Influence of Water Cooling for Outer Electrode on the Discharge Characteristics of an Atmospheric Coaxial DBD Reactor

介质阻挡放电 同轴 电极 等离子体 分析化学(期刊) 材料科学 局部放电 非热等离子体 水冷 强度(物理) 电压 电介质 热力学 光电子学 化学 物理 电气工程 色谱法 光学 物理化学 量子力学 工程类
作者
Gehui Duan,Zhi Fang,Junhui Fu,Peng Yu,Danhua Mei
出处
期刊:IEEE Transactions on Plasma Science [Institute of Electrical and Electronics Engineers]
卷期号:49 (3): 1173-1180 被引量:11
标识
DOI:10.1109/tps.2021.3056431
摘要

Dielectric barrier discharge (DBD) has attracted increasing attention for the applications in the gas phase plasma chemical reactions. The utilization of electrode cooling has been proved to enhance the performance of plasma chemical reactions in the coaxial DBD reactor. However, the universal understanding on how the electrode cooling improves the plasma reaction is very limited. Here, we investigated the discharge characteristics in the N 2 DBD with and without water cooling for outer electrode. The influence of water cooling on the discharge characteristics of the N 2 DBD was examined by the diagnostics of electrical, optical, and temperature characters. The results showed that at the same initial applied voltage, the N 2 DBD with water cooling exhibited a more stable discharge with higher intensity in comparison with that without water cooling, which was reflected by the smaller decrease and higher level in applied voltage, number of current pulses, transferred charge, relative intensity of the main reactive species, and energy efficiency as a function of discharge time. From the temperature measurement, the temperature of the DBD reactor was maintained in the lower and more stable level in the presence of water cooling, indicating that more energy was injected into the plasma reactions rather than wasted as heat dissipation to the environment, which led to the higher energy efficiency in the N 2 DBD with water cooling. Overall, this work provides essential references for the development and optimization of the DBD reactors in practical applications (e.g., chemical synthesis using plasma processes).
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