Resonant Post-Newtonian Eccentricity Excitation in Hierarchical Three-body Systems
Smadar Naoz, Bence Kocsis, Abraham Loeb, Nicolas Yunes

TL;DR
This paper investigates how post-Newtonian effects in hierarchical three-body systems can resonantly excite eccentricities, revealing new interactions that influence long-term orbital evolution beyond classical predictions.
Contribution
It introduces a new secular post-Newtonian interaction term and explores its impact on eccentricity excitation in hierarchical triples, especially where classical effects are suppressed.
Findings
Post-Newtonian corrections can excite eccentricities in certain phase space regions.
A new secular post-Newtonian interaction term affects long-term evolution.
Post-Newtonian effects can cause orbital flips even when Kozai-Lidov is suppressed.
Abstract
We study the secular, hierarchical three-body problem to first-order in a post-Newtonian expansion of General Relativity. We expand the first-order post-Newtonian Hamiltonian to leading-order in the ratio of the semi-major axis of the two orbits. In addition to the well-known terms that correspond to the GR precession of the inner and outer orbits, we find a new secular post-Newtonian interaction term that can affect the long-term evolution of the triple. We explore the parameter space for highly inclined and eccentric systems, where the Kozai-Lidov mechanism can produce large-amplitude oscillations in the eccentricities. The standard lore, i.e., that General Relativity effects suppress eccentricity, is only consistent with the parts of phase space where the General Relativity timescales are several orders of magnitude shorter than the secular Newtonian one. In other parts of phase…
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