论文标题

在Illustristng模拟中淬灭大型磁盘星系

Quenching of Massive Disk Galaxies in the IllustrisTNG Simulation

论文作者

Xu, Yingzhong, Luo, Yu, Kang, Xi, Li, Zhiyuan, Li, Zongnan, Wang, Peng, Libeskind, Noam

论文摘要

发现罕见的巨大磁盘星系群体会侵入以早期型星系为主的红色序列。这些红色/淬灭的巨大磁盘星系最近对它们的形成和起源引起了极大的兴趣。通常提出的淬火机制,例如钢筋淬火和环境淬火,似乎不适合低密度环境中那些无凸起的淬火磁盘。在本文中,我们使用Illustristng-300模拟来研究大规模淬灭的中央磁盘星系的形成。发现这些星系包含较少的气体和港口巨大的超级质量黑洞(SMBHS)(超过$ 10^{8} M _ {\ odot} $),而不是它们的恒星形成对应物。通过追踪其形成史,我们发现淬火圆盘星系是早期形成的,并保留了磁盘的形态,用于宇宙学时间尺度。他们平均经历了不到一项主要合并,主要是迷你 - 麦格尔(质量比$ <$ 1/10),这会导致其SMBH的增长。在Illustris-TNG模拟中,当黑洞质量比$ \ sim 10^{8} M _ {\ odot} $更大时,黑洞反馈模式从热反馈转向动力学反馈,这更有效地弹出了星系外的气体并抑制热量卤素的进一步冷却。我们得出的结论是,大量红色/淬火磁盘星系中的动力学AGN反馈是主要的淬火机制。

A rare population of massive disk galaxies have been found to invade the red sequence dominated by early-type galaxies. These red/quenched massive disk galaxies have recently gained great interest into their formation and origins. The usually proposed quenching mechanisms, such as bar quenching and environment quenching, seem not suitable for those bulge-less quenched disks in low-density environment. In this paper, we use the IllustrisTNG-300 simulation to investigate the formation of massive quenched central disk galaxies. It is found that these galaxies contain less gas and harbor giant supermassive black holes(SMBHs) (above $ 10^{8}M_{\odot}$) than their star forming counterparts. By tracing their formation history, we found that quenched disk galaxies formed early and preserved disk morphology for cosmological time scales. They have experienced less than one major merger on average and it is mainly mini-mergers (mass ratio $<$1/10) that contribute to the growth of their SMBHs. In the Illustris-TNG simulation the black hole feedback mode switches from thermal to kinetic feedback when the black hole mass is more massive than $\sim 10^{8}M_{\odot}$, which is more efficient to eject gas outside of the galaxy and to suppress further cooling of hot gaseous halo. We conclude that kinetic AGN feedback in massive red/quenched disk galaxy is the dominant quenching mechanism.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源