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More Likely Than You Think: Inclination-Driving Secular Resonances are Common in Known Exoplanet Systems
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Multi-planet systems face significant challenges to detection. For example, further orbiting planets have reduced signal-to-noise ratio in radial velocity detection methods, and small mutual inclinations between planets can prevent them from all transiting. One mechanism to excite mutual inclination between planets is secular resonance, where the nodal precession frequencies of the planets align such as to greatly increase the efficiency of angular momentum transport between planets. These resonances can significantly misalign planets from one another, hindering detection, and typically can only occur when there are three or more planets in the system. Naively, systems can only be in resonance for particular combinations of planet semimajor axes and masses; however, effects that alter the nodal precession frequencies of the planets, such as the decay of stellar oblateness, can significantly expand the region of parameter space where resonances occur. In this work, we explore known three-planet systems, determine whether they are in (or were in) secular resonance due to evolving stellar oblateness, and demonstrate the implications of resonance on their detectability and stability. We show that about 20% of a sample of three planet transiting systems seem to undergo these resonances early in their lives.
Forward citations
Cited by 3 Pith papers
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A high mutual inclination system around KOI-134 revealed by transit timing variations
TTV and TDV modeling of KOI-134 b reveals a non-transiting, 0.22 Jupiter-mass companion in 2:1 resonance with a mutual inclination of about 15 degrees, making this one of the few strongly non-coplanar resonant systems known.
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Short-Period Small Planets with High Mutual Inclinations are more Common around Metal-Rich Stars
Short-period planet pairs around metal-rich stars have systematically higher and more dispersed mutual inclinations than those around metal-poor stars.
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Secular Perturbations from Exterior Giants Strongly Influence Gap Complexity in Peas-in-a-Pod Exoplanetary Systems
Outer giant planets can tilt tightly packed inner planets out of the transit plane, raising the observed gap complexity and potentially explaining a known dichotomy in exoplanet systems.
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