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Breaking mean-motion resonances during Type I planet migration

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posted on 2018-01-24, 14:34 authored by T. O. Hands, R. D. Alexander
We present 2D hydrodynamical simulations of pairs of planets migrating simultaneously in the Type I regime in a protoplanetary disc. Convergent migration naturally leads to the trapping of these planets in mean-motion resonances. Once in resonance the planets' eccentricity grows rapidly, and disc-planet torques cause the planets to escape resonance on a time-scale of a few hundred orbits. The effect is more pronounced in highly viscous discs, but operates efficiently even in inviscid discs. We attribute this resonance-breaking to overstable librations driven by moderate eccentricity damping, but find that this mechanism operates differently in hydrodynamic simulations than in previous analytic calculations. Planets escaping resonance in this manner can potentially explain the observed paucity of resonances in Kepler multitransiting systems, and we suggest that simultaneous disc-driven migration remains the most plausible means of assembling tightly packed planetary systems.

Funding

TOH acknowledges support from a Science & Technology Facilities Council (STFC) PhD studentship and from the Swiss National Science Foundation grant number 200020_162930. TOH and RDA acknowledge support from the Leverhulme Trust through a Philip Leverhulme Prize. This project has received funding from the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (grant agreement No. 681601). This work used the Darwin Data Analytic system at the University of Cambridge operated by the University of Cambridge High Performance Computing Service on behalf of the STFC DiRAC HPC Facility (www.dirac.ac.uk). This equipment was funded by a BIS National E-infrastructure capital grant (ST/K001590/1), STFC capital grants ST/H008861/1 and ST/H00887X/1 and DiRAC Operations grant ST/K00333X/1. DiRAC is part of the National E-Infrastructure.

History

Citation

Monthly Notices of the Royal Astronomical Society, 2018, 474 (3), pp. 3998-4009

Author affiliation

/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Physics and Astronomy

Version

  • VoR (Version of Record)

Published in

Monthly Notices of the Royal Astronomical Society

Publisher

Oxford University Press (OUP), Royal Astronomical Society

issn

0035-8711

eissn

1365-2966

Acceptance date

2017-10-13

Copyright date

2017

Available date

2018-01-24

Publisher version

https://academic.oup.com/mnras/article/474/3/3998/4561047

Language

en

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