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Modeling of conductive particle motion in viscous medium affected by an electric field considering particle-electrode interactions and microdischarge phenomenon

机译:考虑粒子-电极相互作用和微放电现象的电场对粘性介质中导电粒子运动的建模

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摘要

Up and down motion of a spherical conductive particle in dielectric viscous fluid driven by a DC electric field between two parallel electrodes was investigated. A nonlinear differential equation, governing the particle dynamics, was derived, based on Newton's second law of mechanics, and solved numerically. All the pertaining dimensionless groups were extracted. In contrast to similar previous works, hydrodynamic interaction between the particle and the electrodes, as well as image electric forces, has been taken into account. Furthermore, the influence of the microdischarge produced between the electrodes and the approaching particle on the particle dynamics has been included in the model. The model results were compared with experimental data available in the literature, as well as with some additional experimental data obtained through the present study showing very good agreement. The results indicate that the wall hydrodynamic effect and the dielectric liquid ionic conductivity are very dominant factors determining the particle trajectory. A lower bound is derived for the charge transferred to the particle while rebounding from an electrode. It is found that the time and length scales of the post-microdischarge motion of the particle can be as small as microsecond and micrometer, respectively. The model is able to predict the so called settling/dwelling time phenomenon for the first time.
机译:研究了在两个平行电极之间的直流电场驱动下的电介质粘性流体中球形导电颗粒的上下运动。根据牛顿第二力学定律,推导了一个控制粒子动力学的非线性微分方程,并进行了数值求解。提取所有相关的无量纲组。与以前的类似工作相反,已经考虑了粒子与电极之间的流体动力相互作用以及图像电场力。此外,模型中还包括了电极和接近的粒子之间产生的微放电对粒子动力学的影响。将模型结果与文献中提供的实验数据以及通过本研究获得的一些其他实验数据进行了比较,显示出很好的一致性。结果表明,壁水动力效应和介电液体离子电导率是决定粒子轨迹的非常主要的因素。当电荷从电极反弹时,转移到粒子上的电荷的下界被导出。发现颗粒的微放电后运动的时间尺度和长度尺度可以分别小至微秒和微米。该模型能够首次预测所谓的沉降/停留时间现象。

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