论文标题

由于循环区域中浆液式相互作用引起的太阳耀斑电子加速度的动力调制

Dynamical modulation of solar flare electron acceleration due to plasmoid-shock interactions in the looptop region

论文作者

Kong, Xiangliang, Guo, Fan, Shen, Chengcai, Chen, Bin, Chen, Yao, Giacalone, Joe

论文摘要

快速模式的冲击可以在重新连接流出的前面形成,并被认为是太阳耀斑颗粒加速的有前途的位置。磁重新连接的最新发展表明,可以在大规模电流层中产生许多浆液。在这里,我们研究了循环区域中电子加速度的动力调制,当时血浆通过将磁性水力学模拟与粒子动力学模型相结合,从而间歇性地发出了冲击。当浆液与冲击相互作用时,循环区域表现出各种可压缩的结构,这些结构调节了能量电子的产生。在时间和空间中,能量电子种群在时间和空间上都差异很大。 5 $ - $ 10的KEV电子的数量与压缩区域有很好的相关性,而$ 50的KeV电子的数量与强度强的压缩区域良好相关,但仅与冲击参数相关。我们进一步研究了第一个浆液的影响,这标志着从准稳态冲击阵线到扭曲且动力学的冲击的过渡。 $ \ sim 20 \%$以15 $ - $ 25 kev和25 $ -50 $ 50 keV的数量减少了$ \ sim 20 \%$,而5 $ -10 $ 10的kev电子的数量减少了。另外,超过10 keV的电子能谱随着时间的流逝而变软。我们还发现,当浆液跨冲击运动时,在循环区域中可以发展双重或什至多个不同的来源。我们的模拟对非热环源的解释以及通常观察到的快速时间变化(包括准周期性脉动)具有很大的影响。

A fast-mode shock can form in the front of reconnection outflows and has been suggested as a promising site for particle acceleration in solar flares. Recent development of magnetic reconnection has shown that numerous plasmoids can be produced in a large-scale current layer. Here we investigate the dynamical modulation of electron acceleration in the looptop region when plasmoids intermittently arrive at the shock by combining magnetohydrodynamics simulations with a particle kinetic model. As plasmoids interact with the shock, the looptop region exhibits various compressible structures that modulate the production of energetic electrons. The energetic electron population varies rapidly in both time and space. The number of 5$-$10 keV electrons correlates well with the area with compression, while that of $>$50 keV electrons shows good correlation with strong compression area but only moderate correlation with shock parameters. We further examine the impacts of the first plasmoid, which marks the transition from a quasi-steady shock front to a distorted and dynamical shock. The number of energetic electrons is reduced by $\sim 20\%$ at 15$-$25 keV and nearly 40\% for 25$-$50 keV, while the number of 5$-$10 keV electrons increases. In addition, the electron energy spectrum above 10 keV evolves softer with time. We also find double or even multiple distinct sources can develop in the looptop region when the plasmoids move across the shock. Our simulations have strong implications to the interpretation of nonthermal looptop sources, as well as the commonly observed fast temporal variations in flare emissions, including the quasi-periodic pulsations.

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