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Electron densities and temperatures of an atmospheric-pressure nanosecond pulsed helium plasma jet in air

机译:空气中大气压纳秒脉冲氦等离子体喷射的电子密度和温度

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We report temporally and spatially resolved electron property measurements of a 150 ns pulsed helium plasma jet in air operated at a low-repetition rate using Thomson laser scattering. A ringshaped electron density distribution was revealed in the pulsed plasma jet at an axial distance of 1 mm from the electrode nozzle and started to converge after 5 mm. A peak electron density of 1 × 1020 m~(?3) was identified at the radius of the ring and close to the nozzle electrode. For a delay time ranging from 60 to 250 ns after the onset of the streamer, the electron temperature at the radius of the ring varied from 2.8 to 0.8 eV. Higher temperature >3.5 eV was also identified at regions with lower densities. Importantly, temporal development of the electron density and temperature of the plasma jet confirmed the strong dependence of guided streamer formation and propagation on the external pulsed electric field. The jet current measured during the rising and falling phases of the voltage pulse can be related to the peaks in the temporal development of the electron density.
机译:我们在空气中以低重复速率运行的空气中的150ns脉冲氦等离子体射流的时间和空间分辨的电子性质测量报告。在脉冲等离子体射流中在距电极喷嘴1mm的轴向距离处揭示了旋转的电子密度分布,并在5mm之后开始收敛。在环的半径处识别出1×1020m〜(α3)的峰值电子密度,并靠近喷嘴电极。对于在拖缆开始后的60到250ns的延迟时间,环半径的电子温度从2.8到0.8eV变化。在具有较低密度的区域也识别出较高的温度> 3.5eV。重要的是,等离子体射流的电子密度和温度的时间开发证实了引导飘带形成和在外部脉冲电场上的传播的强依赖性。在电压脉冲的上升和下降相期间测量的喷射电流可以与电子密度的时间发育中的峰有关。

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