首页> 外文期刊>The Astrophysical Journal. Letters >QUASI-PERIODIC PULSATIONS DURING THE IMPULSIVE AND DECAY PHASES OF AN X-CLASS FLARE
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QUASI-PERIODIC PULSATIONS DURING THE IMPULSIVE AND DECAY PHASES OF AN X-CLASS FLARE

机译:X级耀斑的脉冲和衰减相期间的准周期脉冲

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摘要

Quasi-periodic pulsations (QPPs) are often observed in X-ray emission from solar flares. To date, it is unclear what their physical origins are. Here, we present a multi-instrument investigation of the nature of QPP during the impulsive and decay phases of the X1.0 flare of 2013 October 28. We focus on the character of the fine structure pulsations evident in the soft X-ray (SXR) time derivatives and compare this variability with structure across multiple wavelengths including hard X-ray and microwave emission. We find that during the impulsive phase of the flare, high correlations between pulsations in the thermal and non-thermal emissions are seen. A characteristic timescale of similar to 20 s is observed in all channels and a second timescale of similar to 55 s is observed in the non-thermal emissions. SXR pulsations are seen to persist into the decay phase of this flare, up to 20 minutes after the non-thermal emission has ceased. We find that these decay phase thermal pulsations have very small amplitude and show an increase in characteristic timescale from similar to 40 s up to similar to 70 s. We interpret the bursty nature of the coexisting multi-wavelength QPPs during the impulsive phase in terms of episodic particle acceleration and plasma heating. The persistent thermal decay phase QPPs are most likely connected with compressive magnetohydrodynamic processes in the post-flare loops such as the fast sausage mode or the vertical kink mode.
机译:在太阳耀斑的X射线发射中经常观察到准周期脉动(QPPs)。迄今为止,还不清楚它们的物理起源。在此,我们对2013年10月28日X1.0耀斑的脉冲和衰变阶段期间QPP的性质进行了多仪器研究。我们着眼于软X射线(SXR)中明显的精细结构脉动的特征)时间导数,并将此可变性与包括硬X射线和微波发射在内的多个波长的结构进行比较。我们发现在火炬的脉冲阶段,热和非热发射中的脉动之间存在高度相关性。在所有通道中都观察到一个类似于20 s的特征时标,而在非热辐射中则观察到一个类似于55 s的第二时标。在非热辐射停止后的20分钟内,可以看到SXR脉动一直持续到火炬的衰变阶段。我们发现,这些衰减相位热脉动的幅度很小,并且显示出特征时标从大约40 s到大约70 s的增加。我们从偶发粒子加速和等离子体加热方面解释了脉冲阶段共存的多波长QPP的突发性质。持续的热衰变阶段QPP最有可能与耀斑后循环中的压缩磁流体动力学过程有关,例如快速香肠模式或垂直扭结模式。

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