Effect of dielectric material on the uniformity of nanosecond pulsed dielectric barrier discharge

Wenhao Zhou, Dongxuan Zhang, Xiaohui Duan, Xi Zhu, Feng Liu, Z. Fang
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Abstract

Dielectric barrier discharge (DBD) is considered as a promising technique to produce large volume uniform plasma at atmospheric pressure, and the dielectric barrier layer between the electrodes plays a key role in the DBD processes and enhancing discharge uniformity. In this work, the uniformity and discharge characteristics of the nanosecond (ns) pulsed DBD with dielectric barrier layers made of alumina, quartz glass, polycarbonate (PC), and polypropylene (PP) are investigated via discharge image observation, voltage-current waveform measurement and optical emission spectral diagnosis. Through analyzing discharge image by gray value standard deviation method, the discharge uniformity is quantitatively calculated. The effects of the space electric field intensity, the electron density (Ne), and the space reactive species on the uniformity are studied with quantifying the gap voltage Ug and the discharge current Ig, analyzing the recorded optical emission spectra, and simulating the temporal distribution of Ne with a one-dimensional fluid model. It is found that as the relative permittivity of the dielectric materials increases, the space electric field intensity is enhanced, which results in a higher Ne and electron temperature (Te). Therefore, an appropriate value of space electric field intensity can promote electron avalanches, resulting in uniform and stable plasma by the merging of electron avalanches. However, an excessive value of space electric field intensity leads to the aggregation of space charges and the distortion of the space electric field, which reduce the discharge uniformity. The surface roughness and the surface charge decay are measured to explain the influences of the surface properties and the second electron emission on the discharge uniformity. The results in this work give a comprehensive understanding of the effect of the dielectric materials on the DBD uniformity, and contribute to the selection of dielectric materials for DBD reactor and the realization of atmospheric pressure uniform, stable, and reactive plasma sources.
介电材料对纳秒脉冲介电阻挡层放电均匀性的影响
介质阻挡放电(DBD)被认为是在大气压力下产生大体积均匀等离子体的一种有前途的技术,而电极之间的介质阻挡层在 DBD 过程和提高放电均匀性中起着关键作用。本研究通过放电图像观察、电压电流波形测量和光发射光谱诊断,研究了使用氧化铝、石英玻璃、聚碳酸酯(PC)和聚丙烯(PP)介质阻挡层的纳秒(ns)脉冲 DBD 的均匀性和放电特性。通过灰度值标准偏差法分析放电图像,定量计算放电均匀性。通过量化间隙电压 Ug 和放电电流 Ig、分析记录的光发射光谱以及用一维流体模型模拟 Ne 的时间分布,研究了空间电场强度、电子密度 (Ne) 和空间活性物种对均匀性的影响。研究发现,随着介电材料相对介电常数的增加,空间电场强度会增强,从而导致更高的 Ne 和电子温度 (Te)。因此,适当的空间电场强度值可以促进电子雪崩,通过电子雪崩的合并形成均匀稳定的等离子体。然而,过大的空间电场强度值会导致空间电荷聚集和空间电场扭曲,从而降低放电均匀性。通过测量表面粗糙度和表面电荷衰减来解释表面特性和二次电子发射对放电均匀性的影响。这项工作的结果使人们全面了解了介电材料对 DBD 均匀性的影响,有助于为 DBD 反应器选择介电材料和实现常压均匀、稳定和反应性等离子体源。
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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