English

SZ/X-ray scaling relations using X-ray data and Planck Nominal maps

Cosmology and Nongalactic Astrophysics 2016-07-26 v2

Abstract

We determine the relation between the Comptonization parameter predicted using X-ray data YC,XrayY_{C,Xray} and the X-ray luminosity LXL_X, both magnitudes derived from ROSAT data, with the Comptonization parameter YC,SZY_{C,SZ} measured on {\it Planck} 2013 foreground cleaned Nominal maps. The 560 clusters of our sample includes clusters with masses M1013MM\ge 10^{13}M_\odot, one order of magnitude smaller than those used by the Planck Collaboration in a similar analysis. It also contains eight times more clusters in the redshift interval z0.3z\le 0.3. The prediction of the β=2/3\beta=2/3 model convolved with the Planck antenna beam agrees with the anisotropies measured in foreground cleaned Planck Nominal maps within the X-ray emitting region, confirming the results of an earlier analysis (Atrio-Barandela et al. 2008). The universal pressure profile overestimates the signal by a 15-21\% depending on the angular aperture. We show that the discrepancy is not due to the presence of {\it cool-core} systems but it is an indication of a brake in the LXML_X-M relation towards low mass systems. We show that relation of the Comptonization parameter averaged over the region that emits 99\% of the X-ray flux and and the X-ray luminosity is consistent with the predictions of the self-similar model. We confirm previous findings that the scaling relations studied here do not evolve with redshift within the range probed by our catalog.

Cite

@article{arxiv.1606.04983,
  title  = {SZ/X-ray scaling relations using X-ray data and Planck Nominal maps},
  author = {I. De Martino and F. Atrio-Barandela},
  journal= {arXiv preprint arXiv:1606.04983},
  year   = {2016}
}

Comments

13 pages, 5 figures, 3 tables. Accepted for publication in MNRAS

R2 v1 2026-06-22T14:26:28.299Z