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arXiv · astro-ph/0401175

The Globular Cluster System of NGC 1399. II. Kinematics of a Large Sample of Globular Clusters

Abstract

We study the kinematics and dynamics of the globular cluster system of NGC 1399, the central galaxy of the Fornax cluster. The observational data consists of medium resolution spectra, obtained at the Very Large Telescope. Our sample comprises 468 radial velocities in the magnitude range 20 < m_R < 23. This is the largest sample of globular cluster velocities around any galaxy obtained so far. The radial range is 2 arcmin < r < 9 arcmin, corresponding to 11 kpc to 50 kpc of galactocentric distance. There is the possibility that unbound clusters and/or objects in the foreground contaminate the NGC 1399 cluster sample. Under strong error selection, practically no objects are found with velocities lower than 800 km/s or higher than 2000 km/s. Since the extreme velocities influence the velocity dispersion considerably, uncertainty regarding the exact value of the dispersion remains. Within the above velocity limits, we derive a projected velocity dispersion for the total sample of 274+-9 km/s which within the uncertainties remains constant over the entire radial range. Without any velocity restriction, it increases to 325 km/s. Blue and red clusters show different dispersions corresponding to their different surface density profiles. Spherical models point to a circular velocity of 415+-30$ km/s, assuming isotropy for the red clusters. This value is constant out to 40 kpc. The inferred dark halo potential can be well represented by a logarithmic potential. Also a halo of the NFW type fits well to the observations. Some mass profiles derived from X-ray analyses do not agree with a constant circular velocity within our radial range, irrespective of its exact value.

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BibTeXRIS

T. Richtler, B. Dirsch, K. Gebhardt, D. Geisler, M. Hilker, M. V. Alonso, J. C. Forte, E. K. Grebel, L. Infante, S. Larsen, D. Minniti, M. Rejkuba. 2004-01-10. The Globular Cluster System of NGC 1399. II. Kinematics of a Large Sample of Globular Clusters. https://doi.org/10.1086/382721

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