Non-Kolmogorov turbulence in multiphase intracluster medium driven by cold gas precipitation and AGN jets
C. Wang, M. Ruszkowski, C. Pfrommer, S. Peng Oh, H.-Y. K. Yang

TL;DR
This study uses 3D MHD simulations to explore how cold gas precipitation and AGN jets influence turbulence in galaxy cluster atmospheres, revealing non-Kolmogorov turbulence driven by gravitational and magnetic effects.
Contribution
It demonstrates that cold gas clouds and magnetic fields significantly alter turbulence properties in the intracluster medium, challenging traditional Kolmogorov-based models.
Findings
Cold phase velocity structure function is steeper than Kolmogorov prediction.
Cold filaments can dominate turbulence driving in the hot ICM.
Magnetic fields facilitate turbulence driven by AGN jets.
Abstract
AGN feedback is responsible for maintaining plasma in global thermal balance in extended halos of elliptical galaxies and galaxy clusters. Local thermal instability in the hot gas leads to the formation of precipitating cold gas clouds that feed the central supermassive black holes, thus heating the hot gas and maintaining global thermal equilibrium. We perform three dimensional MHD simulations of self-regulated AGN feedback in a Perseus-like galaxy cluster with the aim of understanding the impact of the feedback physics on the turbulence properties of the hot and cold phases of the ICM. We find that, in general, the cold phase velocity structure function (VSF) is steeper than the prediction from Kolmogorov's theory. We attribute the physical origin of the steeper slope of the cold phase VSF to the driving of turbulent motions primarily by the gravitational acceleration acting on the…
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