Dynamically Driven Inflow onto the Galactic Center and its Effect upon Molecular Clouds
arXiv:2106.08461 · doi:10.3847/1538-4357/ac1e89
Abstract
The Galactic bar plays a critical role in the evolution of the Milky Way's Central Molecular Zone (CMZ), driving mass inward toward the Galactic Center via gas flows known as dust lanes. To explore the interaction between the CMZ and the dust lanes, we run hydrodynamic simulations in AREPO, modeling the potential of the Milky Way's bar in the absence of gas self-gravity and star formation physics, and we study the flows of mass using Monte Carlo tracer particles. We estimate the efficiency of the inflow via the dust lanes, finding that only about a third (3012%) of the dust lanes' mass initially accretes onto the CMZ, while the rest overshoots and accretes later. Given observational estimates of the amount of gas within the Milky Way's dust lanes, this suggests that the true total inflow rate onto the CMZ is 0.80.6 M~yr. Clouds in this simulated CMZ have sudden peaks in their average density near the apocenter, where they undergo violent collisions with inflowing material. While these clouds tend to counter-rotate due to shear, co-rotating clouds occasionally occur due to the injection of momentum from collisions with inflowing material (~52% are strongly counter-rotating, and ~7% are strongly co-rotating of the 44 cloud sample). We investigate the formation and evolution of these clouds, finding that they are fed by many discrete inflow events, providing a consistent source of gas to CMZ clouds even as they collapse and form stars
19 pages, 14 figures. Accepted for publication in ApJ
References in corpus (22)
- The NumPy array: a structure for efficient numerical computation
- Theory of Star Formation
- The mass distribution and gravitational potential of the Milky Way
- Giant Gamma-ray Bubbles from Fermi-LAT: AGN Activity or Bipolar Galactic Wind?
- Dynamical modelling of the Galactic bulge and bar: the Milky Way's bar pattern speed, stellar, and dark matter mass distribution
- Simulating the formation of molecular clouds. II. Rapid formation from turbulent initial conditions
- Inefficient star formation through turbulence, magnetic fields and feedback
- The dynamical evolution of molecular clouds near the Galactic Centre - I. Orbital structure and evolutionary timeline
- Magnetic Fields in High-Mass Infrared Dark Clouds
- The link between turbulence, magnetic fields, filaments, and star formation in the Central Molecular Zone cloud G0.253+0.016
- Modeling jet and outflow feedback during star cluster formation
- Gas flow in barred potentials
- The Cloud Factory I: Generating resolved filamentary molecular clouds from galactic-scale forces
- 'The Brick' is not a brick: A comprehensive study of the structure and dynamics of the Central Molecular Zone cloud G0.253+0.016
- Simulations of the star-forming molecular gas in an interacting M51-like galaxy
- Mass inflow rate into the Central Molecular Zone: observational determination and evidence of episodic accretion
- The dynamical evolution of molecular clouds near the Galactic Centre - II. Spatial structure and kinematics of simulated clouds
- G0.253+0.016: A centrally condensed, high-mass protocluster
- The large scale dust lanes of the Galactic bar
- The dynamical evolution of molecular clouds near the Galactic Centre -- III. Tidally--induced star formation in protocluster clouds
- Multiplicity of nuclear dust lanes and dust lane shocks in the Milky Way bar
- Fiery Cores: Bursty and Smooth Star Formation Distributions across Galaxy Centers in Cosmological Zoom-in Simulations
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