Numerical Models of the Early Stages of Planet Formation

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In the earliest stages of planet formation micrometer-sized dust grains collide and gradually build up kilometer-sized {em planetesimals}, bodies that are so large that they can attract each other directly by gravity. This is an important landmark on the way to real planets because of the change to gravity-dominated growth. The road from boulders to planetesimals is however poorly known. Boulders have poor sticking properties and spiral into the young star due to the head wind from the slower rotating gas. This work presents the first detailed computer simulations of the motion of dust and boulders in turbulent protoplanetary discs. The turbulent diffusion coefficient of small dust grains is measured to be surprisingly high, whereas larger boulders concentrate by up to two orders of magnitude in transient high pressure regions that arise spontaneously in magnetorotational turbulence. The coupled motion of boulders and gas is found to be linearly unstable to the so-called streaming instability, leading to a turbulent state that is characterised by dense clumps of boulders that shield each other against the head wind of the gas.

Autorentext

Anders Johansen finished his master's thesis at Copenhagen University in 2004. From 2004 to 2007 he was a PhD student at the Max Planck Institute for Astronomy and Heidelberg University, supervised by Hubert Klahr and Thomas Henning. He currently holds a postdoctoral position at Leiden University where his research is focused on planet formation.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783836488921
    • Sprache Deutsch
    • Genre Physik & Astronomie
    • Größe H220mm x B13mm x T150mm
    • Jahr 2014
    • EAN 9783836488921
    • Format Kartonierter Einband (Kt)
    • ISBN 978-3-8364-8892-1
    • Titel Numerical Models of the Early Stages of Planet Formation
    • Autor Anders Johansen
    • Untertitel A New Perspective on the Role of Turbulence
    • Gewicht 338g
    • Herausgeber VDM Verlag Dr. Müller e.K.
    • Anzahl Seiten 216

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