Breaking Giant Chains: Early-Stage Instabilities in Long-Period Giant Planet Systems

Fuente: arXiv
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Autori principali: Nagpal, Vighnesh, Goldberg, Max, Batygin, Konstantin
Natura: Preprint
Pubblicazione: 2024
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author Nagpal, Vighnesh
Goldberg, Max
Batygin, Konstantin
author_facet Nagpal, Vighnesh
Goldberg, Max
Batygin, Konstantin
contents Orbital evolution is a critical process that sculpts planetary systems, particularly during their early stages where planet-disk interactions are expected to lead to the formation of resonant chains. Despite the theoretically expected prominence of such configurations, they are scarcely observed among long-period giant exoplanets. This disparity suggests an evolutionary sequence wherein giant planet systems originate in compact multiresonant configurations, but subsequently become unstable, eventually relaxing to wider orbits--a phenomenon mirrored in our own solar system's early history. In this work, we present a suite of N-body simulations that model the instability-driven evolution of giant planet systems, originating from resonant initial conditions, through phases of disk dispersal and beyond. By comparing the period ratio and normalized angular momentum distributions of our synthetic aggregate of systems with the observational census of long-period Jovian planets, we derive constraints on the expected rate of orbital migration, the efficiency of gas-driven eccentricity damping, and typical initial multiplicity. Our findings reveal a distinct inclination toward densely packed initial conditions, weak damping, and high giant planet multiplicities. Furthermore, our models indicate that resonant chain origins do not facilitate the formation of Hot Jupiters via the coplanar high-eccentricity pathway at rates high enough to explain their observed prevalence.
format Preprint
id arxiv_https___arxiv_org_abs_2403_02412
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Breaking Giant Chains: Early-Stage Instabilities in Long-Period Giant Planet Systems
Nagpal, Vighnesh
Goldberg, Max
Batygin, Konstantin
Earth and Planetary Astrophysics
Orbital evolution is a critical process that sculpts planetary systems, particularly during their early stages where planet-disk interactions are expected to lead to the formation of resonant chains. Despite the theoretically expected prominence of such configurations, they are scarcely observed among long-period giant exoplanets. This disparity suggests an evolutionary sequence wherein giant planet systems originate in compact multiresonant configurations, but subsequently become unstable, eventually relaxing to wider orbits--a phenomenon mirrored in our own solar system's early history. In this work, we present a suite of N-body simulations that model the instability-driven evolution of giant planet systems, originating from resonant initial conditions, through phases of disk dispersal and beyond. By comparing the period ratio and normalized angular momentum distributions of our synthetic aggregate of systems with the observational census of long-period Jovian planets, we derive constraints on the expected rate of orbital migration, the efficiency of gas-driven eccentricity damping, and typical initial multiplicity. Our findings reveal a distinct inclination toward densely packed initial conditions, weak damping, and high giant planet multiplicities. Furthermore, our models indicate that resonant chain origins do not facilitate the formation of Hot Jupiters via the coplanar high-eccentricity pathway at rates high enough to explain their observed prevalence.
title Breaking Giant Chains: Early-Stage Instabilities in Long-Period Giant Planet Systems
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2403.02412