4.7 Article

Cosmological hydrodynamical simulations of galaxy clusters: X-ray scaling relations and their evolution

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stx2927

关键词

methods: numerical; galaxies: clusters: general; galaxies: clusters: intracluster medium; X-rays: galaxies: clusters

资金

  1. Hungarian Academy of Sciences [LP2016-11, PIIF-GA- 2013-627474]
  2. National Science Foundation (NSF) [AST-1210973]
  3. Agenzia Spaziale Italiana instead (ASI) [2016-24-H.0]
  4. Spanish Ministerio de Economia y Competitividad (MINECO) [AYA2013-48226-C3-2-P, AYA2016-77237-C3-3-P]
  5. Generalitat Valenciana [GVACOMP2015-227]
  6. Slovenian Research Agency [P1-0188]
  7. DFG Cluster of Excellence 'Origin and Structure of the Universe'
  8. DFG Research Unit [1254]
  9. CONICET
  10. FonCyT
  11. SeCyT-UNC, Argentina
  12. NASA [PF5-160137, NAS8-03060]
  13. PRIN-MIUR - Italian Ministry of Research [201278X4FL]
  14. PRIN-INAF
  15. INDARK INFN
  16. Consorzio per la Fisica di Trieste

向作者/读者索取更多资源

We analyse cosmological hydrodynamical simulations of galaxy clusters to study the X-ray scaling relations between total masses and observable quantities such as X-ray luminosity, gas mass, X-ray temperature, and Y-X. Three sets of simulations are performed with an improved version of the smoothed particle hydrodynamics GADGET-3 code. These consider the following: non-radiative gas, star formation and stellar feedback, and the addition of feedback by active galactic nuclei (AGN). We select clusters with M-500 > 10(14) M circle dot E(z)(-1), mimicking the typical selection of Sunyaev-Zeldovich samples. This permits to have a mass range large enough to enable robust fitting of the relations even at z similar to 2. The results of the analysis show a general agreement with observations. The values of the slope of the mass-gas mass and mass-temperature relations at z = 2 are 10 per cent lower with respect to z = 0 due to the applied mass selection, in the former case, and to the effect of early merger in the latter. We investigate the impact of the slope variation on the study of the evolution of the normalization. We conclude that cosmological studies through scaling relations should be limited to the redshift range z = 0-1, where we find that the slope, the scatter, and the covariance matrix of the relations are stable. The scaling between mass and Y-X is confirmed to be the most robust relation, being almost independent of the gas physics. At higher redshifts, the scaling relations are sensitive to the inclusion of AGNs which influences low-mass systems. The detailed study of these objects will be crucial to evaluate the AGN effect on the ICM.

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