Interior heating of rocky exoplanets from stellar flares with application to TRAPPIST-1
arXiv:2211.06140 · doi:10.3847/2041-8213/aca287
Abstract
Many stars of different spectral types with planets in the habitable zone are known to emit flares. Until now, studies that address the long-term impact of stellar flares and associated Coronal Mass Ejections (CMEs) assumed that the planet's interior remains unaffected by interplanetary CMEs, only considering the effect of plasma/UV interactions on the atmosphere of planets. Here, we show that the magnetic flux carried by flare-associated CMEs results in planetary interior heating by Ohmic dissipation and leads to a variety of interior--exterior interactions. We construct a physical model to study this effect and apply it to the TRAPPIST-1 star whose flaring activity has been constrained by Kepler observations. Our model is posed in a stochastic manner to account for uncertainty and variability in input parameters. Particularly for the innermost planets, our results suggest that the heat dissipated in the silicate mantle is both of sufficient magnitude and longevity to drive geological processes and hence facilitate volcanism and outgassing of the TRAPPIST-1 planets. Furthermore, our model predicts that Joule heating can further be enhanced for planets with an intrinsic magnetic field compared to those without. The associated volcanism and outgassing may continuously replenish the atmosphere and thereby mitigate the erosion of the atmosphere caused by the direct impact of flares and CMEs. To maintain consistency of atmospheric and geophysical models, the impact of stellar flares and CMEs on atmospheres of close-in exoplanetary systems needs to be studied in conjunction with the effect on planetary interiors.
References in corpus (16)
- Power-law distributions in empirical data
- Statistical properties of superflares on solar-type stars based on 1-min cadence data
- A Temporary Epoch of Stalled Spin-Down for Low-Mass Stars: Insights from NGC 6811 with Gaia and Kepler
- The Stellar CME-flare relation: What do historic observations reveal?
- On the Age of the TRAPPIST-1 System
- A stellar flare-coronal mass ejection event revealed by X-ray plasma motions
- Magma oceans and enhanced volcanism on TRAPPIST-1 planets due to induction heating
- TRAPPIST-1: Global Results of the Spitzer Exploration Science Program {\it Red Worlds}
- HST/WFC3 transmission spectroscopy of the cold rocky planet TRAPPIST-1h
- Giant white-light flares on fully convective stars occur at high latitudes
- Time-variable electromagnetic star-planet interaction: The TRAPPIST-1 system as an exemplary case
- Stellar coronal mass ejections II. Constraints from spectroscopic observations
- Frequency of Coronal Mass Ejection Impacts with Early Terrestrial Planets and Exoplanets Around Active Solar-like Stars
- Activity of TRAPPIST-1 analogue stars observed with TESS
- Ohmic heating of asteroids around magnetic stars
- A Readily Implemented Atmosphere Sustainability Constraint for Terrestrial Exoplanets Orbiting Magnetically Active Stars
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- Temperature-chemistry coupling in the evolution of gas giant atmospheres driven by stellar flares
- A Time-Efficient, Data Driven Modelling Approach For Predicting The Geomagnetic Impact of Coronal Mass Ejections
- Estimation of the tidal heating in the TRAPPIST-1 planets. Influence of the internal structure
- Interaction of Trappist-1 exoplanets with coronal mass ejections: Joule heating, Poynting fluxes and the role of magnetic fields