Satellites Form Fast & Late: a Population Synthesis for the Galilean Moons
arXiv:1801.06094 · doi:10.1093/mnras/sty2163
Abstract
The satellites of Jupiter are thought to form in a circumplanetary disc. Here we address their formation and orbital evolution with a population synthesis approach, by varying the dust-to-gas ratio, the disc dispersal timescale and the dust refilling timescale. The circumplanetary disc initial conditions (density and temperature) are directly drawn from the results of 3D radiative hydrodynamical simulations. The disc evolution is taken into account within the population synthesis. The satellitesimals were assumed to grow via streaming instability. We find that the moons form fast, often within years, due to the short orbital timescales in the circumplanetary disc. They form in sequence, and many are lost into the planet due to fast type I migration, polluting Jupiter's envelope with typically 15 Earth-masses of metals. The last generation of moons can form very late in the evolution of the giant planet, when the disc has already lost more than the 99% of its mass. The late circumplanetary disc is cold enough to sustain water ice, hence not surprisingly the 85% of the moon population has icy composition. The distribution of the satellite-masses is peaking slightly above Galilean masses, up until a few Earth-masses, in a regime which is observable with the current instrumentation around Jupiter-analog exoplanets orbiting sufficiently close to their host stars. We also find that systems with Galilean-like masses occur in 20% of the cases and they are more likely when discs have long dispersion timescales and high dust-to-gas ratios.
15 pages, 17 figures. Accepted by MNRAS, please check the final published version
References in corpus (6)
- A comparative study of disc-planet interaction
- Toward a Deterministic Model of Planetary Formation V. Accumulation Near the Ice Line
- Circumplanetary disks around young giant planets: a comparison between core-accretion and disk instability
- Observability of Forming Planets and their Circumplanetary Disks I. -- Parameter Study for ALMA
- Growth and evolution of satellites in a Jovian massive disc
- Origin of Europa and the Galilean Satellites
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