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Eccentricity growth of planetesimals in a self-gravitating protoplanetary disc
Authors:M. Britsch,C. J. Clarke &dagger  , G. Lodato
Affiliation:Institute of Astronomy, Madingley Road, Cambridge CB3 0HA;ITA, Zentrum für Astronomie der Universität Heidelberg, Albert-Ueberle-S tr. 2, 69120 Heidelberg;Department of Physics and Astronomy, University of Leicester, Leicester LE1 7RH
Abstract:We investigate the orbital evolution of planetesimals in a self-gravitating circumstellar disc in the size regime (∼1–5000 km) where the planetesimals behave approximately as test particles in the disc's non-axisymmetric potential. We find that the particles respond to the stochastic, regenerative spiral features in the disc by executing large random excursions (up to a factor of 2 in radius in ∼1000 yr), although typical random orbital velocities are of the order of one tenth of the Keplerian speed. The limited time frame and small number of planetesimals modelled do not permit us to discern any net direction of planetesimal migration. Our main conclusion is that the high eccentricities (∼0.1) induced by interaction with spiral features in the disc is likely to be highly unfavourable to the collisional growth of planetesimals in this size range while the disc is in the self-gravitating regime. Thus if , as recently argued by Rice et al., the production of planetesimals gets under way when the disc is in the self-gravitating regime (either at smaller planetesimal size scales, where gas drag is important, or via gravitational fragmentation of the solid component), the planetesimals thus produced would not be able to grow collisionally until the disc ceases to be self-gravitating. It is unclear, however, given the large amplitude excursions undergone by planetesimals in the self-gravitating disc, whether they would be retained in the disc throughout this period, or whether they would instead be lost to the central star.
Keywords:accretion, accretion discs    gravitation    instabilities    stars: formation    planetary systems: formation    planetary systems: protoplanetary discs
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