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The Gas Distribution in the Outer Regions of Galaxy ClustersAims. We present our analysis of a local (z = 0.04 - 0.2) sample of 31 galaxy clusters with the aim of measuring the density of the X-ray emitting gas in cluster outskirts. We compare our results with numerical simulations to set constraints on the azimuthal symmetry and gas clumping in the outer regions of galaxy clusters. Methods. We have exploited the large field-of-view and low instrumental background of ROSAT/PSPC to trace the density of the intracluster gas out to the virial radius, We stacked the density profiles to detect a signal beyond T200 and measured the typical density and scatter in cluster outskirts. We also computed the azimuthal scatter of the profiles with respect to the mean value to look for deviations from spherical symmetry. Finally, we compared our average density and scatter profiles with the results of numerical simulations. Results. As opposed to some recent Suzaku results, and confirming previous evidence from ROSAT and Chandra, we observe a steepening of the density profiles beyond approximately r(sub 500). Comparing our density profiles with simulations, we find that non-radiative runs predict density profiles that are too steep, whereas runs including additional physics and/ or treating gas clumping agree better with the observed gas distribution. We report high-confidence detection of a systematic difference between cool-core and non cool-core clusters beyond approximately 0.3r(sub 200), which we explain by a different distribution of the gas in the two classes. Beyond approximately r(sub 500), galaxy clusters deviate significantly from spherical symmetry, with only small differences between relaxed and disturbed systems. We find good agreement between the observed and predicted scatter profiles, but only when the 1% densest clumps are filtered out in the ENZO simulations. Conclusions. Comparing our results with numerical simulations, we find that non-radiative simulations fail to reproduce the gas distribution, even well outside cluster cores. Although their general behavior agrees more closely with the observations, simulations including cooling and star formation convert a large amount of gas into stars, which results in a low gas fraction with respect to the observations. Consequently, a detailed treatment of gas cooling, star formation, AGN feedback, and consideration of gas clumping is required to construct realistic models of the outer regions of clusters.
Document ID
20120016558
Acquisition Source
Goddard Space Flight Center
Document Type
Preprint (Draft being sent to journal)
Authors
Eckert, D.
(Istituto di Astrofisica Spaziale e Fisica Cosmica (INAF-IASF) Italy)
Vazza, F.
(Jacobs Univ. Bremen, Germany)
Ettori, S.
(Osservatorio Astronomico Bologna, Italy)
Molendi, S.
(Istituto di Astrofisica Spaziale e Fisica Cosmica (INAF-IASF) Italy)
Nagai, D.
(Yale Univ. New Haven, CT, United States)
Lau, E. T.
(Yale Univ. New Haven, CT, United States)
Roncarelli, M.
(Bologna Univ. Italy)
Rossetti, M.
(Istituto di Astrofisica Spaziale e Fisica Cosmica (INAF-IASF) Italy)
Snowden, L.
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Gastaldello, F.
(Istituto di Astrofisica Spaziale e Fisica Cosmica (INAF-IASF) Italy)
Date Acquired
August 26, 2013
Publication Date
March 7, 2012
Subject Category
Astrophysics
Report/Patent Number
GSFC.JA.7371.2012
Funding Number(s)
CONTRACT_GRANT: NSF AST-1009811
CONTRACT_GRANT: NSF PHY05-51164
CONTRACT_GRANT: ASI-INAF I/009/10/0
CONTRACT_GRANT: NNX11AE07G
CONTRACT_GRANT: ASI-INAF I/088/06/0
CONTRACT_GRANT: ASI-INAF I/023/05/0
Distribution Limits
Public
Copyright
Public Use Permitted.
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