Monthly Notices of the Royal Astronomical Society · 2013 · 162 citations · 59 references
EngineeringSolar ConvectionDirect CollapseCosmologyTheoretical PhysicsAstrophysical SimulationSink ParticlesLarge Scale StructureGalaxy FormationPhotometryPhysicsAstrophysicsBlack Hole DynamicBlack HoleBlack Hole PhysicsNatural SciencesBig BangBlack Hole SeedsEarly Universe
Black holes of a billion solar masses are observed in the infant Universe a few hundred million years after the big bang. The direct collapse of protogalactic gas clouds in primordial haloes with Tvir ≥ 104 K provides the most promising way to assemble massive black holes. In this study, we aim to determine the characteristic mass scale of seed black holes and the time evolution of the accretion rates resulting from the direct collapse model. We explore the formation of supermassive black holes via cosmological large eddy simulations (LES) by employing sink particles and following their evolution for 20 000 yr after the formation of the first sink. As the resulting protostars were shown to have cool atmospheres in the presence of strong accretion, we assume here that UV feedback is negligible during this calculation. We confirm this result in a comparison run without sinks. Our findings show that black hole seeds with characteristic mass of 105 M⊙ are formed in the presence of strong Lyman–Werner flux which leads to an isothermal collapse. The characteristic mass is about two times higher in LES compared to the implicit large eddy simulations. The accretion rates increase with time and reach a maximum value of 10 M⊙ yr−1 after 104 yr. Our results show that the direct collapse model is clearly feasible as it provides the expected mass of the seed black holes.
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The Slope of the Black Hole Mass versus Velocity Dispersion Correlation
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A luminous quasar at a redshift of z = 7.085
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