On the Million-degree Signature of Spicules

Souvik Bose, Jayant Joshi, Paola Testa and Bart De Pontieu
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Abstract

Spicules have often been proposed as substantial contributors toward the mass and energy balance of the solar corona. While their transition region (TR) counterpart has unequivocally been established over the past decade, the observations concerning the coronal contribution of spicules have often been contested. This is mainly attributed to the lack of adequate coordinated observations, their small spatial scales, highly dynamic nature, and complex multithermal evolution, which are often observed at the limit of our current observational facilities. Therefore, it remains unclear how much heating occurs in association with spicules to coronal temperatures. In this study, we use coordinated high-resolution observations of the solar chromosphere, TR, and corona of a quiet-Sun region and a coronal hole with the Interface Region Imaging Spectrograph (IRIS) and the Atmospheric Imaging Assembly (AIA) to investigate the (lower) coronal (∼1 MK) emission associated with spicules. We perform differential emission measure analysis on the AIA passbands using basis pursuit and a newly developed technique based on Tikhonov regularization to probe the thermal structure of the spicular environment at coronal temperatures. We find that the emission measure (EM) maps at 1 MK reveal the presence of ubiquitous, small-scale jets with a clear spatiotemporal coherence with the spicules observed in the IRIS/TR passband. Detailed spacetime analysis of the chromospheric, TR, and EM maps show unambiguous evidence of rapidly outward-propagating spicules with strong emission (2–3 times higher than the background) at 1 MK. Our findings are consistent with previously reported MHD simulations that show heating to coronal temperatures associated with spicules.
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关于尖晶石的百万度特征
针状体经常被认为是日冕质量和能量平衡的重要贡献者。虽然它们的过渡区(TR)对应物在过去十年中已经明确地建立起来,但关于针状体日冕贡献的观测经常受到质疑。这主要是由于缺乏足够的协调观测,它们的空间尺度小,高度动态性和复杂的多热演化,这些往往是在我们现有观测设施的限制下观测到的。因此,在日冕温度与针状体的关系中,有多少加热发生仍不清楚。在这项研究中,我们利用界面区域成像光谱仪(IRIS)和大气成像组件(AIA)对太阳平静区和日冕洞的太阳色球、TR和日冕进行协调的高分辨率观测,以研究与针状体相关的(下)日冕(~ 1 MK)发射。我们利用基追踪和一种基于Tikhonov正则化的新技术对AIA通带进行差分发射测量分析,以探测日冕温度下粒子环境的热结构。我们发现在1 MK的发射测量(EM)图显示了无处不在的小尺度喷流的存在,与IRIS/TR通带观测到的针状体具有明显的时空相干性。对色球图、TR图和EM图的详细时空分析表明,在1mk时,具有强发射(比背景高2-3倍)的快速向外传播的针状体的确凿证据。我们的发现与先前报道的MHD模拟一致,该模拟显示了与针状体相关的日冕温度加热。
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