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Ponded melt at the boundary between the lithosphere and asthenosphere

机译:岩石圈和软流圈之间边界处的熔池

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The boundary between Earth's rigid lithosphere and the underlying, ductile asthenosphere is marked by a distinct seismic discontinuity. A decrease in seismic-wave velocity and increase in attenuation at this boundary is thought to be caused by partial melt. The density and viscosity of basaltic magma, linked to the atomic structure, control the process of melt separation from the surrounding mantle rocks. Here we use high-pressure and high-temperature experiments and in situ X-ray analysis to assess the properties of basaltic magmas under pressures of up to 5.5 GPa. We find that the magmas rapidly become denser with increasing pressure and show a viscosity minimum near 4 GPa. Magma mobility - the ratio of the melt-solid density contrast to the magma viscosity - exhibits a peak at pressures corresponding to depths of 120-150 km, within the asthenosphere, up to an order of magnitude greater than pressures corresponding to the deeper mantle and shallower lithosphere. Melts are therefore expected to rapidly migrate out of the asthenosphere. The diminishing mobility of magma in Earth's asthenosphere as the melts ascend could lead to excessive melt accumulation at depths of 80-100 km, at the lithosphere-asthenosphere boundary. We conclude that the observed seismic discontinuity at the lithosphere- asthenosphere boundary records this accumulation of melt.
机译:地球的刚性岩石圈与下伏的韧性软流圈之间的边界具有明显的地震不连续性。地震波速度的降低和该边界处衰减的增加被认为是部分熔融引起的。与原子结构有关的玄武岩浆的密度和粘度控制着熔岩与周围地幔岩石的分离过程。在这里,我们使用高压和高温实验以及原位X射线分析来评估压力高达5.5 GPa的玄武岩浆的性质。我们发现,随着压力的增加,岩浆迅速变稠,并且在4 GPa附近表现出最小的黏度。岩浆流动性-熔体-固体密度与岩浆粘度的比值-在软流圈内对应于120-150 km深度的压力处显示峰值,比对应于更深地幔和地幔压力的压力高一个数量级。较浅的岩石圈。因此,预计熔体会迅速迁移到软流圈之外。随着熔体上升,岩浆在地球软流层中的迁移性降低,可能导致岩石圈-软流层边界处80-100 km深度的熔体堆积过多。我们得出结论,在岩石圈-软流圈边界观察到的地震不连续性记录了这种熔体的堆积。

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