论文标题

E-Mosaics模拟中的球状群集系统质量质量关系

The globular cluster system mass-halo mass relation in the E-MOSAICS simulations

论文作者

Bastian, Nate, Pfeffer, Joel, Kruijssen, J. M. Diederik, Crain, Robert A., Trujillo-Gomez, Sebastian, Reina-Campos, Marta

论文摘要

将球状簇(GC)与宿主星系组装联系在一起是GC研究的总体目标。 GC系统属性之间的紧密缩放关系以及其宿主星系中恒星和暗光晕组件的质量之间的推断表明了亲密的物理联系,但也提出了有关GCS的形式和何时形成的基本问题。具体而言,GC系统(MGC)的质量(MGC)与银河系的暗物质光环质量(MHALO)之间的相关性是由于黑物质迷你山地的形成与GC形成之间的因果关系的结果。我们介绍了对宇宙学量的新模拟(侧面$ l = 34.4 $ 〜cmpc)的新模拟,其中包括详细的银河形成模型框架内GC的形成和GC的形成和演变的处理。模拟的MGC-MHALO关系是Halo Masses $> 5 \ times10^{11} 〜MSUN $的线性,并且由星系的层次组装驱动。在这个光晕质量下方,模拟关系具有下滑的衰退,我们显示的与观察结果一致,并且由星系的基本恒星质量质量质量关系驱动。我们的基准模型在整个质量范围内都重现了观察到的MGC-MSTAR关系,我们认为这比MGC-Mhalo关系更为相关。我们还探索了驱动观测到的$ MGC / MHALO \ SIM 5 \ times10^{ - 5} $的恒定值的物理过程,并发现它是集群形成物理和群集破坏的结果。

Linking globular clusters (GCs) to the assembly of their host galaxies is an overarching goal in GC studies. The inference of tight scaling relations between GC system properties and the mass of both the stellar and dark halo components of their host galaxies are indicative of an intimate physical connection, yet have also raised fundamental questions about how and when GCs form. Specifically, the inferred correlation between the mass of a GC system (Mgc) and the dark matter halo mass (Mhalo) of a galaxy has been posited as a consequence of a causal relation between the formation of dark matter mini-haloes and GC formation during the early epochs of galaxy assembly. We present the first results from a new simulation of a cosmological volume ($L=34.4$~cMpc on a side) from the E-MOSAICS suite, which includes treatments of the formation and evolution of GCs within the framework of a detailed galaxy formation model. The simulated Mgc-Mhalo relation is linear for halo masses $>5\times10^{11}~Msun$, and is driven by the hierarchical assembly of galaxies. Below this halo mass, the simulated relation features a downturn, which we show is consistent with observations, and is driven by the underlying stellar mass-halo mass relation of galaxies. Our fiducial model reproduces the observed Mgc-Mstar relation across the full mass range, which we argue is more physically relevant than the Mgc-Mhalo relation. We also explore the physical processes driving the observed constant value of $Mgc / Mhalo \sim 5\times10^{-5}$ and find that it is the result of a combination of cluster formation physics and cluster disruption.

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