Origin Scenarios for the Kepler 36 Planetary System
arXiv:1304.6124 · doi:10.1093/mnras/stt1442
Abstract
We explore scenarios for the origin of two different density planets in the Kepler 36 system in adjacent orbits near the 7:6 mean motion resonance. We find that fine tuning is required in the stochastic forcing amplitude, the migration rate and planet eccentricities to allow two convergently migrating planets to bypass mean motion resonances such as the 4:3, 5:4 and 6:5, and yet allow capture into the 7:6 resonance. Stochastic forcing can eject the system from resonance causing a collision between the planets, unless the disk inducing migration and stochastic forcing is depleted soon after resonance capture. We explore a scenario with approximately Mars mass embryos originating exterior to the two planets and migrating inwards toward two planets. We find that gravitational interactions with embryos can nudge the system out of resonances. Numerical integrations with about a half dozen embryos can leave the two planets in the 7:6 resonance. Collisions between planets and embryos have a wide distribution of impact angles and velocities ranging from accretionary to disruptive. We find that impacts can occur at sufficiently high impact angle and velocity that the envelope of a planet could have been stripped, leaving behind a dense core. Some of our integrations show the two planets exchanging locations, allowing the outer planet that had experienced multiple collisions with embryos to become the innermost planet. A scenario involving gravitational interactions and collisions with embryos may account for both the proximity of the Kepler 36 planets and their large density contrast.
accepted for publication in MNRAS
References in corpus (9)
- Analytical protostellar disk models 1: the effect of internal dissipation and surface irradiation on the structure of disks and the location of the snow line around Sun-like stars
- A sub-Mercury-sized exoplanet
- Resonant Repulsion of Kepler Planet Pairs
- Disk-planets interactions and the diversity of period ratios in Kepler's multi-planetary systems
- On the evolution of mean motion resonances through stochastic forcing: Fast and slow libration modes and the origin of HD128311
- Brownian Motion in Planetary Migration
- Building Giant-Planet Cores at a Planet Trap
- Traditional formation scenarios fail to explain 4:3 mean motion resonances
- Two Super-Earths Orbiting the Solar Analogue HD41248 on the edge of a 7:5 Mean Motion Resonance
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- The effects of external planets on inner systems: multiplicities, inclinations, and pathways to eccentric warm Jupiters
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- Planetary migration and the origin of the 2:1 and 3:2 (near)-resonant population of close-in exoplanets
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- Stability Boundaries for Resonant Migrating Planet Pairs
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- Confirming the 3:2 Resonance Chain of K2-138
- So close, so different: characterization of the K2-36 planetary system with HARPS-N
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- Kepler-80 Revisited: Assessing the Participation of a Newly Discovered Planet in the Resonant Chain
- Discovery and Characterization of Kepler-36b
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