Obliquity evolution of the minor satellites of Pluto and Charon
arXiv:1701.05594 · doi:10.1016/j.icarus.2017.04.012
Abstract
New Horizons mission observations show that the small satellites Styx, Nix, Kerberos and Hydra, of the Pluto-Charon system, have not tidally spun-down to near synchronous spin states and have high obliquities with respect to their orbit about the Pluto-Charon binary (Weaver et al. 2016). We use a damped mass-spring model within an N-body simulation to study spin and obliquity evolution for single spinning non-round bodies in circumbinary orbit. Simulations with tidal dissipation alone do not show strong obliquity variations from tidally induced spin-orbit resonance crossing and this we attribute to the high satellite spin rates and low orbital eccentricities. However, a tidally evolving Styx exhibits intermittent obliquity variations and episodes of tumbling. During a previous epoch where Charon migrated away from Pluto, the minor satellites could have been trapped in orbital mean motion inclination resonances. An outward migrating Charon induces large variations in Nix and Styx's obliquities. The cause is a commensurability between the mean motion resonance frequency and the spin precession rate of the spinning body. As the minor satellites are near mean motion resonances, this mechanism could have lifted the obliquities of all four minor satellites. The high obliquities need not be primordial if the minor satellites were at one time captured into mean motion resonances.
Icarus, in press
References in corpus (14)
- The Small Satellites of Pluto as Observed by New Horizons
- A Survey for "Normal" Irregular Satellites Around Neptune: Limits to Completeness
- Complete spin and orbital evolution of close-in bodies using a Maxwell viscoelastic rheology
- Secular and tidal evolution of circumbinary systems
- Spin-orbit coupling and chaotic rotation for circumbinary bodies. Application to the small satellites of the Pluto-Charon system
- Precession Relaxation of Viscoelastic Oblate Rotators
- Numerical Simulation of Tidal Evolution of a Viscoelastic Body Modelled with a Mass-Spring Network
- On the Origin of Pluto's Small Satellites by Resonant Transport
- The Short Rotation Period of Hi'iaka, Haumea's Largest Satellite
- The Two Rigid Body Interaction using Angular Momentum Theory Formulae
- On the rotational dynamics of Prometheus and Pandora
- Crustal Failure on Icy Moons from a Strong Tidal Encounter
- Tidal spin down rates of homogeneous triaxial viscoelastic bodies
- Nereid: Light Curve for 1999-2006 and a Scenario for its Variations
Cited by in corpus (17)
- The Pluto System After New Horizons
- Impact Excitation of a Seismic Pulse and Vibrational Normal Modes on Asteroid Bennu and Associated Slumping of Regolith
- Tidal Dissipation in Dual-Body, Highly Eccentric, and Non-synchronously Rotating Systems: Applications to Pluto-Charon and the Exoplanet TRAPPIST-1e
- The future large obliquity of Jupiter
- Chaotic zones around rotating small bodies
- Near/Far Side Asymmetry in the Tidally Heated Moon
- Non-principal axis rotation in binary asteroid systems and how it weakens the BYORP effect
- Chaotic dynamics in the (47171) Lempo triple system
- Excitation of Tumbling in Phobos and Deimos
- Tilting Styx and Nix but not Uranus with a Spin-Precession-Mean-motion resonance
- A Pluto--Charon Sonata: Dynamical Limits on the Masses of the Small Satellites
- Past and present dynamics of the circumbinary moons in the Pluto-Charon system
- On the Secondary's Rotation in Synchronous Binary Asteroid
- Simulations of wobble damping in viscoelastic rotators
- On the Origin of the Pluto System
- Chaotic dynamics in the planar gravitational many-body problem with rigid body rotations
- A Pluto--Charon Sonata IV. Improved Constraints on the Dynamical Behavior and Masses of the Small Satellites