论文标题

磁场,角动量和碎片的观察性相关性在0类原恒星的信封中?

An observational correlation between magnetic field, angular momentum and fragmentation in the envelopes of Class 0 protostars?

论文作者

Galametz, Maud, Maury, Anaelle, Girart, Josep M., Rao, Ramprasad, Zhang, Qizhou, Gaudel, Mathilde, Valdivia, Valeska, Hennebelle, Patrick, Cabedo-Soto, Victoria, Keto, Eric, Lai, Shih-Ping

论文摘要

为了评估磁场在调节包络旋转和0类原恒星的碎片中的潜在作用,我们在0.87毫米的SMA中对灰尘极化发射进行了观察,在20个0类Protostars的大样本中。我们估计了中央1000 Au包膜尺度上的平均磁场取向,并将其与原恒星流出的量度进行了比较,以研究其未对准与偶口气体运动学之间的关系。我们发现磁场取向与流出的错位与在Protostellar包膜中相似尺度上观察到的角动量的数量之间存在很强的关系,从而揭示了动力学与信封尺度下的磁能之间的潜在联系。该关系可以由更动态的信封中受到的B未对准或具有大规模B初始配置的信封动力学的依赖性驱动。将趋势与碎片化的存在进行比较,我们观察到单个来源主要与内膜内部的低角度动量的条件相关,并且在中等尺度上,磁场与Protostellar流出的良好对齐。我们的结果表明,原始信封中磁场的性能与直接涉及恒星和磁盘形成的旋转结构的气体建立了密切的关系:我们发现它不仅可能影响多个恒星系统的原始核心的碎片,而且还设置了建立Planet-Pranet-Pranet-Forming Disks的条件。

To assess the potential role of magnetic fields in regulating the envelope rotation and the fragmentation of Class 0 protostars, we carried out observations of the dust polarized emission at 0.87 mm with the SMA, in the envelopes of a large sample of 20 Class 0 protostars. We estimate the mean magnetic field orientation over the central 1000 au envelope scales and compared it to that of the protostellar outflow in order to study the relation between their misalignment and the kinematics of the circumstellar gas. We discover a strong relationship between the misalignment of the magnetic field orientation with the outflow and the amount of angular momentum observed at similar scales in the protostellar envelope, revealing a potential link between the kinetic and the magnetic energy at envelope scales. The relation could be driven by favored B misalignments in more dynamical envelopes or a dependence of the envelope dynamics with the large-scale B initial configuration. Comparing the trend with the presence of fragmentation, we observe that single sources are mostly associated with conditions of low angular momentum in the inner envelope and good alignment of the magnetic field with protostellar outflows, at intermediate scales. Our results suggest that the properties of the magnetic field in protostellar envelopes bear a tight relationship with the rotating-infalling gas directly involved in the star and disk formation: we find that it may not only influence the fragmentation of protostellar cores into multiple stellar systems, but also set the conditions establishing the pristine properties of planet-forming disks.

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