论文标题

宇宙射线和热不稳定性在巨大星系簇的自我调节冷却流中

Cosmic rays and thermal instability in self-regulating cooling flows of massive galaxy clusters

论文作者

Beckmann, Ricarda S., Dubois, Yohan, Pellissier, Alisson, Olivares, Valeria, Polles, Fiorella L., Hahn, Oliver, Guillard, Pierre, Lehnert, Matthew D.

论文摘要

有助于防止星系簇中强烈冷却流动的关键物理过程之一是簇的中央活性银河核(AGN)的持续能量输入。但是,目前尚不清楚该能量如何被热化,从而可以有效地防止全球热不稳定性。一种可能的选择是,将AGN能量的一部分转换为宇宙射线(CRS),这些射线提供了非热压力支持,即使热能辐射消失,也可以保留能量。通过磁性流动力学模拟,我们研究了AGN射流注射的CR如何影响大型星系群的冷却流。我们得出的结论是,将低至10 \%的AGN光度的一部分转化为CR能量,可以防止数十亿年的时间尺度上的冷却流,而在多阶段群内群体内培养基的结构上没有显着变化。相比之下,以Cr为主的喷气机导致形成由Cr压力支撑的延长,温暖的中央星云。我们报告说,CRS的存在无法抑制大型星系簇中的热不稳定性的发作,但是CR为主的喷气机确实会大大改变气体的持续演变,因为气体继续冷却从等距到同等。集群中的CR重新分布是由对流而不是扩散或流媒体主导的,但是CR流的加热有助于将气体保持在热和温暖的相位。从观察上讲,自我调节的,以CR为主导的喷气机产生的gammaray〜磁通量超过了当前的观察限制,但射流中的Cr级分低不排除。

One of the key physical processes that helps prevent strong cooling flows in galaxy clusters is the continued energy input from the central active galactic nucleus (AGN) of the cluster. However, it remains unclear how this energy is thermalised so that it can effectively prevent global thermal instability. One possible option is that a fraction of the AGN energy is converted into cosmic rays (CRs), which provide non-thermal pressure support, and can retain energy even as thermal energy is radiated away. By means of magneto-hydrodynamical simulations, we investigate how CR injected by the AGN jet influence cooling flows of a massive galaxy cluster. We conclude that converting a fraction of the AGN luminosity as low as 10\% into CR energy prevents cooling flows on timescales of billion years, without significant changes in the structure of the multi-phase intra-cluster medium. CR-dominated jets, by contrast, lead to the formation of an extended, warm central nebula that is supported by CR pressure. We report that the presence of CRs is not able to suppress the onset of thermal instability in massive galaxy clusters, but CR-dominated jets do significantly change the continued evolution of gas as it continues to cool from isobaric to isochoric. The CR redistribution in the cluster is dominated by advection rather than diffusion or streaming, but the heating by CR streaming helps maintain gas in the hot and warm phase. Observationally, self-regulating, CR-dominated jets produce a \gammaray~ flux in excess of current observational limits, but low CR fractions in the jet are not ruled out.

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