Building the Galilean moons system via pebble accretion and migration: A primordial resonant chain
arXiv:2104.02664 · doi:10.1093/mnras/stab986
Abstract
The origins of the Galilean satellites - namely Io, Europa, Ganymede, and Callisto - is not fully understood yet. Here we use N-body numerical simulations to study the formation of Galilean satellites in a gaseous circumplanetary disk around Jupiter. Our model includes the effects of pebble accretion, gas-driven migration, and gas tidal damping and drag. Satellitesimals in our simulations first grow via pebble accretion and start to migrate inwards. When they reach the trap at the disk inner edge, scattering events and collisions take place promoting additional growth. Growing satellites eventually reach a multi-resonant configuration anchored at the disk inner edge. Our best match to the masses of the Galilean satellites is produced in simulations where the integrated pebble flux is 1e-3 MJ. These simulations typically produce between 3 and 5 satellites. In our best analogues, adjacent satellite pairs are all locked in 2:1 mean motion resonances. However, they have also moderately eccentric orbits (0.1), unlike the current real satellites. We propose that the Galilean satellites system is a primordial resonant chain, similar to exoplanet systems as TRAPPIST-1, Kepler-223, and TOI-178. Callisto was probably in resonance with Ganymede in the past but left this configuration - without breaking the Laplacian resonance - via divergent migration due to tidal planet-satellite interactions. These same effects further damped the orbital eccentricities of these satellites down to their current values (0.001). Our results support the hypothesis that Io and Europa were born with water-ice rich compositions and lost all/most of their water afterwards. Firmer constraints on the primordial compositions of the Galilean satellites are crucial to distinguish formation models.
19 pages, 14 figures
References in corpus (20)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- Particle Stirring in Turbulent Gas Disks: Including Orbital Oscillations
- Origin of water in the inner Solar System: Planetesimals scattered inward during Jupiter and Saturn's rapid gas accretion
- Three-dimensional simulations of multiple protoplanets embedded in a protostellar disc
- A resonant chain of four transiting, sub-Neptune planets
- Meridional flows in the disk around a young star
- Six transiting planets and a chain of Laplace resonances in TOI-178
- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- Submillimeter emission associated with candidate protoplanets
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- Formation of Regular Satellites from Ancient Massive Rings in the Solar System
- Formation of Giant Planet Satellites
- Evidence for a circumplanetary disk around protoplanet PDS 70 b
- Challenges in Forming the Solar System's Giant Planet Cores via Pebble Accretion
- Formation of moon systems around giant planets: Capture and ablation of planetesimals as foundation for a pebble accretion scenario
- Prompt planetesimal formation beyond the snow line
- The Galilean Satellites Formed Slowly from Pebbles
- Pebble accretion at the origin of water in Europa
- Powering the Galilean Satellites with Moon-Moon Tides
- Origin of Europa and the Galilean Satellites
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