论文标题
超肢体下流的热力学演化
Thermodynamical Evolution of Supra-Arcade Downflows
论文作者
论文摘要
上弧形下流(SADS)是耀斑街区下降的黑暗,泪珠形的特征。它们被认为是磁重新连接的结果,但是SADS的详细形成机理及其与火炬能量释放的关系尚不清楚。在这项工作中,我们使用太阳能动力学天文台/大气成像组件的观察以及改进的差分排放度量(DEM)技术探讨了2011年10月22日的肢体耀斑中SAD的热力学特性。确定了SAD周围的不同加热事件,并计算了血浆加热的传播速度。第一个加热事件首先是在高于5 mk的温度下增加发射度量,大约在第一个研究的SAD到达前约2.8分钟。它的传播速度约为140 km/s,比悲伤的速度快一点。但是,其他两个事件的传播速度超过700 km/s。我们怀疑第一个供暖事件可以通过绝热压缩来解释,但其他供暖事件可能有不同的原因。此外,我们观察到悲伤可以推开周围的尖峰。 SAD的形成进一步解释了片状和爆发的磁重新连接,即重新连接外流可能会推开周围的等离子体,并在其后面留下黑暗的车道。讨论了DEM结果,加热和冷却机制的可靠性以及其他SAD解释。
Supra-arcade downflows (SADs) are dark, teardrop-shaped features descending upon flare arcades. They are thought to be the results of magnetic reconnection, but the detailed formation mechanism of SADs and their relationship to flare energy release are still unclear. In this work, we explore the thermodynamical properties of SADs in the 2011 October 22 limb flare using the observations of the Solar Dynamics Observatory/Atmospheric Imaging Assembly and an improved Differential Emission Measure (DEM) technique. Different heating events around SADs are identified and the propagation speeds of plasma heating are calculated. The first heating event starts with the increase of the emission measure at temperatures higher than 5 MK, about 2.8 minutes before the arrival of the first studied SAD. Its propagation speed is about 140 km/s, a little faster than the speed of the SAD. However, the other two events have fast propagation speeds more than 700 km/s. We suspect that the first heating event can be explained by adiabatic compression, but the others may have different causes. Besides, we observed that SADs can push away their surrounding spikes. The formation of SADs is further explained on the basis of patchy and bursty magnetic reconnection that reconnection outflows may push away surrounding plasma and leave dark lanes behind them. The reliability of the DEM results, heating and cooling mechanisms, and other SAD explanations are discussed.