Pebbles versus planetesimals: the outcomes of population synthesis models
arXiv:2006.04121 · doi:10.1051/0004-6361/202038042
Abstract
In the core accretion scenario, a massive core forms first and then accretes an envelope. When discussing how this core forms some divergences appear. First scenarios of planet formation predict the accretion of km-sized bodies, called planetesimals, while more recent works suggest growth by accretion of pebbles, which are cm-sized objects. These two accretion models are often discussed separately and we aim here at comparing the outcomes of the two models with identical initial conditions. We use two distinct codes: one computing planetesimal accretion, the other pebble accretion. Using a population synthesis approach, we compare planet simulations and study the impact of the two solid accretion models, focussing on the formation of single planets. We find that the planetesimal model predicts the formation of more giant planets, while the pebble accretion model forms more super-Earth mass planets. This is due to the pebble isolation mass concept, which prevents planets formed by pebble accretion to accrete gas efficiently before reaching Miso. This translates into a population of planets that are not heavy enough to accrete a consequent envelope but that are in a mass range where type I migration is very efficient. We also find higher gas mass fractions for a given core mass for the pebble model compared to the planetesimal one caused by luminosity differences. This also implies planets with lower densities which could be confirmed observationally. Focusing on giant planets, we conclude that the sensitivity of their formation differs: for the pebble accretion model, the time at which the embryos are formed, as well as the period over which solids are accreted strongly impact the results, while for the planetesimal model it depends on the planetesimal size and on the splitting in the amount of solids available to form planetesimals.
16 pages, 14 figures
References in corpus (14)
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- The structure of protoplanetary discs around evolving young stars
- Halting Type I planet migration in non-isothermal disks
- Planetesimal formation starts at the snow line
- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- On the Absorption and Redistribution of Energy in Irradiated Planets
- Global Models of Planet Formation and Evolution
- Formation of dust-rich planetesimals from sublimated pebbles inside of the snow line
- Deserts and pile-ups in the distribution of exoplanets due to photoevaporative disc clearing
- Grain opacity and the bulk composition of extrasolar planets. I. Results from scaling the ISM opacity
- Planetesimal Population Synthesis: Pebble Flux Regulated Planetesimal Formation
- Pebble-driven planet formation for TRAPPIST-1 and other compact systems
- The Galilean Satellites Formed Slowly from Pebbles
- In situ accretion of gaseous envelopes on to planetary cores embedded in evolving protoplanetary discs
Cited by in corpus (12)
- Density, not radius, separates rocky and water-rich small planets orbiting M dwarf stars
- A Tale of Planet Formation: From Dust to Planets
- Predicted diversity in water content of terrestrial exoplanets orbiting M dwarfs
- Understanding planet formation using microgravity experiments
- A super-Earth and a mini-Neptune near the 2:1 MMR straddling the radius valley around the nearby mid-M dwarf TOI-2096
- From Dust to Planets I: Planetesimal and Embryo Formation
- Unified simulations of planetary formation and atmospheric evolution II: Rapid disk clearing by photoevaporation yields low-mass super-Earth atmospheres
- Global N-body simulations of circumbinary planet formation around Kepler-16 and -34 analogues I: Exploring the pebble accretion scenario
- Forbidden planetesimals
- Planet formation and disk mass dependence in a pebble-driven scenario for low mass stars
- Destruction of eccentric planetesimals by ram pressure and erosion
- Accretion of eroding pebbles and planetesimals in planetary envelopes