论文标题

在冠状环中慢模式波引起的等离子加热和纳米洛尔

Plasma heating and nanoflare caused by slow-mode wave in a coronal loop

论文作者

Xia, Fanxiaoyu, Wang, Tongjiang, Su, Yang, Zhao, Jie, Zhang, Qingmin, Veronig, Astrid M., Gan, Weiqun

论文摘要

我们对大型冠状环中的反射强度扰动进行了详细分析,该冠状循环呈晃动,至少持续了一个半时期。扰动是由一个脚下一个脚关节启动的,沿着环路传播,并最终在所有AIA Extrem-Extrem-ultraviolet(EUV)通道中观察到明显的亮度。这种独特的观察结果为我们提供了更好地理解宽度振荡的热性能和阻尼机制的机会,而且还可以理解远程脚步处的能量传递。基于差分发射度量(DEM)分析和冠状地震学的技术,我们发现1)计算出的局部音速与振荡过程中观察到的扰动的传播速度一致,这表明慢速磁磁波; 2)热传导是波浪的主要阻尼机制,但还需要增加压缩粘度或波浪泄漏的其他阻尼机制,以解决观察到的波的快速衰变; 3)波浪在远程脚上产生了纳米洛,峰值热能为$ \厚的10^{24} -10^{25} $ erg。这项工作提供了冠状动脉环中磁性波传播和反射的一致图片,并报告了波浪诱导的纳米叶片的第一个可靠证据。结果揭示了用于进一步模拟研究的新线索,并可能有助于解决冠状加热问题。

We present a detailed analysis of a reflecting intensity perturbation in a large coronal loop that appeared as sloshing oscillation and lasted for at least one and a half periods. The perturbation is initiated by a microflare at one footpoint of the loop, propagates along the loop and is eventually reflected at the remote footpoint where significant brightenings are observed in all the AIA extreme-ultraviolet (EUV) channels. This unique observation provides us with the opportunity to better understand not only the thermal properties and damping mechanisms of the sloshing oscillation, but also the energy transfer at the remote footpoint. Based on differential emission measures (DEM) analysis and the technique of coronal seismology, we find that 1) the calculated local sound speed is consistent with the observed propagation speed of the perturbation during the oscillation, which is suggestive of a slow magnetoacoustic wave; 2) thermal conduction is the major damping mechanism of the wave but additional damping mechanism such as anomalous enhancement of compressive viscosity or wave leakage is also required to account for the rapid decay of the observed waves; 3) the wave produced a nanoflare at the remote footpoint, with a peak thermal energy of $\thicksim10^{24}-10^{25}$ erg. This work provides a consistent picture of the magnetoacoustic wave propagation and reflection in a coronal loop, and reports the first solid evidence of a wave-induced nanoflare. The results reveal new clues for further simulation studies and may help solving the coronal heating problem.

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