A periodic configuration of the Kepler-25 planetary system?
arXiv:1803.10285 · doi:10.1093/mnras/sty1972
Abstract
We study proximity of the Kepler-25 planetary system to a periodic configuration, which is known to be the final state of a system that undergoes smooth migration resulting from the planet-disc interaction. We show that the system is close to the periodic configuration of 2:1 mean motion resonance (MMR) what indicates that its past migration was neither disturbed significantly by turbulence in the disc nor the orbits were perturbed by planetesimals that left after the disc dispersal. We show that, because of the TTV model degeneracy, a periodic configuration is difficult to be found when the standard modelling of the transit timing variations (TTVs) is used. The TTV signal of a periodic configuration (with anti-aligned apsidal lines) may be misinterpreted as an aligned non-resonant system. We demonstrate that the standard MCMC modelling of the Kepler-25 TTVs is very sensitive to an a~priori information on the eccentricities (prior probability distributions). Wide priors (of the order of the ones typically used in the literature) result in favouring the aligned non-resonant configurations with small planets' masses and moderate eccentricities, while for the narrower priors the most likely are the anti-aligned resonant systems with larger masses and very low eccentricities.
accepted to MNRAS, 11 pages, 10 figures
References in corpus (11)
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Mass-Radius Relation for Rocky Planets based on PREM
- Planetary Candidates Observed by Kepler V: Planet Sample from Q1-Q12 (36 Months)
- Secure TTV Mass Measurements: Ten Kepler Exoplanets between 3 and 8 Earth Masses with Diverse Densities and Incident Fluxes
- A Dynamical Analysis of the Kepler-80 System of Five Transiting Planets
- Planetesimal Interactions Can Explain the Mysterious Period Ratios of Small Near-Resonant Planets
- On the evolution of mean motion resonances through stochastic forcing: Fast and slow libration modes and the origin of HD128311
- Tidal dissipation and the formation of Kepler near-resonant planets
- Resonance breaking due to dissipation in planar planetary systems
- Planetary migration and the origin of the 2:1 and 3:2 (near)-resonant population of close-in exoplanets
- The origin and 9:7 MMR dynamics of the Kepler-29 system
Cited by in corpus (5)
- DREAM I. Orbital architecture orrery
- Long-Period Giant Companions to Three Compact, Multiplanet Systems
- TOI-216b and TOI-216c: Two warm, large exoplanets in or slightly wide of the 2:1 orbital resonance
- DREAM: III.A helium survey in exoplanets on the edge of the hot Neptune desert with GIANO-B@TNG
- Two Super-Earths in the 3:2 MMR around KOI-1599