Formation of Fan-spine Magnetic Topology through Flux Emergence and Subsequent Jet Production

Yadan Duan, Hui Tian, Hechao Chen, Yuandeng Shen, Zheng Sun, Zhenyong Hou, Chuan Li
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Abstract

Fan-spine magnetic structure, as a fundamental three-dimensional topology in magnetic reconnection theory, plays a crucial role in producing solar jets. However, how fan-spine configurations form in the solar atmosphere remains elusive. Using the Chinese Hα Solar Explorer (CHASE) and the Solar Dynamics Observatory, we present a case study on the complete buildup of fan-spine topology driven by flux emergence and the subsequent jet production. Two fan-spine structures and the two associated null points are present. Variations in null-point heights and locations were tracked over time during flux emergence. The north fan-spine structure is found to be created through magnetic reconnection between the newly emerged flux and the background field. Gentle reconnection persistently occurs after formation of the north fan-spine structure, resulting in weak plasma outflows. Subsequently, as flux emergence and magnetic helicity injection continue, the formation and eruption of minifilaments after reconnection at the quasi-separatrix layer between the two nulls trigger three homologous jets. The CHASE observations reveal that the circular flare ribbon, inner bright patch, and remote brightening all exhibit redshifted signatures during these jet ejections. This work unveils the key role of flux emergence in the formation of fan-spine topology, and highlights the importance of minifilaments for subsequent jet production.
通过磁通量涌现和随后的喷流产生形成扇形磁拓扑结构
扇形磁结构是磁重联理论中的一种基本三维拓扑结构,在产生太阳喷流中起着至关重要的作用。然而,扇形磁场结构在太阳大气中是如何形成的,至今仍是个谜。我们利用中国Hα太阳探测器(CHASE)和太阳动力学天文台,对磁通量涌现驱动的扇形脊拓扑结构的完整构建以及随后的喷流产生进行了案例研究。存在两个扇形脊结构和两个相关的空点。在通量出现期间,对空点高度和位置随时间的变化进行了跟踪。发现北扇棘结构是通过新出现的磁通量与背景场之间的磁重联产生的。北扇棘结构形成后,会持续发生温和的再连接,从而产生微弱的等离子体外流。随后,随着磁通量的出现和磁螺旋注入的持续,在两个空心之间的准分离矩阵层重新连接后形成和爆发的微丝触发了三个同源喷流。CHASE观测结果显示,在这些喷流喷发过程中,环形耀斑带、内部亮斑和远距离增亮都表现出红移特征。这项工作揭示了流量涌现在扇形脊拓扑结构形成过程中的关键作用,并强调了细丝对后续喷流产生的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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