论文标题
星系合并中尘埃刺激的星系的起源和演变
Origin and evolution of dust-obscured galaxies in galaxy mergers
论文作者
论文摘要
尘埃遮盖的星系(狗)在观察中被视为光学中的微弱和红外线的明亮,是星系合并的最后阶段,是星系和活性银河核(AGNS)进化的必不可少的物体。但是,围绕AGN和狗寿命周围的圆环尺度气体动力学之间的关系尚不清楚。我们从基于N体/平滑粒子流体动力学(SPH)模拟的后处理的伪观察中获得了带有AGN反馈的星系合并系统的光谱能量分布(SED)的演变。我们专注于两个相同星系的后期合并,其超质量黑洞(SMBH)为10 $^8 $ m $ _ \ odot $。我们发现,系统的红外发光度分别达到超流和超流红外星系类别(10 $^{12} $和10 $^{13} $ l $ _ \ odot $)。狗阶段对应于AGN埋在密集的气体和灰尘的状态下,红外发光度超过3.3 $ \ times $ 10 $^{12} $ l $ _ \ odot $。我们还确定了狗的子类别,即SED及其进化的狗和强力犬。凸起的狗倾向于演变为几种MYR上的强力犬。我们发现,红外辐射中细胞核周围的热尘的贡献对于将系统识别为幂律狗至关重要。气体和尘埃在细胞核周围非球体分布,因此,观察到的狗的特性取决于视角。在我们的模型中,合并驱动的狗的寿命小于4 MYR,这表明观察到的狗相是星系合并的简短方面。
Dust Obscured Galaxies (DOGs), which are observationally characterized as faint in the optical and bright in the infrared, are the final stage of galaxy mergers and are essential objects in the evolution of galaxies and active galactic nuclei (AGNs). However, the relationship between torus-scale gas dynamics around AGNs and DOGs lifetime remain unclear. We obtained evolution of the spectral energy distributions (SEDs) of a galaxy merger system with AGN feedback, from post-processed pseudo-observations based on an N-body/Smoothed Particle Hydrodynamics (SPH) simulation. We focused on a late stage merger of two identical galaxies with a supermassive black hole (SMBH) of 10$^8$ M$_\odot$. We found that the infrared luminosity of the system reaches ultra- and hyper-luminous infrared galaxy classes (10$^{12}$ and 10$^{13}$ L$_\odot$, respectively). The DOGs phase corresponds to a state in which the AGNs are buried in dense gas and dust, with the infrared luminosity exceeding 3.3 $\times$ 10$^{12}$ L$_\odot$. We also identified the sub-categories of DOGs, namely bump and power-law DOGs from the SEDs and their evolution. The bump DOGs tend to evolve to power-law DOGs on several Myrs. We found that contribution from the hot dust around the nucleus in the infrared radiation is essential for identifying the system as a power-law DOG; the gas and dust distribute non-spherically around the nucleus, therefore, the observed properties of DOGs depend on the viewing angle. In our model, the lifetime of merger-driven DOGs is less than 4 Myrs, suggesting that the observed DOGs phase is a brief aspect of galaxy mergers.