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首页> 外文期刊>Astronomy and astrophysics >Eruption of a multi-flux-rope system in solar active region 12673 leading to the two largest flares in Solar Cycle 24 ?
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Eruption of a multi-flux-rope system in solar active region 12673 leading to the two largest flares in Solar Cycle 24 ?

机译:太阳活动区12673中的多股绳索系统的爆发导致太阳周期24中出现两个最大的耀斑

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Context. Solar active region (AR) 12673 in 2017 September produced the two largest flares in Solar Cycle 24: the X9.3 flare on September 6 and the X8.2 flare on September 10. Aims. We attempt to investigate the evolutions of the two large flares and their associated complex magnetic system in detail. Methods. Combining observations from the Solar Dynamics Observatory and results of nonlinear force-free field (NLFFF) modeling, we identify various magnetic structures in the AR core region and examine the evolution of these structures during the flares. Results. Aided by the NLFFF modeling, we identify a double-decker flux rope configuration above the polarity inversion line (PIL) in the AR core region. The north ends of these two flux ropes were rooted in a negative- polarity magnetic patch, which began to move along the PIL and rotate anticlockwise before the X9.3 flare on September 6. The strong shearing motion and rotation contributed to the destabilization of the two magnetic flux ropes, of which the upper one subsequently erupted upward due to the kink-instability. Then another two sets of twisted loop bundles beside these ropes were disturbed and successively erupted within five minutes like a chain reaction. Similarly, multiple ejecta components were detected as consecutively erupting during the X8.2 flare occurring in the same AR on September 10. We examine the evolution of the AR magnetic fields from September 3 to 6 and find that five dipoles emerged successively at the east of the main sunspot. The interactions between these dipoles took place continuously, accompanied by magnetic flux cancellations and strong shearing motions. Conclusions. In AR 12673, significant flux emergence and successive interactions between the different emerging dipoles resulted in a complex magnetic system, accompanied by the formations of multiple flux ropes and twisted loop bundles. We propose that the eruptions of a multi-flux-rope system resulted in the two largest flares in Solar Cycle 24.
机译:上下文。 2017年9月,太阳活动区(AR)12673产生了太阳周期24中的两个最大耀斑:9月6日的X9.3耀斑和9月10日的X8.2耀斑。我们试图详细研究两个大耀斑及其相关的复杂磁系统的演化。方法。结合太阳动力学天文台的观测结果和非线性无力场(NLFFF)建模结果,我们确定了AR核心区域的各种磁性结构,并检查了耀斑期间这些结构的演变。结果。在NLFFF建模的帮助下,我们确定了AR核心区域中极性反转线(PIL)上方的双层磁通绳配置。这两条磁通绳的北端扎根于负极性磁片,该磁片开始沿PIL移动并在9月6日X9.3耀斑之前逆时针旋转。强烈的剪切运动和旋转导致磁头的不稳定。两条磁通绳,其中的一根磁通绳由于扭结不稳定而随后向上喷发。然后,这些绳索旁边的另外两组扭曲的环束被打乱,并在五分钟内连续爆发,就像是连锁反应一样。同样,在9月10日同一AR发生X8.2耀斑期间,检测到多个喷射成分连续爆发。我们检查了9月3日至6日AR磁场的演变,发现五个偶极子相继出现在东部。主要的黑子。这些偶极子之间的相互作用是连续发生的,伴随着磁通量抵消和强烈的剪切运动。结论。在AR 12673中,大量出现的磁通量以及不同的新兴偶极子之间的连续相互作用导致了一个复杂的磁系统,并伴随着多条磁通量绳索和扭曲环束的形成。我们认为多通量绳系统的爆发导致太阳周期24中出现了两个最大的耀斑。

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