论文标题

磁场对宇宙星系合并的影响。 I:重塑气体和恒星光盘

The impact of magnetic fields on cosmological galaxy mergers. I: Reshaping gas and stellar discs

论文作者

Whittingham, Joseph, Sparre, Martin, Pfrommer, Christoph, Pakmor, Rüdiger

论文摘要

合并在星系进化中起着重要作用。特别是,主要合并能够对星系形态产生变革性影响。在本文中,我们研究了磁场在富含气体的主要合并中的作用。为此,我们运行了一系列具有移动网格代码的高分辨率磁性水力动力(MHD)缩放模拟,并将结果与​​从相同初始条件下运行的流体动力学模拟进行比较。这是第一次以宇宙学的方式研究了主要合并中磁场的影响。与以前的非化学模拟相反,我们发现磁场的包含对合并残留物的产生产生了重大影响。尽管磁场不会强烈影响全球特性,例如恒星形成历史,但它们能够显着影响结构特性。实际上,MHD模拟始终形成具有扩展的盘子和发达的螺旋结构的残余物,而流体动力模拟形成更紧凑的残余物,这些残余物显示出独特的环形态。我们通过一项分辨率研究支持这项工作,并表明,尽管全球性质在分辨率和物理模型中广泛融合,但形态学差异仅在足够的分辨率下才会发展。我们认为,这是由于在高分辨率模拟中更有效地激发了小规模的发电机,从而导致更强的放大场,从而更好地影响了气体动力学。

Mergers play an important role in galaxy evolution. In particular, major mergers are able to have a transformative effect on galaxy morphology. In this paper, we investigate the role of magnetic fields in gas-rich major mergers. To this end, we run a series of high-resolution magnetohydrodynamic (MHD) zoom-in simulations with the moving-mesh code Arepo and compare the outcome with hydrodynamic simulations run from the same initial conditions. This is the first time that the effect of magnetic fields in major mergers has been investigated in a cosmologically-consistent manner. In contrast to previous non-cosmological simulations, we find that the inclusion of magnetic fields has a substantial impact on the production of the merger remnant. Whilst magnetic fields do not strongly affect global properties, such as the star formation history, they are able to significantly influence structural properties. Indeed, MHD simulations consistently form remnants with extended discs and well-developed spiral structure, whilst hydrodynamic simulations form more compact remnants that display distinctive ring morphology. We support this work with a resolution study and show that whilst global properties are broadly converged across resolution and physics models, morphological differences only develop given sufficient resolution. We argue that this is due to the more efficient excitement of a small-scale dynamo in higher resolution simulations, resulting in a more strongly amplified field that is better able to influence gas dynamics.

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