English

Cosmic evolution of radio-AGN feedback: confronting models with data

Astrophysics of Galaxies 2023-06-22 v1 High Energy Astrophysical Phenomena

Abstract

Radio-mode feedback is a key ingredient in galaxy formation and evolution models, required to reproduce the observed properties of massive galaxies in the local Universe. We study the cosmic evolution of radio-AGN feedback out to z2.5z\sim2.5 using a sample of 9485 radio-excess AGN. We combine the evolving radio luminosity functions with a radio luminosity scaling relationship to estimate AGN jet kinetic powers and derive the cosmic evolution of the kinetic luminosity density, Ωkin\Omega_{\rm{kin}} (i.e. the volume-averaged heating output). Compared to all radio-AGN, low-excitation radio galaxies (LERGs) dominate the feedback activity out to z2.5z\sim2.5, with both these populations showing a constant heating output of Ωkin45×1032WMpc3\Omega_{\rm{kin}} \approx 4-5 \times 10^{32}\,\rm{W\,Mpc^{-3}} across 0.5<z<2.50.5 < z < 2.5. We compare our observations to predictions from semi-analytical and hydrodynamical simulations, which broadly match the observed evolution in Ωkin\Omega_{\rm{kin}}, although their absolute normalisation varies. Comparison to the Semi-Analytic Galaxy Evolution (SAGE) model suggests that radio-AGN may provide sufficient heating to offset radiative cooling losses, providing evidence for a self-regulated AGN feedback cycle. We integrate the kinetic luminosity density across cosmic time to obtain the kinetic energy density output from AGN jets throughout cosmic history to be 1050JMpc3\sim 10^{50}\,\rm{J\,Mpc^{-3}}. Compared to AGN winds, the kinetic energy density from AGN jets dominates the energy budget at z2z \lesssim 2; this suggests that AGN jets play an important role in AGN feedback across most of cosmic history.

Keywords

Cite

@article{arxiv.2306.11795,
  title  = {Cosmic evolution of radio-AGN feedback: confronting models with data},
  author = {R. Kondapally and P. N. Best and M. Raouf and N. L. Thomas and R. Davé and S. S. Shabala and H. J. A. Röttgering and M. J. Hardcastle and M. Bonato and R. K. Cochrane and K. Małek and L. K. Morabito and I. Prandoni and D. J. B. Smith},
  journal= {arXiv preprint arXiv:2306.11795},
  year   = {2023}
}

Comments

15 pages, 6 figures, accepted for publication in MNRAS

R2 v1 2026-06-28T11:10:02.466Z