论文标题

磁场在RCW 120的触发恒星形成中的作用

The Role of Magnetic Fields in Triggered Star Formation of RCW 120

论文作者

Chen, Zhiwei, Sefako, Ramotholo, Yang, Yang, Jiang, Zhibo, Yu, Shuling, Yin, Jia

论文摘要

我们报告了1.4 m IRSF望远镜的RCW 120的近红外偏光观测。背景恒星的星光极化首次揭示了RCW 120的磁场。RCW120的全局磁场沿着$ 20^\ Circ $的方向平行于银河平面。天空飞机上的场强为$ 100 \ pm26 \,μ$ g。东壳周围的磁场显示了HII区域压缩的证据。 The external pressure (turbulent pressure + magnetic pressure) and the gas density of the ambient cloud are minimum along the direction where RCW 120 breaks out, which explains the observed elongation of RCW 120. The dynamical age of RCW 120, depending on the magnetic field strength, is $\sim\,1.6\,\mathrm{Myr}$ for field strength of $100\,μ$G, older than the hydrodynamic估计。在垂直于磁场的方向上,强磁场大大降低了西壳的密度对比度。与流体动力学估计相比,强磁场通常降低了触发的恒星形成的效率。通过“收集和崩溃”机制触发了恒星形成,可能会沿磁场的方向发生。发现在RCW 120的南部和东部壳中,核心形成效率(CFE)高于HII区域几乎没有影响的红外乌云,这表明与电离反馈触发相关的CFE增加。

We report on the near-infrared polarimetric observations of RCW 120 with the 1.4 m IRSF telescope. The starlight polarization of the background stars reveals for the first time the magnetic field of RCW 120. The global magnetic field of RCW 120 is along the direction of $20^\circ$, parallel to the Galactic plane. The field strength on the plane of the sky is $100\pm26\,μ$G. The magnetic field around the eastern shell shows evidence of compression by the HII region. The external pressure (turbulent pressure + magnetic pressure) and the gas density of the ambient cloud are minimum along the direction where RCW 120 breaks out, which explains the observed elongation of RCW 120. The dynamical age of RCW 120, depending on the magnetic field strength, is $\sim\,1.6\,\mathrm{Myr}$ for field strength of $100\,μ$G, older than the hydrodynamic estimates. In direction perpendicular to the magnetic field, the density contrast of the western shell is greatly reduced by the strong magnetic field. The strong magnetic field in general reduces the efficiency of triggered star formation, in comparison with the hydrodynamic estimates. Triggered star formation via the "collect and collapse" mechanism could occur in the direction along the magnetic field. Core formation efficiency (CFE) is found to be higher in the southern and eastern shells of RCW 120 than in the infrared dark cloud receiving little influence from the HII region, suggesting increase in the CFE related to triggering from ionization feedback.

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