Dynamical evidence for a strong tidal interaction between the Milky Way and its satellite, Leo V
Abstract
We present a chemodynamical analysis of the Leo~V dwarf galaxy, based on Keck II DEIMOS spectra of 8 member stars. We find a systemic velocity for the system of kms, and barely resolve a velocity dispersion for the system, with kms, consistent with previous studies of Leo~V. The poorly resolved dispersion means we are unable to adequately constrain the dark matter content of Leo~V. We find an average metallicity for the dwarf of [Fe/H], and measure a significant spread in the iron abundance of its member stars, with [Fe/H] dex, which cleanly identifies Leo~V as a dwarf galaxy that has been able to self-enrich its stellar population through extended star formation. Owing to the tentative photometric evidence for tidal substructure around Leo~V, we also investigate whether there is any evidence for tidal stripping or shocking of the system within its dynamics. We measure a significant velocity gradient across the system, of kms per arcmin (or kms~kpc), which points almost directly toward the Galactic centre. We argue that Leo~V is likely a dwarf on the brink of dissolution, having just barely survived a past encounter with the centre of the Milky Way.
Cite
@article{arxiv.1608.05710,
title = {Dynamical evidence for a strong tidal interaction between the Milky Way and its satellite, Leo V},
author = {Michelle L. M. Collins and Erik J. Tollerud and David J. Sand and Ana Bonaca and Beth Willman and Jay Strader},
journal= {arXiv preprint arXiv:1608.05710},
year = {2017}
}
Comments
14 pages, 12 figures, accepted for publication in MNRAS. Updated to include minor revisions from referee process