论文标题
恒星风能驱动外球星蒸发流出和过境吸收特征的强烈变化
Stellar Winds Drive Strong Variations in Exoplanet Evaporative Outflows and Transit Absorption Signatures
论文作者
论文摘要
恒星风和光子辐射与行星的相互作用会导致大气耗竭,这可能会对行星的居住性产生灾难性的影响。尽管在某种程度上已经研究了光蒸发对大气侵蚀的含义,但对恒星风对大气损失的影响的研究仍处于起步阶段。在这里,我们使用三维磁性水力动力学模拟来建模恒星风对磁层的影响和假设行星的流出,并模拟具有富含H的富含H的蒸发膜,并具有预定义的质量损失速率,并在接近低水量M dwarf的可居住区中绕。我们将trappist-1系统作为原型,而模拟的行星位于trappist-1e的轨道上。我们表明,随着局部恒星风条件的变化,与风相互作用后,与风相互作用时,大气流出被拖动和加速,导致行星磁层形态和等离子体分布。我们考虑了风流相互作用对过渡过程中行星气氛的潜在氢α-α(Lya)观测的含义。 LYA的观察信号在观察时很大程度上取决于当地风条件,并且可能会在短达一个小时的时间内发生很大的变化。我们的结果表明,观察到的外部LYA运输特征的变化可以通过风流相互作用来解释。
Stellar wind and photon radiation interactions with a planet can cause atmospheric depletion, which may have a potentially catastrophic impact on a planet's habitability. While the implications of photoevaporation on atmospheric erosion have been researched to some degree, studies of the influence of the stellar wind on atmospheric loss are in their infancy. Here, we use three-dimensional magnetohydrodynamic simulations to model the effect of the stellar wind on the magnetosphere and outflow of a hypothetical planet, modeled to have an H-rich evaporating envelope with a pre-defined mass loss rate, orbiting in the habitable zone close to a low-mass M dwarf. We take the TRAPPIST-1 system as a prototype, with our simulated planet situated at the orbit of TRAPPIST-1e. We show that the atmospheric outflow is dragged and accelerated upon interaction with the wind, resulting in a diverse range of planetary magnetosphere morphologies and plasma distributions as local stellar wind conditions change. We consider the implications of the wind-outflow interaction on potential hydrogen Lyman-alpha (Lya) observations of the planetary atmosphere during transits. The Lya observational signatures depend strongly on the local wind conditions at the time of the observation and can be subject to considerable variation on timescales as short as an hour. Our results indicate that observed variations in exoplanet Lya transit signatures could be explained by wind-outflow interaction.