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DC conductivity of a suspension of insulating particles with internal rotation

机译:带有内部旋转的绝缘颗粒悬浮液的直流电导率

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We analyse the consequences of Quincke rotation on the conductivity of a suspension. Quincke rotation refers to the spontaneous rotation of insulating particles dispersed in a slightly conducting liquid and subject to a high DC electric field: above a critical field, each particle rotates continuously around itself with an axis pointing in any direction perpendicular to the DC field. When the suspension is subject to an electric field lower than the threshold one, the presence of insulating particles in the host liquid decreases the bulk conductivity since the particles form obstacles to ion migration. But for electric fields higher than the critical one, the particles rotate and facilitate ion migration: the effective conductivity of the suspension is increased. We provide a theoretical analysis of the impact of Quincke rotation on the apparent conductivity of a suspension and we present experimental results obtained with a suspension of PMMA particles dispersed in weakly conducting liquids.
机译:我们分析了Quincke旋转对悬浮液电导率的影响。 Quincke旋转是指分散在微导电液体中并经受高DC电场的绝缘粒子的自发旋转:在临界场上方,每个粒子围绕其自身连续旋转,其轴指向垂直于DC场的任何方向。当悬浮液受到的电场低于阈值一时,主体液体中绝缘颗粒的存在会降低体积电导率,因为这些颗粒会阻碍离子迁移。但是对于高于临界电场的电场,粒子旋转并促进离子迁移:悬浮液的有效电导率增加。我们提供了Quincke旋转对悬浮液的表观电导率的影响的理论分析,并提供了将PMMA颗粒悬浮液分散在弱导电性液体中获得的实验结果。

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