Heating of the Atmospheres of Short-orbit Exoplanets by Their Rapid Orbital Motion through an Extreme Space Environment

Ofer Cohen, Alex Glocer, C. Garraffo, J. Alvarado‐Gómez, Jeremy J. Drake, Kristina Monsch, Farah Fauth Puigdomenech
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Abstract

Exoplanets with short orbit periods reside very close to their host stars. They transition very rapidly between different sectors of the circumstellar space environment along their orbit, leading to large variations of the magnetic field in the vicinity of the planet on short timescales. This rapid change of the magnetic flux through the conducting and resistive layer of the planetary upper atmosphere may drive currents that dissipate in the form of Joule heating (JH). Here, we estimate the amount of JH dissipation in the upper atmosphere of Trappist-1e, and two hypothetical planets orbiting the Sun in close-in orbits. We find that the rapid orbital motion could drive a significant amount of atmospheric heating and could significantly affect the planetary atmosphere escape rate. Thus, the process should be accounted for when studying the long-term evolution of exoplanetary atmospheres.
短轨道系外行星在极端空间环境中的快速轨道运动对其大气的加热作用
轨道周期短的系外行星非常靠近其主恒星。它们沿着轨道在周星空环境的不同区域之间迅速转换,导致行星附近的磁场在短时间内发生巨大变化。通过行星高层大气导电层和电阻层的磁通量的这种快速变化可能会驱动以焦耳热(JH)形式耗散的电流。在这里,我们估算了特拉比斯特-1e 和两颗在近邻轨道上绕太阳运行的假想行星上层大气中的焦耳热耗散量。我们发现,快速的轨道运动可以驱动大量的大气加热,并对行星大气逃逸率产生重大影响。因此,在研究系外行星大气的长期演化时应考虑到这一过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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