Experimental study of the motion of a shock wave in the plasma of a pulsed volume discharge in air

A. A. Ivanova, I. V. Mursenkova
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Abstract

The motion of quasi-plane shock waves with Mach numbers = 2.20–3.50 in the plasma of a nanosecond combined volume discharge in air at an initial pressure of 10–100 Torr has been experimentally studied on the basis of high-speed shadow registration of the flow field. The dynamics of shock–wave configurations after the discharge at various stages of an unsteady supersonic flow, which is formed after the diffraction of a plane shock wave by a rectangular obstacle, is studied. An increase in the velocity of the shock wave front over a time interval of up to 15 𝜇s in a plasma region of 9–40 mm long and its dependence on the plasma parameters is found. An analysis of relaxation processes in plasma showed that the acceleration of the shock wave front can be caused by air heating due to the quenching of electronically excited nitrogen molecules, in which the internal energy is converted into thermal energy at times up to 30 𝜇s.
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空气中脉冲体积放电等离子体中激波运动的实验研究
在流场高速阴影配准的基础上,实验研究了马赫数为2.20-3.50的准平面激波在初始压力为10-100 Torr的纳秒组合体积放电等离子体中的运动。研究了平面激波经矩形障碍物衍射后形成的超声速非定常流动在不同阶段放电后激波形态的动力学特性。在9 - 40mm长的等离子体区域内,激波锋面速度在15𝜇s的时间间隔内增加,并发现其与等离子体参数的依赖关系。对等离子体弛豫过程的分析表明,由于电子激发的氮分子猝灭,空气加热可引起激波前的加速,其中内能在高达30次的时间内转换为热能𝜇s。
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