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Ionization Front and Shock Wave Structures in Microwave Propulsion

机译:微波推进中的电离前沿和冲击波结构

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A two-dimensional finite-difference time domain code was coupled with compressible fluid calculation and a simple ionization model to reproduce microwave propagation and shock formation in atmospheric microwave discharge. Plasma filaments are driven toward the microwave source at the atmospheric pressure, and the distance between filaments is one-quarter of the microwave wavelength as predicted in previous works. The strong shock wave is generated due to the high electron density and the large energy absorption. On the other hand, the plasma becomes diffusive at the lower pressure so that the shock wave weakens as a result of smaller energy absorption.
机译:二维有限差分时域码与可压缩流体计算和简单电离模型相结合,可重现大气微波放电中的微波传播和激波形成。等离子体灯丝在大气压下被驱向微波源,并且灯丝之间的距离是微波波长的四分之一,如先前的工作所预测的那样。由于高电子密度和大能量吸收而产生了强烈的冲击波。另一方面,等离子体在较低的压力下会扩散,因此,由于吸收的能量较小,冲击波会减弱。

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