The Effect of Surface Conductivity on the Characteristics of the Dielectric Barrier Discharge Actuator

A. Shaygani, K. Adamiak
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引用次数: 2

Abstract

The effect of the surface conductivity on the electrical and mechanical characteristics of the surface dielectric barrier discharge (SDBD) actuator has been numerically investigated in this study. A typical wire-to-plate AC-SDBD actuator to control airflow alongside a flat dielectric plate has been considered. A sinusoidal high voltage of varied frequencies and amplitudes is supplied to the 300-micrometer diameter active electrode, and the passive electrode is encapsulated inside a dielectric plate. Two-species ion transport model, involving generic positive and negative ions, coupled to electrostatics model is assumed. The electrostatic field is affected by both the space and the surface charges. The surface charge is accumulated due to ion deposition, but its distribution varies due to the surface ohmic conduction. The Navier-Stokes equations for the flow simulation, which include the time-averaged electrohydrodynamic (EHD) body force determined from the discharge model, are solved to analyze the flow field and the boundary layer morphology. The numerical algorithm has been implemented in COMSOL commercial package. The significance of the dielectric surface conductivity on the discharge behavior and the flow field has been shown. The dielectric surface conductivity behaves non-monotonically and affects the flow field by altering the EHD force strength, direction and distribution.
表面电导率对介质阻挡放电作动器特性的影响
本文对表面电导率对表面介质阻挡放电(SDBD)作动器电学和力学特性的影响进行了数值研究。考虑了一种典型的线对板AC-SDBD执行器,用于控制沿平坦介质板的气流。向直径300微米的主动电极提供频率和振幅变化的正弦高压,并将被动电极封装在介电板内。假设两种离子传输模型,包括一般的正离子和负离子,耦合到静电模型。静电场同时受到空间电荷和表面电荷的影响。表面电荷因离子沉积而积累,但其分布因表面欧姆传导而变化。通过求解含时均电流体动力(EHD)体力的流动模拟Navier-Stokes方程,分析了流场和边界层形态。该数值算法已在COMSOL商业软件包中实现。说明了介质表面电导率对放电行为和流场的影响。介质表面电导率具有非单调性,并通过改变EHD力的强度、方向和分布来影响流场。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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