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The role of diffusion-driven pure climb creep on the rheology of bridgmanite under lower mantle conditions

机译:较低地幔条件下扩散驱动的纯爬升蠕变对水辉石流变学的作用

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摘要

The viscosity of Earth’s lower mantle is poorly constrained due to the lack of knowledge on some fundamental variables that affect the deformation behaviour of its main mineral phases. This study focuses on bridgmanite, the main lower mantle constituent, and assesses its rheology by developing an approach based on mineral physics. Following and revising the recent advances in this field, pure climb creep controlled by diffusion is identified as the key mechanism driving deformation in bridgmanite. The strain rates of this phase under lower mantle pressures, temperatures and stresses are thus calculated by constraining diffusion and implementing a creep theoretical model. The viscosity of MgSiO3 bridgmanite resulting from pure climb creep is consequently evaluated and compared with the viscosity profiles available from the literature. We show that the inferred variability of viscosity in these profiles can be fully accounted for with the chosen variables of our calculation, e.g., diffusion coefficients, vacancy concentrations and applied stresses. A refinement of these variables is advocated in order to further constrain viscosity and match the observables.
机译:由于缺乏对影响其主要矿物相变形行为的一些基本变量的了解,因此对地球下地幔的粘度的控制很差。这项研究的重点是桥下部的主要成分布里奇锰铁矿,并通过开发一种基于矿物物理的方法来评估其流变学。继并修订了该领域的最新进展之后,通过扩散控制的纯爬升蠕变被确定为驱动桥锰矿变形的关键机制。因此,通过限制扩散并实施蠕变理论模型,可以计算出该相在较低地幔压力,温度和应力下的应变率。因此,评估了纯爬升蠕变引起的MgSiO3桥锰矿的粘度,并将其与可从文献中获得的粘度曲线进行了比较。我们表明,在这些曲线中推断出的粘度变化可以通过我们计算中选择的变量来充分考虑,例如扩散系数,空位浓度和施加的应力。提倡对这些变量进行细化,以进一步限制粘度并使观测值匹配。

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