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      Capture of planetesimals by waning circumplanetary gas disks

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          Abstract

          When gas giant protoplanets grow sufficiently massive, circumplanetary disks would form. While solid bodies captured by the circumplanetary disks likely contribute to the growth of the planets and regular satellites around them, some of captured bodies would remain in planet-centered orbits after the dispersal of the disk. We examine capture and subsequent orbital evolution of planetesimals in waning circumplanetary gas disks using three-body orbital integration. We find that some of captured planetesimals can survive in the circumplanetary disk for a long period of time under such weak gas drag. Captured planetesimals have semi-major axes smaller than about one third of the planet's Hill radius. Distributions of their eccentricities and inclinations after disk dispersal depend on the strength of gas drag and the timescale of disk dispersal, and initially strong gas drag and quick disk dispersal facilitates capture and survival of planetesimals. However, in such a case, final orbital eccentricities and inclinations of captured bodies remain rather large. Although our results suggest that some of the present irregular satellites of gas giant planets with small semi-major axes would have been captured by gas drag, other mechanisms are required to fully explain their current orbital characteristics.

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          Author and article information

          Journal
          2016-04-28
          Article
          10.3847/0004-637X/820/2/128
          1604.08373
          0081f9cf-294a-41c5-9a52-c4ccfb976f7c

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          The Astrophysical Journal, Volume 820, Issue 2, article id. 128, 18 pp. (2016)
          46 pages, 18 figures, accepted for publication in ApJ
          astro-ph.EP

          Planetary astrophysics
          Planetary astrophysics

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