A dynamical model for the formation of gas rings and episodic starbursts near galactic centres
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Krumholz, Mark
Kruijssen, J. M. Diederik
Crocker, Roland
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Blackwell Publishing Ltd
Abstract
We present a dynamical model for gas transport, star formation, and winds in the nuclear
regions of galaxies, focusing on the Milky Way’s Central Molecular Zone (CMZ). In our
model angular momentum and mass are transported by a combination of gravitational and
bar-driven acoustic instabilities. In gravitationally-unstable regions the gas can form stars,
and the resulting feedback drives both turbulence and a wind that ejects mass from the CMZ.
We show that the CMZ is in a quasi-steady state where mass deposited at large radii by the
bar is transported inward to a star-forming, ring-shaped region at ∼ 100 pc from the Galactic
Centre, where the shear reaches a minimum. This ring undergoes episodic starbursts, with
bursts lasting ∼ 5 − 10 Myr occurring at ∼ 20 − 40 Myr intervals. During quiescence the gas
in the ring is not fully cleared, but is driven out of a self-gravitating state by the momentum
injected by expanding supernova remnants. Starbursts also drive a wind off the star-forming
ring, with a time-averaged mass flux comparable to the star formation rate. We show that
our model agrees well with the observed properties of the CMZ, and places it near a star
formation minimum within the evolutionary cycle. We argue that such cycles of bursty star
formation and winds should be ubiquitous in the nuclei of barred spiral galaxies, and show
that the resulting distribution of galactic nuclei on the Kennicutt-Schmidt relation is in good
agreement with that observed in nearby galaxies.
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Monthly Notices of the Royal Astronomical Society
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Open Access