The distribution of mutual inclinations arising from the stellar quadrupole moment
arXiv:2107.00044 · doi:10.1093/mnras/stab1899
Abstract
A large proportion of transiting planetary systems appear to possess only a single planet as opposed to multiple transiting planets. This excess of singles is indicative of significant mutual inclinations existing within a large number of planetary systems, but the origin of these misalignments is unclear. Moreover, recent observational characterization reveals that mutual inclinations tend to increase with proximity to the host star. These trends are both consistent with the dynamical influence of a strong quadrupolar potential arising from the host star during its early phase of rapid rotation, coupled with a non-zero stellar obliquity. Here, we simulate a population of planetary systems subject to the secular perturbation arising from a tilted, oblate host star as it contracts and spins down subsequent to planet formation. We demonstrate that this mechanism can reproduce the general increase in planet-planet mutual inclinations with proximity to the host star, and delineate a parameter space wherein the host star can drive dynamical instabilities. We suggest that approximately 5-10\% of low-mass Kepler systems are susceptible to this instability mechanism, suggesting that a significant number of single-transiting planets may truly be intrinsically single. We also report a novel connection between instability and stellar obliquity reduction and make predictions that can be tested within upcoming TESS observations.
Accepted for publication in Monthly Notices of the Royal Astronomical Society, 16 pages, 9 figures
References in corpus (21)
- Origins of Eccentric Extrasolar Planets: Testing the Planet-Planet Scattering Model
- A Study of the Shortest-Period Planets Found With Kepler
- Exoplanet Orbital Eccentricities Derived From LAMOST-Kepler Analysis
- Kepler Multi-Planet Systems Exhibit Unexpected Intra-system Uniformity in Mass and Radius
- Obliquities of Kepler Stars: Comparison of Single- and Multiple-Transit Systems
- Predicting the long-term stability of compact multiplanet systems
- Early Excitation of Spin-Orbit Misalignments in Close-in Planetary Systems
- Planet formation and migration near the silicate sublimation front in protoplanetary disks
- Spin-orbit Misalignment as a Driver of the Kepler Dichotomy
- Formation of Ultra-Short-Period Planets by Obliquity-Driven Tidal Runaway
- The path to instability in compact multi-planetary systems
- Perturbation of Compact Planetary Systems by Distant Giant Planets
- Mutual Orbital Inclinations Between Cold Jupiters and Inner Super-Earths
- The onset of instability in resonant chains
- Star-disc (mis-)alignment in Rho Oph and Upper Sco: insights from spatially resolved disc systems with K2 rotation periods
- TKS III: A Stellar Obliquity Measurement of TOI-1726 c
- The Value of Systems with Multiple Transiting Planets
- Zodiacal Exoplanets in Time. XI. The Orbit and Radiation Environment of the Young M Dwarf-Hosted Planet K2-25b
- Mutual Inclination Excitation by Stellar Oblateness
- Stellar Oblateness versus Distant Giants in Exciting Kepler Planet Mutual Inclinations
- Stellar winds as a mechanism to tilt the spin axes of Sun-like stars
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- Hiding Planets Near and Far: The Parameter Space of Hidden Companions for Known Planetary Systems
- Sculpting of Exoplanetary Systems Driven by a Misaligned Disk and Stellar Oblateness: Origin of Perpendicular Orbits in HD 3167
- Planetary Obliquity Excitation Through Pre-Main Sequence Stellar Evolution
- The Effects of Disk Induced Apsidal Precession on Planets Captured into Mean Motion Resonance