论文标题

BHR 71中磁场的失真

Distortion of Magnetic Fields in BHR 71

论文作者

Kandori, Ryo, Tamura, Motohide, Saito, Masao, Tomisaka, Kohji, Matsumoto, Tomoaki, Tazaki, Ryo, Nagata, Tetsuya, Kusakabe, Nobuhiko, Nakajima, Yasushi, Kwon, Jungmi, Nagayama, Takahiro, Tatematsu, Ken'ichi

论文摘要

基于背景恒星的近红外极化观测,确定了星形BOK球体Blr 71的磁场结构。 BHR 71中的磁场是从25颗恒星中映射的。通过使用简单的2D抛物线函数,发现核心的天平磁轴被发现为$θ_ {\ rm mag} = 125^{\ circ} \ pm 11^{\ circ} $。发现BHR 71的Sky平均磁场强度为$ b _ {\ rm pos} = 8.8-15.0 $ $ $ $ $ g,表明BHR 71核心在磁性上是磁性超临界的,$λ= 1.44-2.43 $。考虑到热/湍流压力的效果和固定磁场的成分,BHR 71的临界质量为$ m _ {\ rm cr} = 14.5-18.7 $ m $ _ {\ odot} $,与观察到的核心质量为$ m _ core} $ 14.7.7 $ $ $( Al。我们得出的结论是,BHR 71处于接近运动学上的临界状态,磁场方向位于天空平面附近。由于BHR 71是恒星形成的核心,因此不太可能是一个显着的亚临界条件(即,与天空平面偏离的磁场方向)是不可能的,并且从接近运动学上临界状态的条件崩溃。有两种可能的情况来解释BHR 71的弯曲磁场,一个是由于质量积累而导致的类似沙漏的场结构,另一种是Inoue \&Fukui(2013)机制,它提出了芯与震荡波与芯子围绕芯子围绕芯的弯曲磁场的相互作用。

The magnetic field structure of a star-forming Bok globule BHR 71 was determined based on near-infrared polarimetric observations of background stars. The magnetic field in BHR 71 was mapped from 25 stars. By using a simple 2D parabolic function, the plane-of-sky magnetic axis of the core was found to be $θ_{\rm mag} = 125^{\circ} \pm 11^{\circ}$. The plane-of-sky mean magnetic field strength of BHR 71 was found to be $B_{\rm pos} = 8.8 - 15.0$ $μ$G, indicating that the BHR 71 core is magnetically supercritical with $λ= 1.44 - 2.43$. Taking into account the effect of thermal/turbulent pressure and the plane-of-sky magnetic field component, the critical mass of BHR 71 was $M_{\rm cr} = 14.5-18.7$ M$_{\odot}$, which is consistent with the observed core mass of $M_{\rm core} \approx 14.7$ M$_{\odot}$ (Yang et al. 2017). We conclude that BHR 71 is in a condition close to a kinematically critical state, and the magnetic field direction lies close to the plane of sky. Since BHR 71 is a star-forming core, a significantly subcritical condition (i.e., the magnetic field direction deviating from the plane of sky) is unlikely, and collapsed from a condition close to a kinematically critical state. There are two possible scenarios to explain the curved magnetic fields of BHR 71, one is an hourglass-like field structure due to mass accumulation and the other is the Inoue \& Fukui (2013) mechanism, which proposes the interaction of the core with a shock wave to create curved magnetic fields wrapping around the core.

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