Spending Too Much Time at the Galactic Bar: Chaotic Fanning of the Ophiuchus Stream
Abstract
The Ophiuchus stellar stream is peculiar: (1) its length is short given the age of its constituent stars, and (2) several probable member stars have dispersions in sky position and velocity that far exceed those seen within the stream. The stream’s proximity to the Galactic center suggests that its dynamical history is significantly influenced by the Galactic bar. We explore this hypothesis with models of stream formation along orbits consistent with Ophiuchus’ properties in a Milky Way potential model that includes a rotating bar. In all choices for the rotation parameters of the bar, orbits fit to the stream are strongly chaotic. Mock streams generated along these orbits qualitatively match the observed properties of the stream: because of chaos, stars stripped early generally form low-density, high-dispersion “fans” leaving only the most recently disrupted material detectable as a strong over-density. Our models predict that there should be a significant amount of low-surface-brightness tidal debris around the stream with a complex phase-space morphology. The existence of or lack of these features could provide interesting constraints on the Milky Way bar and would rule out formation scenarios for the stream. This is the first time that chaos has been used to explain the properties of a stellar stream and is the first demonstration of the dynamical importance of chaos in the Galactic halo. The existence of long, thin streams around the Milky Way, presumably formed along non- or weakly chaotic orbits, may represent only a subset of the total population of disrupted satellites.
- Publication:
-
The Astrophysical Journal
- Pub Date:
- June 2016
- DOI:
- arXiv:
- arXiv:1601.06790
- Bibcode:
- 2016ApJ...824..104P
- Keywords:
-
- Galaxy: evolution;
- Galaxy: halo;
- Galaxy: kinematics and dynamics;
- Galaxy: structure;
- globular clusters: general;
- stars: kinematics and dynamics;
- Astrophysics - Astrophysics of Galaxies
- E-Print:
- 28 pages, 8 figures. Submitted to ApJ. Associated code available at http://github.com/adrn/ophiuchus