地球第一个英质地壳的起源:氢的视角?

IF 1 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
L. Y. Aranovich, E. S. Persikov, P. G. Bukhtiyarov, A. N. Koshlyakova, N. M. Lebedeva
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引用次数: 0

摘要

本文介绍了玄武质科马铁矿(BK)和辉化辉石球粒陨石(ECH)在温度为1300℃,氢气压力\({{P}_{{{{{\text{H}}}_{{\text{2}}}}}}}\) = 100 MPa条件下熔融模型组成的实验数据。这些实验模拟了岩浆海洋与早期地球氢大气之间的相互作用。实验产物包括硅酸盐玻璃(淬火熔体),其中FeO明显减少,但亲石氧化物和H2O富集,铁含有少量的Si和O混合物。在实验运行中,平衡氧逸度大约比Fe - FeO缓冲液低两个对数单位。熔体分馏结晶计算表明,完整结晶产物为花岗闪长岩,由两长石、斜辉石和石英组成,含少量黑云母(用BK冶炼得到的起始成分),或石英-两长石花岗岩,含少量黑云母和白云母(用ECH冶炼得到的起始成分)。在T = 730 ~ 750℃时,ECH熔体中的锆石可能发生结晶。我们提出的模型是第一个通过行星演化的内部过程来解释富含SiO2和H2O的熔体的产生,而不是用预水合的上地壳来产生地球的第一个长英质物质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Origin of the Earth’s First Felsic Crust: A Hydrogen Perspective?

Origin of the Earth’s First Felsic Crust: A Hydrogen Perspective?

The paper presents experimental data on melting model compositions of basaltic komatiite (BK) and enstatite chondrite (ECH) at a temperature of T = 1300°C and hydrogen pressure \({{P}_{{{{{\text{H}}}_{{\text{2}}}}}}}\) = 100 MPa. The experiments modeled interaction between the magma ocean and the early Earth’s hydrogen atmosphere. The experimental products consist of silicate glass (quenched melts), which is notably depleted in FeO but enriched in lithophile oxides and H2O, and iron with minor Si and O admixtures. The equilibrium oxygen fugacity in the experimental runs was approximately two logarithmic units below the Fe−FeO buffer. Calculation of the fractional crystallization of the melts indicates that the complete crystallization products are granodiorite, which consists of two feldspars, clinopyroxene, and quartz with a minor amount of black mica (for the starting composition obtained in the run with BK), or quartz−two feldspars granite with minor amounts of biotite and muscovite (for the starting composition obtained in the run with ECH). Crystallization of zircon from the ECH melt might occur at T = 730−750°C. Our proposed model is the first that explains generation of melts enriched in SiO2 and H2O by internal processes of planetary evolution and does not invoke pre-hydrated upper crust for generating the Earth’s first felsic material.

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来源期刊
Petrology
Petrology 地学-地球科学综合
CiteScore
2.40
自引率
20.00%
发文量
27
审稿时长
>12 weeks
期刊介绍: Petrology is a journal of magmatic, metamorphic, and experimental petrology, mineralogy, and geochemistry. The journal offers comprehensive information on all multidisciplinary aspects of theoretical, experimental, and applied petrology. By giving special consideration to studies on the petrography of different regions of the former Soviet Union, Petrology provides readers with a unique opportunity to refine their understanding of the geology of the vast territory of the Eurasian continent. The journal welcomes manuscripts from all countries in the English or Russian language.
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