English

Examining the local Universe isotropy with galaxy cluster velocity dispersion scaling relations

Cosmology and Nongalactic Astrophysics 2024-12-02 v1

Abstract

In standard cosmology, the late Universe is assumed to be statistically homogeneous and isotropic. However, a recent study based on galaxy clusters by Migkas et al. (2021, arXiv:2103.13904) found an apparent spatial variation of approximately 9%9\% in the Hubble constant, H0H_0, across the sky. The authors utilised galaxy cluster scaling relations between various cosmology-dependent cluster properties and a cosmology-independent property, i.e., the temperature of the intracluster gas (T)(T). A position-dependent systematic bias of TT measurements can, in principle, result in an overestimation of apparent H0H_0 variations. In this study, we search for directional TT measurement biases by examining the scaling relation between the member galaxy velocity dispersion and the gas temperature (σvT)(\sigma_\mathrm{v}-T). Additionally, we search for apparent H0H_0 angular variations independently of TT by analysing the relations between the X-ray luminosity and Sunyaev-Zeldovich signal with the velocity dispersion, LXσvL_\mathrm{X}-\sigma_\mathrm{v} and YSZσvY_\mathrm{SZ}-\sigma_\mathrm{v}. We utilise Monte Carlo simulations of isotropic cluster samples to quantify the statistical significance of any observed anisotropies. We find no significant directional TT measurement biases, and the probability that a directional TT bias causes the previously observed H0H_0 anisotropy is only 0.002%0.002\%. On the other hand, from the joint analysis of the LXσvL_\mathrm{X}-\sigma_\mathrm{v} and YSZσvY_\mathrm{SZ}-\sigma_\mathrm{v} relations, the maximum variation of H0H_0 is found in the direction of (295±71,30±71)(295^\circ\pm71^\circ, -30^\circ\pm71^\circ) with a statistical significance of 3.64σ3.64\sigma, fully consistent with arXiv:2103.13904. Our findings strongly corroborate the previously detected spatial anisotropy of galaxy cluster scaling relations using a new independent cluster property, σv\sigma_\mathrm{v}.

Keywords

Cite

@article{arxiv.2408.00726,
  title  = {Examining the local Universe isotropy with galaxy cluster velocity dispersion scaling relations},
  author = {A. Pandya and K. Migkas and T. H. Reiprich and A. Stanford and F. Pacaud and G. Schellenberger and L. Lovisari and M. E. Ramos-Ceja and N. T. Nguyen-Dang and S. Park},
  journal= {arXiv preprint arXiv:2408.00726},
  year   = {2024}
}

Comments

Submitted to the Astronomy & Astrophysics journal: 18 pages, 19 figures (main text), 7 figures (appendix)