论文标题
Petschek型冲击的非平衡电离模型在重新连接太阳喷发中的电流板时
Non-equilibrium Ionization Modeling of Petschek-type Shocks in Reconnecting Current Sheets in Solar Eruptions
论文作者
论文摘要
一旦血浆状态偏离电离平衡假设,天体物理等离子体诊断基本上需要非平衡电离(NEI)。在这项工作中,我们执行快速的NEI计算,并结合磁流失动力(MHD)模拟,并分析太阳喷发期间Petschek型磁重新连接电流板的电离特性。我们的仿真揭示了在经典的Spitzer热传导模型和传导通量限制情况下的Petschek型慢模式冲击。结果表明,在冲击冲击以外的冲击重新连接外流和热光环区域中通常可以找到低估的特征。与平衡电离的偏离很大程度上取决于血浆密度。此外,这种偏离对可观察到的目标温度敏感:高温铁离子受NEI效应的强烈影响。低估还影响了合成的SDO/AIA强度,这表明重建的热重新连接电流结构可能在温度或明显的宽度上明显低估。我们还对经典太阳耀斑几何形状的重新连接电流表进行了MHD-NEI分析。最后,我们在重新连接电流板的下端下降了低估和离子化状态之间的潜在逆转,在该状态下向下流出与封闭的磁路相撞,这可能会强烈影响沿重新连接电流板的多个SDO/AIA频带比率。
Non-equilibrium ionization (NEI) is essentially required for astrophysical plasma diagnostics once the plasma status departs from ionization equilibrium assumptions. In this work, we perform fast NEI calculations combined with magnetohydrodynamic (MHD) simulations and analyze the ionization properties of a Petschek-type magnetic reconnection current sheet during solar eruptions. Our simulation reveals Petschek-type slow-mode shocks in the classical Spitzer thermal conduction models and conduction flux-limitation situations. The results show that under-ionized features can be commonly found in shocked reconnection outflows and thermal halo regions outside the shocks. The departure from equilibrium ionization strongly depends on plasma density. In addition, this departure is sensitive to the observable target temperature: the high-temperature iron ions are strongly affected by NEI effects. The under-ionization also affects the synthetic SDO/AIA intensities, which indicates that the reconstructed hot reconnection current sheet structure may be significantly under-estimated either for temperature or apparent width. We also perform the MHD-NEI analysis on the reconnection current sheet in the classical solar flare geometry. Finally, we show the potential reversal between the under-ionized and over-ionized state at the lower tip of reconnection current sheets where the downward outflow collides with closed magnetic loops, which can strongly affect multiple SDO/AIA band ratios along the reconnection current sheet.