论文标题

太阳耀斑的完全自洽的模型

A fully self-consistent model for solar flares

论文作者

Ruan, Wenzhi, Xia, Chun, Keppens, Rony

论文摘要

“标准太阳能”耀斑模型收集了通过我们的太阳的多波长观测来识别的所有物理成分:磁重新连接,快速粒子加速度以及在各种波长下的发射,尤其是在软X射线通道中。在整个有关太阳能和等离子体天体物理学的教科书中都可以找到它的动画片,并指导对其他恒星,积聚磁盘和喷气机上未解决的能量爆炸事件的解释。迄今为止,缺乏一个完全自符的模型,该模型还缺乏在其所有方面重现标准方案,因为这需要大规模的多维磁性水力动力学(MHD)等离子体描述与逼真的快速电子处理结合。在这里,我们演示了这样一种新型组合,其中MHD与分析快速电子模型结合在一起,并调整了以处理时间发展,重新连接磁场和粒子捕获。这允许研究(1)快速电子沉积在触发色层蒸发流中的作用; (2)在色球脚点或循环台面生成各种硬X射线源的物理机制; (3)在整个耀斑环的演化中,软X射线与硬X射线通量之间的关系。这种自洽的太阳耀斑模型首次展示了强硬X射线脚点区域扫除的通量与X点处的实际重新连接率之间的观察性关系,这在耀斑的情况下是一个主要未知的。我们还证明了循环硬X射线源可能是由于快速电子捕获而产生的。

The 'standard solar' flare model collects all physical ingredients identified by multi-wavelength observations of our Sun: magnetic reconnection, fast particle acceleration and the resulting emission at various wavelengths, especially in soft to hard X-ray channels. Its cartoon representation is found throughout textbooks on solar and plasma astrophysics, and guides interpretations of unresolved energetic flaring events on other stars, accretion disks and jets. To date, a fully self-consistent model that reproduces the standard scenario in all its facets is lacking, since this requires the combination of a large scale, multi-dimensional magnetohydrodynamic (MHD) plasma description with a realistic fast electron treatment. Here, we demonstrate such a novel combination, where MHD combines with an analytic fast electron model, adjusted to handle time-evolving, reconnecting magnetic fields and particle trapping. This allows to study (1) the role of fast electron deposition in the triggering of chromospheric evaporation flows; (2) the physical mechanisms that generate various hard X-ray sources at chromospheric footpoints or looptops; and (3) the relationship between soft X-ray and hard X-ray fluxes throughout the entire flare loop evolution. For the first time, this self-consistent solar flare model demonstrates the observationally suggested relationship between flux swept out by the hard X-ray footpoint regions, and the actual reconnection rate at the X-point, which is a major unknown in flaring scenarios. We also demonstrate that a looptop hard X-ray source can result from fast electron trapping.

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