The XMM Cluster Survey: evolution of the velocity dispersion -- temperature relation over half a Hubble time
Abstract
We measure the evolution of the velocity dispersion--temperature (--) relation up to using a sample of 38 galaxy clusters drawn from the \textit{XMM} Cluster Survey. This work improves upon previous studies by the use of a homogeneous cluster sample and in terms of the number of high redshift clusters included. We present here new redshift and velocity dispersion measurements for 12 clusters observed with the GMOS instruments on the Gemini telescopes. Using an orthogonal regression method, we find that the slope of the relation is steeper than that expected if clusters were self-similar, and that the evolution of the normalisation is slightly negative, but not significantly different from zero (). We verify our results by applying our methods to cosmological hydrodynamical simulations. The lack of evolution seen in our data is consistent with simulations that include both feedback and radiative cooling.
Keywords
Cite
@article{arxiv.1512.02800,
title = {The XMM Cluster Survey: evolution of the velocity dispersion -- temperature relation over half a Hubble time},
author = {Susan Wilson and Matt Hilton and Philip J. Rooney and Caroline Caldwell and Scott T. Kay and Chris A. Collins and Ian G. McCarthy and A. Kathy Romer and Alberto Bermeo-Hernandez and Rebecca Bernstein and Luiz da Costa and Daniel Gifford and Devon Hollowood and Ben Hoyle and Tesla Jeltema and Andrew R. Liddle and Marcio A. G Maia and Robert G. Mann and Julian A. Mayers and Nicola Mehrtens and Christopher J. Miller and Robert C. Nichol and Ricardo Ogando and Martin Sahlén and Benjamin Stahl and John P. Stott and Peter A. Thomas and Pedro T. P. Viana and Harry Wilcox},
journal= {arXiv preprint arXiv:1512.02800},
year = {2016}
}
Comments
Accepted to MNRAS (3 August 2016); Paper: 15 pages, 12 figures; Appendix A: 1 table; Appendix B: 34 Tables; Appendix C: 2 Figures