Rotation of the Solar System planets and the origin of the Moon in the context of the tidal downsizing hypothesis
arXiv:1010.1632 · doi:10.1111/j.1745-3933.2010.00966.x
Abstract
It has been proposed recently that the first step in the formation of both rocky and gas giant planets is dust sedimentation into a solid core inside a gas clump (giant planet embryo). The clumps are then assumed to migrate closer to the star where their metal poor envelopes are sheared away by the tidal forces or by an irradiation-driven mass loss. We consider the implications of this hypothesis for natal rotation rates of both terrestrial and gas giant planets. It is found that both types of planets may rotate near their break up angular frequencies at birth. The direction of the spin should coincide with that of the parent disc and the star, except in cases of embryos that had close interactions or mergers with other embryos in the past. Furthermore, the large repository of specific angular momentum at birth also allows formation of close binary rocky planets inside the same embryos. We compare these predictions with rotation rates of planets in the Solar System and also question whether the Earth-Moon pair could have been formed within the same giant planet embryo.
latex typo corrected -- Fig2a and Fig3a were switched by error in the previous version
References in corpus (4)
Cited by in corpus (6)
- Towards a Population Synthesis Model of Objects formed by Self-Gravitating Disc Fragmentation and Tidal Downsizing
- Dawes Review. The tidal downsizing hypothesis of planet formation
- Tidal Downsizing model. I. Numerical methods: saving giant planets from tidal disruptions
- The Tidal Downsizing hypothesis for planet formation and the composition of Solar System comets
- Tidal Downsizing Model. IV. Destructive feedback in planets
- The evolution of self-gravitating accretion discs