English

Galaxy Formation Efficiency and the Multiverse Explanation of the Cosmological Constant with EAGLE Simulations

Cosmology and Nongalactic Astrophysics 2018-04-10 v2

Abstract

Models of the very early universe, including inflationary models, are argued to produce varying universe domains with different values of fundamental constants and cosmic parameters. Using the cosmological hydrodynamical simulation code from the eagle collaboration, we investigate the effect of the cosmological constant on the formation of galaxies and stars. We simulate universes with values of the cosmological constant ranging from Lambda = 0 to Lambda_0 = 300, where Lambda_0 is the value of the cosmological constant in our Universe. Because the global star formation rate in our Universe peaks at t = 3.5 Gyr, before the onset of accelerating expansion, increases in Lambda of even an order of magnitude have only a small effect on the star formation history and efficiency of the universe. We use our simulations to predict the observed value of the cosmological constant, given a measure of the multiverse. Whether the cosmological constant is successfully predicted depends crucially on the measure. The impact of the cosmological constant on the formation of structure in the universe does not seem to be a sharp enough function of Lambda to explain its observed value alone.

Keywords

Cite

@article{arxiv.1801.08781,
  title  = {Galaxy Formation Efficiency and the Multiverse Explanation of the Cosmological Constant with EAGLE Simulations},
  author = {Luke A. Barnes and Pascal J. Elahi and Jaime Salcido and Richard G. Bower and Geraint F. Lewis and Tom Theuns and Matthieu Schaller and Robert A. Crain and Joop Schaye},
  journal= {arXiv preprint arXiv:1801.08781},
  year   = {2018}
}

Comments

17 pages, 12 figures, 4 tables. Accepted for publication in MNRAS