Metal-silicate partitioning of sulphur, new experimental and thermodynamic constraints on planetary accretion

被引:116
作者
Boujibar, Asmaa [1 ,2 ]
Andrault, Denis [1 ,2 ]
Bouhifd, Mohamed Ali [1 ,2 ]
Bolfan-Casanova, Nathalie [1 ,2 ]
Devidal, Jean-Luc [1 ,2 ]
Trcera, Nicolas [3 ]
机构
[1] Univ Blaise Pascal, Lab Magmas & Volcans, Clermont Univ, F-63000 Clermont Ferrand, France
[2] CNRS, UMR 6524, IRD, R 163, F-63038 Clermont Ferrand, France
[3] Synchrotron SOLEIL, F-91192 Gif Sur Yvette, France
关键词
sulphur; carbon; core formation; light elements; accretion; magma ocean; IRON-RICH METAL; CORE FORMATION; HIGH-PRESSURE; PHASE-RELATIONS; EARTHS CORE; OXYGEN FUGACITY; HIGH-TEMPERATURE; OXIDATION-STATE; MAGMA-OCEAN; SOLUBILITY;
D O I
10.1016/j.epsl.2014.01.021
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Partitioning of sulphur between liquid Fe-rich metals and silicates (D-S(met/sil)) was investigated at temperatures from 1800 degrees C to 2400 degrees C, pressures from 2 to 23 GPa and oxygen fugacities from 3.5 smet to 1.5 log units below the iron-wfistite buffer, using multi-anvil apparatus. The results are combined with previous experimental works to refine a multi-variable thermodynamic model of D-S(met/sil). Sulphur appears to become more siderophile with increasing pressure and FeO content of the silicate melt, and less siderophile with increasing temperature and with Si, C, O, Fe and Ni contents of the metal. We then modelled the behaviour of sulphur in the course of planetary accretion, using different possible scenarios of mantle dynamics and evolution with time of oxygen fugacity. We investigated three end-member models for metal-silicate segregation of the incoming impactors: (i) the planetary mantle does not mix and is kept chemically stratified, (ii) the magma ocean is continuously mixed chemically, and (iii) both the magma ocean and the solid lower mantle are well mixed. We show that if S is accreted along the accretion, whatever the oxidation path, its distribution between core and mantle can lead to the observed S concentration of the mantle (200 +/- 80 ppm) and to the estimations of S content of the core (from its depletion in the mantle relative to the other elements with the same volatility). In the case of an Earth built with reduced material, to explain the present-day 200 (+/- 80) ppm S found in the mantle, it is necessary that both the magma ocean and the solid lower mantle mix at each major step of the planetary accretion. S could also be accreted in the last 10 to 20% of Earth's growth and reach its observed present terrestrial abundances if the magma ocean is chemically mixed along the accretion. Consequently, our models show that the S terrestrial abundances do not formally require an S accretion in a late veneer but can be explained by a core-mantle equilibration alone. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:42 / 54
页数:13
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