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首页> 外文期刊>Dielectrics and Electrical Insulation, IEEE Transactions on >Excitation of atmospheric pressure uniform dielectric barrier discharge using repetitive unipolar nanosecond-pulse generator
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Excitation of atmospheric pressure uniform dielectric barrier discharge using repetitive unipolar nanosecond-pulse generator

机译:使用重复单极纳秒脉冲发生器激发大气压均匀介质阻挡放电

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摘要

Dielectric barrier discharge (DBD) excitation by unipolar high voltage pulses is a promising approach for producing non-thermal plasma at atmospheric pressure. In this study, a magnetic compression solid-state pulsed power generator was used to produce repetitive nanosecond pulses for the excitation. The DBD is created using two liquid electrodes. The electrical characteristics of the discharge voltage and current are illustrated under different experimental conditions. The nanosecond-pulse discharge current is of the order of tens of amperes. This differs from common DBD current excitated by high-voltage ac sources. Compared with the characteristics of two current pulses corresponding to two discharges for unipolar pulsed-excitation, the secondary discharge in this study is minor owing to the pulsed power and discharge configuration. Under the experimental conditions, the luminous emissions from the front and side views of the liquid electrodes show that no filament is observed and the discharge is homogeneous and diffuse in the whole discharge region. The effects of applied voltage amplitude, repetition rate, and air gap spacing on the discharge characteristic are investigated. The discharge mode does not change with the variation of the investigated parameters. A comparison of high voltage ac and nanosecond-pulse excitation is also presented. In addition, discussion of the experimental results is presented.
机译:通过单极高压脉冲激发介质阻挡放电(DBD)是一种在大气压力下产生非热等离子体的有前途的方法。在这项研究中,使用磁压缩固态脉冲发电机来产生重复的纳秒脉冲以进行激励。使用两个液体电极创建DBD。说明了在不同实验条件下的放电电压和电流的电气特性。纳秒脉冲放电电流约为数十安培。这不同于高压交流电源激发的普通DBD电流。与单极性脉冲励磁的两个放电对应的两个电流脉冲的特性相比,由于脉冲功率和放电配置,本研究中的二次放电较小。在实验条件下,从液体电极的正面和侧面观察到的发光表明没有观察到灯丝,并且放电在整个放电区域内均匀且分散。研究了施加的电压幅度,重复率和气隙间距对放电特性的影响。放电模式不会随所研究参数的变化而变化。还提出了高压交流和纳秒脉冲激励的比较。另外,还讨论了实验结果。

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