论文标题
爆发磁通绳的微波光谱成像:三维中标准太阳耀斑模型的影响
Microwave Spectral Imaging of an Erupting Magnetic Flux Rope: Implications for the Standard Solar Flare Model in Three Dimensions
论文作者
论文摘要
我们报告了在2017年9月10日X8.2级肢体耀斑的早期冲动阶段爆发的磁通绳的微波光谱成像观测,该冲动阶段是由扩展的Owens Valley Solar Array获得的。爆发前几天,当对磁盘上观察时,磁通绳似乎是沿磁极性反转线的反向S形暗丝。在喷发期间,绳索在极端紫外线中表现出“热通道”结构,而软X射线通道对〜10 MK等离子体敏感。通量绳的中央部分几乎与视线对齐,后者在喷发的早期阶段迅速发展为泪珠形的黑腔。在腔体下方形成的长而细的浆片,被解释为重新连接电流纸,看见边缘。中央电流板的位置存在非热微波源,该板的位置向上延伸,包括黑腔。在主耀斑区域的两侧观察到一对非热微波源几分钟。他们与腔内下方的中央微波源具有类似的时间行为和光谱特性,被解释为爆发的通量绳的共轭脚点。这些观察结果与磁性拓扑结构和相关的能量释放方案一致,在喷发太阳耀斑的三维标准模型中建议的相关能量释放方案。特别是,我们在结合通量绳脚上对非热发射的检测提供了沿着喷发磁通绳沿粒子转运的可靠证据。
We report microwave spectral imaging observations of an erupting magnetic flux rope during the early impulsive phase of the X8.2-class limb flare on 2017 September 10, obtained by the Expanded Owens Valley Solar Array. A few days prior to the eruption, when viewed against the disk, the flux rope appeared as a reverse S-shaped dark filament along the magnetic polarity inversion line. During the eruption, the rope exhibited a "hot channel" structure in extreme ultraviolet and soft X-ray passbands sensitive to ~10 MK plasma. The central portion of the flux rope was nearly aligned with the line of sight, which quickly developed into a teardrop-shaped dark cavity during the early phase of the eruption. A long and thin plasma sheet formed below the cavity, interpreted as the reconnection current sheet viewed edge-on. A nonthermal microwave source was present at the location of the central current sheet, which extended upward encompassing the dark cavity. A pair of nonthermal microwave sources were observed for several minutes on both sides of the main flaring region. They shared a similar temporal behavior and spectral property to the central microwave source below the cavity, interpreted as the conjugate footpoints of the erupting flux rope. These observations are broadly consistent with the magnetic topology and the associated energy release scenario suggested in the three-dimensional standard model for eruptive solar flares. In particular, our detection of nonthermal emission at conjugate flux rope footpoints provides solid evidence of particle transport along an erupting magnetic flux rope.