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Breaking the chains : Hot super-Earth systems from migration and disruption of compact resonant chains

Izidoro, Andre (author)
São Paulo State University,University of Bordeaux
Ogihara, Masahiro (author)
National Astronomical Observatory of Japan
Raymond, Sean N. (author)
University of Bordeaux
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Morbidelli, Alessandro (author)
University of Côte d'Azur,Côte d'Azur Observatory
Pierens, Arnaud (author)
University of Bordeaux
Bitsch, Bertram (author)
Lund University,Lunds universitet,Astronomi - Har omorganiserats,Institutionen för astronomi och teoretisk fysik - Har omorganiserats,Naturvetenskapliga fakulteten,Lund Observatory - Has been reorganised,Department of Astronomy and Theoretical Physics - Has been reorganised,Faculty of Science
Cossou, Christophe (author)
University of Paris-Saclay
Hersant, Franck (author)
University of Bordeaux
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 (creator_code:org_t)
2017-05-19
2017
English 21 s.
In: Monthly Notices of the Royal Astronomical Society. - : Oxford University Press (OUP). - 0035-8711 .- 1365-2966. ; 470:2, s. 1750-1770
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • 'Hot super-Earths' (or 'mini-Neptunes') between one and four times Earth's size with period shorter than 100 d orbit 30-50 per cent of Sun-like stars. Their orbital configuration - measured as the period ratio distribution of adjacent planets in multiplanet systems - is a strong constraint for formation models. Here, we use N-body simulations with synthetic forces from an underlying evolving gaseous disc to model the formation and long-term dynamical evolution of super-Earth systems. While the gas disc is present, planetary embryos grow and migrate inward to form a resonant chain anchored at the inner edge of the disc. These resonant chains are far more compact than the observed super-Earth systems. Once the gas dissipates, resonant chains may become dynamically unstable. They undergo a phase of giant impacts that spreads the systems out. Disc turbulence has no measurable effect on the outcome. Our simulations match observations if a small fraction of resonant chains remain stable, while most super- Earths undergo a late dynamical instability. Our statistical analysis restricts the contribution of stable systems to less than 25 per cent. Our results also suggest that the large fraction of observed single-planet systems does not necessarily imply any dichotomy in the architecture of planetary systems. Finally, we use the low abundance of resonances in Kepler data to argue that, in reality, the survival of resonant chains happens likely only in ~5 per cent of the cases. This leads to a mystery: in our simulations only 50-60 per cent of resonant chains became unstable, whereas at least 75 per cent (and probably 90-95 per cent) must be unstable to match observations.

Subject headings

NATURVETENSKAP  -- Fysik -- Astronomi, astrofysik och kosmologi (hsv//swe)
NATURAL SCIENCES  -- Physical Sciences -- Astronomy, Astrophysics and Cosmology (hsv//eng)

Keyword

Disc interactions
Methods: Numerical
Planet
Planets and satellites: Dynamical evolution and stability
Planets and satellites: Formation
Protoplanetary discs

Publication and Content Type

art (subject category)
ref (subject category)

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