论文标题
围绕模拟磁盘星系ii的卫星飞机II:$λ$ CDM中的运动式卫星的时光固定飞机
Planes of satellites around simulated disk galaxies II: Time-persistent planes of kinematically-coherent satellites in $Λ$CDM
论文作者
论文摘要
我们使用两个缩放$ CDM的大规模磁盘星系的流体动力模拟来研究固定卫星基团的可能存在,显示了演化过程中的运动学连接行为(角动量保护和聚类)。我们在两个模拟中确定了三个这样的组,它们定义了运动学上的时间固定平面(KPP),这些平面(KPP)持续至少从病毒化到$ z = 0 $(超过7个Gyrs)。这证明轨道杆簇不一定设置为低红移,代表了星系系统的长期属性。 KPP薄而碎片,代表系统中卫星总数的$ \ sim25-40 \%$,并且在某些时期内大致垂直于其相应的中央磁盘星系,始终符合银河系$ z = 0 $数据。 KPP卫星成员在统计上与KPP外的卫星可区分:它们显示出更高的特异性轨道角动量,轨道更垂直于中央磁盘星系,并且比后者更大。我们从数字上证明,KPP和最质量的位置平面在整个时间上共享相同的空间配置,因此KPP充当“骨架”,阻止了后者在短时间内被冲洗出来。在其中一个卫星宿主系统中,我们目睹了截至赋予其自己的卫星系统的巨大矮星银河系的捕获,该系统在被捕获之前也被组织成KPP配置。我们简要探讨了这一事件对主机KPP的后果,以及可能在某种意义上或在KPP内旋转的卫星数量增强不对称的卫星数量。
We use two zoom-in $Λ$CDM hydrodynamical simulations of massive disk galaxies to study the possible existence of fixed satellite groups showing a kinematically-coherent behaviour across evolution (angular momentum conservation and clustering). We identify three such groups in the two simulations, defining kinematically-coherent, time-persistent planes (KPPs) that last at least from virialization to $z=0$ (more than 7 Gyrs). This proves that orbital pole clustering is not necessarily set in at low redshift, representing a long-lived property of galaxy systems. KPPs are thin and oblate, represent $\sim25-40\%$ of the total number of satellites in the system, and are roughly perpendicular to their corresponding central disk galaxies during certain periods, consistently with Milky Way $z=0$ data. KPP satellite members are statistically distinguishable from satellites outside KPPs: they show higher specific orbital angular momenta, orbit more perpendicularly to the central disk galaxy, and have larger pericentric distances, than the latter. We numerically prove, for the first time, that KPPs and the best-quality positional planes share the same space configuration across time, such that KPPs act as `skeletons' preventing the latter of being washed out in short timescales. In one of the satellite-host systems, we witness the late capture of a massive dwarf galaxy endowed with its own satellite system, also organized into a KPP configuration prior to its capture. We briefly explore the consequences this event has on the host's KPP, and on the possible enhancement of the asymmetry in the number of satellites rotating in one sense or the opposite within the KPP.