Orbital decay of short-period gas giants under evolving tides
arXiv:1904.07596 · doi:10.1093/mnras/stz1081
Abstract
The discovery of many giant planets in close-in orbits and the effect of planetary and stellar tides in their subsequent orbital decay have been extensively studied in the context of planetary formation and evolution theories. Planets orbiting close to their host stars undergo close encounters, atmospheric photoevaporation, orbital evolution, and tidal interactions. In many of these theoretical studies, it is assumed that the interior properties of gas giants remain static during orbital evolution. Here we present a model that allows for changes in the planetary radius as well as variations in the planetary and stellar dissipation parameters, caused by the planet's contraction and change of rotational rates from the strong tidal fields. In this semi-analytical model, giant planets experience a much slower tidal-induced circularization compared to models that do not consider these instantaneous changes. We predict that the eccentricity damping time-scale increases about an order of magnitude in the most extreme case for too inflated planets, large eccentricities, and when the planet's tidal properties are calculated according to its interior structural composition. This finding potentially has significant implications on interpreting the period-eccentricity distribution of known giant planets as it may naturally explain the large number of non-circularized, close period currently known. Additionally, this work may help to constrain some models of planetary interiors, and contribute to a better insight about how tides affect the orbital evolution of extrasolar systems.
Published in Monthly Notices of the Royal Astronomical Society. 12 pages, 6 figures
References in corpus (8)
- Tidal Evolution of Close-in Extra-Solar Planets
- On the tidal evolution of Hot Jupiters on inclined orbits
- Tidal friction in close-in satellites and exoplanets. The Darwin theory re-visited
- Magnetic cycles of the planet-hosting star tauBootis
- Inflating and Deflating Hot Jupiters: Coupled Tidal and Thermal Evolution of Known Transiting Planets
- Unravelling tidal dissipation in gaseous giant planets
- Interplay of tidal evolution and stellar wind braking in the rotation of stars hosting massive close-in planets
- The effect of close-in giant planets' evolution on tidal-induced migration of exomoons
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- Measuring Tidal Dissipation in Giant Planets from Tidal Circularization
- Cronomoons: origin, dynamics, and light-curve features of ringed exomoons
- The impact of tidal friction evolution on the orbital decay of ultra-short period planets
- The unusual M-dwarf Warm Jupiter TOI-1899~b: Refinement of orbital and planetary parameters
- Tidally-induced migration of TESS gas giants orbiting M dwarfs