The Interaction of Venus-like, M-dwarf Planets with the Stellar Wind of Their Host Star
arXiv:1504.06326 · doi:10.1088/0004-637X/806/1/41
Abstract
We study the interaction between the atmospheres of Venus-like, non-magnetized exoplanets orbiting an M-dwarf star, and the stellar wind using a multi-species Magnetohydrodynaic (MHD) model. We focus our investigation on the effect of enhanced stellar wind and enhanced EUV flux as the planetary distance from the star decreases. Our simulations reveal different topologies of the planetary space environment for sub- and super-Alfvenic stellar wind conditions, which could lead to dynamic energy deposition in to the atmosphere during the transition along the planetary orbit. We find that the stellar wind penetration for non-magnetized planets is very deep, up to a few hundreds of kilometers. We estimate a lower limit for the atmospheric mass-loss rate and find that it is insignificant over the lifetime of the planet. However, we predict that when accounting for atmospheric ion acceleration, a significant amount of the planetary atmosphere could be eroded over the course of a billion years.
13 pages, 7 figures, accepted to ApJ
References in corpus (4)
- Atmospheric Escape from Hot Jupiters
- Magnetospheric Structure and Atmospheric Joule Heating of Habitable Planets Orbiting M-dwarf Stars
- The effects of stellar winds on the magnetospheres and potential habitability of exoplanets
- Modeling the Young Sun's Solar Wind and its Interaction with Earth's Paleomagnetosphere
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- The Threatening Environment of the TRAPPIST-1 Planets
- Assessing magnetic torques and energy fluxes in close-in star-planet systems
- Effect of stellar wind induced magnetic fields on planetary obstacles of non-magnetized hot Jupiters
- Simulating the interaction of a non-magnetized planet with the stellar wind produced by a sun-like star using the FLASH Code