Detalhes do Documento

Formation of short-period planets by disc migration

Autor(es): Carrera, Daniel ; Ford, Eric B. ; Izidoro, Andre [UNESP]

Data: 2019

Identificador Persistente: http://hdl.handle.net/11449/188078

Origem: Oasisbr

Assunto(s): planets and satellites: dynamical evolution and stability; planets and satellites: formation; planets and satellites: general; planets and satellites: dynamical evolution and stability; planets and satellites: dynamical evolution and stability; planets and satellites: formation; planets and satellites: formation; planets and satellites: general; planets and satellites: general


Descrição

Made available in DSpace on 2019-10-06T15:56:36Z (GMT). No. of bitstreams: 0 Previous issue date: 2019-01-01

Protoplanetary discs are thought to be truncated at orbital periods of around 10 d. Therefore, the origin of rocky short-period planets with P < 10 d is a puzzle. We propose that many of these planets may form through the Type-I migration of planets locked into a chain of mutual mean motion resonances. We ran N-body simulations of planetary embryos embedded in a protoplanetary disc. The embryos experienced gravitational scatterings, collisions, disc torques, and dampening of orbital eccentricity and inclination. We then modelled Kepler observations of these planets using a forward model of both the transit probability and the detection efficiency of the Kepler pipeline. We found that planets become locked into long chains of mean motion resonances that migrate in unison. When the chain reaches the edge of the disc, the inner planets are pushed past the edge due to the disc torques acting on the planets farther out in the chain. Our simulated systems successfully reproduce the observed period distribution of short-period Kepler planets between 1 and 2 R⊕. However, we obtain fewer closely packed short-period planets than in the Kepler sample. Our results provide valuable insight into the planet formation process, and suggests that resonance locks, migration, and dynamical instabilities play important roles in the formation and evolution of close-in small exoplanets.

Department of Astronomy and Astrophysics 525 Davey Laboratory Pennsylvania State University

Center for Exoplanets and Habitable Worlds 525 Davey Laboratory Pennsylvania State University

Institute for CyberScience Pennsylvania State University

UNESP Univ. Estadual Paulista Grupo de Dinâmica Orbital and Planetologia

UNESP Univ. Estadual Paulista Grupo de Dinâmica Orbital and Planetologia

Tipo de Documento Artigo científico
Idioma Inglês
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