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Interaction of high-power microwave with air breakdown plasma at low pressure

机译:大功率微波与低压空气击穿等离子体的相互作用

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The high-power microwave breakdown at the low air pressure (about 0.01 atm) is simulated numerically using the one-dimensional model coupling Maxwell's equations with plasma fluid equations. The accuracy of the model is validated by comparing the breakdown prediction with the experimental data. We find that a diffuse plasma with a stationary front profile forms due to the large electron diffusion. Most of the incident wave energy is absorbed and reflected by the plasma when the plasma front achieves a stationary profile. The front propagation velocity remains almost unchanged with time and increases when the incident wave amplitude increases or the incident wave frequency decreases. With the incident wave frequency increasing, the maximum density of the stationary plasma front increases, while the ratio of the reflected wave power to the incident wave power remains almost unchanged. At a higher incident wave amplitude, the maximum density and reflectance become large. Published by AIP Publishing.
机译:使用一维模型,将麦克斯韦方程组与等离子流体方程组耦合,对低气压(约0.01 atm)下的大功率微波击穿进行了数值模拟。通过将故障预测与实验数据进行比较,可以验证模型的准确性。我们发现由于大的电子扩散,形成了具有固定前轮廓的扩散等离子体。当等离子体前沿达到固定轮廓时,大部分入射波能量会被等离子体吸收并反射。正面传播速度几乎不随时间变化,而随着入射波幅度增加或入射波频率降低而增加。随着入射波频率的增加,固定等离子体前沿的最大密度增加,而反射波功率与入射波功率之比几乎保持不变。在较高的入射波振幅下,最大密度和反射率变大。由AIP Publishing发布。

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