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Electric Field Measurements in a Dielectric Barrier Nanosecond Pulse Discharge with Sub-nanosecond Time Resolution

机译:具有亚纳秒时间分辨率的介电势垒纳秒脉冲放电中的电场测量

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The paper presents the results of time-resolved electric field measurements in a nanosecond discharge between two plane electrodes covered by dielectric plates, using a picosecond four-wave mixing diagnostic. For absolute calibration, the IR signal was measured in hydrogen at a pressure of 440 Torr, for electrostatic electric field ranging from 0 to 8 kV/cm. The calibration curve (i.e. the square root of IR signal intensity vs. electric field) was shown to be linear. By measuring the intensities of the pump, Stokes, and IR signal beam for each laser shot during the time sweep across the high-voltage pulse, temporal evolution of the electric field in the nanosecond pulse discharge was determined with sub-nanosecond time resolution. The results are compared to kinetic modeling predictions, showing good agreement, including non-zero electric field offset before the main high voltage pulse, breakdown moment, and reduction of electric field in the plasma after breakdown. The difference between the experimental results and model predictions is likely due to non-one-dimensional structure of the discharge. Comparison with the kinetic modeling predictions shows that electric field in the nanosecond pulse discharge is controlled primarily by electron impact excitation and charge accumulation on the dielectric surfaces.
机译:本文介绍了在介电板覆盖的两个平板电极之间的纳秒放电中的时间分辨电场测量结果,使用PICOSECOND四波混合诊断。对于绝对校准,在440托的压力下在氢气中测量IR信号,用于静电电场范围为0至8kV / cm。校准曲线(即IR信号强度与电场的平方根)被显示为线性。通过测量在横跨高压脉冲的时间扫描期间为每个激光射击的泵,斯托克斯和IR信号光束的强度,用子纳秒时间分辨率确定纳秒脉冲放电中的电场的时间演变。结果与动力学建模预测进行了比较,显示出良好的一致性,包括在击穿后的主高压脉冲,故障时刻和电场中电场的非零电场偏移。实验结果和模型预测之间的差异可能是由于放电的非一维结构。与动力学建模预测的比较表明纳秒脉冲放电中的电场主要通过电子冲击激发和电介质表面上的电荷积累来控制。

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