$N$-body simulation of planetary formation through pebble accretion in a radially structured protoplanetary disk
Abstract
In the conventional theory of planet formation, it is assumed that protoplanetary disks are axisymmetric and have a smooth radial profile. However, recent radio observations of protoplanetary disks have revealed that many of them have complex radial structures. In this study, we perform a series of -body simulations to investigate how planets are formed in protoplanetary disks with radial structures. For this purpose, we consider the effect of continuous pebble accretion onto the discontinuity boundary within the terrestrial planet-forming region ( AU). We found that protoplanets grow efficiently at the discontinuity boundary, reaching the Earth mass within years. We confirmed that giant collisions of protoplanets occur universally in our model. Moreover, we found that multiple planet-sized bodies form at regular intervals in the vicinity of the discontinuity boundary. These results indicate the possibility of the formation of solar system-like planetary systems in radially structured protoplanetary disks.
Keywords
Cite
@article{arxiv.2308.04839,
title = {$N$-body simulation of planetary formation through pebble accretion in a radially structured protoplanetary disk},
author = {Tenri Jinno and Takayuki R. Saitoh and Yota Ishigaki and Junichiro Makino},
journal= {arXiv preprint arXiv:2308.04839},
year = {2023}
}
Comments
19 pages, 19 figures, accepted for publication in PASJ (Publications of the Astronomical Society of Japan). The paper is the same as v1, but comments on the paper status added