首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Influence of segmented grounding electrodes on electrical characteristics in annular surface dielectric barrier discharge
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Influence of segmented grounding electrodes on electrical characteristics in annular surface dielectric barrier discharge

机译:分段接地电极对环形介电阻挡放电中电特性的影响

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The primary aims of this paper are to provide a better understanding of surface dielectric barrier discharge based on annular geometry and to investigate the effect of segmented grounding electrodes on their electrical and optical properties. To this end, four grounding electrode conditions are considered: 10-segment, 20-segment, and 30-segment ones as the experimental conditions, and an unsegmented (termed 0-segment) one as the control. A great number of current pulses with lower amplitudes are observed under the segmented conditions compared to the 0-segment condition. In the former case, the current pulse number and the peak value are observed to be inversely and directly proportional to the number of segments, respectively. However, the average currents corresponding to the various segmentations are observed to be nearly identical, and each of them is lower than that under the 0-segment condition. Secondly, the discharge uniformity under the 30-segment condition is observed to be better than under the 0-segment condition, because even though the discharge is usually concentrated at covered regions, it spreads spanwise to the adjacent uncovered regions as the number of segments is increased. Consequently, the airflow induced by spanwise-spread plasma extends the effective range of plasma action. Moreover, the Lissajous figures corresponding to the four conditions are ascertained to be approximately parallelogram-shaped. However, the slopes of the discharge phases are dependent on the voltage, as the variations of equivalent capacitance in dark and discharge phases are distinct. A higher amount of power is consumed under the 30-segment condition than under the 0-segment condition, although the maximum transported charge is much lower in the former case. Finally, in the quasi-sinusoidal external electric field distribution induced by the segmented grounding electrode, a slightly lower-than-average electric fields avoid the creation of obvious separated channels, while a moderate peak-to-peak difference of electric field improves the electric field distortions caused by existing micro-discharges. This phenomenon serves as a satisfactory explanation of the differences between the discharge channel developments and the plasma distributions under different conditions. Based on the obtained results, we conclude that the performance of discharge plasma can be improved by arranging the electrodes optimally.
机译:本文的主要目的是为了更好地理解基于环形几何形状的表面介质阻挡放电,并研究分段接地电极对其电学和光学性能的影响。为此,考虑了四种接地极条件:10段、20段和30段接地极作为实验条件,未分段(称为0段)接地极作为对照。与0段条件相比,分段条件下观察到大量振幅较低的电流脉冲。在前一种情况下,观察到电流脉冲数和峰值分别与分段数成反比和正比例。然而,观察到不同分段对应的平均电流几乎相同,并且每个分段都低于0分段条件下的平均电流。其次,观察到30段条件下的放电均匀性优于0段条件下的放电均匀性,因为尽管放电通常集中在覆盖区域,但随着段数的增加,放电向相邻的未覆盖区域扩散。因此,展向扩散等离子体产生的气流扩大了等离子体作用的有效范围。此外,与这四种情况对应的李萨如图形被确定为近似平行四边形。然而,放电相位的斜率取决于电压,因为在黑暗和放电相位中等效电容的变化是不同的。在30段条件下消耗的功率比在0段条件下消耗的功率更大,尽管前者的最大传输电荷要低得多。最后,在分段接地极引起的准正弦外部电场分布中,略低于平均值的电场避免了明显的分离通道的产生,而适度的电场峰间差异改善了现有微放电引起的电场畸变。这一现象很好地解释了不同条件下放电通道发展和等离子体分布之间的差异。根据所得结果,我们得出结论,通过优化电极布置可以提高放电等离子体的性能。

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