Chaotic quadruple secular evolution and the production of misaligned exomoons and Warm Jupiters in stellar multiples
arXiv:1710.05920 · doi:10.1093/mnras/stx3005
Abstract
We study the chaotic and secular evolution of hierarchical quadruple systems in the configuration, focusing on the evolution of mutual inclination of the inner binaries as the system undergoes coupled Lidov-Kozai (LK) oscillations. We include short-range forces (SRF; such as those due to tidal and rotational distortions) that control the eccentricity excitation of the inner binary. The evolution of mutual inclination is described, a priori, by two dimensionless parameters, $\pazocal{R}_0$, the ratio between the inner and outer LK time-scales and , the ratio between the SRF precession and the inner LK precession rates. We find that the chaotic zones for the mutual inclination depend mainly on $\pazocal{R}_0$, while controls mainly the range of eccentricity excitation. The mutual inclination evolves chaotically for $1\lesssim \pazocal{R}_0\lesssim 10$, leading to large misalignments. For $0.4 \lesssim \pazocal{R}_0 \lesssim 0.8$, the system could be weakly excited and produce bimodal distribution of mutual inclination angles. Our results can be applied to exomoons-planets in stellar binaries and Warm/Hot Jupiters in stellar triples. Such systems could develop large mutual inclination angles if the inner binary is tight enough, and also high eccentricities, depending of the strength of the short-range forces. Future detections of tilted Warm/Hot Jupiters and exomoons could put our mechanism under observational tests.
Sumbitted to MNRAS, comments are welcome
References in corpus (18)
- Transit timing effects due to an exomoon
- Suppression of extreme orbital evolution in triple systems with short range forces
- Hot Jupiters from Coplanar High-eccentricity Migration
- Satellite dynamics on the Laplace surface
- Steady-state planet migration by the Kozai-Lidov mechanism in stellar binaries
- Multiple Impact Origin for the Moon
- A primordial origin for the composition similarity between the Earth and the Moon
- Chaotic Dynamics of Stellar Spin in Binaries and the Production of Misaligned Hot Jupiters
- Spin-Orbit Misalignment of Merging Black-Hole Binaries with Tertiary Companions
- Generalized Hill-Stability Criteria for Hierarchical Three-Body Systems at Arbitrary Inclinations
- Secular chaotic dynamics in hierarchical quadruple systems, with applications to hot Jupiters in stellar binaries and triples
- Eccentricity and Spin-Orbit Misalignment in Short-Period Stellar Binaries as a Signpost of Hidden Tertiary Companions
- Chaotic Dynamics of Stellar Spin Driven by Planets Undergoing Lidov-Kozai Oscillations: Resonances and Origin of Chaos
- Moderately Eccentric Warm Jupiters from Secular Interactions with Exterior Companions
- Dynamics of Stellar Spin Driven by Planets Undergoing Lidov-Kozai Migration: Paths to Spin-Orbit Misalignment
- On the formation of hot and warm Jupiters via secular high-eccentricity migration in stellar triples
- On The Feasibility of Exomoon Detection Via Exoplanet Phase Curve Spectral Contrast
- Hints for hidden planetary companions to hot Jupiters in stellar binaries
Cited by in corpus (3)
- Formation and merging of Mass Gap Black Holes in Gravitational Wave Merger Events from Wide Hierarchical Quadruple Systems
- Analytic computation of the secular effects of encounters on a binary: features arising from second-order perturbation theory
- Hot Jupiters driven by high-eccentricity migration in globular clusters