论文标题

spicules对太阳冠状发射的贡献

Contribution of spicules to solar coronal emission

论文作者

Mondal, Shanwlee Sow, Klimchuk, James A., Sarkar, Aveek

论文摘要

最近的高分辨率成像和光谱观察结果已经对Spicules在解释热电晕中的作用引起了新的兴趣。一些研究表明,一些经常被归类为II型的Spicules可能为电晕提供大量的质量和能量。在这里,我们使用数值模拟来研究此类香料是否可以产生观察到的冠状发射,而无需任何额外的冠状加热剂。由寒冷体和热尖组成的模型spicules注入温暖的平衡环($ 0.5 $ MK)的底部,具有不同的尖端温度和注入速度。产生活塞和压力驱动的冲击。我们发现热尖会迅速冷却,并从冠状排放线中消失,例如Fe XII $ 195 $和Fe XIV $ 274 $。长时间的热发射是通过冲击和冲击热传导加热的预先存在的环材料来产生的。然而,合成线轮廓的形状和多普勒变化显示出与观测值的显着差异。此外,在空间和时间上平均的强度极低,这表明,如果观察到的静静太阳和活动区域的强度仅是由于II型Spicules造成的,那么比文献中所需的一定数将一到几个数量级。该结论严格适用于弹出的刺材料。我们没有关于在弹出过程中可能产生的波浪或冠状电流并加热周围区域的波或冠状电流相关的排放的主张。

Recent high-resolution imaging and spectroscopic observations have generated renewed interest in spicules' role in explaining the hot corona. Some studies suggest that some spicules, often classified as type II, may provide significant mass and energy to the corona. Here we use numerical simulations to investigate whether such spicules can produce the observed coronal emission without any additional coronal heating agent. Model spicules consisting of a cold body and hot tip are injected into the base of a warm ($0.5$ MK) equilibrium loop with different tip temperatures and injection velocities. Both piston- and pressure-driven shocks are produced. We find that the hot tip cools rapidly and disappears from coronal emission lines such as Fe XII $195$ and Fe XIV $274$. Prolonged hot emission is produced by pre-existing loop material heated by the shock and by thermal conduction from the shock. However, the shapes and Doppler shifts of synthetic line profiles show significant discrepancies with observations. Furthermore, spatially and temporally averaged intensities are extremely low, suggesting that if the observed intensities from the quiet Sun and active regions were solely due to type II spicules, one to several orders of magnitude more spicules would be required than have been reported in the literature. This conclusion applies strictly to the ejected spicular material. We make no claims about emissions connected with waves or coronal currents that may be generated during the ejection process and heat the surrounding area.

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