论文标题

非碳质软管的生产Al/si和Mg/Si比揭示了pranetesimal contemal形成在原球星盘的早期凝结期间

Subsolar Al/Si and Mg/Si ratios of non-carbonaceous chondrites reveal planetesimal formation during early condensation in the protoplanetary disk

论文作者

Morbidelli, A., Libourel, G., Palme, H., Jacobson, S. A., Rubie, D. C.

论文摘要

非碳质软管中的al/si和mg/si比低于太阳能(即ci-ongondritic)值,与非CI碳质的陨石和地球形成鲜明对比,这些陨石和地球在折旧元素中富集并具有si元素,并且具有Solar或Solar或更大的元素。我们表明,在耐火元件的凝结过程中,第一代行星的形成意味着随后形成了具有强度亚属性Al/si和mg/si比的残留冷凝物。残留冷凝物与不同量的材料与太阳能/Si元素比率的混合解释了非碳质软管的al/si和mg/si值。为了定量匹配观察到的比率,我们发现,当磁盘温度约为1,330-1,400 K时,首先要积聚的,具体取决于压力并假设磁盘的太阳能/O比。我们讨论了该模型如何与我们当前对磁盘进化,晶粒动力学和行星形成的理解有关。我们还将讨论扩展到中度波动的元素(例如NA),从而解释了这些元素在非碳质软管中的耗竭可能与折磨元素的耗尽相关(例如,Al)。将分析扩展到CR时,我们发现在原始磁盘的气体中/在发生分离气体的冷凝时,在原始磁盘的气体中的证据高于太阳能C/O的比率。最后,我们讨论了地球的上极/Si和Mg/Si比的可能性是由于我们行星质量的约40%,这是由于富含耐火的行星的第一代质量。

The Al/Si and Mg/Si ratios in non-carbonaceous chondrites are lower than the solar (i.e., CI-chondritic) values, in sharp contrast to the non-CI carbonaceous meteorites and the Earth, which are enriched in refractory elements and have Mg/Si ratios that are solar or larger. We show that the formation of a first generation of planetesimals during the condensation of refractory elements implies the subsequent formation of residual condensates with strongly sub-solar Al/Si and Mg/Si ratios. The mixing of residual condensates with different amounts of material with solar refractory/Si element ratios explains the Al/Si and Mg/Si values of non-carbonaceous chondrites. To match quantitatively the observed ratios, we find that the first-planetesimals should have accreted when the disk temperature was ~1,330-1,400 K depending on pressure and assuming a solar C/O ratio of the disk. We discuss how this model relates to our current understanding of disk evolution, grain dynamics, and planetesimal formation. We also extend the discussion to moderately volatile elements (e.g., Na), explaining how it may be possible that the depletion of these elements in non-carbonaceous chondrites is correlated with the depletion of refractory elements (e.g., Al). Extending the analysis to Cr, we find evidence for a higher than solar C/O ratio in the protosolar disk's gas when/where condensation from a fractionated gas occurred. Finally, we discuss the possibility that the supra-solar Al/Si and Mg/Si ratios of the Earth are due to the accretion of ~40% of the mass of our planet from the first-generation of refractory-rich planetesimals.

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