首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Electrical resistivity and thermal conductivity of liquid Fe alloys at high P and T and heat flux in Earth’s core
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Electrical resistivity and thermal conductivity of liquid Fe alloys at high P and T and heat flux in Earth’s core

机译:液态铁合金在高P和T时的电阻率和导热率以及地心的热通量

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摘要

Earth’s magnetic field is sustained by magnetohydrodynamic convection within the metallic liquid core. In a thermally advecting core, the fraction of heat available to drive the geodynamo is reduced by heat conducted along the core geotherm, which depends sensitively on the thermal conductivity of liquid iron and its alloys with candidate light elements. The thermal conductivity for Earth’s core is very poorly constrained, with current estimates based on a set of scaling relations that were not previously tested at high pressures. We perform first-principles electronic structure computations to determine the thermal conductivity and electrical resistivity for Fe, Fe–Si, and Fe–O liquid alloys. Computed resistivity agrees very well with existing shock compression measurements and shows strong dependence on light element concentration and type. Thermal conductivity at pressure and temperature conditions characteristic of Earth’s core is higher than previous extrapolations. Conductive heat flux near the core–mantle boundary is comparable to estimates of the total heat flux from the core but decreases with depth, so that thermally driven flow would be constrained to greater depths in the absence of an inner core.
机译:地球磁场是由金属液体核心内的磁流体动力对流维持的。在热平流岩心中,沿岩心地热传导的热量减少了驱动地质发电机可用的热量,这主要取决于液态铁及其合金与候选轻元素的热导率。地球核心的导热系数受到的约束非常有限,目前的估算是基于一组比例关系,而这些比例关系以前并未在高压下进行测试。我们执行第一性原理电子结构计算,以确定Fe,Fe-Si和Fe-O液态合金的导热率和电阻率。计算的电阻率与现有的冲击压缩测量非常吻合,并且显示出对轻元素浓度和类型的强烈依赖性。地球核心在压力和温度条件下的热导率高于以前的推断。靠近芯-地幔边界的传导热通量可与来自芯的总热通量的估算值相媲美,但随深度而减小,因此在没有内芯的情况下,热驱动流将被约束到更大的深度。

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