Dynamics and Origins of the Near-Resonant Kepler Planets
arXiv:2211.16725 · doi:10.3847/1538-4357/acc9ae
Abstract
Short-period super-Earths and mini-Neptunes encircle more than of Sun-like stars and are relatively amenable to direct observational characterization. Despite this, environments in which these planets accrete are difficult to probe directly. Nevertheless, pairs of planets that are close to orbital resonances provide a unique window into the inner regions of protoplanetary disks, as they preserve the conditions of their formation, as well as the early evolution of their orbital architectures. In this work, we present a novel approach toward quantifying transit timing variations within multi-planetary systems and examine the near-resonant dynamics of over 100 planet pairs detected by \textit{Kepler}. Using an integrable model for first-order resonances, we find a clear transition from libration to circulation of the resonant angle at a period ratio of wide of exact resonance. The orbital properties of these systems indicate that they systematically lie far away from the resonant forced equilibrium. Cumulatively our modeling indicates that while orbital architectures shaped by strong disk damping or tidal dissipation are inconsistent with observations, a scenario where stochastic stirring by turbulent eddies augments the dissipative effects of protoplanetary disks reproduces several features of the data.
Accepted to ApJ
References in corpus (31)
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Close-in planetesimal formation by pile-up of drifting pebbles
- Resonant Repulsion of Kepler Planet Pairs
- Hybrid Symplectic Integrators for Planetary Dynamics
- Global Models of Planet Formation and Evolution
- 3D Radiation Non-ideal Magnetohydrodynamical Simulations Of The Inner Rim In Protoplanetary Disks
- Predicting the long-term stability of compact multiplanet systems
- Planetesimal Interactions Can Explain the Mysterious Period Ratios of Small Near-Resonant Planets
- Obliquity-Driven Sculpting of Exoplanetary Systems
- On the evolution of mean motion resonances through stochastic forcing: Fast and slow libration modes and the origin of HD128311
- Tidally-Induced Radius Inflation of Sub-Neptunes
- Tidal dissipation and the formation of Kepler near-resonant planets
- TOI-1136 is a Young, Coplanar, Aligned Planetary System in a Pristine Resonant Chain
- An Analytic Criterion for Turbulent Disruption of Planetary Resonances
- Evolutionary outcomes for pairs of planets undergoing orbital migration and circularization: second order resonances and observed period ratios in Kepler's planetary systems
- The role of dissipative evolution for three-planet, near-resonant extrasolar systems
- TOI-216: Resonant Constraints on Planet Migration
- Alleviating the transit timing variation bias in transit surveys. I. RIVERS: Method and detection of a pair of resonant super-Earths around Kepler-1705
- Resonant Chains of Exoplanets: Libration Centers for Three-body Angles
- K2-19b and c are in a 3:2 Commensurability but out of Resonance: A Challenge to Planet Assembly by Convergent Migration
- How Close are Compact Multi-Planet Systems to the Stability Limit?
- Proximity of exoplanets to first-order mean-motion resonances
- Following up the Kepler field: Masses of Targets for transit timing and atmospheric characterization
- Exciting the TTV Phases of Resonant Sub-Neptunes
- A Tidal Origin for a 3-body Resonance in Kepler-221
- Modeling Radial Velocity Data of Resonant Planets to Infer Migration Histories
- Effects of Planetesimal Scattering: Explaining the Observed Offsets from Period Ratios 3:2 and 2:1
- Is the orbital distribution of multiplanet systems influenced by pure three-planet resonances?
- Apsidal Alignment and Anti-Alignment of Planets in Mean-Motion Resonance: Disk-Driven Migration and Eccentricity Driving
- On the importance of wave planet interactions for the migration of two super-Earths embedded in a protoplanetary disk
- An Implementation of Stochastic Forces for the N-body code REBOUND
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- The GAPS Programme at TNG. LIX. A characterisation study of the 300 Myr old multi-planetary system orbiting the star BD+40 2790 (TOI-2076)
- Higher-Order Mean-Motion Resonances Can Form in Type-I Disk Migration