A Resonant Beginning for the Solar System Terrestrial Planets

Fuente: arXiv
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Main Authors: Huang, Shuo, Ormel, Chris, Zwart, Simon Portegies, Kokubo, Eiichiro, Yi, Tian
Format: Preprint
Published: 2025
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_version_ 1866909642329686016
author Huang, Shuo
Ormel, Chris
Zwart, Simon Portegies
Kokubo, Eiichiro
Yi, Tian
author_facet Huang, Shuo
Ormel, Chris
Zwart, Simon Portegies
Kokubo, Eiichiro
Yi, Tian
contents In the past two decades, transit surveys have revealed a class of planets with thick atmospheres -- sub-Neptunes -- that must have completed their accretion in protoplanet disks. When planets form in the gaseous disk, the gravitational interaction with the disk gas drives their migration and results in the trapping of neighboring planets in mean motion resonances, though these resonances can later be broken when the damping effects of disk gas or planetesimals wane. It is widely accepted that the outer Solar System gas giant planets originally formed in a resonant chain, which was later disrupted by dynamical instabilities. Here, we explore whether the early formation of the terrestrial planets in a resonance chain (including Theia) can evolve to the present configuration. Using N-body simulations, we demonstrate that the giant planet instability would also have destabilized the terrestrial resonance chain, triggering moon-forming giant impacts in 20--50\% of our simulated systems, dependent on the initial resonance architecture. After the instability, the eccentricity and inclination of the simulated planets match their present-day values. Under the proposed scenario, the current period ratio of 3.05 between Mars and Venus -- devoid of any special significance in traditional late formation models -- naturally arises as a relic of the former resonance chain.
format Preprint
id arxiv_https___arxiv_org_abs_2506_04164
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Resonant Beginning for the Solar System Terrestrial Planets
Huang, Shuo
Ormel, Chris
Zwart, Simon Portegies
Kokubo, Eiichiro
Yi, Tian
Earth and Planetary Astrophysics
Geophysics
In the past two decades, transit surveys have revealed a class of planets with thick atmospheres -- sub-Neptunes -- that must have completed their accretion in protoplanet disks. When planets form in the gaseous disk, the gravitational interaction with the disk gas drives their migration and results in the trapping of neighboring planets in mean motion resonances, though these resonances can later be broken when the damping effects of disk gas or planetesimals wane. It is widely accepted that the outer Solar System gas giant planets originally formed in a resonant chain, which was later disrupted by dynamical instabilities. Here, we explore whether the early formation of the terrestrial planets in a resonance chain (including Theia) can evolve to the present configuration. Using N-body simulations, we demonstrate that the giant planet instability would also have destabilized the terrestrial resonance chain, triggering moon-forming giant impacts in 20--50\% of our simulated systems, dependent on the initial resonance architecture. After the instability, the eccentricity and inclination of the simulated planets match their present-day values. Under the proposed scenario, the current period ratio of 3.05 between Mars and Venus -- devoid of any special significance in traditional late formation models -- naturally arises as a relic of the former resonance chain.
title A Resonant Beginning for the Solar System Terrestrial Planets
topic Earth and Planetary Astrophysics
Geophysics
url https://arxiv.org/abs/2506.04164