Aims. We compute for the first time self-consistent models of planet growth that include the effect of envelope enrichment. The change in envelope metallicity is assumed to be the result of planetesimal disruption or icy pebble sublimation. Methods. We solved internal structure equations taking into account global energy conservation for the envelope to compute in situ planetary growth. We considered different opacities and equations of state suited for a wide range of metallicities. Results. We find that envelope enrichment speeds up the formation of gas giants. It also explains naturally the formation of low- and intermediate-mass objects with large fractions of H-He (~20–30% in mass). High-opacity models explain the metallicity of the ...
Extrasolar planet surveys have identified an abundant new population of highly irradiated planets wi...
The radii and orbital periods of 4000+ confirmed/candidate exoplanets have been precisely measured ...
As stellar compositions evolve over time in the Milky Way, so will the resulting planet populations....
Aims. We compute for the first time self-consistent models of planet growth that include the effect ...
Aims. We compute for the first time self-consistent models of planet growth that include the effect ...
Context. Proto-planets embedded in their natal disks acquire hot envelopes as they grow and accrete ...
Aims. We examine the uncertainties in current planetary models and quantify their impact on the plan...
Context. Within the core accretion scenario of planetary formation, most simulations performed so fa...
In order to characterize giant exoplanets and better understand their origin, knowledge of how the p...
Copyright © 2008 EDP SciencesAims. We examine the uncertainties in current planetary models and quan...
We know now that discs of gas and dust, so-called protoplanetary discs, form planets as side-product...
According to both spectroscopic measurements and interior models, Jupiter, Saturn, Uranus and Neptun...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Earth, Atmospheric, and Planeta...
Aims. We want to investigate how planet formation is imprinted on stellar surface composition using ...
International audienceIn protoplanetary disks, the growth and inward drift of dust lead to the gener...
Extrasolar planet surveys have identified an abundant new population of highly irradiated planets wi...
The radii and orbital periods of 4000+ confirmed/candidate exoplanets have been precisely measured ...
As stellar compositions evolve over time in the Milky Way, so will the resulting planet populations....
Aims. We compute for the first time self-consistent models of planet growth that include the effect ...
Aims. We compute for the first time self-consistent models of planet growth that include the effect ...
Context. Proto-planets embedded in their natal disks acquire hot envelopes as they grow and accrete ...
Aims. We examine the uncertainties in current planetary models and quantify their impact on the plan...
Context. Within the core accretion scenario of planetary formation, most simulations performed so fa...
In order to characterize giant exoplanets and better understand their origin, knowledge of how the p...
Copyright © 2008 EDP SciencesAims. We examine the uncertainties in current planetary models and quan...
We know now that discs of gas and dust, so-called protoplanetary discs, form planets as side-product...
According to both spectroscopic measurements and interior models, Jupiter, Saturn, Uranus and Neptun...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Earth, Atmospheric, and Planeta...
Aims. We want to investigate how planet formation is imprinted on stellar surface composition using ...
International audienceIn protoplanetary disks, the growth and inward drift of dust lead to the gener...
Extrasolar planet surveys have identified an abundant new population of highly irradiated planets wi...
The radii and orbital periods of 4000+ confirmed/candidate exoplanets have been precisely measured ...
As stellar compositions evolve over time in the Milky Way, so will the resulting planet populations....