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Architectures of Exoplanetary Systems. III: Eccentricity and Mutual Inclination Distributions of AMD-stable Planetary Systems

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arxiv 2007.14473 v2 pith:5243PFQP submitted 2020-07-28 astro-ph.EP

classification astro-ph.EP
keywords systemsmutualobservedplanetstildedistributiondistributionseccentricities
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abstract

The angular momentum deficit (AMD) of a planetary system is a measure of its orbital excitation and a predictor of long-term stability. We adopt the AMD-stability criteria to constrain the orbital architectures for exoplanetary systems. Previously, He, Ford, & Ragozzine (2019) (arXiv:1907.07773v2) showed through forward modelling (SysSim) that the observed multiplicity distribution can be well reproduced by two populations consisting of a low and a high mutual inclination component. Here, we show that a broad distribution of mutual inclinations arising from systems at the AMD-stability limit can also match the observed Kepler population. We show that distributing a planetary system's maximum AMD amongst its planets results in a multiplicity-dependent distribution of eccentricities and mutual inclinations. Systems with intrinsically more planets have lower median eccentricities and mutual inclinations, and this trend is well described by power-law functions of the intrinsic planet multiplicity ($n$): $\tilde{\mu}_{e,n} \propto n^{-1.74_{-0.07}^{+0.11}}$ and $\tilde{\mu}_{i,n} \propto n^{-1.73_{-0.08}^{+0.09}}$, where $\tilde{\mu}_{e,n}$ and $\tilde{\mu}_{i,n}$ are the medians of the eccentricity and inclination distributions. We also find that intrinsic single planets have higher eccentricities ($\sigma_{e,1} \sim 0.25$) than multi-planet systems, and that the trends with multiplicity appear in the observed distributions of period-normalized transit duration ratios. We show that the observed preferences for planet size orderings and uniform spacings are more extreme than what can be produced by the detection biases of the Kepler mission alone. Finally, we find that for systems with detected transiting planets between 5 and 10 days, there is another planet with a greater radial velocity signal $\simeq~53\%$ of the time.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Companion Architectures of Sub-Saturns: Distinct Migration Pathways Across the Neptunian Landscape

    astro-ph.EP 2026-07 accept novelty 6.0 of 10

    Desert/ridge sub-Saturns show ~10% nearby-companion rates like hot Jupiters; savanna ones show ~70% like warm Jupiters, supporting HEM versus quiescent migration.

  2. Dynamical regimes of two eccentric and mutually inclined giant planets

    astro-ph.EP 2025-05 conditional novelty 4.0 of 10

    For a Sun-like star with Jupiter-like and Neptune-like planets, dynamics changes sharply at a mutual inclination near 30-40 degrees, where the planets' precession frequencies become equal.

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