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DID PLANET FORMATION BEGIN INSIDE PERSISTENT GASEOUS VORTICES?

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arxiv astro-ph/9501050 v1 pith:QN6PWQYS submitted 1995-01-16 astro-ph

classification astro-ph
keywords vorticesorbitparticlesplanetsdensitymassiveinsidesolid
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We explore here the idea, reminiscent in some respect of Von Weizsacker's (1944) and Alfven's (1976) outmoded cosmogonies, that long-lived vortices in a turbulent protoplanetary nebula can capture large amount of solid particles and initiate the formation of planets. Some puzzling features of the solar system appear as natural consequences of our simple model: - The captured mass presents a maximum near Jupiter's orbit. - Outside this optimal orbit, the collected material, mainly composed of low density particles, sinks deeply into the vortices and rapidly collapses into massive bodies at the origin of the solid core of the giant planets. - Inside this orbit, by contrast, the high density particles are preferentially selected by the vortices and assembled by local gravitational instabilities into planetesimals, massive enough to be released by the vortices and to grow later, in successive collisions, to form the terrestrial planets. - The captured mass presents a maximum near Jupiter's orbit. - Outside this optimal orbit, the collected material, mainly composed of low density particles, sinks deeply into the vortices and rapidly collapses into massive bodies at the origin of the solid core of the giant planets. - Inside this orbit, by contrast, the high density particles are preferentially selected by the vortices and assembled by local gravitational instabilities into planetesimals, massive enough to be released by the vortices and to grow later, in successive collisions, to form the terrestrial planets.

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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. Revisiting the picture of circumbinary disc truncation

    astro-ph.EP 2026-06 unverdicted novelty 6.0 of 10

    Cavity truncation in circumbinary discs is set by binary parameters together with instantaneous cavity eccentricity and relative apsidal orientation, yielding a prescription for pericentre radius Rp and semi-major axis acav.

  2. Gas Pressure Driven Screening Forces and Pebble Aggregation: A Pathway for Growth in Planet Formation

    astro-ph.EP 2025-07 reject novelty 5.0 of 10

    The paper derives an attractive screening force between pebbles in protoplanetary gas and claims it can grow centimeter pebbles to kilometer planetesimals in about 10^5 years, mainly between 0.3 and a few AU.

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