Evolution of Earth-like extended exospheres orbiting solar-like stars
arXiv:2105.15026 · doi:10.1093/mnras/stab492
Abstract
Recent observations of the Earth's exosphere revealed the presence of an extended hydrogenic component that could reach distances beyond 40 planetary radii. Detection of similar extended exospheres around Earth-like exoplanets could reveal crucial facts in terms of habitability. The presence of these rarified hydrogen envelopes is extremely dependent of the planetary environment, dominated by the ionizing radiation and plasma winds coming from the host star. Radiation and fast wind particles ionize the uppermost layers of planetary atmospheres, especially for planets orbiting active, young stars. The survival of the produced ions in the exosphere of such these planets is subject to the action of the magnetized stellar winds, particularly for unmagnetized bodies. In order to address these star-planet interactions, we have carried out numerical 2.5D ideal MHD simulations using the PLUTO code to study the dynamical evolution of tenuous, hydrogen-rich, Earth-like extended exospheres for an unmagnetized planet, at different stellar evolutionary stages: from a very young, solar-like star of 0.1 Gyr to a 5.0 Gyr star. For each star-planet configuration, we show that the morphology of extended Earth-like hydrogen exospheres is strongly dependent of the incident stellar winds and the produced ions present in these gaseous envelopes, showing that the ionized component of Earth-like exospheres is quickly swept by the stellar winds of young stars, leading to large bow shock formation for later stellar ages.
7 pages, 6 figures
References in corpus (12)
- Stellar magnetism: empirical trends with age and rotation
- XUV-driven mass loss from extrasolar giant planets orbiting active stars
- Probing the Blow-Off Criteria of Hydrogen-Rich "Super-Earths"
- On the diversity of magnetic interactions in close-in star-planet systems
- Could we identify hot Ocean-Planets with CoRoT, Kepler and Doppler velocimetry?
- Planetary Magnetic Field Control of Ion Escape from Weakly Magnetized Planets
- The Interaction of Venus-like, M-dwarf Planets with the Stellar Wind of Their Host Star
- Two regimes of interaction of a Hot Jupiter's escaping atmosphere with the stellar wind and generation of energized atomic hydrogen corona
- Lyα Absorption at Transits of HD 209458b: A Comparative Study of Various Mechanisms Under Different Conditions
- The dichotomy of atmospheric escape in AU Mic b
- Transit Ly- signatures of terrestrial planets in the habitable zones of M dwarfs
- On the Fast Magnetic Rotator Regime of Stellar Winds