Terrestrial planet formation in low eccentricity warm-Jupiter systems
arXiv:0902.0052 · doi:10.1051/0004-6361/200811305
Abstract
We examine the effect of giant planet migration on the formation of inner terrestrial planet systems. We consider situations in which the giant planet halts migration at semi-major axes in the range 0.13 - 1.7 AU due to gas disk dispersal. An N-body code is employed that is linked to a viscous gas disk algorithm capable of simulating: gas loss via accretion onto the central star and photoevaporation; gap formation by the giant planet; type II migration of the giant; optional type I migration of protoplanets; gas drag on planetesimals. We find that most of the inner system planetary building blocks survive the passage of the giant planet, either by being shepherded inward or scattered into exterior orbits. Systems of one or more hot-Earths are predicted to form and remain interior to the giant planet, especially if type II migration has been limited, or where type I migration has affected protoplanetary dynamics. Habitable planets in low eccentricity warm-Jupiter systems appear possible if the giant planet makes a limited incursion into the outer regions of the habitable zone (HZ), or traverses its entire width and ceases migrating at a radial distance of less than half that of the HZ's inner edge. We conclude that Type II migration does not prevent terrestrial planet formation.
Accepted for publication in A&A; 18 pages, 12 figures, 2 tables
References in corpus (13)
- Catalog of Nearby Exoplanets
- Habitable planets around the star Gl 581?
- Photoevaporation of protoplanetary discs II: evolutionary models and observable properties
- Three-dimensional simulations of multiple protoplanets embedded in a protostellar disc
- Exotic Earths: Forming Habitable Worlds with Giant Planet Migration
- Formation of Earth-like Planets During and After Giant Planet Migration
- Massive planet migration: Theoretical predictions and comparison with observations
- Mean motion resonances from planet-planet scattering
- The habitability of super-Earths in Gliese 581
- On the formation of terrestrial planets in hot-Jupiter systems
- Eccentricity evolution of giant planet orbits due to circumstellar disk torques
- The effect of type I migration on the formation of terrestrial planets in hot-Jupiter systems
- Protoplanet Magnetosphere Interactions
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- On the formation of planetary systems via oligarchic growth in thermally evolving viscous discs
- The destruction of inner planetary systems during high-eccentricity migration of gas giants
- The Mass Budget of Planet Forming Discs: Isolating the Epoch of Planetesimal Formation
- Pebbles versus Planetesimals: The case of Trappist-1
- Global models of planetary system formation in radiatively-inefficient protoplanetary discs
- Terrestrial Planet Formation in the Presence of Migrating Super-earths
- The Compositional Diversity of Extrasolar Terrestrial Planets: II. Migration Simulations
- Solar System Physics for Exoplanet Research
- Terrestrial planets across space and time
- On the Detection of (Habitable) Super-Earths Around Low-Mass Stars Using Kepler and Transit Timing Variation Method
- N-body Simulations of Terrestrial Planet Formation under the Influence of a Hot Jupiter
- Variations on Debris Disks III. Collisional Cascades and Giant Impacts in the Terrestrial Zones of Solar-type Stars
- The Formation and Dynamics of Super-Earth Planets
- Predicting the incidence of planets and debris discs as a function of stellar mass
- Planetary formation and water delivery in the habitable zone around solar-type stars in different dynamical environments
- Super-Earths: A New Class of Planetary Bodies
- TAPAS IV. TYC 3667-1280-1 b - the most massive red giant star hosting a warm Jupiter
- Giant planets: good neighbors for habitable worlds?
- Evolution of galaxy habitability
- TOI-1670 b and c: An Inner Sub-Neptune with an Outer Warm Jupiter Unlikely to have Originated from High-Eccentricity Migration
- Formation of Solar system analogues II: post-gas phase growth and water accretion in extended discs via N-body simulations
- Terrestrial Planets Formation under Migration: the Systems near 4:2:1 Mean Motion Resonance
- Migrating Jupiter up to the habitable zone: Earth-like planet formation and water delivery
- The Lick-Carnegie Survey: A New Two-Planet System Around the Star HD 207832
- Orbital Dynamics and the Evolution of Planetary Habitability in the AU Mic System
- Debris discs and comet populations around Sun-like stars: the Solar System in context