论文标题

由磁通量出现,收敛和取消驱动的活性区域中心的微小通量绳的形成

Formation of a tiny flux rope in the center of an active region driven by magnetic flux emergence, convergence, and cancellation

论文作者

Zheng, Ruisheng, Chen, Yao, Wang, Bing, Song, Hongqiang, Cao, Wenda

论文摘要

通常认为通量绳是太阳喷发的核心结构,对太空天气很重要,但它们的形成机制仍然激烈争议。我们报告了2018年8月24日在活动区域​​循环簇下方形成的微小通量绳。结合了来自多种仪器的高质量多波长度观测值,我们在Photosphere,Chromosphere和Corona中详细研究了该事件。在源区域中,出现两个孔(a和b)的两个正极性(P1和P2)的持续出现是明确的。有趣的是,P2和孔B慢慢接近P1并孔A,这意味着磁通量收敛。在出现和收敛期间,P1和P2与出现的次要负极性(N3)连续相互作用,从而导致连续的磁通量取消。结果,上覆的回路变得非常剪切,最终演变成一个微小的扭曲的通量绳索,这是通过短暂的反向S形的Sigmoid证明的,带有蓝光和红移特征的扭曲的灯丝螺纹以及一个热通道。所有结果表明,在活性区域中心的微小通量绳的形成与光球中的连续磁通出现,收敛和取消密切相关。因此,我们建议磁通量出现,收敛和取消对于形成微小的通量绳是至关重要的。

Flux ropes are generally believed to be core structures of solar eruptions that are significant for the space weather, but their formation mechanism remains intensely debated. We report on the formation of a tiny flux rope beneath clusters of active region loops on 2018 August 24. Combining the high-quality multiwavelength observations from multiple instruments, we studied the event in detail in the photosphere, chromosphere, and corona. In the source region, the continual emergence of two positive polarities (P1 and P2) that appeared as two pores (A and B)is unambiguous. Interestingly, P2 and Pore B slowly approached P1 and Pore A, implying a magnetic flux convergence. During the emergence and convergence, P1 and P2 successively interacted with a minor negative polarity (N3) that emerged, which led to a continuous magnetic flux cancellation. As a result, the overlying loops became much sheared and finally evolved into a tiny twisted flux rope that was evidenced by a transient inverse S-shaped sigmoid, the twisted filament threads with blueshift and redshift signatures, and a hot channel. All the results show that the formation of the tiny flux rope in the center of the active region was closely associated with the continuous magnetic flux emergence, convergence, and cancellation in the photosphere. Hence, we suggest that the magnetic flux emergence, convergence, and cancellation are crucial for the formation of the tiny flux rope.

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