Close-in giant planets lose mass fastest when young: a 0.3-Jupiter-mass planet can lose up to 20% of its mass, a 1-Jupiter-mass planet loses under 1%, and hydrogen-alpha transit signals fade after roughly 1.2 billion years.
Effects of Radiation Pressure on the Evaporative Wind of HD 209458b
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abstract
The role of radiation pressure in shaping exoplanet photoevaporation remains a topic of contention. Radiation pressure from the exoplanet's host star has been proposed as a mechanism to drive the escaping atmosphere into a "cometary" tail and explain the high velocities observed in systems where mass loss is occurring. In this paper we present results from high-resolution 3-D hydrodynamic simulations of a planet similar to HD 209458b. We self-consistently launch a wind flowing outward from the planet by calculating the ionization and heating resulting from incident high-energy radiation, and account for radiation pressure. We first present a simplified calculation, setting a limit on the Lyman-$\alpha$ flux required to drive the photo-evaporated planetary material to larger radii and line-of-sight velocities. We then present the results of our simulations, which confirm the limits determined by our analytic calculation. We thus demonstrate that, within the limits of our hydrodynamic simulation and for the Lyman-$\alpha$ fluxes expected for HD 209458, radiation pressure is unlikely to significantly affect photoevaporative winds or to explain the high velocities at which wind material is observed, though further possibilities remain to be investigated.
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astro-ph.EP 1years
2019 1verdicts
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Evolution of atmospheric escape in close-in giant planets and their associated Ly$\alpha$ and H$\alpha$ transit predictions
Close-in giant planets lose mass fastest when young: a 0.3-Jupiter-mass planet can lose up to 20% of its mass, a 1-Jupiter-mass planet loses under 1%, and hydrogen-alpha transit signals fade after roughly 1.2 billion years.