simulations, we explored the three-dimensional velocity space of tidally perturbed clusters, by characterizing their degree of velocity dispersion anisotropy and their rotational properties. These studies have shown that a cluster’s kinematical properties contain distinct imprints of the cluster’s initial structural properties, dynamical history, and tidal environment. Building on this fundamental understanding, we then studied the dynamics of multiple stellar populations in globular clusters, with attention to the largely unexplored role of angular momentum.

Type
Contributed Papers
Copyright
© International Astronomical Union 2020

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