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Breakdown features of a high-voltage nanosecond discharge initiated with runaway electrons at subnanosecond voltage pulse rise time

机译:亚纳秒级电压脉冲上升时间由失控电子引发的高压纳秒级放电的击穿特性

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In the wide pressure range of the pure nitrogen and sulfur hexafluoride with small admixture of nitrogen (2,5%) the development of the breakdown during the formation of diffuse discharges initiated by runaway electrons and X-Ray was investigated. Nanosecond voltage pulses of both polarities with an amplitude up to ~300 kV and risetime of ~0.5 ns applied across the discharge gap did provide sharply nonuniform electric field distribution. Estimations of average propagation velocity of the ionization wave in the nitrogen and mixture sulfur hexafluoride with nitrogen were performed on the basis of data on dynamics of radiation intensity of the second positive (2) nitrogen system from various regions along of the longitudinal axis of interelectrode gap. Interrelation between the glow dynamics and the local value of the electric field strength has been defined. The results showed that the breakdown is developed in the form of the ionization wave propagating from the potential electrode with the highest concentration of the electric field to the flat-grounded one. In the regions near the grounded electrode practically simultaneous increasing of radiation intensity is registered, that indicates on a possible change of the breakdown mechanism in this part of the discharge gap.
机译:在纯氮和六氟化硫与氮的少量混合(2.5%)的宽压力范围内,研究了由失控电子和X射线引发的扩散放电形成过程中击穿的发展。施加在放电间隙上的两个极性的纳秒级电压脉冲(幅度最高为〜300 kV,上升时间为〜0.5 ns)确实提供了非常不均匀的电场分布。基于第二正(2)氮系统沿电极间隙纵轴不同区域的第二正(2)氮系统的辐射强度动态数据,估算了氮和六氟化硫与氮的混合物中电离波在氮中的平均传播速度。 。已经定义了辉光动力学和电场强度的局部值之间的相互关系。结果表明,击穿是以电离波的形式发展的,该电离波从电场强度最高的电位电极传播到平坦接地的电极。在接地电极附近的区域中,实际上记录到辐射强度的同时增加,这表明在放电间隙的该部分中击穿机理可能发生变化。

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