Transport of solids in protoplanetary disks: Comparing meteorites and astrophysical models
arXiv:1402.0533 · doi:10.1016/j.crte.2014.02.004
Abstract
We review models of chondrite component transport in the gaseous protoplanetary disk. Refractory inclusions were likely transported by turbulent diffusion and possible early disk expansion, and required low turbulence for their subsequent preservation in the disk, possibly in a dead zone. Chondrules were produced locally but did not necessarily accrete shortly after formation. Water may have been enhanced in the inner disk because of inward drift of solids from further out, but likely not by more than a factor of a few. Incomplete condensation in chondrites may be due to slow reaction kinetics during temperature decrease. While carbonaceous chondrite compositions might be reproduced in a ``two-component'' picture (Anders 1964), such components would not correspond to simple petrographic constituents, although part of the refractory element fractionations in chondrites may be due to the inward drift of refractory inclusions. Overall, considerations of chondrite component transport alone favor an earlier formation for carbonaceous chondrites relative to their noncarbonaceous counterparts, but independent objections have yet to be resolved.
9 pages, 1 figure. Invited review accepted by Comptes Rendus Geosciences. Dedicated to the memory of Guillaume Barlet (1985-2014)
References in corpus (7)
- Gas- and dust evolution in protoplanetary disks
- Survival of the mm-cm size grain population observed in protoplanetary disks
- Transport and Accretion in Planet-Forming Disks
- Turbulent diffusion in protoplanetary discs: the effect of an imposed magnetic field
- Gravitational Instabilities in Gaseous Protoplanetary Disks and Implications for Giant Planet Formation
- Dust in Proto-Planetary Disks: Properties and Evolution
- Dust crystallinity in protoplanetary disks: the effect of diffusion/viscosity ratio
Cited by in corpus (10)
- Fingerprints of the protosolar cloud collapse in the Solar System II: Nucleosynthetic anomalies in meteorites
- Northwest Africa 5958: a weakly altered CM-related ungrouped chondrite, not a CI3
- Origin of isolated olivine grains in carbonaceous chondrites
- Trace element geochemistry of ordinary chondrite chondrules: the type I/type II chondrule dichotomy
- The formation conditions of enstatite chondrites: Insights from trace element geochemistry of olivine-bearing chondrules in Sahara 97096 (EH3)
- New Paradigms For Asteroid Formation
- On beryllium-10 production in gaseous protoplanetary disks and implications on the astrophysical setting of refractory inclusions
- Location and sizes of forsterite grains in protoplanetary disks: interpretation from the Herschel DIGIT programme
- Global Modeling of Nebulae With Particle Growth, Drift, and Evaporation Fronts. II. The Influence of Porosity on Solids Evolution
- Depletion of Moderately Volatile Elements by Open-System loss in the Early Solar Nebula