Photophoretic transport of hot minerals in the solar nebula
arXiv:1105.6259 · doi:10.1051/0004-6361/201116476
Abstract
Hot temperature minerals have been detected in a large number of comets and were also identified in the samples of Comet Wild 2 that were returned by the Stardust mission. Meanwhile, observations of the distribution of hot minerals in young stellar systems suggest that these materials were produced in the inner part of the primordial nebula and have been transported outward in the formation zone of comets. We investigate the possibility that photophoresis provides a viable mechanism to transport high-temperature materials from the inner solar system to the regions in which the comets were forming. We use a grid of time-dependent disk models of the solar nebula to quantify the distance range at which hot minerals can be transported from the inner part of the disk toward its outer regions as a function of their size and density. The particles considered here are in the form of aggregates that presumably were assembled from hot mineral individual grains ranging down to submicron sizes and formed by condensation within the hottest portion of the solar nebula. Our particle-transport model includes the photophoresis, radiation pressure, and gas drag. Depending on the postulated disk parameters and the density of particles, 10-2 to 10-1 m aggregates can reach heliocentric distances up to 35 AU in the primordial nebula over very short timescales (no more than a few hundred thousand years). 10-3 m particles follow the same trajectory as the larger ones but their maximum migration distance does not exceed 26 AU and is reached at later epochs in the disks. On the other hand, 10-5 to 10-4 m aggregates are continuously pushed outward during the evolution of the solar nebula. Our simulations suggest that irrespective of the employed solar nebula model, photophoresis is a mechanism that can explain the presence of hot temperature minerals in the formation region of comets.
Accepted for publication in Astronomy & Astrophysics
References in corpus (5)
- Analytical protostellar disk models 1: the effect of internal dissipation and surface irradiation on the structure of disks and the location of the snow line around Sun-like stars
- Spectro-astrometric imaging of molecular gas within protoplanetary disk gaps
- Dust Coagulation and Settling in Layered Protoplanetary Disks
- The photophoretic sweeping of dust in transient protoplanetary disks
- Experiments on the Photophoretic Motion of Chondrules and Dust Aggregates - Indications for the Transport of Matter in Protoplanetary Disks
Cited by in corpus (11)
- Photophoretic separation of metals and silicates: the formation of Mercury like planets and metal depletion in chondrites
- Solar System Physics for Exoplanet Research
- Rocklines as Cradles for Refractory Solids in the Protosolar Nebula
- From Planetesimals to Dust: Low Gravity Experiments on Recycling Solids at the Inner Edge of Protoplanetary Disks
- Radiative forces on macroscopic porous bodies in protoplanetary disks: laboratory experiments
- Effects of photophoresis on the dust distribution in a 3D protoplanetary disc
- Inner dusty regions of protoplanetary discs - I. High resolution temperature structure
- Selective Aggregation Experiments on Planetesimal Formation and Mercury-Like Planets
- Self-Sustained Recycling in the Inner Dust Ring of Pre-Transitional Disks
- Accretion through the inner edges of protoplanetary disks by a giant solid state pump
- Dust photophoretic transport around a T Tauri star: Implications for comets composition