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首页> 外文期刊>The Astrophysical journal >DYNAMICAL TREATMENT OF VIRIALIZATION HEATING IN GALAXY FORMATION
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DYNAMICAL TREATMENT OF VIRIALIZATION HEATING IN GALAXY FORMATION

机译:银河系玻璃化加热的动态处理

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摘要

In a hierarchical picture of galaxy formation virialization continually transforms gravitational potential energy into kinetic energies of the baryonic and dark matter. For the gaseous component the kinetic, turbulent energy is transformed eventually into internal thermal energy through shocks and viscous dissipation. Traditionally this virialization and shock heating has been assumed to occur instantaneously, allowing an estimate of the gas temperature to be derived from the virial temperature defined from the embedding dark matter halo velocity dispersion. As the mass grows the virial temperature of a halo grows. Mass accretion hence can be translated into a heating term. We derive this heating rate from the extended Press Schechter formalism and demonstrate its usefulness in semianalytical models of galaxy formation. Our method explicitly conserves energy, unlike the previous impulsive heating assumptions. Our formalism can trivially be applied in all current semianalytical models as the heating term can be computed directly from the underlying merger trees. Our analytic results for the first cooling halos and the transition from cold to hot accretion are in agreement with numerical simulations.
机译:在星系形成的层次结构图中,玻璃化作用不断将重力势能转换为重子和暗物质的动能。对于气态成分,动能,湍流能最终通过冲击和粘性耗散转化为内部热能。传统上,这种蠕变和冲击加热被假定为瞬间发生,从而可以根据由嵌入暗物质晕圈速度色散所定义的病毒温度来估算气体温度。随着质量的增长,光环的病毒温度也随之增长。因此,吸积可以转化为加热项。我们从扩展的Press Schechter形式主义中得出该加热速率,并证明其在星系形成的半分析模型中的有用性。与以前的脉冲加热假设不同,我们的方法显着节约能源。我们的形式主义可以轻松地应用于所有当前的半分析模型中,因为可以直接从基础合并树中计算加热项。我们对第一个冷却晕的分析结果以及从冷积到热积的转变与数值模拟是一致的。

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