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Thermal and electrical conductivity of solid iron and iron-silicon mixtures at Earth's core conditions

机译:地球核心条件下固体铁和铁硅混合物的导热性和导电性

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摘要

We report on the thermal and electrical conductivities of solid iron and iron–silicon mixtures (Fe0.92Si0.08 and Fe0.93Si0.07), representative of the composition of the Earth's solid inner core at the relevant pressure–temperature conditions, obtained from density functional theory calculations with the Kubo–Greenwood formulation. We find thermal conductivities View the MathML source, and electrical conductivities View the MathML source at the top of the inner core (centre of the Earth). These values are respectively about 45–56% and 18–25% higher than the corresponding conductivities in the liquid outer core. The higher conductivities are due to the solid structure and to the lower concentration of light impurities. These values are much higher than those in use for previous inner core studies, k by a factor of four and σ by a factor of three. The high thermal conductivity means that heat leaks out by conduction almost as quickly as the inner core forms, making thermal convection unlikely. The high electrical conductivity increases the magnetic decay time of the inner core by a factor of more than three, lengthening the magnetic diffusion time to 10 kyr and making it more likely that the inner core stabilises the geodynamo and reduces the frequency of reversals.
机译:我们报告了固体铁和铁-硅混合物(Fe0.92Si0.08和Fe0.93Si0.07)的热导率和电导率,它们代表了在相关的压力-温度条件下地球固体内核的组成,从久保一格林伍德公式的密度泛函理论计算。我们发现在内芯顶部(地球中心)的热导率和电导率。这些值分别比液体外芯中的相应电导率高约45–56%和18–25%。较高的电导率归因于固体结构和较低的轻杂质浓度。这些值比以前的内核研究中使用的值高得多,k值是四倍,σ是三倍。高导热率意味着热量通过传导几乎与内芯形成一样迅速泄漏出去,从而使热对流变得不太可能。高电导率将内芯的磁衰减时间增加了三倍以上,从而将磁扩散时间延长到10 kyr,并使内芯更可能稳定大地发电机并降低了反转的频率。

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