Stellar wind impact on early atmospheres around unmagnetized Earth-like planets
arXiv:2405.10641 · doi:10.1093/mnras/stae1267
Abstract
Stellar rotation at early ages plays a crucial role in the survival of primordial atmospheres around Earth-mass exoplanets. Earth-like planets orbiting fast-rotating stars may undergo complete photoevaporation within the first few hundred Myr driven by the enhanced stellar XUV radiation, while planets orbiting slow-rotating stars are expected to experience difficulty to lose their primordial envelopes. Besides the action of stellar radiation, stellar winds induce additional erosion on these primordial atmospheres, altering their morphology, extent, and causing supplementary atmospheric losses. In this paper, we study the impact of activity-dependent stellar winds on primordial atmospheres to evaluate the extent at which the action of these winds can be significant in the whole planetary evolution at early evolutionary stages. We performed 3D magnetohydrodynamical (MHD) simulations of the interaction of photoevaporating atmospheres around unmagnetized Earth-mass planets in the time-span between 50 and 500 Myr, analyzing the joint evolution of stellar winds and atmospheres for both fast- and slow-rotating stars. Our results reveal substantial changes in the evolution of primordial atmospheres when influenced by fast-rotating stars, with a significant reduction in extent at early ages. In contrast, atmospheres embedded in the stellar winds from slow-rotating stars remain largely unaltered. The interaction of the magnetized stellar winds with the ionized upper atmospheres of these planets allows to evaluate the formation and evolution of different MHD structures, such as double-bow shocks and induced magnetospheres. This work will shed light to the first evolutionary stages of Earth-like exoplanets, that are of crucial relevance in terms of planet habitability.
References in corpus (27)
- PLUTO: a Numerical Code for Computational Astrophysics
- Stellar magnetism: empirical trends with age and rotation
- The Extreme Ultraviolet and X-Ray Sun in Time: High-Energy Evolutionary Tracks of a Solar-Like Star
- Constraints on the mass of a habitable planet with water of nebular origin
- Stellar Winds on the Main-Sequence II: the Evolution of Rotation and Winds
- Generalized investigation of the rotation-activity relation: Favouring rotation period instead of Rossby number
- Classification of magnetized star--planet interactions: bow shocks, tails, and inspiraling flows
- The Space Weather of Proxima Centauri b
- The evolution of the solar wind
- Stellar Winds on the Main-Sequence I: Wind Model
- p-winds: an open-source Python code to model planetary outflows and upper atmospheres
- Hydrogen dominated atmospheres on terrestrial mass planets: evidence, origin and evolution
- Effects of the stellar wind on the Ly-alpha transit of close-in planets
- The Effects of Magnetic Fields on Observational Signatures of Atmospheric Escape in Exoplanets: Double Tail Structures
- Effect of stellar wind induced magnetic fields on planetary obstacles of non-magnetized hot Jupiters
- GJ 436b and the stellar wind interaction: simulations constraints using Ly and H transits
- Stellar Winds Drive Strong Variations in Exoplanet Evaporative Outflows and Transit Absorption Signatures
- Hydrodynamical interaction of stellar and planetary winds: effects of charge exchange and radiation pressure on the observed Ly absorption
- The space weather around the exoplanet GJ 436 b. II. Stellar wind-exoplanet interactions
- MOVES V. Modelling star-planet magnetic interactions of HD 189733
- Space Weather-driven Variations in Ly Absorption Signatures of Exoplanet Atmospheric Escape: MHD Simulations and the Case of AU Mic b
- On the Fast Magnetic Rotator Regime of Stellar Winds
- Astrophysical Conditions for Planetary Habitability
- On Earth's habitability over the Sun's main-sequence history: joint influence of space weather and Earth's magnetic field evolution
- Evolution of Earth-like extended exospheres orbiting solar-like stars
- Large-scale structures in the stellar wind of fast-rotating stars spawned by the presence of Earth-like planets
- Stellar winds and planetary atmospheres