论文标题

恒星风对近距离行星的Ly-Alpha传输的影响

Effects of the stellar wind on the Ly-alpha transit of close-in planets

论文作者

Carolan, S., Vidotto, A. A., D'Angelo, C. Villarreal, Hazra, G.

论文摘要

我们使用3D流体动力学模拟,然后进行合成线轮廓计算,以检查增加恒星风的强度对观察到的热木星(HJ)和温暖的海王星(WN)的效果。我们发现,与“无风”案相比,HJ和WN的恒星质量降低率从0(无风)增加到太阳质量损失率值的100倍导致大气中的逃逸降低(HJ和WN分别降低了65 \%和40 \%\%)。对于较弱的恒星风(RAM压力较低),行星逃逸率的降低非常小。然而,随着恒星风变得更强烈,这种相互作用在行星大气中更深,一旦这种相互作用发生在行星流出的声音表面以下,就可以看到蒸发速率的进一步降低。我们根据行星声音表面的几何形状对这些方案进行了分类。 “封闭”是指声音表面不受干扰的方案,而“打开”是指破坏表面的方案。我们发现,恒星风强度的变化会以非线性方式影响LY-$α$ transit。虽然在行星逃逸率($ \ simeq 5.5 \ times 10^{11} $ g/s)中几乎没有变化,但在部分开放方案中,ly- $α$吸收(蓝色的总和[-300,-40 km/s] \&red [40,300 km/s] wing at 21 \%\%\%\%\%\%\%均增加模拟。对于WN模拟,逃逸率为$ \ simeq 6.5 \ times 10^{10} $ g/s可能会导致过境吸收,从8.8 \%到3.7 \%,具体取决于出色的风强度。我们得出的结论是,相同的大气逃逸速率可以根据恒星风产生一系列吸收,并且在解释Ly-$α$ Transits中忽略了这一点可能导致行星逃生率的低估。

We use 3D hydrodynamics simulations followed by synthetic line profile calculations to examine the effect increasing the strength of the stellar wind has on observed Ly-$α$ transits of a Hot Jupiter (HJ) and a Warm Neptune (WN). We find that increasing the stellar wind mass-loss rate from 0 (no wind) to 100 times the solar mass-loss rate value causes reduced atmospheric escape in both planets (a reduction of 65\% and 40\% for the HJ and WN, respectively, compared to the "no wind" case). For weaker stellar winds (lower ram pressure), the reduction in planetary escape rate is very small. However, as the stellar wind becomes stronger, the interaction happens deeper in the planetary atmosphere and, once this interaction occurs below the sonic surface of the planetary outflow, further reduction in evaporation rates is seen. We classify these regimes in terms of the geometry of the planetary sonic surface. "Closed" refers to scenarios where the sonic surface is undisturbed, while "open" refers to those where the surface is disrupted. We find that the change in stellar wind strength affects the Ly-$α$ transit in a non-linear way. Although little change is seen in planetary escape rates ($\simeq 5.5\times 10^{11}$g/s) in the closed to partially open regimes, the Ly-$α$ absorption (sum of the blue [-300, -40 km/s] \& red [40, 300 km/s] wings) changes from 21\% to 6\% as the stellar wind mass-loss rate is increased in the HJ set of simulations. For the WN simulations, escape rates of $\simeq 6.5\times 10^{10}$g/s can cause transit absorptions that vary from 8.8\% to 3.7\%, depending on the stellar wind strength. We conclude that the same atmospheric escape rate can produce a range of absorptions depending on the stellar wind and that neglecting this in the interpretation of Ly-$α$ transits can lead to underestimation of planetary escape rates.

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