论文标题

银河系中的湍流是由年轻的星星和气体追踪的星形区域

Turbulence in Milky Way Star-Forming Regions Traced by Young Stars and Gas

论文作者

Ha, Trung, Li, Yuan, Kounkel, Marina, Xu, Siyao, Li, Hui, Zheng, Yong

论文摘要

星际介质(ISM)在所有尺度和所有阶段都湍流。在本文中,我们研究附近四个恒星形成区域的不同示踪剂的湍流:Orion,Ophiuchus,Perseus和Taurus。我们将Apogee-2和Gaia调查结合在一起,以获得这些区域中年轻恒星的位置和速度的完整6维测量。恒星的速度结构函数(VSF)显示出湍流的通用尺度。我们还从威斯康星州H-Alpha映射器的这四个区域中获得Hα气体运动学。与恒星相比,Hα的VSF更加多样化。在最近具有超新星活动的地区,与文献中的恒星和CO的VSF相比,它们显示了局部能量注射和更高幅度的特征。 VSF振幅的这种差异可以通过从超新星转移到ISM的不同阶段的不同能量和动量转运来解释,从而导致Hα所追踪的温暖离子化相位的湍流较高。在没有最近超新星活性的区域中,年轻恒星,Hα和CO的VSF通常是一致的,表明不同相之间耦合良好的湍流。在各个区域内,Hα气体的明亮部分往往比低发射部件具有更高的湍流水平。我们的发现支持了银河系ISM的复杂图片,其中湍流可以以不同的尺度驱动,并将能量不均匀地注入不同的阶段。

The interstellar medium (ISM) is turbulent on all scales and in all phases. In this paper, we study turbulence with different tracers in four nearby star-forming regions: Orion, Ophiuchus, Perseus, and Taurus. We combine the APOGEE-2 and Gaia surveys to obtain the full 6-dimensional measurements of positions and velocities of young stars in these regions. The velocity structure functions (VSFs) of the stars show a universal scaling of turbulence. We also obtain Hα gas kinematics in these four regions from the Wisconsin H-Alpha Mapper. The VSFs of the Hα are more diverse compared to the stars. In regions with recent supernova activities, they show characteristics of local energy injections and higher amplitudes compared to the VSFs of stars and of CO from the literature. Such difference in amplitude of the VSFs can be explained by the different energy and momentum transport from supernovae into different phases of the ISM, thus resulting in higher levels of turbulence in the warm ionized phase traced by Hα. In regions without recent supernova activities, the VSFs of young stars, Hα, and CO are generally consistent, indicating well-coupled turbulence between different phases. Within individual regions, the brighter parts of the Hα gas tend to have a higher level of turbulence than the low-emission parts. Our findings support a complex picture of the Milky Way ISM, where turbulence can be driven at different scales and inject energy unevenly into different phases.

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