English

Predicting the Non-Thermal Pressure in Galaxy Clusters

Astrophysics of Galaxies 2024-11-20 v1

Abstract

We investigate the relationship between a galaxy cluster's hydrostatic equilibrium state, the entropy profile, KK, of the intracluster gas, and the system's non-thermal pressure (NTP), within an analytic model of cluster structures. When NTP is neglected from the cluster's hydrostatic state, we find that the gas' logarithmic entropy slope, kdlnK/dlnrk\equiv \mathrm{d}\ln K/\mathrm{d}\ln r, converges at large halocentric radius, rr, to a value that is systematically higher than the value k1.1k\simeq1.1 that is found in observations and simulations. By applying a constraint on these `pristine equilibrium' slopes, keqk_\mathrm{eq}, we are able to predict the required NTP that must be introduced into the hydrostatic state of the cluster. We solve for the fraction, Fpnt/p\mathcal{F}\equiv p_\mathrm{nt}/p, of NTP, pntp_\mathrm{nt}, to total pressure, pp, of the cluster, and we find F(r)\mathcal{F}(r) to be an increasing function of halocentric radius, rr, that can be parameterised by its value in the cluster's core, F0\mathcal{F}_0, with this prediction able to be fit to the functional form proposed in numerical simulations. The minimum NTP fraction, as the solution with zero NTP in the core, F0=0\mathcal{F}_0=0, we find to be in excellent agreement with the mean NTP predicted in non-radiative simulations, beyond halocentric radii of r0.7r500r\gtrsim0.7r_{500}, and in tension with observational constraints derived at similar radii. For this minimum NTP profile, we predict F0.20\mathcal{F}\simeq0.20 at r500r_{500}, and F0.34\mathcal{F}\simeq0.34 at 2r5002r_{500}; this amount of NTP leads to a hydrostatic bias of b0.12b\simeq0.12 in the cluster mass M500M_{500} when measured within r500r_{500}. Our results suggest that the NTP of galaxy clusters contributes a significant amount to their hydrostatic state near the virial radius, and must be accounted for when estimating the cluster's halo mass using hydrostatic equilibrium approaches.

Cite

@article{arxiv.2406.19029,
  title  = {Predicting the Non-Thermal Pressure in Galaxy Clusters},
  author = {Andrew Sullivan and Stanislav Shabala and Chris Power and Connor Bottrell and Aaron Robotham},
  journal= {arXiv preprint arXiv:2406.19029},
  year   = {2024}
}

Comments

10 pages, 5 figures. Accepted for publication in PASA

R2 v1 2026-06-28T17:21:01.756Z