Numerical simulation of streamer, pressure wave, and vortex induced by nanosecond pulsed surface dielectric barrier discharges

Jiao Zhang, Weiwei Tang, Yanhui Wang, Dezhen Wang
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Abstract

In this study, a two-dimensional fluid model is employed to simulate the streamer, pressure wave, and vortex in surface dielectric barrier discharge driven by nanosecond pulse voltage (ns-SDBD). It comprises a numerical model with two interconnected modules: discharge dynamics and gas flow dynamics. These modules are coupled through the physical variables including ‘EHD force’, ‘thermal source’, ‘velocity field’, ‘gas temperature’, and ‘gas pressure’. Our research primarily focuses on the underlying physical mechanisms of pressure waves and vortices for plasma-based flow control. The generation of pressure waves is attributed to the rapid gas heating by pulsed discharge, whereas the formation and development of the vortex are related to the ionic wind (EHD effect) provided by the plasma. To thoroughly understand and optimize flow control performance, an investigation into the effects of various discharge parameters, such as voltage amplitude and polarity, is conducted. Additionally, several SDBD modules are arranged in series, each featuring a dual three-electrode configuration. Subsequently, the dynamic behaviors of multiple streamers, pressure waves, and vortices, along with their interactions, are explored.
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纳秒脉冲表面介质阻挡层放电诱导的流线、压力波和涡流的数值模拟
本研究采用二维流体模型模拟纳秒脉冲电压驱动的表面介质势垒放电(ns-SDBD)中的流线、压力波和涡流。该模型由一个数值模型和两个相互关联的模块组成:放电动力学和气体流动动力学。这些模块通过 "EHD 力"、"热源"、"速度场"、"气体温度 "和 "气体压力 "等物理变量耦合在一起。我们的研究主要集中于压力波和涡流的基本物理机制,以实现基于等离子体的流动控制。压力波的产生归因于脉冲放电对气体的快速加热,而漩涡的形成和发展则与等离子体提供的离子风(EHD 效应)有关。为了深入了解和优化流量控制性能,我们对电压幅值和极性等各种放电参数的影响进行了研究。此外,多个 SDBD 模块串联排列,每个模块都采用双三电极配置。随后,探讨了多流线、压力波和涡流的动态行为及其相互作用。
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