论文标题

赫拉克勒斯流的三峰结构通过bar共振来解释

Trimodal structure of Hercules stream explained by originating from bar resonances

论文作者

Asano, Tetsuro, Fujii, Michiko S., Baba, Junichi, Bédorf, Jeroen, Sellentin, Elena, Zwart, Simon Portegies

论文摘要

Gaia数据版本2揭示了相位空间中附近恒星的详细结构。其中包括大力神流,其起源仍在辩论中。以前的大多数数值研究都猜想,基于银河系的静态电势模型,观察到的结构源自与棒子的轨道。相比之下,我们通过一种自洽,动态且形态良好的模型来解决问题,即对银河系的完整$ n $体仿真。我们的仿真包括在银河恒星凸起,棒,磁盘和深色晕halo中约有51亿个颗粒,并进化为10 Gyr。我们的模型的磁盘组件由2亿个颗粒组成,其模拟快照每10个MYR存储,使我们能够解决并对恒星代表性样本的共鸣轨道进行分类。选择太阳在模拟中的位置后,我们将恒星在其附近的恒星分布与Gaia的星体数据进行了比较,从而确立了被鉴定的恒星在形成大力神状结构中的作用。从我们的轨道光谱 - 分析中,我们确定了多个,尤其是高阶共振。我们的结果表明,赫拉克勒斯流由4:1和5:1的外部lindblad和旋转共振主导。总的来说,这产生了赫拉克勒斯流的三峰结构。从相位空间中的共振和脊之间的关系,我们的模型偏爱乳白色条的缓慢图案速度(40--45 $ \ MATHRM {km \; s^{ - 1} \; kpc^{ - 1}}} $)。

Gaia Data Release 2 revealed detailed structures of nearby stars in phase space. These include the Hercules stream, whose origin is still debated. Most of the previous numerical studies conjectured that the observed structures originate from orbits in resonance with the bar, based on static potential models for the Milky Way. We, in contrast, approach the problem via a self-consistent, dynamic, and morphologically well-resolved model, namely a full $N$-body simulation of the Milky Way. Our simulation comprises about 5.1 billion particles in the galactic stellar bulge, bar, disk, and dark-matter halo and is evolved to 10 Gyr. Our model's disk component is composed of 200 million particles, and its simulation snapshots are stored every 10 Myr, enabling us to resolve and classify resonant orbits of representative samples of stars. After choosing the Sun's position in the simulation, we compare the distribution of stars in its neighborhood with Gaia's astrometric data, thereby establishing the role of identified resonantly trapped stars in the formation of Hercules-like structures. From our orbital spectral-analysis we identify multiple, especially higher order resonances. Our results suggest that the Hercules stream is dominated by the 4:1 and 5:1 outer Lindblad and corotation resonances. In total, this yields a trimodal structure of the Hercules stream. From the relation between resonances and ridges in phase space, our model favored a slow pattern speed of the Milky-Way bar (40--45 $\mathrm{km \; s^{-1} \; kpc^{-1}}$).

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