论文标题

Monoceros OB-1东分子云中的大规模磁场

Large-scale magnetic field in the Monoceros OB-1 East molecular cloud

论文作者

Alina, D., Montillaud, J., Hu, Y., Lazarian, A., Ristorcelli, I., Abdikamalov, E., Sagynbayeva, S., Juvela, M., Liu, T., Carrière, J. -S.

论文摘要

我们研究了大规模磁场结构及其与Monoceros OB1东分子云中气体动力学的相互作用。我们结合了来自Planck望远镜的灰尘极化发射的观察结果,并从Taeduk射电天文台14米望远镜的CO分子线排放观测值结合了。我们使用修改的Chandrasekhar-Fermi方法计算天平磁场的强度,并在云的不同区域中估计质量比通量比估算质量。我们将分子线观测的速度和强度梯度与偏光观测的比较来追踪动态活性区域。分子络合物显示有序的大型磁场结构。在北部,它主要沿着丝状结构取向,而南部至少显示了两个具有不同磁场方向的区域。我们发现,在北丝细丝中,磁场不太可能在大尺度上提供抵抗分裂的支撑。我们的分析表明,在两个丝状云之间,以前建议在碰撞之间的复杂右侧的北部有一个冲击区域。此外,冲击似乎延伸到综合体的西部。在南部,我们发现磁场将星际物质的积聚引导到云层,或者被物质拖到最密集的区域。 monoceros ob-1东分子云中的大规模磁场与复合物的全球结构紧密连接,在北部,它似乎由重力和湍流主导,而在南部,它影响了物质的结构。

We study the large-scale magnetic field structure and its interplay with the gas dynamics in the Monoceros OB1 East molecular cloud. We combine observations of dust polarised emission from the Planck telescope and CO molecular line emission observations from the Taeduk Radio Astronomy Observatory 14-metre telescope. We calculate the strength of the plane-of-the-sky magnetic field using a modified Chandrasekhar-Fermi method and estimate mass over flux ratios in different regions of the cloud. We use the comparison of the velocity and intensity gradients of the molecular line observations with the polarimetric observations to trace dynamically active regions. The molecular complex shows an ordered large-scale plane-of-the-sky magnetic field structure. In the Northern part, it is mostly orientated along the filamentary structures while the Southern part shows at least two regions with distinct magnetic field orientations. We find that in the Northern filaments the magnetic field is unlikely to provide support against fragmentation at large scales. Our analysis reveals a shock region in the Northern part of the complex right in-between two filamentary clouds which were previously suggested to be in collision. Moreover, the shock seems to extend farther towards the Western part of the complex. In the Southern part, we find that either the magnetic field guides the accretion of interstellar matter towards the cloud or it was dragged by the matter towards the densest regions. The large-scale magnetic field in Monoceros OB-1 East molecular clouds is tightly connected to the global structure of the complex and, in the Northern part, it seems to be dominated by gravity and turbulence, while in the Southern part it influences the structuring of matter.

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