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Melting temperatures of MgO under high pressure by micro-texture analysis

机译:微观组织分析法分析高压下MgO的熔融温度

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摘要

Periclase (MgO) is the second most abundant mineral after bridgmanite in the Earth's lower mantle, and its melting behaviour under pressure is important to constrain rheological properties and melting behaviours of the lower mantle materials. Significant discrepancies exist between the melting temperatures of MgO determined by laser-heated diamond anvil cell (LHDAC) and those based on dynamic compressions and theoretical predictions. Here we show the melting temperatures in earlier LHDAC experiments are underestimated due to misjudgment of melting, based on micro-texture observations of the quenched samples. The high melting temperatures of MgO suggest that the subducted cold slabs should have higher viscosities than previously thought, suggesting that the inter-connecting textural feature of MgO would not play important roles for the slab stagnation in the lower mantle. The present results also predict that the ultra-deep magmas produced in the lower mantle are peridotitic, which are stabilized near the core–mantle boundary.
机译:过氧化物酶(MgO)是地球下地幔中仅次成辉绿岩的第二大矿物质,其在压力下的熔融行为对于限制下地幔物质的流变性质和熔融行为很重要。激光加热金刚石砧盒(LHDAC)确定的MgO熔化温度与基于动态压缩和理论预测的熔化温度之间存在显着差异。在这里,我们基于淬火样品的微观结构观察结果,表明由于熔化的错误判断,低估了早期LHDAC实验中的熔化温度。 MgO的高熔化温度表明俯冲的冷平板应具有比以前认为的更高的粘度,这表明MgO的相互连接的纹理特征对于下地幔的平板停滞不会发挥重要作用。目前的结果还预测,在下地幔中产生的超深岩浆是橄榄岩质的,并稳定在岩心-地幔边界附近。

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