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Iron isotope fractionation at the core-mantle boundary by thermodiffusion

机译:通过ThermoMiffimplation在核心地幔边界处的铁同位素分馏

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The D" layer at the base of the Earth's mantle exhibits anomalous seismic properties, which are attributed to heat loss from and chemical interaction with the underlying molten Fe-rich outer core. Here we show that mass transfer due to temperature variations within the D" layer could lead to resolvable fractionation of iron isotopes. We constrain the degree of isotope fractionation by experiments on core-forming Fe alloy liquids at 2100-2300 K and 2 GPa, which demonstrate that heavy Fe isotopes preferentially migrate towards lower temperature and vice versa. We find that this isotope fractionation occurs rapidly due to the high mobility of iron, which reaches 0.013 +/- 0.002 parts per thousand (2 sigma) per degree per amu at steady state. Numerical simulations of mantle convection capturing the evolution of a basal thermal boundary layer show that iron isotope fractionation immediately above the core-mantle boundary can reach measurable levels on geologic timescales and that plumes can entrain this fractionated material into the convecting mantle. We suggest that such a process may contribute to the heavy Fe isotope composition of the upper mantle inferred from mantle melts (basalts) and residues (peridotites) relative to chondrites. That being the case, non-traditional stable isotope systems such as Fe may constrain the interactions between the core and mantle.
机译:地球地幔底部的D“层表现出异常的地震性质,其归因于与下面的熔融Fe的外核的热损失和化学相互作用。在这里,我们显示由于D”内的温度变化而导致的质量转移“层可能导致铁同位素的可分离分馏。我们通过在2100-2300k和2GPa的核心形成Fe合金液体上进行了实验来限制同位素分馏程度,这表明重氢同位素优先迁移到较低温度,反之亦然。我们发现这种同位素分馏由于铁的高迁移率,其稳定状态下的每一度每千(2厘米)达到0.013 +/- 0.002份/千分之一。捕获基底热边界层的演变的搭桥对流的数值模拟表明,立即上方的铁同位素分馏可以在地质时间尺度上达到可测量的水平,并且羽毛可以将该分馏物料纳入对流罩。我们建议这样的过程可能有助于从地幔熔体(沼气)和残基(橄榄石)相对于软骨菌的重垫的重垫片的重垫组合物。作为这种情况,诸如Fe的非传统稳定同位素系统可以限制芯和地幔之间的相互作用。

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