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首页> 外文期刊>The Journal of Adhesion >Modeling and Simulation of Electrostatic Adhesion Force in Concentric-Ring Electrode Structures of Multilayer Dielectrics
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Modeling and Simulation of Electrostatic Adhesion Force in Concentric-Ring Electrode Structures of Multilayer Dielectrics

机译:多层介电体同心环电极结构中静电附着力的建模与仿真

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摘要

Recently, electrostatic adhesion force (EAF) has gained considerable interest for handling dielectric materials. EAF arises from the non-uniform electrical field generated between electrostatic adhesive with special electrode patterns and materials after alternative polarity potentials are applied to the electrodes. In this paper, a theoretical analytical model was derived from electrostatic adhesion fields of concentric-ring electrode (CRE) structures in cylindrical coordinates on multilayer dielectrics. Because polarization on different mediums is complex, the field was divided into four layers to receive corresponding boundaries. With respect to the reproducibility of the CRE structure along the radial direction, the field was further divided into rectangular section shapes according to the Neumann boundary conditions. The surface roughness of the dielectric material, amplitude of the applied voltages, and properties of the different dielectric layers were also accounted for in the modeling, because they have a remarkable effect on the adhesion field. Based on this model, EAF was also calculated by the Maxwell stress tensor. Several critical factors influencing the EAF were analyzed through comparison of the finite element method simulation with theoretical calculations. The results were in good agreement with each method.
机译:最近,静电附着力(EAF)在处理介电材料方面引起了极大的兴趣。在将特殊极性电势施加到电极后,具有特殊电极图案的静电胶粘剂与材料之间产生的不均匀电场会产生EAF。本文从多层电介质上圆柱坐标系中的同心环电极(CRE)结构的静电粘附场推导了理论分析模型。由于不同介质上的极化很复杂,因此将场分为四层以接收相应的边界。关于CRE结构沿径向方向的可再现性,根据诺伊曼边界条件将场进一步划分为矩形截面形状。介电材料的表面粗糙度,施加电压的幅度以及不同介电层的特性也要考虑在建模中,因为它们对粘附场具有显着影响。基于此模型,EAF也通过麦克斯韦应力张量计算。通过将有限元方法模拟与理论计算进行比较,分析了影响电弧炉的几个关键因素。结果与每种方法均吻合良好。

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