论文标题
条和宽大的圆盘凸起的棒和花生凸起。 ii。酒吧可以在热厚的圆盘中形成吗?
Bars and boxy/peanut bulges in thin and thick discs. II. Can bars form in hot thick discs?
论文作者
论文摘要
银河系以及大多数外部星系都具有厚的圆盘。但是,尚未完全了解(几何)厚的圆盘在棒形成和进化中的动力学作用。在这里,我们通过一套(运动学上的)薄(运动学上热)厚的圆盘的N体模型套件来研究厚盘形成和进化的厚盘。我们系统地改变了厚光盘的质量分数,薄到厚的圆盘尺度长度比以及厚度圆盘的尺度高度,以检查在不同的动态场景下的条形形成。即使存在巨大的圆盘,也几乎总是在我们的模型中形成条。厚盘构成的条的部分紧随其后的圆盘构成的棒部分的整体生长和时间演变,只有厚盘中的杆部分比薄碟中的棒部分弱。较强条的形成与较大的角动量和较大的径向加热相关。此外,我们在薄和厚的圆盘恒星中,沿着条的范围内的方位向沿方向方向展示了角动量的优先损失和圆盘恒星的优先径向加热。对于纯厚的圆盘模型(没有任何薄盘),棒形成严重取决于圆盘尺度的长度和尺度的高度。较大的尺度长度和/或较大的垂直尺度高度延迟了条形的时间和/或抑制仅厚盘模型的条形。我们发现,Ostriker-Peeble标准比Efstathiou-Lake-Lake-negroponte标准更好地预测了模型中的bar不稳定性方案。
The Milky Way as well as a majority of external galaxies possess a thick disc. However, the dynamical role of the (geometrically) thick disc on the bar formation and evolution is not fully understood. Here, we investigate the effect of thick discs in bar formation and evolution by means of a suite of N-body models of (kinematically cold) thin-(kinematically hot) thick discs. We systematically vary the mass fraction of the thick disc, the thin-to-thick disc scale length ratio as well as thick disc's scale height to examine the bar formation under diverse dynamical scenarios. Bars form almost always in our models, even in presence of a massive thick disc. The part of the bar constituted by the thick disc closely follows the overall growth and temporal evolution of the part of the bar constituted by the thin disc, only the part of the bar in the thick disc is weaker than the part of the bar in the thin disc. The formation of stronger bars is associated with a simultaneous larger loss of angular momentum and a larger radial heating. In addition, we demonstrate a preferential loss of angular momentum and a preferential radial heating of disc stars, along the azimuthal direction within the extent of the bar, in both thin and thick disc stars. For purely thick disc models (without any thin disc), the bar formation critically depends on the disc scale length and scale height. A larger scale length and/or a larger vertical scale height delays the bar formation time and/or suppresses the bar formation almost completely in thick-disc-only models. We find that the Ostriker-Peeble criterion predicts the bar instability scenarios in our models better than the Efstathiou-Lake-Negroponte criterion.