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Space-time evolution of ejected plasma for the triggering of gas switch

机译:触发气体开关的喷射等离子体的时空演化

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摘要

Ejected plasma has been widely applied to the discharge process of gas spark switches as a trigger technology, and the development process of ejected plasma has a direct and important effect on the discharge characteristics of gas switches. In this paper, both the injection characteristics and space-time evolution of ejected plasma for the triggering of gas spark switch with different stored energies, pulse polarities, and pressures are studied. The discharge characteristics and breakdown process of a gas switch ignited by ejected plasma under different working coefficients are also discussed briefly. The results show that stored energy has significant influence on the characteristics of ejected plasma. With the increase of stored energy, the propulsion mode of ejected plasma in the axial direction transforms from "plasmoid" to "plasma flow," and the distribution of the ejected plasma goes through "cloud," "core-cloud," and "branch" in sequence. The velocity of ejected plasma under negative pulse polarity is obviously higher than that under positive pulse polarity, especially at the very beginning time. The radial dimensions of ejected plasma under two kinds of pulse polarities follow the similar varying pattern over time, which increase first and then decrease, assuming an inverted "U"-shaped curve. With the increase of pressure, the velocity of ejected plasma significantly decreases and the "branch" channels droop earlier. Applying the ejected plasma to the triggering of a gas switch, the switch can be triggered reliably in a much wide working coefficient range of 10%-90%. With the increase of working coefficient, the breakdown process of the switch translates from slow working mode to fast working mode, and the delay time reduces from tens of mu s to hundreds of ns. Published by AIP Publishing.
机译:喷射等离子体作为触发技术已被广泛应用于气体火花开关的放电过程,而喷射等离子体的发展过程对气体开关的放电特性有着直接而重要的影响。本文研究了具有不同储能,脉冲极性和压力的气体火花开关触发的喷射等离子体的注入特性和时空演化。还简要讨论了在不同的工作系数下被喷射的等离子体点燃的气体开关的放电特性和击穿过程。结果表明,存储的能量对喷射的等离子体的特性有很大的影响。随着存储能量的增加,喷射的等离子体在轴向上的推进方式从“等离子体”转变为“等离子体流”,并且等离子体的分布通过“云”,“芯云”和“分支”。 “ 按顺序。负脉冲极性下喷射的等离子体的速度明显高于正脉冲极性下的喷射,特别是在开始时。在两种脉冲极性下,喷射的等离子体的径向尺寸随时间遵循相似的变化模式,并假设“ U”形曲线倒置,先增大然后减小。随着压力的增加,喷射的等离子体的速度显着降低,“分支”通道更早下垂。将喷射的等离子体应用于气体开关的触发,可以在10%-90%的很大工作系数范围内可靠地触发开关。随着工作系数的增加,开关的击穿过程从慢速工作模式转变为快速工作模式,延迟时间从数十微秒降低到数百纳秒。由AIP Publishing发布。

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