Photophoresis boosts giant planet formation
arXiv:1306.4555 · doi:10.1051/0004-6361/201321582
Abstract
In the core accretion model of giant planet formation, a solid protoplanetary core begins to accrete gas directly from the nebula when its mass reaches about 5 earth masses. The protoplanet has at most a few million years to reach runaway gas accretion, as young stars lose their gas disks after 10 million years at the latest. Yet gas accretion also brings small dust grains entrained in the gas into the planetary atmosphere. Dust accretion creates an optically thick protoplanetary atmosphere that cannot efficiently radiate away the kinetic energy deposited by incoming planetesimals. A dust-rich atmosphere severely slows down atmospheric cooling, contraction, and inflow of new gas, in contradiction to the observed timescales of planet formation. Here we show that photophoresis is a strong mechanism for pushing dust out of the planetary atmosphere due to the momentum exchange between gas and dust grains. The thermal radiation from the heated inner atmosphere and core is sufficient to levitate dust grains and to push them outward. Photophoresis can significantly accelerate the formation of giant planets.
accepted in Astronomy and Astrophysics, 2013
References in corpus (7)
- Chemical abundances of 451 stars from the HARPS GTO planet search program: Thin disc, thick disc, and planets
- High Velocity Dust Collisions: Forming Planetesimals in a Fragmentation Cascade with Final Accretion
- Silicon and Nickel Enrichment in Planet-Host Stars: Observations and Implications for the Core-Accretion Theory of Planet Formation
- The photophoretic sweeping of dust in transient protoplanetary disks
- Experiments on centimeter-sized dust aggregates and their implications for planetesimal formation
- Saturn Forms by Core Accretion in 3.4 Myr
- From Planetesimals to Dust: Low Gravity Experiments on Recycling Solids at the Inner Edge of Protoplanetary Disks
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- Self-Sustained Recycling in the Inner Dust Ring of Pre-Transitional Disks
- Simulations of Small Solid Accretion onto Planetesimals in the Presence of Gas
- Dust photophoretic transport around a T Tauri star: Implications for comets composition