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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >The effect of pressure, temperature, oxygen fugacity and composition on partitioning of nickel and cobalt between liquid Fe-Ni-S alloy and liquid silicate: Implications for the Earth's core formation
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The effect of pressure, temperature, oxygen fugacity and composition on partitioning of nickel and cobalt between liquid Fe-Ni-S alloy and liquid silicate: Implications for the Earth's core formation

机译:压力,温度,氧逸度和组成对液态Fe-Ni-S合金和液态硅酸盐之间镍和钴分配的影响:对地球核心形成的影响

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摘要

Experiments have been conducted with a multi-anvil apparatus on two natural chondrites in four different sample containers. Partition coefficients for Ni and Co between liquid Fe-Ni-S-alloy and liquid silicate (D-Ni(LA/LS) and D-Co(LA/LS)) were determined over a pressure range between 2 and 25 GPa and a temperature range between 2100 and 2623 K. Multi-variable linear regression analysis was performed on the measured D-Ni(LA/LS) and D-Co(LA/LS) using a formula that is partially based on thermodynamics and partially empirical relationships. The results from the experiments with non-graphite capsules revealed that the effects of oxygen fugacity are roughly consistent with Ni and Co being divalent ions in liquid silicate. Within the experimental pressure and temperature ranges, both Ni and Co become less siderophile with increasing pressure and temperature. The effect of pressure is more pronounced for Ni while the effect of temperature is more pronounced for Co. Furthermore, both effects become smaller at higher pressures and higher temperatures, Nickel and Co are less soluble in liquid silicate with higher degree of polymerization. The presence of S in liquid Fe-alloy enhances the siderophile behavior of Ni and Co. However, for a given relative proportion of Fe, Ni and Co in the Fe-alloy, D-Ni(LA/LS) and D-Co(LA/LS) are larger for the Fe-alloy with a smaller S content. Applying the observed effects of pressure, temperature, oxygen fugacity and composition on D-Ni(LA/LS) and D-Co(LA/LS). we found that the observed partitioning of Ni and Co between core and mantle (D-Ni(core/mantle) and D-Co(core/mantle)) can be matched at high pressures and high temperatures. The pressure-temperature range corresponds to that in the current midmantle (about 1200-1450 km in depth). Therefore, the observed high abundances and near-chondritic ratio of Ni and Co in the Earth's upper mantle can be explained by chemical equilibrium between liquid Fe-Ni-S-alloy and liquid silicate in a deep magma ocean. Copyright (C) 2001 Elsevier Science Ltd. [References: 60]
机译:用多砧装置对四个不同样品容器中的两个天然球粒陨石进行了实验。在2至25 GPa的压力范围内确定了液态Fe-Ni-S合金与液态硅酸盐(D-Ni(LA / LS)和D-Co(LA / LS))之间的Ni和Co分配系数。温度范围在2100到2623 K之间。使用部分基于热力学和部分经验关系的公式,对测得的D-Ni(LA / LS)和D-Co(LA / LS)进行了多元线性回归分析。非石墨胶囊实验的结果表明,氧逸度的影响与液态硅酸盐中的Ni和Co是二价离子大致一致。在实验压力和温度范围内,随着压力和温度的升高,Ni和Co的亲铁性均降低。压力的影响对于Ni更为明显,而温度的影响对于Co更为明显。此外,在较高的压力和较高的温度下,两种作用均变小,镍和Co在较高聚合度的情况下不易溶于液态硅酸盐。液态铁合金中S的存在增强了Ni和Co的亲铁性能。但是,对于铁合金中给定相对比例的Fe,Ni和Co,D-Ni(LA / LS)和D-Co(对于S含量较小的铁合金,LA / LS较大。将观察到的压力,温度,氧气逸度和组成对D-Ni(LA / LS)和D-Co(LA / LS)的影响应用。我们发现,在高压和高温下,观察到的镍和钴在芯和壳之间的分配(D-Ni(芯/壳)和D-Co(芯/壳))可以匹配。压力-温度范围对应于当前地幔中部的压力-温度范围(深度约为1200至1450 km)。因此,可以通过深部岩浆海洋中液态Fe-Ni-S合金和液态硅酸盐之间的化学平衡来解释在地球上地幔中观测到的Ni和Co的高丰度和近软骨比。版权所有(C)2001 Elsevier Science Ltd. [参考:60]

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