论文标题
白光QFP波火车和相关的失败突破爆发
White-light QFP Wave Train and the Associated Failed Breakout Eruption
论文作者
论文摘要
准周期性快速传播(QFP)磁波列在极端的紫外线波长条带中通常观察到。在这里,我们报告了第一个白光成像观察QFP波列在外壳中向外传播的QFP波列,范围为2至4个太阳半径。波列是通过太阳能和地球观测站板上的大角度光谱冠状动脉记录的,并且与太阳能磁盘西南肢的NOAA活性区AR12172中的gos M1.5耀斑有关。测量表明,波列的速度和周期分别为218 km/s和26分钟。太阳能动态天文台在船上进行的大气成像组件进行的极端紫外成像观察表明,在低电晕中,QFP波训练QFP波序列与由三个由三个由高较高的大型大型大规模封闭的突破磁系统的爆发失败有关。数据分析结果表明,突破磁系统的喷发失败主要是由于两个侧面低洼的闭环系统之间发生的磁重新连接。这种重新连接增强了磁突破系统的限制能力,因为向上移动的重新连接环将新的磁通量连续馈送到高上层的大规模回路系统。对于QFP波列的生成,我们建议通过准周期生成释放的间歇性能量脉冲可以激发它,快速拉伸和向上移动的,强烈弯曲的循环重新连接的环。
Quasi-periodic fast-propagating (QFP) magnetosonic wave trains are commonly observed in the low corona at extreme ultraviolet wavelength bands. Here, we report the first white-light imaging observation of a QFP wave train propagating outwardly in the outer corona ranging from 2 to 4 solar Radii. The wave train was recorded by the Large Angle Spectroscopic Coronagraph on board the Solar and Heliospheric Observatory, and it was associated with a GOES M1.5 flare in NOAA active region AR12172 at the southwest limb of the solar disk. Measurements show that the speed and period of the wave train were about 218 km/s and 26 minutes, respectively. The extreme ultraviolet imaging observations taken by the Atmospheric Imaging Assembly on board the Solar Dynamic Observatory reveals that in the low corona the QFP wave train was associated with the failed eruption of a breakout magnetic system consisting of three low-lying closed loop systems enclosed by a high-lying large-scale one. Data analysis results show that the failed eruption of the breakout magnetic system was mainly because of the magnetic reconnection occurred between the two sided low-lying closed-loop systems. This reconnection enhances the confinement capacity of the magnetic breakout system because the upward-moving reconnected loops continuously feed new magnetic fluxes to the high-lying large-scale loop system. For the generation of the QFP wave train, we propose that it could be excited by the intermittent energy pulses released by the quasi-periodic generation, rapid stretching and expansion of the upward-moving, strongly bent reconnected loops.