4.7 Article

Blowing in the Milky Way Wind: Neutral Hydrogen Clouds Tracing the Galactic Nuclear Outflow

Journal

ASTROPHYSICAL JOURNAL
Volume 855, Issue 1, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.3847/1538-4357/aaad6a

Keywords

Galaxy: center; Galaxy: nucleus; ISM: clouds; ISM: jets and outflows; ISM: kinematics and dynamics

Funding

  1. Australian Research Council (ARC) [DP160100723]
  2. ARC [FT150100024]

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We present the results of a new sensitive survey of neutral hydrogen above and below the Galactic Center with the Green Bank Telescope. The observations extend up to Galactic latitude vertical bar b vertical bar < 10 degrees deg with an effective angular resolution of 9.'5 and an average rms brightness temperature noise of 40 mK in a 1 km/s(-1) channel. The survey reveals the existence of a population of anomalous high-velocity clouds extending up to heights of about 1.5 kpc from the Galactic Plane and showing no signature of Galactic rotation. These clouds have local standard of rest velocities vertical bar V-LSR vertical bar less than or similar to 360 km/s(-1) and, assuming a Galactic Center origin, they have sizes of a few tens of parsecs and neutral hydrogen masses spanning 10-10(5)M(circle dot). Accounting for selection effects, the cloud population is symmetric in longitude, latitude, and vertical bar V-LSR vertical bar. We model the cloud kinematics in terms of an outflow expanding from the Galactic Center and find the population consistent with being material moving with radial velocity V-w similar or equal to 330 km/s(-1) distributed throughout a bi-cone with opening angle alpha >140 degrees deg. This simple model implies an outflow luminosity L-w > 3x10(40) erg/s(-1) over the past 10 Myr, consistent with star formation feedback in the inner region of the Milky Way, with a cold gas mass-loss rate less than or similar to 0.1M(circle dot)/yr(-1). These clouds may represent the cold gas component accelerated in the nuclear wind driven by our Galaxy, although some of the derived properties challenge current theoretical models of the entrainment process.

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