论文标题
$α$吸收符号的空间天气驱动的大气吸收特征的变化:MHD模拟和AU MIC B的情况
Space Weather-driven Variations in Ly$α$ Absorption Signatures of Exoplanet Atmospheric Escape: MHD Simulations and the Case of AU Mic b
论文作者
论文摘要
我们模拟了Au显微镜周围的空间环境,以及磁化的恒星风与行星大气流出的相互作用,以解决环境恒星风条件和冠状质量弹出(CME)条件。我们还计算了由于环境中中性氢而导致的合成$α$吸收,并受到这种相互作用影响的逃逸的行星气氛。我们发现,由于高度变化的恒星风条件,LY $α$吸收是高度可变的。在LY $α$配置文件中观察到一个强大的多普勒蓝移动成分,与在模拟本身中观察到的实际逃逸速度相矛盾。该结果表明,强大的多普勒蓝移可能归因于恒星风,而不是通过其中性行星气体的对流,或者是通过恒星风离子与行星中性之间的电荷交换来产生快速中性流动的。实际上,我们的CME模拟表明,从地球上强烈剥离了磁层材料,包括一些中性的逃逸气氛。我们的模拟表明,近距离外行星周围的压力并不比行星大气顶部的压力低得多,甚至可能更高。因此,中性气氛以非常小的速度($ <15〜km〜s^{ - 1} $)的流动动力逃脱。此外,我们的模拟表明,尽管气氛是中性的,但MHD治疗对于正确捕获耦合的磁性恒星风和逃避气氛至关重要。在外部大气逃生的背景下解释$α$观测值时,应考虑这种耦合。
We simulate the space environment around AU Microscopii b and the interaction between the magnetized stellar wind with a planetary atmospheric outflow for ambient stellar wind conditions and Coronal Mass Ejection (CME) conditions. We also calculate synthetic Ly$α$ absorption due to neutral hydrogen in the ambient and the escaping planetary atmosphere affected by this interaction. We find that the Ly$α$ absorption is highly variable due to the highly-varying stellar wind conditions. A strong Doppler blue-shift component is observed in the Ly$α$ profile, in contradiction to the actual escape velocity observed in the simulations themselves. This result suggest that the strong Doppler blue-shift is likely attributed to the stellar wind, not the escaping neutral atmosphere, either through its advection of neutral planetary gas, or through the creation of a fast neutral flow via charge exchange between the stellar wind ions and the planetary neutrals. Indeed, our CME simulations indicate a strong stripping of magnetospheric material from the planet, including some of the neutral escaping atmosphere. Our simulations show that the pressure around close-in exoplanets is not much lower, and may be even higher, than the pressure at the top of the planetary atmosphere. Thus, the neutral atmosphere is hydrodynamically escaping with a very small velocity ($<15~km~s^{-1}$). Moreover, our simulations show that an MHD treatment is essential in order to properly capture the coupled magnetized stellar wind and the escaping atmosphere, despite of the atmosphere being neutral. This coupling should be considered when interpreting Ly$α$observations in the context of exoplanets atmospheric escape.