Tidal Dissipation in Dual-Body, Highly Eccentric, and Non-synchronously Rotating Systems: Applications to Pluto-Charon and the Exoplanet TRAPPIST-1e
arXiv:2010.11801 · doi:10.3847/PSJ/abc0f3
Abstract
Using the Andrade-derived Sundberg-Cooper rheology, we apply several improvements to the secular tidal evolution of TRAPPIST-1e and the early history of Pluto-Charon under the simplifying assumption of homogeneous bodies. By including higher-order eccentricity terms (up to and including ), we find divergences from the traditionally used truncation starting around . Order-of-magnitude differences begin to occur for . Critically, higher-order eccentricity terms activate additional spin-orbit resonances. Worlds experiencing non-synchronous rotation can fall into and out of these resonances, altering their long-term evolution. Non-zero obliquity generally does not generate significantly higher heating; however, it can considerably alter orbital and rotational evolution. Much like eccentricity, obliquity can activate new tidal modes and resonances. Tracking the dual-body dissipation within Pluto and Charon leads to faster evolution and dramatically different orbital outcomes. Based on our findings, we recommend future tidal studies on worlds with to take into account additional eccentricity terms beyond . This threshold should be lowered to if non-synchronous rotation or non-zero obliquity is under consideration. Due to the poor convergence of the eccentricity functions, studies on worlds that may experience very high eccentricity () should include terms with high powers of eccentricity. We provide these equations up to for arbitrary obliquity and non-synchronous rotation. Finally, the assumption that short-period, solid-body exoplanets with are tidally locked in their 1:1 spin-orbit resonance should be reconsidered. Higher-order spin-orbit resonances can exist even at these relatively modest eccentricities, while previous studies have found such resonances can significantly alter stellar-driven climate.
Published in PSJ. 45 Pages, 12 Figures. Open Access Link: https://iopscience.iop.org/article/10.3847/PSJ/abc0f3