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首页> 外文期刊>IEEE Transactions on Plasma Science >Electromagnetic signal modification in a localized high-speed plasma flow: Simulations and experimental validation of a stationary plasma thruster
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Electromagnetic signal modification in a localized high-speed plasma flow: Simulations and experimental validation of a stationary plasma thruster

机译:局部高速等离子流中的电磁信号修改:固定式等离子推进器的仿真和实验验证

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摘要

Plasmas alter high-frequency electromagnetic signals primarily through strong electron density gradients or electron densities approaching the critical plasma density. A plasma can potentially degrade electromagnetic systems through signal attenuation as well as increased amplitude or phase noise. This paper reviews the physical mechanisms of a plasma which cause phase shift, attenuation, phase modulation, and amplitude modulation. To make predictions of these effects, a general ray-tracing method is also reviewed and then applied to the localized high-speed plasma flow of a stationary plasma thruster (SPT). The SPT is currently being tested and considered for use aboard next-generation spacecraft, where careful consideration must be given to possible interactions with satellite electromagnetic systems such as for communication, navigation, and remote sensing. The study also models the rather significant plume impact to phase and amplitude for a range of frequencies. A summary is provided of ray-tracing simulations characterizing both phase and amplitude effects at frequencies from 0.5 to 17 GHz and thruster axial positions from 0.25 m to 1.5 m. The results correlate well with known data.
机译:等离子体主要通过强电子密度梯度或接近临界等离子体密度的电子密度来改变高频电磁信号。等离子体可能会通过信号衰减以及幅度或相位噪声增加而使电磁系统降级。本文回顾了导致相移,衰减,相位调制和幅度调制的等离子体的物理机制。为了预测这些影响,还回顾了一种通用的射线追踪方法,然后将其应用于固定式等离子推进器(SPT)的局部高速等离子流。 SPT目前正在测试中,并考虑在下一代航天器上使用,在这种情况下,必须仔细考虑与卫星电磁系统的可能相互作用,例如通信,导航和遥感。该研究还对一定频率范围内的羽流对相位和幅度的显着影响建模。总结了光线跟踪仿真,该仿真描述了频率在0.5至17 GHz以及推进器轴向位置从0.25 m至1.5 m时的相位和幅度效应。结果与已知数据很好地相关。

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