太阳斑区的磁场:来自高灵敏度光谱偏振法的见解

J. M. da, S. Santos, K. Reardon, G. Cauzzi, T. Schad, V. Pillet, A. Tritschler, F., R. Hofmann, J. Stauffer
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引用次数: 0

摘要

斑块区是太阳大气中磁场集中的斑块,热日冕环在那里扎根。虽然以前的研究已经揭示了光球中斑块磁场的性质,但在测量上覆的色球磁场方面仍然存在挑战,这对于理解整体的加热和动力学至关重要。在这里,我们利用4米Daniel K. Inouye太阳望远镜获得的高灵敏度光谱偏振数据来研究扩展的衰减斑区的动态环境和磁场分层。数据显示,在斑核和周围的原纤维中都有很强的圆极化信号。值得注意的是,微弱的线性极化信号明显区分了斑块和原纤维冠层,后者的线性极化信号相对较强。Ca II 8542 Å光谱的反演显示,原纤维在色球磁场中有印记,原纤维的典型场强值为~ 200 ~ 300 G。我们证实了在较低的色球层中场强和冷却速率之间的弱相关性。此外,我们还观察到超音速下流和强速度梯度,表明色球层中发生了动力过程。这些发现有助于我们理解地磁体内部的磁场和动力学,强调需要进一步研究地磁场随高度的扩展和下色球层加热速率的三维分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic Fields in Solar Plage Regions: Insights from High-sensitivity Spectropolarimetry
Plage regions are patches of concentrated magnetic field in the Sun’s atmosphere where hot coronal loops are rooted. While previous studies have shed light on the properties of plage magnetic fields in the photosphere, there are still challenges in measuring the overlying chromospheric magnetic fields, which are crucial to understanding the overall heating and dynamics. Here, we utilize high-sensitivity, spectropolarimetric data obtained by the 4 meter Daniel K. Inouye Solar Telescope to investigate the dynamic environment and magnetic field stratification of an extended, decaying plage region. The data show strong circular polarization signals in both plage cores and surrounding fibrils. Notably, weak linear polarization signals clearly differentiate between plage patches and the fibril canopy, where they are relatively stronger. Inversions of the Ca II 8542 Å spectra show an imprint of the fibrils in the chromospheric magnetic field, with typical field strength values ranging from ∼200 to 300 G in fibrils. We confirm the weak correlation between field strength and cooling rates in the lower chromosphere. Additionally, we observe supersonic downflows and strong velocity gradients in the plage periphery, indicating dynamical processes occurring in the chromosphere. These findings contribute to our understanding of the magnetic field and dynamics within plages, emphasizing the need for further research to explore the expansion of magnetic fields with height and the three-dimensional distribution of heating rates in the lower chromosphere.
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