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2D MODELING OF ELECTROMAGNETIC WAVES IN COLD PLASMAS

机译:冷等离子体中电磁波的2D建模

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The consequences of sheath (rectified) electric fields, resulting from the different mobility of electrons and ions as a response to radio frequency (RF) fields, are a concern for RF antenna design as it can cause damage to antenna parts, limiters and other in-vessel components. As a first step to a more complete description, the usual cold plasma dielectric description has been adopted, and the density profile was assumed to be known as input. Ultimately, the relevant equations describing the wave-particle interaction both on the fast and slow timescale will need to be tackled but prior to doing so was felt as a necessity to get a feeling of the wave dynamics involved. Maxwell's equations are solved for a cold plasma in a 2D antenna box with strongly varying density profiles crossing also lower hybrid and ion-ion hybrid resonance layers. Numerical modelling quickly becomes demanding on computer power, since a fine grid spacing is required to capture the small wavelengths effects of strongly evanescent modes.
机译:由电子和离子的不同移动性导致的护套(整流)电场的后果是对射频(RF)场的响应,是RF天线设计的担忧,因为它可能导致天线零件,限制器和其他损坏-vessel组件。作为更完整描述的第一步,已经采用了通常的冷等离子体电介质描述,并且假设密度分布被称为输入。最终,需要在快速和慢速时间尺度上描述波粒相互作用的相关方程,但在这样做之前,感觉是必要的,以获得所涉及的波动动态的感觉。 Maxwell的等式在2D天线盒中为冷等离子体求解,具有强度的密度型材,交叉的强度和离子离子混合共振层的较低。数值模型迅速对计算机功率苛刻的要求,由于需要细网间距来捕获强渐逝模式的小波长效应。

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