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Miniaturization of Frequency Selective Surfaces Using 2.5-D Knitted Structures: Design and Synthesis

机译:使用2.5D编织结构的频率选择表面的小型化:设计和综合

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This paper explores the potential of using vias for the miniaturization of frequency selective surfaces (FSSs). A new concept of knitting the loop-type FSS elements in 2.5-D is proposed, where successive segments of the loop are placed alternately on the two surfaces of the substrate and then interconnected through vias. A 2.5-D square-loop FSS (2.5-D SL-FSS) based on the proposed method is designed with the inclusion of ten vias at each side and characterized by a full-wave simulator. The transmission curves indicate a significant size reduction with a figure-of-merit λ0/p = 16, where λ0 is the free-space wavelength of resonant frequency and p is the periodicity of unit element. In addition, the frequency response of this miniaturized FSS is also stable for various incident angles and polarizations. Furthermore, a general equivalent circuit model (ECM) is developed for 2.5-D SL-FSS by combining the prevailing electrical models of planar square loop and through-silicon vias. A wide set of parametric simulations for various element sizes, substrate thicknesses, and via counts are carried out with this ECM. Then, its performance is assessed on the basis of root-mean-square error (RMSE) criteria by comparing the results with appropriate electromagnetic simulations. The findings suggest that the ECM has sufficient accuracy for estimating the resonant frequency of 2.5-D SL-FSS with the RMSE values close to 3%. Moreover, the proposed concept of knitting is further validated by measuring two physical prototypes of the 2.5-D SL-FSS and the experimental results show a good consistency with full-wave simulations.
机译:本文探讨了使用通孔将频率选择表面(FSS)小型化的潜力。提出了在2.5-D中编织环型FSS元件的新概念,其中环的连续段交替放置在基板的两个表面上,然后通过通孔互连。设计了基于所提出方法的2.5D方环FSS(2.5-D SL-FSS),每侧包含十个过孔,并以全波模拟器为特征。传输曲线表明,尺寸显着减小,品质因数λ0/ p = 16,其中λ0是谐振频率的自由空间波长,p是单位元素的周期性。此外,这种小型化FSS的频率响应对于各种入射角和极化也很稳定。此外,通过结合平面方形环路和硅通孔的主流电气模型,为2.5-D SL-FSS开发了通用等效电路模型(ECM)。使用此ECM可以对各种元件尺寸,基板厚度和通孔计数进行广泛的参数模拟。然后,通过将结果与适当的电磁仿真进行比较,根据均方根误差(RMSE)标准评估其性能。研究结果表明,ECM具有足够的精度,可以估计RMSE值接近3%的2.5-D SL-FSS的谐振频率。此外,通过测量两个2.5D SL-FSS物理原型进一步验证了所提出的针织概念,并且实验结果与全波仿真显示出良好的一致性。

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