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arXiv · 1309.6480

Hiding in the Shadows: Searching for Planets in Pre--transitional and Transitional Disks

Abstract

Transitional and pre--transitional disks can be explained by a number of mechanisms. This work aims to find a single observationally detectable marker that would imply a planetary origin for the gap and, therefore, indirectly indicate the presence of a young planet. N-body simulations were conducted to investigate the effect of an embedded planet of one Jupiter mass on the production of instantaneous collisional dust derived from a background planetesimal disk. Our new model allows us to predict the dust distribution and resulting observable markers with greater accuracy than previous work. Dynamical influences from a planet on a circular orbit are shown to enhance dust production in the disk interior and exterior to the planet orbit while removing planetesimals from the the orbit itself creating a clearly defined gap. In the case of an eccentric planet the gap opened by the planet is not as clear as the circular case but there is a detectable asymmetry in the dust disk.

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Jack Dobinson, Zoë M. Leinhardt, Sarah E. Dodson-Robinson, Nick A. Teanby. 2013-09-25. Hiding in the Shadows: Searching for Planets in Pre--transitional and Transitional Disks. https://doi.org/10.1088/2041-8205/777/2/l31

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