most citedCritical core mass for enriched envelopes: the role of H2O condensation

103 citations · 174 across the 2 of their papers we have counts for

collaborators

5 papers

astro-ph.EP202036 cited

Setting the Stage: Planet formation and Volatile Delivery

Julia Venturini, M. Paula Ronco, Octavio M. Guilera

The diversity in mass and composition of planetary atmospheres stems from the different building blocks present in protoplanetary discs and from the different physical and chemical…

astro-ph.EP201957 cited

Jupiter's heavy-element enrichment expected from formation models

Julia Venturini, Ravit Helled

The goal of this work is to investigate Jupiter's growth focusing on the amount of heavy elements accreted by the planet, and its comparison with recent structure models. Our model…

astro-ph.EP201925 cited

Using Deep Neural Networks to compute the mass of forming planets

Yann Alibert, Julia Venturini

Computing the mass of planetary envelopes and the critical mass beyond which planets accrete gas in a runaway fashion is important when studying planet formation, in particular for…

astro-ph.EP201771 cited

The formation of mini-Neptunes

Julia Venturini, Ravit Helled

Mini-Neptunes seem to be common planets. In this work we investigate the possible formation histories and predicted occurrence rates of mini-Neptunes assuming the planets form beyo…

astro-ph.EP2015103 cited

Critical core mass for enriched envelopes: the role of H2O condensation

J. Venturini, Y. Alibert, W. Benz +1

Context. Within the core accretion scenario of planetary formation, most simulations performed so far always assume the accreting envelope to have a solar composition. From the stu…