The High Velocity Gas toward Messier 5: Tracing Feedback Flows in the Inner Galaxy
arXiv:0802.0286 · doi:10.1086/587135
Abstract
We present Far Ultraviolet Spectroscopic Explorer (FUSE) and Space Telescope Imaging Spectrograph (STIS E140M) observations of the post-asymptotic giant branch star ZNG 1 in the globular cluster Messier 5 (l=3.9, b=+47.7; d=7.5 kpc, z=+5.3 kpc). High velocity absorption is seen in C IV, Si IV, O VI, and lower ionization species at LSR velocities of -140 and -110 km/s. We conclude that this gas is not circumstellar on the basis of photoionization models and path length arguments. Thus, the high velocity gas along the ZNG 1 sight line is the first evidence that highly-ionized HVCs can be found near the Galactic disk. We measure the metallicity of these HVCs to be [O/H]=+0.22\pm0.10, the highest of any known HVC. Given the clouds' metallicity and distance constraints, we conclude that these HVCs have a Galactic origin. This sight line probes gas toward the inner Galaxy, and we discuss the possibility that these HVCs may be related to a Galactic nuclear wind or Galactic fountain circulation in the inner regions of the Milky Way.
23 pages, 11 figures, 7 tables
References in corpus (12)
- Time-Dependent Ionization in Radiatively Cooling Gas
- Distances to Galactic high-velocity clouds. I. Cohen Stream, complex GCP, cloud g1
- Preplanetary Nebulae: An HST Imaging Survey and a New Morphological Classification System
- Distances to Galactic high-velocity clouds. Complex C
- A New Model For The Loop-I (The North Polar Spur) Region
- CalFUSE v3: A Data-Reduction Pipeline for the Far Ultraviolet Spectroscopic Explorer
- A Survey of O VI, C III, and H I in Highly Ionized High-Velocity Clouds
- Metallicity and Ionization in High Velocity Cloud Complex C
- Does the Milky Way Produce a Nuclear Galactic Wind?
- The Abundances of Light Neutron-Capture Elements in Planetary Nebulae II. s-process Enrichments and Interpretation
- MHD Turbulent Mixing Layers: Equilibrium Cooling Models
- Independent Emission and Absorption Abundances for Planetary Nebulae