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Electrical conductivity of tremolite under high temperature and pressure: implications for the high-conductivity anomalies in the Earth and Venus

机译:高温和压力下透闪石的电导率:对地球和金星的高导电性异常的影响

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We measured the electrical conductivity of tremolite over a range of pressures (1.0, 1.5, and 2.0 GPa) and temperatures (648-1373 K). At temperatures lower than 1173 K, the electrical conductivity of tremolite was 0.001 S/m, but once the dehydroxylation reaction took place at 1173 K, we observed a significant increase in the electrical conductivity. The electrical conductivity continued to increase until it reached its maximum value of 1 S/m at a temperature of 1373 K, which we attributed to dehydroxylation in the tremolite samples. The electrical behavior was altered by the physical breakdown of the tremolite structure, rather than the oxidation process. The decomposition of tremolite resulted in the creation of diopside, enstatite, and quartz. To explain some anomalous conductivity measurements, we propose that iron-free amphibole experiences a dehydroxylation mechanism that differs from the dehydroxylation mechanism observed in iron-bearing amphiboles. Our conductivity analyses indicate that the observed increase in the electrical conductivity in deep subduction regions (at depths of 180 km) is driven by the dehydroxylation of tremolite and by the mixing of lherzolite and tremolite in the upper mantle. Using our data and previously published temperature gradient data, we were able to extrapolate reasonable electrical conductivity values for the surface and interior of Venus.
机译:我们在压力范围(1.0,1.5和2.0GPa)和温度(648-1373k)中测量了透射纹的电导率。在低于1173K的温度下,透射纹的电导率为0.001 s / m,但是一旦脱羟基化反应在1173k处发生,我们观察到导电率显着增加。导电性继续增加,直至其在1373K的温度下达到1 s / m的最大值,这使得透过旋转样品中的脱羟基化。通过透闪石结构的物理分解而不是氧化过程改变了电动特性。透射岩的分解导致临时,山峰和石英的产生。为了解释一些异常的导电性测量,我们提出了无铁倒置的倒烷基化机制,其不同于在携带铁倍梨果中观察到的脱羟基化机制。我们的电导率分析表明,观察到的深度俯冲区域(深度为180公里深度)的导电率的增加由透闪石的脱羟基化和甲绒石和透射纹的混合在上部地幔中。使用我们的数据和先前发布的温度梯度数据,我们能够为金星的表面和内部推断合理的电导率值。

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