用于气相成分控制的脉冲介质势垒放电:模拟模型

Plasma Pub Date : 2023-12-12 DOI:10.3390/plasma6040050
R. Barni, Prince Alex, Claudia Riccardi
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引用次数: 0

摘要

我们介绍了常压空气非平衡等离子体中气相化学动力学的数值模拟结果。我们特别讨论了平面介质势垒放电的脉冲运行模式的影响。正如我们所猜测的那样,等离子体中分子的快速解离及其随后产生稳定化学物种的反应所涉及的时间尺度存在巨大差异,这使得连续重复的等离子体产生阶段的存在变得不必要,并且会浪费电能和提高效率。本文讨论了氮氧化物修复、臭氧产生、水蒸气和氨解离的结果。此外,还简要讨论了与已应用的介质阻挡放电反应器的实验结果的一些比较。我们的结果清楚地表明了使用精心设计的重复率和占空比来优化放电的模式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Pulsed Dielectric Barrier Discharges for Gas-Phase Composition Control: A Simulation Model
We present results obtained from the numerical simulation of the gas-phase chemical kinetics in atmospheric pressure air non-equilibrium plasmas. In particular, we addressed the effect of the pulsed operation mode of a planar dielectric barrier discharge. As conjectured, the large difference in the time scales involved in the fast dissociation of molecules in plasmas and their subsequent reactions to produce stable chemical species makes the presence of a continuously repeated plasma production stage unnecessary and a waste of electrical power and efficiency. The results on NOx remediation, ozone production, water vapor and ammonia dissociation are discussed. A few comparisons with experimental findings in a dielectric barrier discharge reactor already used for applications are also briefly addressed. Our results clearly indicate a pattern for the optimization of the discharge using a carefully designed repetition rate and duty cycle.
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CiteScore
2.30
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