The Perturbation Theory Approach to Stability in the Scattered Disk

Fuente: arXiv
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Main Authors: Belyakov, Matthew, Batygin, Konstantin
Format: Preprint
Published: 2025
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_version_ 1866911451545862144
author Belyakov, Matthew
Batygin, Konstantin
author_facet Belyakov, Matthew
Batygin, Konstantin
contents Scattered disk objects (SDOs) are distant minor bodies that orbit the sun on highly eccentric orbits, frequently with perhelia near Neptune's orbit. Gravitational perturbations due to Neptune frequently lead to chaotic dynamics, with the degree of chaotic diffusion set by an object's perihelion distance. Batygin et al. (2021) developed a perturbative approach for scattered disk dynamics, finding that, to leading order in semi-major axis ratio, an infinite series of $2:j$ resonances drives the dynamics of the distant scattered disk, with overlaps between resonances driving chaotic motion. In this work we extend this model by taking the spherical harmonic expansion for Neptune's gravitational potential to octupole order and beyond. In continuing the expansion out to smaller semi-major axis limits, we find that the $1:j$ and $3:j$ resonances that emerge in the octupole expansion do not individually set new limits on the stability boundary. Instead, we find that for increasingly Neptune-proximate orbits, resonances of progressively higher index are dominant in explaining the emergence of chaotic behavior. In this picture, the mutual intersections between series of $2:j$, $3:j$, $4:j \dots,$ resonant chains explain local chaotic evolution of SDOs and shape the dynamical distribution of the population at large.
format Preprint
id arxiv_https___arxiv_org_abs_2508_10119
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle The Perturbation Theory Approach to Stability in the Scattered Disk
Belyakov, Matthew
Batygin, Konstantin
Earth and Planetary Astrophysics
Chaotic Dynamics
Scattered disk objects (SDOs) are distant minor bodies that orbit the sun on highly eccentric orbits, frequently with perhelia near Neptune's orbit. Gravitational perturbations due to Neptune frequently lead to chaotic dynamics, with the degree of chaotic diffusion set by an object's perihelion distance. Batygin et al. (2021) developed a perturbative approach for scattered disk dynamics, finding that, to leading order in semi-major axis ratio, an infinite series of $2:j$ resonances drives the dynamics of the distant scattered disk, with overlaps between resonances driving chaotic motion. In this work we extend this model by taking the spherical harmonic expansion for Neptune's gravitational potential to octupole order and beyond. In continuing the expansion out to smaller semi-major axis limits, we find that the $1:j$ and $3:j$ resonances that emerge in the octupole expansion do not individually set new limits on the stability boundary. Instead, we find that for increasingly Neptune-proximate orbits, resonances of progressively higher index are dominant in explaining the emergence of chaotic behavior. In this picture, the mutual intersections between series of $2:j$, $3:j$, $4:j \dots,$ resonant chains explain local chaotic evolution of SDOs and shape the dynamical distribution of the population at large.
title The Perturbation Theory Approach to Stability in the Scattered Disk
topic Earth and Planetary Astrophysics
Chaotic Dynamics
url https://arxiv.org/abs/2508.10119