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首页> 外文期刊>Quantum electronics >Formation of an optical pulsed discharge in a supersonic air flow by radiation of a repetitively pulsed CO_2 laser (Conference Paper)
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Formation of an optical pulsed discharge in a supersonic air flow by radiation of a repetitively pulsed CO_2 laser (Conference Paper)

机译:通过重复脉冲CO_2激光的辐射在超音速气流中形成光脉冲放电(会议论文)

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Results of optimisation of repetitively pulsed CO _2-laser generation are presented for finding physical conditions of forming stable burning of an optical pulsed discharge (OPD) in a supersonic air flow and for studying the influence of pulse parameters on the energy absorption efficiency of laser radiation in plasma. The optical discharge in a supersonic air flow was formed by radiation of a repetitively pulsed CO _2 laser with mechanical Q-switching excited by a discharge with a convective cooling of the working gas. For the first time the influence of radiation pulse parameters on the ignition conditions and stable burning of the OPD in a supersonic air flow was investigated and the efficiency of laser radiation absorption in plasma was studied. The influence of the air flow velocity on stability of plasma production was investigated. It was shown that stable burning of the OPD in a supersonic flow is realised at a high pulse repetition rate where the interval between radiation pulses is shorter than the time of plasma blowing-off. Study of the instantaneous value of the absorption coefficient shows that after a breakdown in a time lapse of 100 - 150 ns, a quasi-stationary 'absorption phase' is formed with the duration of ~1.5 ms, which exists independently of air flow and radiation pulse repetition rate. This phase of strong absorption is, seemingly, related to evolution of the ionisation wave.
机译:给出了重复脉冲CO _2激光生成的优化结果,以发现形成超声速气流中光脉冲放电(OPD)稳定燃烧的物理条件,并研究脉冲参数对激光辐射能量吸收效率的影响在血浆中。超音速气流中的光放电是通过重复脉冲的CO _2激光的辐射形成的,该脉冲具有机械Q开关,并通过对流冷却工作气体进行放电而激发。首次研究了辐射脉冲参数对超音速气流中OPD着火条件和稳定燃烧的影响,并研究了等离子体中激光辐射吸收的效率。研究了空气流速对等离子体产生稳定性的影响。结果表明,在高脉冲重复率下,超声脉冲流中的OPD稳定燃烧,其中辐射脉冲之间的间隔比等离子吹脱时间短。对吸收系数的瞬时值的研究表明,在100-150 ns的时间间隔内击穿之后,形成了一个近似平稳的“吸收相”,持续时间约为1.5 ms,与空气流动和辐射无关脉冲重复率。吸收的这一阶段似乎与电离波的演化有关。

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