Simulating AGN wind feedback with variable feedback efficiencies in idealised disc galaxies
Jinning Liang (1, 2, and 3), Cedric G. Lacey (1), Filip Hu\v{s}ko (4, 1), Evgenii Chaikin (1, 4), Sownak Bose (1) ((1) ICC Durham University, (2) DoA Peking University, (3) KIAA Peking University, (4) Leiden Observatory)

TL;DR
This study models AGN wind feedback in idealized disc galaxies with a variable efficiency depending on the Eddington ratio, revealing how feedback strength influences black hole growth and galaxy evolution.
Contribution
Introduces a new thermal AGN feedback model with variable coupling efficiency based on Eddington ratio, tested in Milky Way-mass galaxy simulations.
Findings
Lower feedback efficiency results in faster black hole growth.
Black hole mass is the dominant factor in galaxy evolution.
Feedback efficiency variations have modest effects on galaxy properties.
Abstract
Active Galactic Nucleus (AGN) feedback plays a critical role in galaxy formation and evolution. AGN-driven winds can significantly influence their host galaxies, although the details of their impact remain unclear. In this study, we investigate the feedback effects of AGN winds on idealized disc galaxies using the SWIFT hydrodynamical code with COLIBRE subgrid physics. We implement a new thermal AGN feedback model in which the energy injection coupling efficiency has a power-law dependence on the Eddington ratio of the black hole (BH) accretion rate, motivated by scaling relations for AGN winds from numerical models and observations. We simulate idealised Milky Way-mass galaxies, incorporating a BH, cold gas disc, stellar disc, and hot circumgalactic medium, within a static dark matter halo. We vary the BH mass and the slope and normalisation of the new coupling efficiency model. For a…
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Taxonomy
TopicsGalaxies: Formation, Evolution, Phenomena · Astronomy and Astrophysical Research · Astrophysical Phenomena and Observations
