Published September 1, 2018 | Version Submitted + Published
Journal Article Open

No assembly required: mergers are mostly irrelevant for the growth of low-mass dwarf galaxies

  • 1. ROR icon The University of Texas at Austin
  • 2. ROR icon University of California, Irvine
  • 3. ROR icon University of California, Berkeley
  • 4. ROR icon California Institute of Technology
  • 5. ROR icon Northwestern University
  • 6. ROR icon University of California, San Diego
  • 7. ROR icon University of California, Davis
  • 8. ROR icon Harvard-Smithsonian Center for Astrophysics

Abstract

We investigate the merger histories of isolated dwarf galaxies based on a suite of 15 high-resolution cosmological zoom-in simulations, all with masses of M_(halo) ≈ 10^(10) M⊙ (and M⋆∼10^5−10^7 M_⊙) at z = 0, from the Feedback in Realistic Environments project. The stellar populations of these dwarf galaxies at z = 0 are formed essentially entirely 'in situ': over 90 percent of the stellar mass is formed in the main progenitor in all but two cases, and all 15 of the galaxies have >70 percent of their stellar mass formed in situ. Virtually all galaxy mergers occur prior to z ∼ 3, meaning that accreted stellar populations are ancient. On average, our simulated dwarfs undergo five galaxy mergers in their lifetimes, with typical pre-merger galaxy mass ratios that are less than 1:10. This merger frequency is generally comparable to what has been found in dissipationless simulations when coupled with abundance matching. Two of the simulated dwarfs have a luminous satellite companion at z= 0. These ultra-faint dwarfs lie at or below current detectability thresholds but are intriguing targets for next-generation facilities. The small contribution of accreted stars makes it extremely difficult to discern the effects of mergers in the vast majority of dwarfs either photometrically or using resolved-star colour–magnitude diagrams (CMDs). The important implication for near-field cosmology is that star formation histories (SFHs) of comparably massive galaxies derived from resolved CMDs should trace the build-up of stellar mass in one main system across cosmic time as opposed to reflecting the contributions of many individual SFHs of merged dwarfs.

Additional Information

© 2018 The Author(s) Published by Oxford University Press on behalf of the Royal Astronomical Society. This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/about_us/legal/notices). Accepted 2018 May 25. Received 2018 April 13; in original form 2017 December 28. Published: 06 June 2018. MBK and AF acknowledge support from the National Science Foundation (grant AST-1517226). MBK was also partially supported by NASA through HST grants AR-12836, AR-13888, AR-13896, AR-14282, AR-14554, GO-12914, and GO-14191 awarded by the Space Telescope Science Institute (STScI), which is operated by the Association of Universities for Research in Astronomy (AURA), Inc., under NASA contract NAS5-26555. JSB was supported by NSF AST-1518291, HST-AR-14282, and HST-AR-13888. 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. CAFG was supported by NSF through grants AST-1412836, AST-1517491, AST-1715216, and CAREER award AST-1652522, and by NASA through grant NNX15AB22G. DRW is supported by a fellowship from the Alfred P. Sloan Foundation. EQ was supported by NASA ATP grant 12-APT12-0183, a Simons Investigator award from the Simons Foundation, and the David and Lucile Packard Foundation. DK was supported by NSF grant AST-1715101 and the Cottrell Scholar Award from the Research Corporation for Science Advancement. AW was supported by a Caltech-Carnegie Fellowship, in part through the Moore Center for Theoretical Cosmology and Physics at Caltech, and by NASA through grant HST-GO-14734 from STScI. This work used computational resources of the University of Texas at Austin and the Texas Advanced Computing Center (TACC; http://www.tacc.utexas.edu), the NASA Advanced Supercomputing (NAS) Division and the NASA Center for Climate Simulation (NCCS) through allocations SMD-15-5902, SMD-15-5904, SMD-16-7043, and SMD-16-6991, and the Extreme Science and Engineering Discovery Environment (XSEDE, via allocations TG-AST110035, TG-AST130039, and TG-AST140080), which is supported by National Science Foundation grant number OCI-1053575.

Attached Files

Published - sty1488.pdf

Submitted - 1801.06187.pdf

Files

1801.06187.pdf

Files (8.1 MB)

Name Size
md5:5d0e2db3467633a9d5fa6458574f6c1b
5.0 MB Preview Download
md5:f71192427f9182eec295f403099ad7a4
3.1 MB Preview Download

Additional details

Identifiers

Eprint ID
89288
Resolver ID
CaltechAUTHORS:20180829-152027447

Related works

Funding

NSF
AST-1517226
NASA Hubble Fellowship
AR-12836
NASA Hubble Fellowship
AR-13888
NASA Hubble Fellowship
AR-13896
NASA Hubble Fellowship
AR-14282
NASA Hubble Fellowship
AR-14554
NASA Hubble Fellowship
GO-12914
NASA Hubble Fellowship
GO-14191
NASA
NAS5-26555
NSF
AST-1518291
NASA
HST-AR-14282
NASA
HST-AR-13888
Alfred P. Sloan Foundation
NASA
NNX14AH35G
NSF
AST-1411920
NSF
AST-1455342
NSF
AST-1412836
NSF
AST-1517491
NSF
AST-1715216
NSF
AST-1652522
NASA
NNX15AB22G
NASA
12-APT12-0183
Simons Foundation
David and Lucile Packard Foundation
NSF
AST-1715101
Research Corporation
Caltech-Carnegie Fellowship
Caltech Moore Center for Theoretical Cosmology and Physics
NASA
HST-GO-14734
NSF
TG-AST110035
NSF
TG-AST130039
NSF
TG-AST140080
NSF
OCI-1053575

Dates

Created
2018-08-29
Created from EPrint's datestamp field
Updated
2023-01-05
Created from EPrint's last_modified field