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首页> 外文期刊>Plasma physics reports >Dynamics of ionization processes in high-pressure nitrogen, air, and SF6 during a subnanosecond breakdown initiated by runaway electrons
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Dynamics of ionization processes in high-pressure nitrogen, air, and SF6 during a subnanosecond breakdown initiated by runaway electrons

机译:在失控电子引发的亚纳秒击穿过程中,高压氮气,空气和SF6中电离过程的动力学

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The dynamics of ionization processes in high-pressure nitrogen, air, and SF6 during breakdown of a gap with a nonuniform distribution of the electric field by nanosecond high-voltage pulses was studied experimentally. Measurements of the amplitude and temporal characteristics of a diffuse discharge and its radiation with a subnanosecond time resolution have shown that, at any polarity of the electrode with a small curvature radius, breakdown of the gap occurs via two ionization waves, the first of which is initiated by runaway electrons. For a voltage pulse with an similar to 500-ps front, UV radiation from different zones of a diffuse discharge is measured with a subnanosecond time resolution. It is shown that the propagation velocity of the first ionization wave increases after its front has passed one-half of the gap, as well as when the pressure in the discharge chamber is reduced and/or when SF6 is replaced with air or nitrogen. It is found that, at nitrogen pressures of 0.4 and 0.7 MPa and the positive polarity of the high-voltage electrode with a small curvature radius, the ionization wave forms with a larger (similar to 30 ps) time delay with respect to applying the voltage pulse to the gap than at the negative polarity. The velocity of the second ionization wave propagating from the plane electrode is measured. In a discharge in nitrogen at a pressure of 0.7 MPa, this velocity is found to be similar to 10 cms. It is shown that, as the nitrogen pressure increases to 0.7 MPa, the propagation velocity of the front of the first ionization wave at the positive polarity of the electrode with a small curvature radius becomes lower than that at the negative polarity.
机译:通过纳秒级高压脉冲对电场不均匀分布的间隙击穿过程中高压氮,空气和SF6中的电离过程进行了动力学研究。以亚秒级的时间分辨率测量扩散放电及其辐射的幅度和时间特性表明,在具有小曲率半径的电极的任何极性下,间隙的击穿都会通过两次电离波发生。由失控的电子引发。对于具有类似于500 ps前端的电压脉冲,以亚纳秒的时间分辨率测量来自扩散放电不同区域的UV辐射。结果表明,在第一电离波的前部经过间隙的一半后,以及在放电室中的压力降低和/或当SF6被空气或氮气置换时,第一电离波的传播速度都会增加。发现在氮气压力为0.4和0.7 MPa且高压电极的正极性具有较小的曲率半径时,相对于施加电压,电离波的形成具有较大的(大约30 ps)时间延迟脉冲到间隙比在负极性。测量从平面电极传播的第二电离波的速度。在压力为0.7 MPa的氮气排放中,发现该速度类似于10 cm / ns。结果表明,随着氮气压力增加到0.7 MPa,曲率半径小的电极的正极性处的第一电离波的前部的传播速度低于负极性。

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