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Dust distribution in protoplanetary disks - Vertical settling and radial migration

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arxiv astro-ph/0508452 v1 pith:R5EJVC6M submitted 2005-08-22 astro-ph

classification astro-ph
keywords dustgraingrainssimulationssizedisksdragmidplane
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We present the results of a three dimensional, locally isothermal, non-self-gravitating SPH code which models protoplanetary disks with two fluids: gas and dust. We ran simulations of a 1 Msun star surrounded by a 0.01 Msun disk comprising 99% gas and 1% dust in mass and extending from 0.5 to ~300 AU. The grain size ranges from 0.001 mm to 10 m for the low resolution (~25 000 SPH particles) simulations and from 0.1 mm to 10 cm for the high resolution (~160 000 SPH particles) simulations. Dust grains are slowed down by the sub-Keplerian gas and lose angular momentum, forcing them to migrate towards the central star and settle to the midplane. The gas drag efficiency varies according to the grain size, with the larger bodies being weakly influenced and following marginally perturbed Keplerian orbits, while smaller grains are strongly coupled to the gas. For intermediate sized grains, the drag force decouples the dust and gas, allowing the dust to preferentially migrate radially and efficiently settle to the midplane. The resulting dust distributions for each grain size will indicate, when grain growth is added, the regions when planets are likely to form.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Developing a Non-Newtonian Fluid Model for Dust, for Application to Astrophysical Flows

    astro-ph.EP 2024-11 conditional novelty 7.0 of 10

    Collisionless dust in turbulent gas is derived as a 6D anisotropic Maxwell fluid whose rheological stress tensor is dynamically important in accretion discs.

  2. Dust Growth in Binary Systems: Inhibition of dust settling and growth in circumbinary discs

    astro-ph.EP 2026-07 conditional novelty 5.0 of 10

    Dust grains in circumbinary discs end up five times smaller than in single-star discs, and the conditions for streaming-instability clumping are not met, arguing against in-situ planet formation there.

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