Planetesimal fragmentation and giant planet formation

Context. Most planet formation models that incorporate planetesimal fragmentation consider a catastrophic impact energy threshold for basalts at a constant velocity of 3 km/s throughout the process of the formation of the planets. However, as planets grow, the relative velocities of the surrounding...

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Detalles Bibliográficos
Autores: San Sebastián, Irina Luciana, Guilera, Octavio Miguel, Parisi, Mirta Gabriela
Tipo de recurso: artículo
Estado:Versión publicada
Fecha de publicación:2019
País:Argentina
Institución:Consejo Nacional de Investigaciones Científicas y Técnicas
Repositorio:CONICET Digital (CONICET)
Idioma:inglés
OAI Identifier:oai:ri.conicet.gov.ar:11336/118175
Acceso en línea:http://hdl.handle.net/11336/118175
Access Level:acceso abierto
Palabra clave:PLANETS AND SATELLITES: FORMATION
PLANETS AND SATELLITES: GASEOUS PLANETS
METHODS: NUMERICAL
https://purl.org/becyt/ford/1.3
https://purl.org/becyt/ford/1
Descripción
Sumario:Context. Most planet formation models that incorporate planetesimal fragmentation consider a catastrophic impact energy threshold for basalts at a constant velocity of 3 km/s throughout the process of the formation of the planets. However, as planets grow, the relative velocities of the surrounding planetesimals increase from velocities of the order of meters per second to a few kilometers per second. In addition, beyond the ice line where giant planets are formed, planetesimals are expected to be composed roughly of 50% ices.Aims. We aim to study the role of planetesimal fragmentation on giant planet formation considering the planetesimal catastrophic impact energy threshold as a function of the planetesimal relative velocities and compositions.Methods. We improved our model of planetesimal fragmentation incorporating a functional form of the catastrophic impact energythreshold with the planetesimal relative velocities and compositions. We also improved in our model the accretion of small fragments produced by the fragmentation of planetesimals during the collisional cascade considering specific pebble accretion rates.Results. We find that a more accurate and realistic model for the calculation of the catastrophic impact energy threshold tends toslow down the formation of massive cores. Only for reduced grain opacity values at the envelope of the planet is the cross-over massachieved before the disk timescale dissipation.Conclusions. While planetesimal fragmentation favors the quick formation of massive cores of 5?10 Earth masses the cross-over mass could be inhibited by planetesimal fragmentation. However, grain opacity reduction or pollution by the accreted planetesimals together with planetesimal fragmentation could explain the formation of giant planets with low-mass cores.