Accurate model of the projected velocity distribution of galaxies in dark matter haloes

Author:

Aung Han12ORCID,Nagai Daisuke1ORCID,Rozo Eduardo3,Wolfe Brandon3,Adhikari Susmita45

Affiliation:

1. Department of Physics, Yale University , New Haven, CT 06520 , USA

2. Centre for Astrophysics and Planetary Science, Racah Institute of Physics, The Hebrew University , Jerusalem 91904 , Israel

3. Department of Physics, University of Arizona , Tucson, AZ 85721 , USA

4. Indian Institute of Science Education and Research , Pune 411008, Maharashtra , India

5. Department of Astronomy and Astrophysics, University of Chicago , Chicago, IL 60637 , USA

Abstract

ABSTRACTWe present a per cent-level accurate model of the line-of-sight velocity distribution of galaxies around dark matter haloes as a function of projected radius and halo mass. The model is developed and tested using synthetic galaxy catalogues generated with the UniverseMachine run on the Multi-Dark Planck 2 N-body simulations. The model decomposes the galaxies around a cluster into three kinematically distinct classes: orbiting, infalling, and interloping galaxies. We demonstrate that: (1) we can statistically distinguish between these three types of galaxies using only projected line-of-sight velocity information; (2) the halo edge radius inferred from the line-of-sight velocity dispersion is an excellent proxy for the three-dimensional halo edge radius; and (3) we can accurately recover the full velocity dispersion profile for each of the three populations of galaxies. Importantly, the velocity dispersion profiles of the orbiting and infalling galaxies contain five independent parameters – three distinct radial scales and two velocity dispersion amplitudes – each of which is correlated with mass. Thus, the velocity dispersion profile of galaxy clusters has inherent redundancies that allow us to perform non-trivial systematics checks from a single data set. We discuss several potential applications of our new model for detecting the edge radius and constraining cosmology and astrophysics using upcoming spectroscopic surveys.

Funder

DOE

NSF

Publisher

Oxford University Press (OUP)

Subject

Space and Planetary Science,Astronomy and Astrophysics

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