Constraining the inner density slope of massive galaxy clusters
Abstract
We determine the inner density profiles of massive galaxy clusters (M > M) in the Cluster-EAGLE (C-EAGLE) hydrodynamic simulations, and investigate whether the dark matter density profiles can be correctly estimated from a combination of mock stellar kinematical and gravitational lensing data. From fitting mock stellar kinematics and lensing data generated from the simulations, we find that the inner density slopes of both the total and the dark matter mass distributions can be inferred reasonably well. We compare the density slopes of C-EAGLE clusters with those derived by Newman et al. for 7 massive galaxy clusters in the local Universe. We find that the asymptotic best-fit inner slopes of "generalized" NFW (gNFW) profiles, , of the dark matter haloes of the C-EAGLE clusters are significantly steeper than those inferred by Newman et al. However, the mean mass-weighted dark matter density slopes of the simulated clusters are in good agreement with the Newman et al. estimates. We also find that the estimate of is very sensitive to the constraints from weak lensing measurements in the outer parts of the cluster and a bias can lead to an underestimate of .
Cite
@article{arxiv.1907.01680,
title = {Constraining the inner density slope of massive galaxy clusters},
author = {Qiuhan He and Hongyu Li and Ran Li and Carlos S. Frenk and Matthieu Schaller and David Barnes and Yannick Bahé and Scott T. Kay and Liang Gao and Claudio Dalla Vecchia},
journal= {arXiv preprint arXiv:1907.01680},
year = {2020}
}
Comments
19 pages, 16 figures, accepted by MNRAS