Terminal instability of the Solar System triggered by stochastic solar mass loss
astro-ph.EP, astro-ph.SR
Submitted: 2026-09-11
Updated: 2026-09-11
Comments: 13 pages, 7 figures, accepted for publication in ApJL
License: http://creativecommons.org/licenses/by/4.0/
The gist: From its birth, celestial mechanics has been deeply intertwined with the question of the Solar System's dynamical stability.
Abstract
From its birth, celestial mechanics has been deeply intertwined with the question of the Solar System's dynamical stability. For the inner planets, this question is now statistically settled: Mercury's orbit carries a about 1% chance of destabilization before the Sun leaves the main sequence. The outer Solar System has seemed more secure, with its intrinsic dynamical lifetime estimated at about10 18 years. Even accounting for the Sun's mass loss and stellar flybys, the orbital architecture of the giant planets had been expected to persist for about 100 Gyr. Here we show that these estimates rest on the assumption that solar mass loss is smooth. The recently measured white dwarf recoil demands asymmetric mass loss that is most readily attributed to discrete, independently directed ejections that impulsively perturb stellar motion. As the Sun sheds its envelope in such parcels, the planets' orbits random-walk with amplitude set by the mass-loss granularity. At a coarseness corresponding to observationally permitted kicks, this stochastic forcing restructures the outer Solar System concurrently with the Sun's death. In particular, our numerical experiments reveal that orbit crossings can commence on the red giant branch, with about 40% of realizations undergoing disruption or violent scattering before the white dwarf forms and about 90% self-destructing within 3 Gyr. The outer Solar System's dynamical lifetime thus collapses from 10 18 years to approximately a gigayear after white dwarf formation.
Related papers
- PDS 70 c and SR 12 c: Observational Constraints on Giant-Planet and Satellite Formation
- Two-stage disruption of resonant chains
- Detectability of resolved hydrogen lines from the accretion shock at gas giants and their CPDs
- Binary-lens Microlensing Degeneracy: Impact on Planetary Sensitivity and Mass-ratio Function
- Atmospheric escape fractionates secondary but not primary atmospheres
- The Occurrence Rate of Nearby Planetary Companions to Hot Jupiters