The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models

We present accurate mass and thermodynamic profiles for 57 galaxy clusters observed with the Chandra X-ray Observatory. We investigate the effects of local gravitational acceleration in central cluster galaxies, and explore the role of the local free-fall time (tff) in thermally unstable cooling. We...

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Main Authors: Hogan, M. T., McNamara, B. R., Pulido, F. A., Nulsen, P. E. J., Vantyghem, A. N., Russell, H. R., Edge, A. C., Babyk, Iu., Main, R. A., McDonald, Michael A.
Other Authors: Massachusetts Institute of Technology. Department of Physics
Format: Article
Published: American Astronomical Society 2018
Online Access:http://hdl.handle.net/1721.1/117575
https://orcid.org/0000-0001-5226-8349
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author Hogan, M. T.
McNamara, B. R.
Pulido, F. A.
Nulsen, P. E. J.
Vantyghem, A. N.
Russell, H. R.
Edge, A. C.
Babyk, Iu.
Main, R. A.
McDonald, Michael A.
author2 Massachusetts Institute of Technology. Department of Physics
author_facet Massachusetts Institute of Technology. Department of Physics
Hogan, M. T.
McNamara, B. R.
Pulido, F. A.
Nulsen, P. E. J.
Vantyghem, A. N.
Russell, H. R.
Edge, A. C.
Babyk, Iu.
Main, R. A.
McDonald, Michael A.
author_sort Hogan, M. T.
collection MIT
description We present accurate mass and thermodynamic profiles for 57 galaxy clusters observed with the Chandra X-ray Observatory. We investigate the effects of local gravitational acceleration in central cluster galaxies, and explore the role of the local free-fall time (tff) in thermally unstable cooling. We find that the radially averaged cooling time (tcool) is as effective an indicator of cold gas, traced through its nebular emission, as the ratio tcool/tff. Therefore tcool, primarily governs the onset of thermally unstable cooling in hot atmospheres. The location of the minimum tcool/tff, a thermodynamic parameter that many simulations suggest is key in driving thermal instability, is unresolved in most systems. Consequently, selection effects bias the value and reduce the observed range in measured tcool/tffminima. The entropy profiles of cool-core clusters are characterized by broken power laws down to our resolution limit, with no indication of isentropic cores. We show, for the first time, that mass isothermality and the K ∝ r2/3entropy profile slope imply a floor in tcool/tffprofiles within central galaxies. No significant departures of tcool/tffbelow 10 are found. This is inconsistent with models that assume thermally unstable cooling ensues from linear perturbations at or near this threshold. We find that the inner cooling times of cluster atmospheres are resilient to active galactic nucleus (AGN)-driven change, suggesting gentle coupling between radio jets and atmospheric gas. Our analysis is consistent with models in which nonlinear perturbations, perhaps seeded by AGN-driven uplift of partially cooled material, lead to cold gas condensation.
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spelling mit-1721.1/1175752022-09-30T16:27:26Z The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models Hogan, M. T. McNamara, B. R. Pulido, F. A. Nulsen, P. E. J. Vantyghem, A. N. Russell, H. R. Edge, A. C. Babyk, Iu. Main, R. A. McDonald, Michael A. Massachusetts Institute of Technology. Department of Physics MIT Kavli Institute for Astrophysics and Space Research McDonald, Michael A. We present accurate mass and thermodynamic profiles for 57 galaxy clusters observed with the Chandra X-ray Observatory. We investigate the effects of local gravitational acceleration in central cluster galaxies, and explore the role of the local free-fall time (tff) in thermally unstable cooling. We find that the radially averaged cooling time (tcool) is as effective an indicator of cold gas, traced through its nebular emission, as the ratio tcool/tff. Therefore tcool, primarily governs the onset of thermally unstable cooling in hot atmospheres. The location of the minimum tcool/tff, a thermodynamic parameter that many simulations suggest is key in driving thermal instability, is unresolved in most systems. Consequently, selection effects bias the value and reduce the observed range in measured tcool/tffminima. The entropy profiles of cool-core clusters are characterized by broken power laws down to our resolution limit, with no indication of isentropic cores. We show, for the first time, that mass isothermality and the K ∝ r2/3entropy profile slope imply a floor in tcool/tffprofiles within central galaxies. No significant departures of tcool/tffbelow 10 are found. This is inconsistent with models that assume thermally unstable cooling ensues from linear perturbations at or near this threshold. We find that the inner cooling times of cluster atmospheres are resilient to active galactic nucleus (AGN)-driven change, suggesting gentle coupling between radio jets and atmospheric gas. Our analysis is consistent with models in which nonlinear perturbations, perhaps seeded by AGN-driven uplift of partially cooled material, lead to cold gas condensation. United States. National Aeronautics and Space Administration (Chandra Award Number G05-16134X) 2018-08-28T13:26:36Z 2018-08-28T13:26:36Z 2017-12 2017-09 2018-08-24T14:01:36Z Article http://purl.org/eprint/type/JournalArticle 1538-4357 http://hdl.handle.net/1721.1/117575 Hogan, M. T., B. R. McNamara, F. A. Pulido, P. E. J. Nulsen, A. N. Vantyghem, H. R. Russell, A. C. Edge, Iu. Babyk, R. A. Main, and M. McDonald. “The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models.” The Astrophysical Journal 851, no. 1 (December 13, 2017): 66. https://orcid.org/0000-0001-5226-8349 http://dx.doi.org/10.3847/1538-4357/AA9AF3 The Astrophysical Journal Article is made available in accordance with the publisher's policy and may be subject to US copyright law. Please refer to the publisher's site for terms of use. application/pdf American Astronomical Society IOP Publishing
spellingShingle Hogan, M. T.
McNamara, B. R.
Pulido, F. A.
Nulsen, P. E. J.
Vantyghem, A. N.
Russell, H. R.
Edge, A. C.
Babyk, Iu.
Main, R. A.
McDonald, Michael A.
The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title_full The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title_fullStr The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title_full_unstemmed The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title_short The Onset of Thermally Unstable Cooling from the Hot Atmospheres of Giant Galaxies in Clusters: Constraints on Feedback Models
title_sort onset of thermally unstable cooling from the hot atmospheres of giant galaxies in clusters constraints on feedback models
url http://hdl.handle.net/1721.1/117575
https://orcid.org/0000-0001-5226-8349
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