Blowing in the wind. II. Creation and redistribution of refractory inclusions in a turbulent protoplanetary nebula

被引:123
作者
Cuzzi, JN [1 ]
Davis, SS [1 ]
Dobrovolskis, AR [1 ]
机构
[1] NASA, Ames Res Ctr, Div Space Sci, Moffett Field, CA 94035 USA
关键词
origin; solar system; solar nebula; meteorites; mineralogy;
D O I
10.1016/j.icarus.2003.08.016
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Ca-Al rich refractory mineral inclusions (CAIs) found at 1-6% mass fraction in primitive chondrites appear to be 1-3 million years older than the dominant (chondrule) components which were accreted into the same parent bodies. A prevalent concern is that it is difficult to retain CAIs for this long against gas-drag-induced radial drift into the Sun. We reassess the situation in terms of a hot inner (turbulent) nebula context for CAI formation, using analytical models of nebula evolution and particle diffusion. We show that outward radial diffusion in a weakly turbulent nebula can overcome inward drift, and prevent significant numbers of CAI-size particles from being lost into the Sun for times on the order of 106 years. CAIs can form early, when the inner nebula was hot, and persist in sufficient abundance to be incorporated into primitive planetesimals at a much later time. Small (less than or similar to 0.1 mm diameter) CAIs persist for longer times than large (greater than or similar to 5 mm diameter) ones. To obtain a quantitative match to the observed volume fractions of CAIs in chondrites, another process must be allowed for: a substantial enhancement of the inner hot nebula in silicate-forming material, which we suggest was caused by rapid inward drift of meter-sized objects. This early in nebula history, the drifting rubble would have a carbon content probably an order of magnitude larger than even the most primitive (CI) carbonaceous chondrites. Abundant carbon in the evaporating material would help keep the nebula oxygen fugacity low, plausibly solar. as inferred for the formation environment of CAIs. The associated production of a larger than canonical amount of CO2 might also play a role in mass-independent fractionation of oxygen isotopes, leaving the gas rich in O-16 as inferred from CAIs and other high temperature condensates. Published by Elsevier Inc.
引用
收藏
页码:385 / 402
页数:18
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