论文标题
非热主导的两环太阳耀斑中的时空能量分配
Spatio-temporal energy partitioning in a non-thermally dominated two-loop solar flare
论文作者
论文摘要
太阳耀斑显示了热分和非热成分之间的各种能量分配。那些具有突出的非热成分但只有适中的热量的人特别适合研究非热电子对等离子体加热的直接影响。在这里,我们分析了这样一个良好观察到的冲动单尖峰非热事件,即Sol2013-11-05T035054太阳耀斑,在该耀斑中,血浆加热可以完全归因于这些冲动加速电子的能量损失。使用X射线,微波炉和EUV观测值以及三维建模分析热量过程中热和非热成分的能量预算的演变。结果表明(i)耀斑几何形状与两环形态一致,并且由于这两个环之间的相互作用而释放了磁能; (ii)释放的磁能仅转化为加速电子的非热能,随后将其转换为血浆的热能; (iii)能量以相当的量在这两个耀斑循环中分配; (iv)这些耀斑的环中之一保持相对脆弱,但相当热,而另一个则相对较酷,但比第一个较密集。因此,这种太阳耀斑表明了自由磁能向粒子加速度的非热能的转化效率极高,并将能量流动到从非热到热的两个环中,并具有可忽略的直接加热。
Solar flares show remarkable variety of the energy partitioning between thermal and nonthermal components. Those with a prominent nonthermal component but only a modest thermal one are particularly well suited to study the direct effect of the nonthermal electrons on plasma heating. Here, we analyze such a well observed, impulsive single-spike nonthermal event, a SOL2013-11-05T035054 solar flare, where the plasma heating can be entirely attributed to the energy losses of these impulsively accelerated electrons. Evolution of the energy budget of thermal and nonthermal components during the flare is analysed using X-ray, microwave, and EUV observations and three-dimensional modeling. The results suggest that (i) the flare geometry is consistent with a two-loop morphology and the magnetic energy is likely released due to interaction between these two loops; (ii) the released magnetic energy converted to the nonthermal energy of accelerated electrons only, which is subsequently converted to the thermal energy of the plasma; (iii) the energy is partitioned in these two flaring loops in comparable amounts; (iv) one of these flaring loops remained relatively tenuous but rather hot, while the other remained relatively cool but denser than the first one. Therefore, this solar flare demonstrates an extreme efficiency of conversion of the free magnetic energy to the nonthermal energy of particle acceleration and the energy flow into two loops from the non-thermal to thermal one with a negligible direct heating.