Atmospheric escape from hot Jupiters
Open Access
- 2 April 2004
- journal article
- letter
- Published by EDP Sciences in Astronomy & Astrophysics
- Vol. 418 (1) , L1-L4
- https://doi.org/10.1051/0004-6361:20040106
Abstract
The extra-solar planet HD 209458b has been found to have an extended atmosphere of escaping atomic hydrogen (Vidal-Madjar et al. 2003), suggesting that “hot Jupiters” closer to their parent stars could evaporate. Here we estimate the atmospheric escape (so called evaporation rate) from hot Jupiters and their corresponding life time against evaporation. The calculated evaporation rate of HD 209458b is in excellent agreement with the H i Lyman-α observations. We find that the tidal forces and high temperatures in the upper atmosphere must be taken into account to obtain reliable estimate of the atmospheric escape. Because of the tidal forces, we show that there is a new escape mechanism at intermediate temperatures at which the exobase reaches the Roche lobe. From an energy balance, we can estimate plausible values for the planetary exospheric temperatures, and thus obtain typical life times of planets as a function of their mass and orbital distance.Keywords
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This publication has 11 references indexed in Scilit:
- Atmospheric Loss of Exoplanets Resulting from Stellar X-Ray and Extreme-Ultraviolet HeatingThe Astrophysical Journal, 2003
- Source of Atomic Hydrogen in the Atmosphere of HD 209458bThe Astrophysical Journal, 2003
- An extended upper atmosphere around the extrasolar planet HD209458bNature, 2003
- An extrasolar planet that transits the disk of its parent starNature, 2003
- Orbital Evolution and Migration of Giant Planets: Modeling Extrasolar PlanetsThe Astrophysical Journal, 1998
- Giant Planets at Small Orbital DistancesThe Astrophysical Journal, 1996
- Astronomical questions of origin and survivalNature, 1995
- A Jupiter-mass companion to a solar-type starNature, 1995
- The dynamics of a rapidly escaping atmosphere: Applications to the evolution of Earth and VenusIcarus, 1981
- Soft electrons as a possible heat source for Jupiter's thermospherePlanetary and Space Science, 1977