Formation of Super-Earths by Tidally-Forced Turbulence
arXiv:1711.00594 · doi:10.3847/1538-4357/aa9849
Abstract
The Kepler observations indicate that many exoplanets are super-Earths, which brings about a puzzle for the core-accretion scenario. Since observed super-Earths are in the range of critical mass, they would accrete gas efficiently and become gas giants. Theoretically, super-Earths are predicted to be rare in the core-accretion framework. To resolve this contradiction, we propose that the tidally-forced turbulent diffusion may affect the heat transport inside the planet. Thermal feedback induced by turbulent diffusion is investigated. We find that the tidally-forced turbulence would generate pseudo-adiabatic regions within radiative zones, which pushes the radiative-convective boundaries (RCBs) inwards. This would decrease the cooling luminosity and enhance the Kelvin-Helmholtz (KH) timescale. For a given lifetime of protoplanetary disks (PPDs), there exists a critical threshold for the turbulent diffusivity, . If , the KH timescale is longer than the disk lifetime and the planet would become a super-Earth rather than a gas giant. We find that even a small value of turbulent diffusion has influential effects on evolutions of super-Earths. increases with the core mass. We further ascertain that, within the minimum mass extrasolar nebula (MMEN), increases with the semi-major axis. This may explain the feature that super-Earths are common in inner PPD regions, while gas giants are common in the outer PPD regions. The predicted envelope mass fraction (EMF) is not fully consistent with observations. We discuss physical processes, such as late core assembly and mass loss mechanisms, that may be operating during super-Earth formation.
6 figures, ApJ accepted, comments are welcome
References in corpus (15)
- Atmospheric Escape from Hot Jupiters
- The Occurrence and Mass Distribution of Close-in Super-Earths, Neptunes, and Jupiters
- Models of the in situ formation of detected extrasolar giant planets
- Make Super-Earths, Not Jupiters: Accreting Nebular Gas onto Solid Cores at 0.1 AU and Beyond
- A giant planet undergoing extreme ultraviolet irradiation by its hot massive-star host
- Reduced gas accretion on super-Earths and ice giants
- Hot super-Earths and giant planet cores from different migration histories
- An Atmospheric Structure Equation for Grain Growth
- Grain opacity and the bulk composition of extrasolar planets. I. Results from scaling the ISM opacity
- Hot-Jupiter Inflation due to Deep Energy Deposition
- A New Model of Roche-lobe Overflow for Short-Period Gaseous Planets and Binary Stars
- Ohmic Dissipation in Mini-Neptunes
- Instability of mass transfer in a planet-star system
- Tidal Heating of Young Super-Earth Atmospheres
- Roche-lobe overflow in eccentric planet-star systems
Cited by in corpus (6)
- The Preservation of Super Earths and the Emergence of Gas Giants after Their Progenitor Cores have Entered the Pebble Isolation Phase
- Atmospheric Recyling of Volatiles by Pebble-Accreting Planets
- The Critical Core Mass of Rotating Planets
- Effects of Self-gravity on Mass-loss of the Post-impact Super-Earths
- Ohmic dissipation during the formation of super-Earth
- In situ formation of super-Earth/sub-Neptune driven by the planetary rotation