COOL CORE CLUSTERS FROM COSMOLOGICAL SIMULATIONS
暂无分享,去创建一个
S. Borgani | V. Biffi | G. Murante | S. Planelles | S. Borgani | G. Granato | K. Dolag | V. Biffi | E. Rasia | G. Murante | K. Dolag | G. L. Granato | S. Planelles | C. Ragone-Figueroa | E. Rasia | A. M. Beck | C. Ragone-Figueroa | L. K. Steinborn | A. Beck | L. Steinborn
[1] M. Donahue,et al. COOLING, AGN FEEDBACK, AND STAR FORMATION IN SIMULATED COOL-CORE GALAXY CLUSTERS , 2015, 1503.02660.
[2] G. W. Pratt,et al. Gas entropy in a representative sample of nearby X-ray galaxy clusters (REXCESS): relationship to gas mass fraction , 2009, 0909.3776.
[3] J. Schaye,et al. Towards a realistic population of simulated galaxy groups and clusters , 2013, 1312.5462.
[4] Greg L. Bryan,et al. The baseline intracluster entropy profile from gravitational structure formation , 2005, astro-ph/0511252.
[5] Harvard,et al. Effects of Galaxy Formation on Thermodynamics of the Intracluster Medium , 2007, astro-ph/0703661.
[6] S. Borgani,et al. Cosmological Simulations of Galaxy Clusters , 2009, 0906.4370.
[7] M. Gaspari. Shaping the X-ray spectrum of galaxy clusters with AGN feedback and turbulence , 2014, 1410.7769.
[8] S. Borgani,et al. X-ray mass proxies from hydrodynamic simulations of galaxy clusters – I , 2011, 1102.2903.
[9] Stefano Borgani,et al. Formation of Galaxy Clusters , 2012, 1205.5556.
[10] T. Ponman,et al. The Chandra Deep Group Survey – cool core evolution in groups and clusters of galaxies , 2014, 1412.6121.
[11] V. Springel,et al. Cosmological smoothed particle hydrodynamics simulations: a hybrid multiphase model for star formation , 2002, astro-ph/0206393.
[12] S. Borgani,et al. On the role of AGN feedback on the thermal and chemodynamical properties of the hot intracluster medium , 2013, 1311.0818.
[13] R. Teyssier,et al. How AGN feedback and metal cooling shape cluster entropy profiles , 2011, 1104.0171.
[14] M. Donahue,et al. Regulation of star formation in giant galaxies by precipitation, feedback and conduction , 2014, Nature.
[15] V. Biffi,et al. The role of the artificial conductivity in SPH simulations of galaxy clusters: effects on the ICM properties , 2014, 1410.8529.
[16] S. Paltani,et al. The cool-core bias in X-ray galaxy cluster samples - I. Method and application to HIFLUGCS , 2010, 1011.3302.
[17] S. Molendi,et al. The evolution of the spatially-resolved metal abundance in galaxy clusters up to z=1.4 , 2015, 1504.02107.
[18] N. Grevesse,et al. Abundances of the elements: Meteoritic and solar , 1989 .
[19] M. Steinmetz,et al. The Santa Barbara Cluster Comparison Project: A Comparison of Cosmological Hydrodynamics Solutions , 1999, astro-ph/9906160.
[20] G. Voit. Tracing cosmic evolution with clusters of galaxies , 2004, astro-ph/0410173.
[21] S. Borgani,et al. Chemical enrichment of galaxy clusters from hydrodynamical simulations , 2007, 0705.1921.
[22] A. Babul,et al. The impact of mergers on relaxed X-ray clusters – III. Effects on compact cool cores , 2008, 0804.1552.
[23] Durham,et al. Towards a holistic view of the heating and cooling of the intracluster medium , 2007, 0706.2768.
[24] G. Bryan,et al. SIMULATING THE COOLING FLOW OF COOL-CORE CLUSTERS , 2011, 1112.2701.
[25] L. Moscardini,et al. Comparing the temperatures of galaxy clusters from hydrodynamical N-body simulations to Chandra and XMM-Newton observations , 2004, astro-ph/0404425.
[26] S. Molendi,et al. Self-similarity of temperature profiles in distant galaxy clusters: the quest for a universal law , 2012, 1206.6603.
[27] J. Schaye,et al. The effect of photoionization on the cooling rates of enriched, astrophysical plasmas , 2008, 0807.3748.
[28] Simulations of AGN feedback in galaxy clusters and groups: impact on gas fractions and the Lx-T scaling relation , 2008, 0808.0494.
[29] Images, Structural Properties, and Metal Abundances of Galaxy Clusters Observed with Chandra ACIS-I at 0.1 < z < 1.3 , 2007, astro-ph/0703156.
[30] Megan Donahue,et al. INTRACLUSTER MEDIUM ENTROPY PROFILES FOR A CHANDRA ARCHIVAL SAMPLE OF GALAXY CLUSTERS , 2009, 0902.1802.
[31] On the Iron content in rich nearby Clusters of Galaxies , 2003, astro-ph/0310828.
[32] Adrian T. Lee,et al. THE GROWTH OF COOL CORES AND EVOLUTION OF COOLING PROPERTIES IN A SAMPLE OF 83 GALAXY CLUSTERS AT 0.3 < z < 1.2 SELECTED FROM THE SPT-SZ SURVEY , 2013, 1305.2915.
[33] V. Springel. The Cosmological simulation code GADGET-2 , 2005, astro-ph/0505010.
[34] V. Springel,et al. Simulations of cosmic-ray feedback by active galactic nuclei in galaxy clusters , 2008, 0801.3285.
[35] V. Springel,et al. A unified model for AGN feedback in cosmological simulations of structure formation , 2007, 0705.2238.
[36] S. Molendi,et al. To appear in ApJ Preprint typeset using L ATEX style emulateapj v. 14/09/00 IS THE GAS IN COOLING-FLOWS MULTI-PHASE? , 2001 .
[37] Michaela Hirschmann,et al. A refined sub-grid model for black hole accretion and AGN feedback in large cosmological simulations , 2014, 1409.3221.
[38] Heinz Andernach,et al. What is a cool-core cluster? a detailed analysis of the cores of the X-ray flux-limited HIFLUGCS cluster sample , 2009, 0911.0409.
[39] M. Rossetti,et al. Back and forth from cool core to non-cool core: clues from radio halos , 2011, 1106.4563.
[40] V. Springel,et al. Gas expulsion by quasar-driven winds as a solution to the overcooling problem in galaxy groups and clusters , 2010, 1008.4799.
[41] P. Nulsen,et al. Heating Hot Atmospheres with Active Galactic Nuclei , 2007, 0709.2152.
[42] M. Rossetti,et al. Thermo-dynamic and chemical properties of the intra-cluster medium , 2009, 0910.4894.
[43] V. Quilis,et al. Galaxy cluster mergers , 2009, 0906.4024.
[44] Chung-Pei Ma,et al. REVISITING THE SCALING RELATIONS OF BLACK HOLE MASSES AND HOST GALAXY PROPERTIES , 2012, 1211.2816.
[45] M. Norman,et al. Why Do Only Some Galaxy Clusters Have Cool Cores? , 2007, 0708.1954.