论文标题

Baryonic Clumps形成的巨大高$ z $星系中的暗物质核心

Dark matter cores in massive high-$z$ galaxies formed by baryonic clumps

论文作者

Ogiya, Go, Nagai, Daisuke

论文摘要

在红移范围内,一些恒星形成大量星系的旋转曲线在有效半径的几倍上下降,表明星系中心的暗物质(DM)质量很大。 DM质量不足被解释为DM密度核心的存在,而不是标准宇宙学模型预测的cuspy结构。最近的一项研究表明,银河系合并,其中较小的卫星星系通过银河气体的耗散收缩显着压实,可以加热宿主星系的中心,并有助于制造大型DM核心。通过使用$ n $体体模拟,我们发现合并卫星将大量DM质量进口到中心,这使得这种情况成为DM质量不足的不太可能解决方案。在这项工作中,我们将高红移星系中的巨型重型块视为用DM核心创建Baryon主导的星系的替代加热来源。由于动态摩擦,团块的轨道在银河中心的几个回旋中腐烂,重子凝结。作为后反应,将光环中心加热,并将密度尖扁平。重子凝结和核心形成的组合使星系重子在中央2-5 kpc中占主导地位,与观察到的星系的有效半径相当。因此,巨型重型结块的动态加热是一种可行的机制,用于解释高红移星系中观察到的DM缺乏。

The rotation curves of some star forming massive galaxies at redshift two decline over the radial range of a few times the effective radius, indicating a significant deficit of dark matter (DM) mass in the galaxy centre. The DM mass deficit is interpreted as the existence of a DM density core rather than the cuspy structure predicted by the standard cosmological model. A recent study proposed that a galaxy merger, in which the smaller satellite galaxy is significantly compacted by dissipative contraction of the galactic gas, can heat the centre of the host galaxy and help make a large DM core. By using an $N$-body simulation, we find that a large amount of DM mass is imported to the centre by the merging satellite, making this scenario an unlikely solution for the DM mass deficit. In this work, we consider giant baryonic clumps in high redshift galaxies as alternative heating source for creating the baryon dominated galaxies with a DM core. Due to dynamical friction, the orbit of clumps decays in a few Gyr and the baryons condensate at the galactic centre. As a back-reaction, the halo centre is heated up and the density cusp is flattened out. The combination of the baryon condensation and core formation makes the galaxy baryon dominated in the central 2-5 kpc, comparable to the effective radius of the observed galaxies. Thus, the dynamical heating by giant baryonic clumps is a viable mechanism for explaining the observed dearth of DM in high redshift galaxies.

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