论文标题

部分可观测时空混沌系统的无模型预测

Signature of Supersonic Turbulence in Galaxy Clusters Revealed by AGN-driven H$α$ Filaments

论文作者

Hu, Haojie, Qiu, Yu, Gendron-Marsolais, Marie-Lou, Bogdanovic, Tamara, Hlavacek-Larrondo, Julie, Ho, Luis C., Inayoshi, Kohei, McNamara, Brian R.

论文摘要

热观察到的热量内培养基(ICM)被认为是静止的,观察到的速度分散率低。 ICM的表面亮度波动还表明其湍流是亚音线的,具有kolmogorov缩放关系,表明粘度被抑制,动能级数毫无疑问地降低了小尺度。然而,最近对星系簇中冷气丝的观察结果发现,缩放关系比热等离子体的缩放关系陡峭,信号动能损失和超音速流的存在。在这项工作中,我们使用高分辨率模拟来探索星系簇核心冷丝的湍流速度结构。我们的结果表明,当辐射冷却时间比动态声音时短时,可以在冷气中“冷冻”超音速湍流结构在冷气中“冷冻”,从而通过中央主动银河核(AGN)冷却和碎片,$ 10^7 $ k流出。然而,在冷气形成后,速度结构函数(VSF)的斜率在短时间内的10个MYR时标明显变平。在观察H $α$丝中,缺乏扁平的VSF表明,对于星系簇中的冷气而言,H $α$发射阶段是短暂的。另一方面,通过观察到的细丝揭示的超音速湍流的普遍性强烈表明,超音速流出是AGN-ICM相互作用不可或缺的一部分,并且AGN活性在驱动星系簇中的湍流方面起着至关重要的作用。

The hot intracluster medium (ICM) is thought to be quiescent with low observed velocity dispersions. Surface brightness fluctuations of the ICM also suggest that its turbulence is subsonic with a Kolmogorov scaling relation, indicating that the viscosity is suppressed and the kinetic energy cascades to small scales unscathed. However, recent observations of the cold gas filaments in galaxy clusters find that the scaling relations are steeper than that of the hot plasma, signaling kinetic energy losses and the presence of supersonic flows. In this work we use high-resolution simulations to explore the turbulent velocity structure of the cold filaments at the cores of galaxy clusters. Our results indicate that supersonic turbulent structures can be "frozen" in the cold gas that cools and fragments out of a fast, $10^7$ K outflow driven by the central active galactic nucleus (AGN), when the radiative cooling time is shorter than the dynamical sound-crossing time. After the cold gas formation, however, the slope of the velocity structure function (VSF) flattens significantly over short, 10 Myr timescales. The lack of flattened VSF in observations of H$α$ filaments indicates that the H$α$-emitting phase is short-lived for the cold gas in galaxy clusters. On the other hand, the ubiquity of supersonic turbulence revealed by observed filaments strongly suggests that supersonic outflows are an integral part of AGN-ICM interaction, and that AGN activity plays a crucial role at driving turbulence in galaxy clusters.

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