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Frequency Selective Surface Structure Miniaturization Using Interconnected Array Elements on Orthogonal Layers

机译:使用正交层上的互连阵列元素的频率选择性表面结构小型化

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Traditionally, the element of a frequency selective surface (FSS) is rotationally symmetrical and the element arrays in a multilayer FSS are aligned with each other. A new approach to miniaturize the size of the FSS array element is proposed in this paper by interconnecting the array elements only in one direction in a two-layer FSS structure. One layer acts as an enhanced inductor while the other layer provides capacitance. The interconnection between the adjacent array elements changes the equivalent circuit and produces a strong cross-layer capacitance, which lowers the resonant frequency significantly. The dimensions of the miniaturized FSS element are much smaller than the wavelength at the resonant frequency (periodicity ≪ λ). The element can also have a low profile since the cross-layer capacitance is stronger with a thinner substrate. The sensitivity to the incident angle of the proposed structure is comparable with traditional ones. A theoretical equivalent circuit model is developed to characterize the structure, based on the analysis of the geometrical configuration of the FSS structure and the electric field distribution on it. The theory was verified by the experimental results.
机译:传统上,频率选择表面(FSS)的元素是旋转对称的,并且多层FSS中的元素阵列彼此对齐。通过在两层FSS结构中仅在一个方向上互连阵列元素,本文提出了一种使FSS阵列元素尺寸最小化的新方法。一层用作增强型电感器,而另一层提供电容。相邻阵列元件之间的互连会改变等效电路并产生强大的跨层电容,从而大大降低谐振频率。小型化的FSS元件的尺寸远小于谐振频率处的波长(周期≪λ)。该元件还可以具有低轮廓,因为越薄的基板,其跨层电容越强。所提出的结构对入射角的敏感性与传统的相当。在对FSS结构的几何构型及其上的电场分布进行分析的基础上,开发了一种理论等效电路模型来表征该结构。实验结果验证了该理论。

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