Chaotic Dynamics of Trans-Neptunian Objects Perturbed by Planet Nine
arXiv:1712.06547 · doi:10.3847/1538-3881/aab88c
Abstract
Observations of clustering among the orbits of the most distant trans-Neptunian objects (TNOs) has inspired interest in the possibility of an undiscovered ninth planet lurking in the outskirts of the solar system. Numerical simulations by a number of authors have demonstrated that, with appropriate choices of planet mass and orbit, such a planet can maintain clustering in the orbital elements of the population of distant TNOs, similar to the observed sample. However, many aspects of the rich underlying dynamical processes induced by such a distant eccentric perturber have not been fully explored. We report the results of our investigation of the dynamics of coplanar test-particles that interact with a massive body on an circular orbit (Neptune) and a massive body on a more distant, highly eccentric orbit (the putative Planet Nine). We find that a detailed examination of our idealized simulations affords tremendous insight into the rich test-particle dynamics that are possible. In particular, we find that chaos and resonance overlap plays an important role in particles' dynamical evolution. We develop a simple mapping model that allows us to understand, in detail, the web of overlapped mean-motion resonances explored by chaotically evolving particles. We also demonstrate that gravitational interactions with Neptune can have profound effects on the orbital evolution of particles. Our results serve as a starting point for a better understanding of the dynamical behavior observed in more complicated simulations that can be used to constrain the mass and orbit of Planet 9.
Revised to address referree comments; accepted to AJ
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Cited by in corpus (11)
- The Planet Nine Hypothesis
- A New High Perihelion Inner Oort Cloud Object: 2015 TG387
- Discovery and Dynamical Analysis of an Extreme Trans-Neptunian Object with a High Orbital Inclination
- Long-term orbital dynamics of trans-Neptunian objects
- OSSOS XV: Probing the Distant Solar System with Observed Scattering TNOs
- Mildly-Hierarchical triple dynamics and applications to the outer solar system
- The Secular Dynamics of TNOs and Planet Nine Interactions
- Injection of Inner Oort Cloud Objects Into the Distant Kuiper Belt by Planet Nine
- Saddle Transport and Chaos in the Double Pendulum
- Orbital dynamics landscape near the most distant known trans-Neptunian objects
- New results on orbital resonances