Published June 20, 2017 | Version Submitted + Published
Journal Article Open

The cosmic baryon cycle and galaxy mass assembly in the FIRE simulations

  • 1. ROR icon Northwestern University
  • 2. ROR icon University of California, San Diego
  • 3. ROR icon California Institute of Technology
  • 4. ROR icon University of California, Berkeley
  • 5. ROR icon Canadian Institute for Theoretical Astrophysics

Abstract

We use cosmological simulations from the FIRE (Feedback In Realistic Environments) project to study the baryon cycle and galaxy mass assembly for central galaxies in the halo mass range Mhalo ∼ 10^(10)–10^(13) M_⊙. By tracing cosmic inflows, galactic outflows, gas recycling and merger histories, we quantify the contribution of physically distinct sources of material to galaxy growth. We show that in situ star formation fuelled by fresh accretion dominates the early growth of galaxies of all masses, while the re-accretion of gas previously ejected in galactic winds often dominates the gas supply for a large portion of every galaxy's evolution. Externally processed material contributes increasingly to the growth of central galaxies at lower redshifts. This includes stars formed ex situ and gas delivered by mergers, as well as smooth intergalactic transfer of gas from other galaxies, an important but previously underappreciated growth mode. By z = 0, wind transfer, i.e. the exchange of gas between galaxies via winds, can dominate gas accretion on to ∼L* galaxies over fresh accretion and standard wind recycling. Galaxies of all masses re-accrete ≳50 per cent of the gas ejected in winds and recurrent recycling is common. The total mass deposited in the intergalactic medium per unit stellar mass formed increases in lower mass galaxies. Re-accretion of wind ejecta occurs over a broad range of time-scales, with median recycling times (∼100–350 Myr) shorter than previously found. Wind recycling typically occurs at the scale radius of the halo, independent of halo mass and redshift, suggesting a characteristic recycling zone around galaxies that scales with the size of the inner halo and the galaxy's stellar component.

Additional Information

© 2017 The Authors. Published by Oxford University Press on behalf of the Royal Astronomical Society. Revision Received: 26 October 2016. Received: 08 June 2017. Accepted: 15 June 2017. Published: 20 June 2017. We thank C.R. Christensen, R. Davé, S. Genel, Z. Hafen, A.V. Kravtsov, M. Kriek, A.L. Muratov, B. D. Oppenheimer, A. J. Richings, J. Rojas-Sandoval, R. S. Somerville and S. Veilleux for useful discussions. We greatly appreciate the referee's thoughtful comments that helped us improve the paper in several places. DAA acknowledges support by a CIERA Postdoctoral Fellowship. CAFG was supported by NSF through grants AST-1412836 and AST-1517491, by NASA through grant NNX15AB22G and by STScI through grants HST-AR-14293.001-A and HST-GO-14268.022-A. DK was supported by NSF grant AST-1412153 and a Cottrell Scholar Award. Support for PFH was provided by an Alfred P. Sloan Research Fellowship, NASA ATP Grant NNX14AH35G, and NSF Collaborative Research Grant #1411920 and CAREER grant #1455342. EQ was supported by NASA ATP grant 12-ATP12-0183, a Simons Investigator award from the Simons Foundation, and the David and Lucile Packard Foundation. The simulations analysed in this paper were run using the Extreme Science and Engineering Discovery Environment (XSEDE), which is supported by NSF grant ACI-1053575 (allocations TG-AST120025, TG-AST130039 and TG-AST140023). This work greatly benefited from the hospitality of the Aspen Center for Physics, supported by NSF grant PHY-1066293.

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Submitted - 1610.08523.pdf

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Additional details

Identifiers

Eprint ID
81433
Resolver ID
CaltechAUTHORS:20170914-073539583

Related works

Funding

CIERA Postdoctoral Fellowship
NSF
AST-1412836
NSF
AST-1517491
NASA
NNX15AB22G
NASA
HST-AR-14293.001-A
NASA
HST-GO-14268.022-A
NSF
AST-1412153
Cottrell Scholar of Research Corporation
Alfred P. Sloan Foundation
NASA
NNX14AH35G
NSF
AST-1411920
NSF
AST-1455342
NASA
12-ATP12-0183
Simons Foundation
David and Lucile Packard Foundation
NSF
ACI-1053575
NSF
TG-AST120025
NSF
TG-AST130039
NSF
TG-AST140023
NSF
PHY-1066293

Dates

Created
2017-09-14
Created from EPrint's datestamp field
Updated
2021-11-15
Created from EPrint's last_modified field

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Astronomy Department