Revisiting migration in a disc cavity to explain the high eccentricities of warm Jupiters - CNRS - Centre national de la recherche scientifique
Article Dans Une Revue Monthly Notices of the Royal Astronomical Society Année : 2020

Revisiting migration in a disc cavity to explain the high eccentricities of warm Jupiters

Résumé

ABSTRACT The distribution of eccentricities of warm giant exoplanets is commonly explained through planet–planet interactions, although no physically sound argument favours the ubiquity of such interactions. No simple, generic explanation has been put forward to explain the high mean eccentricity of these planets. In this paper, we revisit a simple, plausible explanation to account for the eccentricities of warm Jupiters: migration inside a cavity in the protoplanetary disc. Such a scenario allows to excite the outer eccentric resonances, a working mechanism for higher mass planets, leading to a growth in the eccentricity while preventing other, closer resonances to damp eccentricity. We test this idea with diverse numerical simulations, which show that the eccentricity of a Jupiter-mass planet around a Sun-like star can increase up to ∼0.4, a value never reached before with solely planet–disc interactions. This high eccentricity is comparable to, if not larger than, the median eccentricity of warm Saturn- to Jupiter-mass exoplanets. We also discuss the effects such a mechanism would have on exoplanet observations. This scenario could have strong consequences on the disc lifetime and the physics of inner disc dispersal, which could be constrained by the eccentricity distribution of gas giants.
Fichier principal
Vignette du fichier
staa3397.pdf (1.64 Mo) Télécharger le fichier
Origine Fichiers éditeurs autorisés sur une archive ouverte

Dates et versions

hal-03358799 , version 1 (16-11-2020)
hal-03358799 , version 2 (12-05-2023)

Identifiants

Citer

Florian Debras, Clément Baruteau, Jean-François Donati. Revisiting migration in a disc cavity to explain the high eccentricities of warm Jupiters. Monthly Notices of the Royal Astronomical Society, 2020, 500 (2), pp.1621-1632. ⟨10.1093/mnras/staa3397⟩. ⟨hal-03358799v2⟩
56 Consultations
23 Téléchargements

Altmetric

Partager

More