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We study the chaotic orbital evolution of planetary systems, focusing on secular (i.e., orbit-averaged) interactions, because these often dominate on long timescales. We first focus on the evolution of a test particle that is forced by…

地球与行星天体物理 · 物理学 2015-05-20 Yoram Lithwick , Yanqin Wu

On timescales that greatly exceed an orbital period, typical planetary orbits evolve in a stochastic yet stable fashion. On even longer timescales, however, planetary orbits can spontaneously transition from bounded to unbound chaotic…

地球与行星天体物理 · 物理学 2015-06-23 Konstantin Batygin , Alessandro Morbidelli , Mathew J. Holman

Due to the chaotic nature of the Solar System, the question of its dynamic long-term stability can only be answered in a statistical sense, e.g. based on numerical ensemble integrations of nearby orbits. Destabilization, including…

地球与行星天体物理 · 物理学 2015-09-23 Richard E. Zeebe

The long-term stability of the Solar System is an issue of significant scientific and philosophical interest. The mechanism leading to instability is Mercury's eccentricity being pumped up so high that Mercury either collides with Venus or…

地球与行星天体物理 · 物理学 2023-06-23 Dorian S. Abbot , David M. Hernandez , Sam Hadden , Robert J. Webber , Georgios P. Afentakis , Jonathan Weare

Most direct N-body integrations of planetary systems use a symplectic integrator with a fixed timestep. A large timestep is desirable in order to speed up the numerical simulations. However, simulations yield unphysical results if the…

地球与行星天体物理 · 物理学 2025-12-24 Hanno Rein , Garett Brown , Mei Kanda

Due to the chaotic nature of the Solar System, the question of its long-term stability can only be answered in a statistical sense, for instance, based on numerical ensemble integrations of nearby orbits. Destabilization of the inner…

地球与行星天体物理 · 物理学 2015-06-26 Richard E. Zeebe

It is attempted to obtain the masses of the celestial bodies, the initial conditions of their motion, and the constant of gravitation, by a global parameter optimization. First, a numerical solution of the N-bodies problem for mass points…

天体物理学 · 物理学 2007-05-23 Mayeul Arminjon

Although the discovery of the chaotic motion of the inner planets in the solar system dates back to more than thirty years ago, the secular chaos of their orbits still dares more analytical analyses. Apart from the high-dimensional…

地球与行星天体物理 · 物理学 2021-11-03 Federico Mogavero , Jacques Laskar

The famous three-body problem is investigated by means of a numerical approach with negligible numerical noises in a long enough time interval, namely the Clean Numerical Simulation (CNS). From physical viewpoints, position of any bodies…

混沌动力学 · 物理学 2014-05-23 Shijun Liao

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…

地球与行星天体物理 · 物理学 2022-05-13 Nam H. Hoang , Federico Mogavero , Jacques Laskar

Context. Due to our increasing knowledge on the Galactic and stellar neighborhood of the Solar System, modern long-period comet motion studies have to take into account both stellar perturbations and the overall Galactic potential. Aims.…

地球与行星天体物理 · 物理学 2022-01-12 Piotr A. Dybczyński , Sławomir Breiter

A long-term numerical integration of the classical Newtonian approximation to the planetary orbital motions of the full Solar System (sun + 8 planets), spanning 20 Gyr, was performed. The results showed no severe instability arising over…

天体物理学 · 物理学 2009-06-13 Konstantin Batygin , Gregory Laughlin

In the inner solar system, the planets' orbits evolve chaotically, driven primarily by secular chaos. Mercury has a particularly chaotic orbit, and is in danger of being lost within a few billion years. Just as secular chaos is reorganizing…

地球与行星天体物理 · 物理学 2015-06-17 Yoram Lithwick , Yanqin Wu

This paper explores backward error analysis for numerical solutions of ordinary differential equations, particularly focusing on chaotic systems. Three approaches are examined: residual assessment, the method of modified equations, and…

数值分析 · 数学 2025-01-13 Robert M. Corless

The physical basis of chaos in the solar system is now better understood: in all cases investigated so far, chaotic orbits result from overlapping resonances. Perhaps the clearest examples are found in the asteroid belt. Overlapping…

天体物理学 · 物理学 2009-11-07 M. Lecar , F. Franklin , M. Holman , N. Murray

The gravitational three-body problem is a fundamental problem in physics and has significant applications to astronomy. Three-body configurations are often considered stable as long the system is hierarchical; that is, the two orbital…

星系天体物理 · 物理学 2023-07-26 Eric Zhang , Smadar Naoz , Clifford M. Will

We provide a fast method for computing constraints on impactor pre-impact orbits, applying this to the late giant impacts in the Solar System. These constraints can be used to make quick, broad comparisons of different collision scenarios,…

地球与行星天体物理 · 物理学 2017-11-16 Alan P. Jackson , Travis S. J. Gabriel , Erik I. Asphaug

One major objective of MESSENGER and BepiColombo spatial missions is to accurately measure Mercury's rotation and its obliquity in order to obtain constraints on internal structure of the planet. Which is the obliquity's dynamical behavior…

天体物理学 · 物理学 2008-01-10 E. Bois , N. Rambaux

$N$-body integrations are used to model a wide range of astrophysical dynamics, but they suffer from errors which make their orbits diverge exponentially in time from the correct orbits. Over long time-scales, their reliability needs to be…

地球与行星天体物理 · 物理学 2020-02-26 David M. Hernandez , Sam Hadden , Junichiro Makino

Astrophysical Challenges which demand the solution of the one million (or more) gravitating body problem are briefly discussed for the fields of cosmology, galactic nuclei and globular star clusters. Results from the classical three-body…

天体物理学 · 物理学 2016-11-23 R. Spurzem , A. Kugel
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