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Strategies of Power Measurement and Energy Coupling Enhancement in Nanosecond Pulsed Coaxial Dielectric Barrier Discharges

机译:纳秒脉冲同轴电介质屏障排放功率测量和能量耦合增强策略

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Dielectric barrier discharges (DBDs) driven by nanosecond high-voltage pulses can be quite different from those driven by alternating current (ac) sources, on both electrical characteristics and plasma microparameters. In this article, the power measurement strategy in nanosecond pulsed coaxial DBDs is optimized. The effect of different experimental parameters on energy deposition and reduced electric field in plasma is investigated. First, the results measured using the instantaneous power (from the production of voltage and current) method and that using the v-q trace (Lissajous curve) method are compared and the source of divergence is analyzed. By comparing monitor capacitors with different materials and capacitances, it is demonstrated that the high-frequency response of the monitor capacitor is essential and the capacitance value can be adjusted according to the applied voltage, taking both the dynamic range of oscilloscope and the signal-to-noise ratio into consideration. Second, the influence of morphology of ground electrode, voltage rising time, and pulse width on energy deposition per-pulse and reduced electric field, obtained from the nitrogen spectral line-ratio, is studied. It is found that the copper foil promotes the discharge energy coupling per-pulse compared with the copper grid, while the reduced electric field obtained from the nitrogen line-ratio with the copper foil is weaker. A shorter rising time will also enhance the energy coupling per-pulse, as well as the reduced electric field.
机译:由纳秒高压脉冲驱动的介质屏障放电(DBD)可以与通过交流电流(AC)源驱动的介质屏障放电(DBD)与电气特性和等离子体微扫描仪在交流电流(AC)源驱动的那些。在本文中,优化了纳秒脉冲同轴DBD中的功率测量策略。研究了不同实验参数对等离子体中能量沉积和降低电场的影响。首先,比较使用瞬时功率(来自电压和电流)方法和使用V-Q痕迹(Lissajous曲线)方法测量的结果,分析了发散源。通过将监视电容与不同材料和电容进行比较,证明了监视器电容的高频响应是必不可少的,并且可以根据施加的电压调整电容值,以验证示波器的动态范围和信号 - 到 - 不考虑的比例。其次,研究了从氮气光谱线比的接地电极,电压上升时间和脉冲宽度对能量沉积和缩减电场的影响。结果发现,与铜网格相比,铜箔促进每脉冲的放电能量耦合,而从氮箔的氮素线比获得的还原电场较弱。较短的上升时间还将增强每脉冲的能量耦合,以及降低的电场。

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