A study of rotating globular clusters - the case of the old, metal-poor globular cluster NGC 4372
arXiv:1406.1552 · doi:10.1051/0004-6361/201423709
Abstract
Aims: We present the first in-depth study of the kinematic properties and derive the structural parameters of NGC 4372 based on the fit of a Plummer profile and a rotating, physical model. We explore the link between internal rotation to different cluster properties and together with similar studies of more GCs, we put these in the context of globular cluster formation and evolution. Methods: We present radial velocities for 131 cluster member stars measured from high-resolution FLAMES/GIRAFFE observations. Their membership to the GC is additionally confirmed from precise metallicity estimates. Using this kinematic data set we build a velocity dispersion profile and a systemic rotation curve. Additionally, we obtain an elliptical number density profile of NGC 4372 based on optical images using a MCMC fitting algorithm. From this we derive the cluster's half-light radius and ellipticity as r_h=3.4'+/-0.04' and e=0.08+/-0.01. Finally, we give a physical interpretation of the observed morphological and kinematic properties of this GC by fitting an axisymmetric, differentially rotating, dynamical model. Results: Our results show that NGC 4372 has an unusually high ratio of rotation amplitude to velocity dispersion (1.2 vs. 4.5 km/s) for its metallicity. This, however, puts it in line with two other exceptional, very metal-poor GCs - M 15 and NGC 4590. We also find a mild flattening of NGC 4372 in the direction of its rotation. Given its old age, this suggests that the flattening is indeed caused by the systemic rotation rather than tidal interactions with the Galaxy. Additionally, we estimate the dynamical mass of the GC M_dyn=2.0+/-0.5 x 10^5 M_Sun based on the dynamical model, which constrains the mass-to-light ratio of NGC 4372 between 1.4 and 2.3 M_Sun/L_Sun, representative of an old, purely stellar population.
Accepted for publication in A&A, 12 pages, 14 figures, 2 tables
References in corpus (7)
- Fast rotating massive stars and the origin of the abundance patterns in galactic globular clusters
- Formation and Dynamical Evolution of Multiple Stellar Generations in Globular Clusters
- Halo globular clusters observed with AAOmega: dark matter content, metallicity and tidal heating
- N-body Models of Rotating Globular Clusters
- Space Velocities of Southern Globular Clusters. V. A Low Galactic Latitude Sample
- 2D Fokker-Planck models of rotating clusters
- XMM-Newton observations of the Galactic globular clusters NGC 2808 and NGC 4372
Cited by in corpus (17)
- A stellar census in globular clusters with MUSE: The contribution of rotation to cluster dynamics studied with 200 000 stars
- N-body modeling of globular clusters: Masses, mass-to-light ratios and intermediate-mass black holes
- The eye of Gaia on globular clusters kinematics: internal rotation
- Hubble Space Telescope Proper Motion (HSTPROMO) Catalogs of Galactic Globular Clusters. V. The rapid rotation of 47 Tuc traced and modeled in three dimensions
- Differences in the rotational properties of multiple stellar populations in M 13: a faster rotation for the "extreme" chemical subpopulation
- The Gaia-ESO Survey: Kinematics of seven Galactic globular clusters
- The Search for Multiple Populations in Magellanic Cloud Clusters I: Two Stellar Populations in the Small Magellanic Cloud Globular Cluster NGC 121
- A Chemical Composition Survey of the Iron-Complex Globular Cluster NGC 6273 (M 19)
- Kinematical evolution of multiple stellar populations in star clusters
- Observational Evidence for a Dark Side to NGC5128's Globular Cluster System
- The orbital anisotropy profiles of nearby globular clusters from Gaia Data Release 2
- Matching Globular Cluster Models to Observations
- The Gaia-ESO Survey: Detailed Abundances in the Metal-poor Globular Cluster NGC 4372
- The Formation of Binary Star Clusters in the Milky Way and Large Magellanic Cloud
- G2C2-III: Structural parameters for Galactic globular clusters in SDSS passbands
- A simple two-component description of energy equipartition and mass segregation for anisotropic globular clusters
- Internal Kinematics of M10 and M71