English

Long-term instability of the inner Solar System: numerical experiments

Earth and Planetary Astrophysics 2022-05-13 v1 Chaotic Dynamics Classical Physics Computational Physics

Abstract

Apart from being chaotic, the inner planets in the Solar System constitute an open system, as they are forced by the regular long-term motion of the outer ones. No integrals of motion can bound a priori the stochastic wanderings in their high-dimensional phase space. Still, the probability of a dynamical instability is remarkably low over the next 5 billion years, a timescale thousand times longer than the Lyapunov time. The dynamical half-life of Mercury has indeed been estimated recently at 40 billion years. By means of the computer algebra system TRIP, we consider a set of dynamical models resulting from truncation of the forced secular dynamics recently proposed for the inner planets at different degrees in eccentricities and inclinations. Through ensembles of 10310^3 to 10510^5 numerical integrations spanning 5 to 100 Gyr, we find that the Hamiltonian truncated at degree 4 practically does not allow any instability over 5 Gyr. The destabilisation is mainly due to terms of degree 6. This surprising result suggests an analogy to the Fermi-Pasta-Ulam-Tsingou problem, in which tangency to Toda Hamiltonian explains the very long timescale of thermalisation, which Fermi unsuccessfully looked for.

Keywords

Cite

@article{arxiv.2205.04170,
  title  = {Long-term instability of the inner Solar System: numerical experiments},
  author = {Nam H. Hoang and Federico Mogavero and Jacques Laskar},
  journal= {arXiv preprint arXiv:2205.04170},
  year   = {2022}
}

Comments

Accepted for publication in MNRAS. 9 pages, 7 figures

R2 v1 2026-06-24T11:11:17.462Z