论文标题
使用sofia/hawc+来限制BOK Blobule B335的磁场特性
Constraining the magnetic field properties of Bok globule B335 using SOFIA/HAWC+
论文作者
论文摘要
由于其定义明确的形状和大部分孤立的位置,Bok球是用于研究低质量星形形成物理的合适物体。为了研究原型BOK球B335的磁场,我们在214 $ \,μ$ m的波长下获得了空间分辨的极化图。这些观察结果首次表明,BOK球中的极化孔(即,偏振度的降低朝向其致密中心的降低)也发生在远红外波长状态下。观察到的极化模式是统一的,平均极化角为48 $^\ Circ \ pm $ 26 $^\ circ $和$ \ sim $ 142 $ \,μ$ g的磁场强度。此外,我们使用在近红外到毫米波长获得的B335的互补偏振数据来分析和约束不同尺度的磁场。通过应用3D蒙特 - 卡洛辐射传递代码北极星(Reissl等,2016),我们开发了一个密度和磁场结构以及该球的灰尘特性的模型。我们得出的结论是,朝向B335中心的柱密度太低,无法通过二科化吸收在B335中观察到的极化孔(Brauer等人,2016)。此外,我们得出的结论是,自散射的影响对观察到的极化没有显着影响。通过辐射扭矩机制,星际辐射场和中央恒星作为辐射源的组合采用防尘粒对齐,这与B335外部区域的极化程度降低($ \ \ of \ of,$ 10 $^4 \,$^4 \,$ au)。但是,该模型无法解释内部5000 AU内的低极化度。
Thanks to their well-defined shape and mostly isolated locations, Bok globules are suitable objects for studying the physics of low-mass star formation. To study the magnetic field of the prototypical Bok globule B335, we obtained a spatially resolved polarization map with SOFIA/HAWC+ at a wavelength of 214$\,μ$m. For the first time, these observations reveal that polarization holes in Bok globules, that is, the decrease in polarization degree towards their dense centers, also occur in the far-infrared wavelength regime. The observed polarization pattern is uniform with a mean polarization angle of 48$^\circ\pm $26$^\circ$ and a magnetic field strength of $\sim$ 142$\,μ$G. Moreover, we use complementary polarimetic data for B335 obtained at near-infrared to millimeter wavelengths to analyze and constrain the magnetic field across different scales. By applying the 3D Monte-Carlo radiative transfer code POLARIS (Reissl et al. 2016), we developed a model for the density and magnetic field structure as well as for the dust properties of this globule. We conclude that the column density towards the center of B335 is too low to cause the observed polarization hole in B335 via dichroic absorption (Brauer et al. 2016). Furthermore, we conclude that the effect of self-scattering has no significant impact on the observed polarization. Adopting dust-grain alignment via the radiative torque mechanism, a combination of the interstellar radiation field and the central star as radiation sources is consistent with the decrease in polarization degree at the outer regions of B335 ($\approx\,$10$^4\,$au from the core). However, the model fails to explain the low polarization degree within the inner 5000 au.