Torque on an exoplanet from an anisotropic evaporative wind
arXiv:1504.01680 · doi:10.1093/mnras/stv1386
Abstract
Winds from short-period Earth and Neptune mass exoplanets, driven by high energy radiation from a young star, may evaporate a significant fraction of a planet's mass. If the momentum flux from the evaporative wind is not aligned with the planet/star axis, then it can exert a torque on the planet's orbit. Using steady-state one-dimensional evaporative wind models we estimate this torque using a lag angle that depends on the product of the speed of the planet's upper atmosphere and a flow timescale for the wind to reach its sonic radius. We also estimate the momentum flux from time-dependent one-dimensional hydrodynamical simulations. We find that only in a very narrow regime in planet radius, mass and stellar radiation flux is a wind capable of exerting a significant torque on the planet's orbit. Similar to the Yarkovsky effect, the wind causes the planet to drift outward if atmospheric circulation is prograde (super-rotating) and in the opposite direction if the circulation is retrograde. A close-in super Earth mass planet that loses a large fraction of its mass in a wind could drift a few percent of its semi-major axis. While this change is small, it places constraints on the evolution of resonant pairs such as Kepler 36 b and c.
12 pages, 7 figures, submitted to MNRAS
References in corpus (9)
- KEPLER's First Rocky Planet: Kepler-10b
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- Resonant Repulsion of Kepler Planet Pairs
- Atmospheric escape from HD 189733b observed in HI Lyman-alpha: detailed analysis of HST/STIS September 2011 observations
- Magnetically controlled mass loss from extrasolar planets in close orbits
- X-ray enabled MOCASSIN: a 3D code for photoionized media
- Radiative Thrusters on Close-in Extrasolar Planets
- Spin evolution of Earth-sized exoplanets, including atmospheric tides and core-mantle friction
- A proposal for community driven and decentralized astronomical databases and the Open Exoplanet Catalogue
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- Photoevaporative Flows From Exoplanet Atmospheres: A 3-D Radiative Hydrodynamic Parameter Study
- Orbital Evolution of Close-in Super-Earths Driven by Atmospheric Escape
- Orbital Migration through Atmospheric Mass Loss