紊流介质流动带电的漂移/扩散传导模型

E. W. Jansen, M. Zahn
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引用次数: 2

摘要

建立了一种漂移/扩散流电气化模型,用于在旋转同心圆柱形电极与开路、短路或直流电压激励电极之间的湍流液体介质中进行双极传导。实验数据用于估计模型参数,如电极壁上每个载流子的密度和载流子的迁移率。典型的实验测量表明,壁面电荷密度远远大于每个载流子的平衡电荷密度,这使得准平衡欧姆电导率模型失效,因为壁面附近的局部电导率高于平衡电导率。通过测量开路电压、短路电流和湍流芯电荷密度,发现了特定的电极壁电荷密度,产生了接近自洽的解。对圆柱体上的实验直流电压激励进行处理,以预测将来的测量
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A drift/diffusion conduction model for flow electrification of turbulent liquid dielectrics
A drift/diffusion flow electrification model is developed for bipolar conduction in a turbulent liquid dielectric between rotating concentric cylindrical electrodes with open-circuited, short-circuited, or DC voltage energized electrodes. Experimental data are used to estimate model parameters such as the density of each charge carrier at the electrode walls and the mobility ratio of the charge carriers. Typical experimental measurements indicate wall charge densities much larger than the equilibrium charge densities of each carrier, invalidating a quasiequilibrium ohmic conductivity model as the local conductivity near the wall is enhanced over the equilibrium conductivity. Specific electrode wall charge densities are found which yield near self-consistent solutions with measurements of open-circuit voltage, short-circuit current, and turbulent core charge densities. Experimental DC voltage excitation across the cylinders is treated in anticipation of future measurements.<>
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