Dynamical avenues for Mercury's origin I: The lone survivor of a primordial generation of short-period proto-planets
arXiv:2104.11246 · doi:10.3847/1538-3881/abf09f
Abstract
The absence of planets interior to Mercury continues to puzzle terrestrial planet formation models, particularly when contrasted with the relatively high derived occurrence rates of short-period planets around Sun-like stars. Recent work proposed that the majority of systems hosting hot super-Earths attain their orbital architectures through an epoch of dynamical instability after forming in quasi-stable, tightly packed configurations. Isotopic evidence seems to suggest that the formation of objects in the super-Earth mass regime is unlikely to have occurred in the solar system as the terrestrial-forming disk is thought to have been significantly mass-deprived starting around 2 Myr after CAI; a consequence of either Jupiter's growth or an intrinsic disk feature. Nevertheless, terrestrial planet formation models and high-resolution investigations of planetesimal dynamics in the gas disk phase occasionally find that quasi-stable proto-planets with masses comparable to that of Mars emerge in the vicinity of Mercury's modern orbit. In this paper, we investigate whether it is possible for a primordial configuration of such objects to be cataclysmically destroyed in a manner that leaves Mercury behind as the sole survivor without disturbing the other terrestrial worlds. We use numerical simulations to show that this scenario is plausible. In many cases, the surviving Mercury analog experiences a series of erosive impacts; thereby boosting its Fe/Si ratio. A caveat of our proposed genesis scenario for Mercury is that Venus typically experiences at least one late giant impact.
18 pages, 15 figures, 1 table, accepted for publication in AJ. Summary available at https://youtu.be/Mu762MjRxtE (video)
References in corpus (27)
- Formation of planetary systems by pebble accretion and migration: How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
- The timeline of the Lunar bombardment - revisited
- Close-in planetesimal formation by pile-up of drifting pebbles
- Formation of planetary systems by pebble accretion and migration: Growth of gas giants
- The nature and origins of sub-Neptune size planets
- Abundant Circumstellar Silica Dust and SiO Gas Created by a Giant Hypervelocity Collision in the ~12 Myr HD172555 System
- Jupiter's Decisive Role in the Inner Solar System's Early Evolution
- Lunar and Terrestrial Planet Formation in the Grand Tack Scenario
- The early instability scenario: terrestrial planet formation during the giant planet instability, and the effect of collisional fragmentation
- Dynamical evidence for an early giant planet instability
- Formation, stratification, and mixing of the cores of Earth and Venus
- Planetesimal Population Synthesis: Pebble Flux Regulated Planetesimal Formation
- Constraining the giant planets' initial configuration from their evolution: implications for the timing of the planetary instability
- Chaotic Disintegration of the Inner Solar System
- Outward migration of Jupiter and Saturn in 3:2 or 2:1 resonance in radiative disks: implications for the Grand Tack and Nice models
- Formation and accretion history of terrestrial planets from runaway growth through to late time: implications for orbital eccentricity
- Impact bombardment chronology of the terrestrial planets from 4.5 Ga to 3.5 Ga
- Terrestrial Planet Formation from an Annulus
- The Role of Early Giant Planet Instability in the Terrestrial Planet Formation
- Born eccentric: constraints on Jupiter and Saturn's pre-instability orbits
- Formation of compact systems of super-Earths via dynamical instabilities and giant impacts
- A record of the final phase of giant planet migration fossilized in the asteroid belt's orbital structure
- Growing Mars fast: High-resolution GPU simulations of embryo formation
- Constraints on the pre-impact orbits of Solar System giant impactors
- Dynamical Constraints on Mercury's Collisional Origin
- Constraining the parameter space for the Solar Nebula
- Can narrow disks in the inner solar system explain the four terrestrial planets?
Cited by in corpus (14)
- Terrestrial planet formation from a ring
- Forming Iron-rich Planets with Giant Impacts
- Observation uncertainty effects on the precision of interior planetary parameters
- The early instability scenario: Mars' mass explained by Jupiter's orbit
- The Exosphere as a Boundary: Origin and Evolution of Airless Bodies in the Inner Solar System and Beyond Including Planets with Silicate Atmospheres
- Mercury as the relic of Earth and Venus' outward migration
- Explaining Mercury via a single giant impact is highly unlikely
- Rethinking the role of the giant planet instability in terrestrial planet formation models
- Mercury's formation within the Early Instability Scenario
- Building Terrestrial Planets: Why results of perfect-merging simulations are not quantitatively reliable approximations to accurate modeling of terrestrial planet formation
- Terrestrial planet formation during giant planet formation and giant planet migration I: The first 5 million years
- V488 Per revisited: no strong mid-infrared emission features and no evidence for stellar/sub-stellar companions
- Origins of Mercury's Big Heart of Iron: Exploring Pathways to Form High Core Mass Fraction (CMF) Planets via N-body Simulations
- Diversity of Exoplanets