论文标题

模拟圆盘星系中燃气湍流的物理驱动因素

The physical drivers of gas turbulence in simulated disc galaxies

论文作者

Jiménez, Esteban, Lagos, Claudia del P., Ludlow, Aaron D., Wisnioski, Emily

论文摘要

我们使用Eagle宇宙学模拟在中央盘式星系中研究冷气的垂直速度分散体的演变,$σ_{Z} $及其与恒星反馈,重力不稳定,宇宙气体积聚和星系合并的联系。为了隔离反馈的影响,我们分析了除了包括两者的运行外,还可以关闭恒星和(或)AGN反馈。 $σ_z$的演变及其对Eagle中恒星质量和恒星形成速率的依赖与观察值吻合。由类似病毒质量的光环托管的星系,$ \ rm m_ {200} $,即使在没有反馈的情况下,也具有相似的$σ_z$值。圆盘中局部不稳定性在低红移时与$σ_z$不相关,并且仅在高红移和大型光环托管的星系中变得微弱相关。 $σ_z$与圆盘上的特定气体积聚率以及流动气体与光盘旋转轴之间的未对准程度最密切相关。这些相关性在所有红移和光晕质量中都是显着的,而造成不一致是红移$ z \ sillsim 1 $的主要燃气湍流的主要驱动力,而对于halo masses $ \ rm m_ {200} \ rm m_ {200} \ sillesim 10^{11.5} {11.5} m _ {\ odot} $。银河合并增加了$σ_z$,但是由于它们在我们的样本中很少见,所以它们在进化中仅扮演较小的角色。我们的结果表明,鹰盘中冷气的湍流是由不同物理过程的复杂相互作用引起的,其相对重要性取决于光环质量和红移。

We use the EAGLE cosmological simulations to study the evolution of the vertical velocity dispersion of cold gas, $σ_{z}$, in central disc galaxies and its connection to stellar feedback, gravitational instabilities, cosmological gas accretion and galaxy mergers. To isolate the impact of feedback, we analyse runs that turn off stellar and (or) AGN feedback in addition to a run that includes both. The evolution of $σ_z$ and its dependence on stellar mass and star formation rate in EAGLE are in good agreement with observations. Galaxies hosted by haloes of similar virial mass, $\rm M_{200}$, have similar $σ_z$ values even in runs where feedback is absent. The prevalence of local instabilities in discs is uncorrelated with $σ_z$ at low redshift and becomes only weakly correlated at high redshifts and in galaxies hosted by massive haloes. $σ_z$ correlates most strongly with the specific gas accretion rate onto the disc as well as with the degree of misalignment between the inflowing gas and the disc's rotation axis. These correlations are significant across all redshifts and halo masses, with misaligned accretion being the primary driver of high gas turbulence at redshifts $z \lesssim 1$ and for halo masses $\rm M_{200} \lesssim 10^{11.5} M_{\odot}$. Galaxy mergers increase $σ_z$, but because they are rare in our sample, they play only a minor role in its evolution. Our results suggest that the turbulence of cold gas in EAGLE discs results from a complex interplay of different physical processes whose relative importance depends on halo mass and redshift.

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