The Kepler-11 system: evolution of the stellar high-energy emission and {initial planetary} atmospheric mass fractions
arXiv:1910.09877 · doi:10.1051/0004-6361/201936581
Abstract
The atmospheres of close-in planets are strongly influenced by mass loss driven by the high-energy (X-ray and extreme ultraviolet, EUV) irradiation of the host star, particularly during the early stages of evolution. We recently developed a framework to exploit this connection and enable us to recover the past evolution of the stellar high-energy emission from the present-day properties of its planets, if the latter retains some remnants of their primordial hydrogen-dominated atmospheres. Furthermore, the framework can also provide constraints on planetary initial atmospheric mass fractions. The constraints on the output parameters improve when more planets can be simultaneously analysed. This makes the Kepler-11 system, which hosts six planets with bulk densities between 0.66 and 2.45g cm^{-3}, an ideal target. Our results indicate that the star has likely evolved as a slow rotator (slower than 85\% of the stars with similar masses), corresponding to a high-energy emission at 150 Myr of between 1-10 times that of the current Sun. We also constrain the initial atmospheric mass fractions for the planets, obtaining a lower limit of 4.1% for planet c, a range of 3.7-5.3% for planet d, a range of 11.1-14% for planet e, a range of 1-15.6% for planet f, and a range of 4.7-8.7% for planet g assuming a disc dispersal time of 1 Myr. For planet b, the range remains poorly constrained. Our framework also suggests slightly higher masses for planets b, c, and f than have been suggested based on transit timing variation measurements. We coupled our results with published planet atmosphere accretion models to obtain a temperature (at 0.25 AU, the location of planet f) and dispersal time of the protoplanetary disc of 550 K and 1 Myr, although these results may be affected by inconsistencies in the adopted system parameters.
8 pages, 3 figures
References in corpus (13)
- The Transiting Exoplanet Survey Satellite
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- Tidal Evolution of Close-in Extra-Solar Planets
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- The Extreme Ultraviolet and X-Ray Sun in Time: High-Energy Evolutionary Tracks of a Solar-Like Star
- Stellar Winds on the Main-Sequence II: the Evolution of Rotation and Winds
- On Correlated-noise Analyses Applied To Exoplanet Light Curves
- Aeronomical constraints to the minimum mass and maximum radius of hot low-mass planets
- Tidal dissipation and the formation of Kepler near-resonant planets
- The sub-Neptune desert and its dependence on stellar type: Controlled by lifetime X-ray irradiation
- Hydrodynamic simulations of captured protoatmospheres around Earth-like planets
- Resonance breaking due to dissipation in planar planetary systems
- Close-in sub-Neptunes reveal the past rotation history of their host stars: atmospheric evolution of planets in the HD3167 and K2-32 planetary systems
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