The role of gas fraction and feedback in the stability and evolution of galactic discs: implications for cosmological galaxy formation models
arXiv:2011.12966 · doi:10.1093/mnras/stab1489
Abstract
High-redshift star-forming galaxies often have irregular morphologies with {\it giant clumps} containing up to solar masses of gas and stars. The origin and evolution of giant clumps are debated both theoretically and observationally. In most cosmological simulations, high-redshift galaxies have regular spiral structures or short-lived clumps, in contradiction with many idealised high-redshift disc models. Here we test whether this discrepancy can be explained by the low gas fractions of galaxies in cosmological simulations. We present a series of simulations with varying gas fractions, from 25\%, typical of galaxies in most cosmological simulations, to 50\%, typical of observed galaxies at 1.5 < z < 3. We find that gas-poor models have short-lived clumps, that are unbound and mostly destroyed by galactic shear, even with weak stellar feedback. In contrast, gas-rich models form long-lived clumps even with boosted stellar feedback. This shows that the gas mass fraction is the primary physical parameter driving violent disc instabilities and the evolution of giant clumps on 10~yr timescales, with lower impact from the calibration of the stellar feedback. Many cosmological simulations of galaxy formation have relatively gas-poor galactic discs, which could explain why giant clumps are absent or short-lived in such models. Similar baryonic and dark matter mass distribution could produce clumpy galaxies with long-lived clumps at if the gas fraction was in better agreement with observations.
10 pages, 6 figures. Accepted for publication in MNRAS
References in corpus (19)
- Cosmic Star Formation History
- Introducing the Illustris Project: the evolution of galaxy populations across cosmic time
- Formation of Massive Galaxies at High Redshift: Cold Streams, Clumpy Disks and Compact Spheroids
- Compaction and Quenching of High-z Galaxies in Cosmological Simulations: Blue and Red Nuggets
- Rapid formation of exponential disks and bulges at high redshift from the dynamical evolution of clump cluster and chain galaxies
- Bulge Formation by the Coalescence of Giant Clumps in Primordial Disk Galaxies
- On the onset of galactic winds in quiescent star forming galaxies
- Clumpy Galaxies in CANDELS. I. The Definition of UV Clumps and the Fraction of Clumpy Galaxies at 0.5<z<3
- A parsec-resolution simulation of the Antennae galaxies: Formation of star clusters during the merger
- The interplay between a galactic bar and a supermassive black hole: nuclear fueling in a sub-parsec resolution galaxy simulation
- Large scale galactic turbulence: can self-gravity drive the observed HI velocity dispersions?
- High-redshift major mergers weakly enhance star formation
- The nature of giant clumps in distant galaxies probed by the anatomy of the Cosmic Snake
- The properties of the interstellar medium of galaxies across time as traced by the neutral atomic carbon [CI]
- Physical Properties of Sub-galactic Clumps at 0.5 1.5 in the UVUDF
- Galactic angular momentum in cosmological zoom-in simulations. I. Disk and bulge components and the galaxy--halo connection
- Clumpy high-z galaxies as a testbed for feedback-regulated galaxy formation
- Merger induced clump formation in distant infrared luminous starburst galaxies
- Large-scale turbulent driving regulates star formation in high-redshift gas-rich galaxies
Cited by in corpus (26)
- Star formation at the smallest scales; A JWST study of the clump populations in SMACS0723
- Exploring the physical properties of lensed star-forming clumps at
- Quantifying the energetics of molecular superbubbles in PHANGS galaxies
- From giant clumps to clouds I: the impact of gas fraction evolution on the stability of galactic discs
- Clump Survival and Migration in VDI Galaxies: an Analytic Model versus Simulations and Observations
- JWST/CEERS sheds light on dusty star-forming galaxies: forming bulges, lopsidedness and outside-in quenching at cosmic noon
- Molecular gas cloud properties at revealed by the superb angular resolution achieved with ALMA and gravitational lensing
- Anatomy of a z=6 Lyman-α emitter down to parsec scales: extreme UV slopes, metal-poor regions and possibly leaking star clusters
- JWST and ALMA imaging of dust-obscured, massive substructures in a typical star-forming disk galaxy
- The imprint of clump formation at high redshift. II. The chemistry of the bulge
- The nature of giant clumps in high-z discs: a deep-learning comparison of simulations and observations
- Molecular gas and star formation in nearby starburst galaxy mergers
- PANORAMIC: Discovery of an Ultra-Massive Grand-Design Spiral Galaxy at
- Near-IR clumps and their properties in high-z galaxies with JWST/NIRCam
- From giant clumps to clouds IV: extreme star-forming clumps on top of universal cloud scaling relations in gas-rich galaxies
- Finite Resolution Deconvolution of Multi-Wavelength Imaging of 20,000 Galaxies in the COSMOS Field: The Evolution of Clumpy Galaxies Over Cosmic Time
- Conditions for Clump Survival in High-z Disc Galaxies
- Stellar feedback in a clumpy galaxy at 3.4
- Universal gravity-driven isothermal turbulence cascade in disk galaxies
- Large-scale turbulent driving regulates star formation in high-redshift gas-rich galaxies II: Influence of the magnetic field and the turbulent compressive fraction
- Exploring the Evolution of Massive Clumps in Simulations that Reproduce the Observed Milky Way α-element Abundance Bimodality
- HSC-CLAUDS survey: The star formation rate functions since z ~ 2 and comparison with hydrodynamical simulations
- JWST Reveals Bulge-dominated Star-forming Galaxies at Cosmic Noon
- Turbulent gas-rich discs at high redshift: origin of thick stellar discs through 3D 'baryon sloshing'
- Star formation across cosmic time
- Clumpiness of galaxies revealed in the near-infrared with COSMOS-Web