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Title: Modeling active galactic nucleus feedback in cool-core clusters: The formation of cold clumps

We perform high-resolution (15-30 pc) adaptive mesh simulations to study the impact of momentum-driven active galactic nucleus (AGN) feedback in cool-core clusters, focusing in this paper on the formation of cold clumps. The feedback is jet-driven with an energy determined by the amount of cold gas within 500 pc of the super-massive black hole. When the intracluster medium in the core of the cluster becomes marginally stable to radiative cooling, with the thermal instability to the free-fall timescale ratio t{sub TI}/t{sub ff} < 3-10, cold clumps of gas start to form along the propagation direction of the AGN jets. By tracing the particles in the simulations, we find that these cold clumps originate from low entropy (but still hot) gas that is accelerated by the jet to outward radial velocities of a few hundred km s{sup –1}. This gas is out of hydrostatic equilibrium and so can cool. The clumps then grow larger as they decelerate and fall toward the center of the cluster, eventually being accreted onto the super-massive black hole. The general morphology, spatial distribution, and estimated Hα morphology of the clumps are in reasonable agreement with observations, although we do not fully replicate the filamentary morphology ofmore » the clumps seen in the observations, probably due to missing physics.« less
Authors:
;  [1]
  1. Department of Astronomy, Columbia University, Pupin Physics Laboratories, New York, NY 10027 (United States)
Publication Date:
OSTI Identifier:
22365689
Resource Type:
Journal Article
Resource Relation:
Journal Name: Astrophysical Journal; Journal Volume: 789; Journal Issue: 2; Other Information: Country of input: International Atomic Energy Agency (IAEA)
Country of Publication:
United States
Language:
English
Subject:
79 ASTROPHYSICS, COSMOLOGY AND ASTRONOMY; BLACK HOLES; ENTROPY; EQUILIBRIUM; FEEDBACK; GALAXY CLUSTERS; GALAXY NUCLEI; HYDRODYNAMICS; INSTABILITY; RADIAL VELOCITY; RADIATIVE COOLING; SIMULATION; SPATIAL DISTRIBUTION