负极性直流叠加纳秒脉冲放电特性及其应用

H. Yamashita, Y. Torigoe, D. Wang, T. Namihira
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引用次数: 1

摘要

脉冲放电产生的非热等离子体具有较高的化学活性,有望有效地处理氮氧化物(NOx)和硫氧化物(SOx)等燃烧废气。本课题组研制了电压上升时间和下降时间均为2ns,脉宽为5ns,峰值为60kv的纳秒脉冲放电。纳秒脉冲放电主要由流光放电阶段组成,使得辉光放电引起的热损失较小,且在流光放电阶段等离子体阻抗基本保持不变。因此,脉冲电源与放电负载之间的阻抗匹配是可能的。报道了纳秒脉冲放电在臭氧生成和NO处理方面的应用,与其他放电方法相比具有较高的能量效率。但放电方式有时会过渡到电弧放电阶段。此外,在工业应用方面,等离子体处理能力还有提高的空间。也有报道称,负极性纳秒脉冲放电在等离子体处理应用中具有更好的效果。为了提高纳秒放电等离子体的性能,本研究提出了负极性直流叠加纳秒脉冲放电。本文还介绍了利用负极性直流叠加纳秒脉冲放电产生臭氧的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characteristics of negative-polarity DC superimposed nanosecond pulsed discharge and its applications
Non-thermal plasma generated by pulsed discharge is expected to efficiently treat combustion exhaust gases such as nitrogen oxide (NOx) and sulfur oxide (SOx) due to its high chemical activity. Nanosecond pulsed discharge which has voltage rise time and fall time of 2 ns, pulse width 5 ns and peak value of 60 kV, has been developed by our group. Nanosecond pulsed discharge mainly consists of streamer discharge phase, so that heat loss which caused by glow discharge is less, and plasma impedance is kept almost constant during the streamer discharge phase. Therefore, impedance matching between pulsed power supply and discharge load is possible. Applications on ozone generation and NO treatment using nanosecond pulsed discharge are reported with high energy efficiency compared to other discharge methods. However, the discharge mode transit to arc discharge phase sometimes. Also, for industrial applications, the plasma processing capacity leaves room to improve. It has also been reported that negative polarity nanosecond pulse discharges give better results depending on the plasma processing applications. In this study, negative polarity DC superimposed nanosecond pulsed discharge was suggested in order to improve the better performance of the nanosecond discharge plasma. Results of ozone generation using negative polarity DC superimposed nanosecond pulsed discharge have also been introduced.
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