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Variation of thermal conductivity and heat flux at the Earth's core mantle boundary

机译:地球核心地幔边界处的热导率和热通量的变化

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摘要

The two convective systems that dominate Earth's internal dynamics meet at the boundary between the rocky mantle and metallic liquid core. Energy transfer between processes driving plate tectonics and the geodynamo is controlled by thermal conduction in the lowermost mantle (D〃). We use atomic scale simulations to determine the thermal conductivity of MgSiO_3 perovskite and post-perovskite under D" conditions and probe how these two convective systems interact. We show that the thermal conductivity of post-perovskite (~12 W/mK) is 50% larger than that of perovskite under the same conditions (~8.5 W/mK) and is anisotropic, with conductivity along the α-axis being 40% higher than conductivity along the c-axis. This enhances the high heat flux into cold regions of D〃 where post-perovskite is stable, strengthening the feedback between convection in the core and mantle. Reminiscent of the situation in the lithosphere, there is potential for deformation induced texturing associated with mantle convection to modify how the mantle is heated from below. We test this by coupling our atomic scale results to models of texture in D〃 and suggest that anisotropic thermal conductivity may help to stabilise the roots of mantle plumes over their protracted lifetime.
机译:主导地球内部动力学的两个对流系统在岩石地幔与金属液核之间的边界处相遇。驱动板块构造与大地构造的过程之间的能量转移是通过最下层地幔(D〃)中的热传导来控制的。我们使用原子尺度模拟来确定D“条件下MgSiO_3钙钛矿和后钙钛矿的热导率,并探究这两个对流系统如何相互作用。我们显示,钙钛矿后的热导率(〜12 W / mK)为50%在相同条件下(〜8.5 W / mK)比钙钛矿大,并且具有各向异性,沿α轴的电导率比沿c轴的电导率高40%,这增强了进入D冷区的高热通量。 per钙钛矿后期稳定的地方,加强了岩心和地幔对流之间的反馈,让人联想到岩石圈的情况,与地幔对流有关的变形可能会引起变形,从而改变了地幔从下方加热的方式。通过将我们的原子尺度结果与D〃中的纹理模型耦合在一起,这表明各向异性的热导率可能有助于稳定地幔柱的根部。

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