Liu Tian, Kim Sung-Soo
Department of Advanced Materials Engineering, Chungbuk National University, Cheongju, 361-763, Korea.
Sci Rep. 2018 Sep 17;8(1):13889. doi: 10.1038/s41598-018-32181-z.
A novel design for an ultra-wide bandwidth and thin microwave absorber is introduced utilizing two frequency selective surfaces (FSSs) with different patterns of resonating frequencies. The circuit parameters, inductance and capacitance, of the three types of FSS (square loop, cross, square patch) were determined using an equivalent circuit and strip wire conductor model. The square loop FSS indicates a low frequency resonance (10 GHz) due to its high inductance and capacitance. On the other hand, the square patch of small inductance reveals a high resonating frequency (36 GHz). By optimizing the combination of the two FSSs, an ultra-wide absorption bandwidth (6.3-40.0 GHz for -10 dB reflection loss) was designed with a small total thickness of 5.5 mm, which is close to the theoretical limit. The free space measurement result with a test sample prepared by the screen printing method was in good agreement with the simulation result and verified the validity of the proposed design method. For these periodic array structures, however, the grating lobes were observed above the high frequency limit, and it needs to be emphasized that the further control of the unit cell periodicity is important, particularly for large oblique incidence angles.
介绍了一种利用具有不同谐振频率模式的两个频率选择表面(FSS)设计的超宽带宽薄微波吸收器。使用等效电路和带状线导体模型确定了三种类型FSS(方形环、十字形、方形贴片)的电路参数,即电感和电容。方形环FSS由于其高电感和电容而表现出低频谐振(10 GHz)。另一方面,小电感的方形贴片显示出高谐振频率(36 GHz)。通过优化两个FSS的组合,设计出了超宽带吸收带宽(-10 dB反射损耗时为6.3 - 40.0 GHz),总厚度仅为5.5 mm,接近理论极限。采用丝网印刷法制备的测试样品的自由空间测量结果与模拟结果吻合良好,验证了所提出设计方法的有效性。然而,对于这些周期性阵列结构,在高频极限以上观察到了栅瓣,需要强调的是,进一步控制单元胞的周期性很重要,特别是对于大入射角情况。