论文标题

孤立气体星系中的恒星条不会放慢速度

Stellar Bars in Isolated Gas-Rich Spiral Galaxies Do Not Slow Down

论文作者

Beane, Angus, Hernquist, Lars, D'Onghia, Elena, Marinacci, Federico, Conroy, Charlie, Qi, Jia, Sales, Laura V., Torrey, Paul, Vogelsberger, Mark

论文摘要

伸长的条形特征在星系中无处不在,发生在附近宇宙中约三分之二的螺旋盘的中心。由于标准杆和星系的其他组件之间的重力相互作用,预计角动量和物质将在禁止星系中的长度(GYR)时标的重新分布。以前的工作忽略了星系的气相已经最终证明,由于与暗物质晕圈的相互作用,条应随着时间的流逝而减慢其旋转速度。我们进行了模拟,模拟了一个类似银河系的银河磁盘,该磁盘设有一个较强的棒,其中包括星际介质的最先进模型和现场暗物质光环。在此模拟中,条形图不会随着时间的流逝而放慢,而是保持稳定,恒定的旋转速率。在先前的模拟中使用了更简化的模型为星际气体观察到了这种行为,但是显然缺乏世俗进化的方法仍无法解释。我们发现,气相的存在阻止了暗物质光环降低条形的过程,这是我们称为bar锁定的现象。此锁定负责稳定条形图速度。我们发现,在银河系状的磁盘中,这种机制仅需要大约5%的气体分数。我们的结果自然解释了为什么几乎所有观察到的条形都迅速旋转,并且特别与我们对银河系如何到达目前状态的理解尤其重要。

Elongated bar-like features are ubiquitous in galaxies, occurring at the centers of approximately two-thirds of spiral disks in the nearby Universe. Due to gravitational interactions between the bar and the other components of galaxies, it is expected that angular momentum and matter will redistribute over long (Gyr) timescales in barred galaxies. Previous work ignoring the gas phase of galaxies has conclusively demonstrated that bars should slow their rotation over time due to their interaction with dark matter halos. We have performed a simulation of a Milky Way-like galactic disk hosting a strong bar which includes a state-of-the-art model of the interstellar medium and a live dark matter halo. In this simulation the bar pattern does not slow down over time, and instead remains at a stable, constant rate of rotation. This behavior has been observed in previous simulations using more simplified models for the interstellar gas, but the apparent lack of secular evolution has remained unexplained. We find that the presence of the gas phase arrests the process by which the dark matter halo slows down a bar, a phenomenon we term bar locking. This locking is responsible for stabilizing the bar pattern speed. We find that in a Milky Way-like disk, a gas fraction of only about 5\% is necessary for this mechanism to operate. Our result naturally explains why nearly all observed bars rotate rapidly and is especially relevant for our understanding of how the Milky Way arrived at its present state.

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