English

The APOSTLE project: Local Group kinematic mass constraints and simulation candidate selection

Astrophysics of Galaxies 2020-10-08 v2

Abstract

We use a large sample of isolated dark matter halo pairs drawn from cosmological N-body simulations to identify candidate systems whose kinematics match that of the Local Group of Galaxies (LG). We find, in agreement with the "timing argument" and earlier work, that the separation and approach velocity of the Milky Way (MW) and Andromeda (M31) galaxies favour a total mass for the pair of 5×1012M\sim 5\times 10^{12} \,M_{\odot}. A mass this large, however, is difficult to reconcile with the small relative tangential velocity of the pair, as well as with the small deceleration from the Hubble flow observed for the most distant LG members. Halo pairs that match these three criteria have average masses a factor of 2\sim 2 times smaller than suggested by the timing argument, but with large dispersion. Guided by these results, we have selected 1212 halo pairs with total mass in the range 1.61.6-3.6×1012M3.6 \times 10^{12}\,M_{\odot} for the APOSTLE project (A Project Of Simulating The Local Environment), a suite of hydrodynamical resimulations at various numerical resolution levels (reaching up to 104M\sim10^{4}\,M_{\odot} per gas particle) that use the subgrid physics developed for the EAGLE project. These simulations reproduce, by construction, the main kinematics of the MW-M31 pair, and produce satellite populations whose overall number, luminosities, and kinematics are in good agreement with observations of the MW and M31 companions. The APOSTLE candidate systems thus provide an excellent testbed to confront directly many of the predictions of the Λ\LambdaCDM cosmology with observations of our local Universe.

Keywords

Cite

@article{arxiv.1507.03643,
  title  = {The APOSTLE project: Local Group kinematic mass constraints and simulation candidate selection},
  author = {Azadeh Fattahi and Julio F. Navarro and Till Sawala and Carlos S. Frenk and Kyle A. Oman and Robert A. Crain and Michelle Furlong and Matthieu Schaller and Joop Schaye and Tom Theuns and Adrian Jenkins},
  journal= {arXiv preprint arXiv:1507.03643},
  year   = {2020}
}

Comments

replaced with the accepted version

R2 v1 2026-06-22T10:11:07.981Z