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Stability of ferrous-iron-rich bridgmanite under reducing midmantle conditions

机译:富含铁铁的水辉石在降低中地幔条件下的稳定性

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摘要

Our current understanding of the electronic state of iron in lower-mantle minerals leads to a considerable disagreement in bulk sound speed with seismic measurements if the lower mantle has the same composition as the upper mantle (pyrolite). In the modeling studies, the content and oxidation state of Fe in the minerals have been assumed to be constant throughout the lower mantle. Here, we report high-pressure experimental results in which Fe becomes dominantly Fe2+ in bridgmanite synthesized at 40–70 GPa and 2,000 K, while it is in mixed oxidation state (Fe3+/∑Fe = 60%) in the samples synthesized below and above the pressure range. Little Fe3+ in bridgmanite combined with the strong partitioning of Fe2+ into ferropericlase will alter the Fe content for these minerals at 1,100- to 1,700-km depths. Our calculations show that the change in iron content harmonizes the bulk sound speed of pyrolite with the seismic values in this region. Our experiments support no significant changes in bulk composition for most of the mantle, but possible changes in physical properties and processes (such as viscosity and mantle flow patterns) in the midmantle.
机译:如果下地幔的成分与上地幔(黄铁矿)相同,我们对下地幔矿物中铁的电子状态的当前理解导致整体声速与地震测量存在很大差异。在建模研究中,已假设整个下地幔中矿物中铁的含量和氧化态是恒定的。在这里,我们报告了高压实验结果,其中在40–70 GPa和2,000 K的合成状态下,处于混合氧化态(Fe 3+ / ∑Fe = 60%)。桥锰矿中的少量Fe 3 + 加上Fe 2 + 强烈分配为铁硅藻土酶,将改变这些矿物在1,100-1,700 km深度处的Fe含量。我们的计算表明,铁含量的变化使该地区的黄铁矿的整体声速与地震值相协调。我们的实验支持大多数地幔的体积组成没有明显变化,但是中地幔的物理性质和过程(例如粘度和地幔流动模式)可能发生变化。

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