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Effects of iron on the lattice thermal conductivity of Earth’s deep mantle and implications for mantle dynamics

机译:铁对地球深地幔晶格热导率的影响及其对地幔动力学的影响

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摘要

Iron may critically influence the physical properties and thermochemical structures of Earth’s lower mantle. Its effects on thermal conductivity, with possible consequences on heat transfer and mantle dynamics, however, remain largely unknown. We measured the lattice thermal conductivity of lower-mantle ferropericlase to 120 GPa using the ultrafast optical pump-probe technique in a diamond anvil cell. The thermal conductivity of ferropericlase with 56% iron significantly drops by a factor of 1.8 across the spin transition around 53 GPa, while that with 8–10% iron increases monotonically with pressure, causing an enhanced iron substitution effect in the low-spin state. Combined with bridgmanite data, modeling of our results provides a self-consistent radial profile of lower-mantle thermal conductivity, which is dominated by pressure, temperature, and iron effects, and shows a twofold increase from top to bottom of the lower mantle. Such increase in thermal conductivity may delay the cooling of the core, while its decrease with iron content may enhance the dynamics of large low shear-wave velocity provinces. Our findings further show that, if hot and strongly enriched in iron, the seismic ultralow velocity zones have exceptionally low conductivity, thus delaying their cooling.
机译:铁可能会严重影响地球下地幔的物理性质和热化学结构。然而,它对导热率的影响,以及对传热和地幔动力学的可能影响,仍然是未知的。我们使用超快光学泵浦探针技术在金刚石砧座中测量了下地幔阿魏酸酯酶的晶格热导率至120 GPa。铁含量为56%时,铁自酯酶的热导率在53 GPa左右的自旋跃迁中下降了1.8倍,而铁含量为8-10%时,其随着压力单调增加,在低旋态下铁替代作用增强。结合桥铁矿数据,我们对结果进行建模可提供下地幔热导率的自洽径向分布图,该分布由压力,温度和铁作用主导,并且从下地幔的顶部到底部增加了两倍。导热系数的这种增加可能会延迟铁芯的冷却,而铁含量的降低则可能会增强大的低剪切波速度省份的动力。我们的发现进一步表明,如果很热并且铁含量很高,那么地震超低速区的电导率会非常低,从而延迟了冷却时间。

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