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Tunability Study of Plasma Frequency Selective Surface Based on FDTD

机译:基于FDTD的等离子频率选择表面的可调谐性研究

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This paper is focused on using plasma as element of a frequency selective surface (FSS). FSSs have been used for filtering electromagnetic waves for many years. Conventional FSSs use metal patch pattern as periodic element. This paper takes the plasma tube as a substitution for metal patch. The 3-D finite-difference time-domain method with periodic boundary condition is utilized to simulate the interaction of incident wave and plasma FSS. Numerical calculation results in that electron number density of plasma can dominate the resonance frequency obviously. The resonance frequency increases as the increasing of electron number density of plasma to the limit of that of perfectly electric conductor. Thus, the FSS can be designed to be tunable by changing the ionized electron number density. Both of the noncollision and collisional plasma model are introduced to study the FSS characteristics. The numerical calculation results show that the collision frequency only influences the reflectivity while has no effect on the resonant frequency. The resonant frequency and transmitted power ratio can be tuned by assigning the plasma's electron number density and collision frequency. Thus, plasma elements offer the possibility of improved shielding effect along with reconfigurability. Plasma FSS can also be made transparent by tuning the plasma off which makes the use of FSS more versatile.
机译:本文的重点是使用等离子体作为频率选择表面(FSS)的元素。 FSS已被用于过滤电磁波很​​多年了。传统的FSS使用金属补丁图案作为周期性元素。本文以等离子管代替金属贴片。利用具有周期性边界条件的3D有限差分时域方法来模拟入射波与等离子体FSS的相互作用。数值计算结果表明,等离子体的电子数密度可以明显控制共振频率。共振频率随着等离子体的电子数密度增加到完全导电体的极限而增加。因此,可以通过改变电离的电子数密度将FSS设计为可调谐的。介绍了非碰撞和碰撞等离子体模型,以研究FSS特性。数值计算结果表明,碰撞频率仅影响反射率,而对共振频率没有影响。可以通过指定等离子体的电子数密度和碰撞频率来调整谐振频率和发射功率比。因此,等离子元件提供了改善屏蔽效果以及可重构性的可能性。通过关闭等离子,也可以使等离子FSS透明,这使FSS的使用更加通用。

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