论文标题
大壁样水基可切换频率选择性rasorber具有极化选择性
Great Wall-like Water-based Switchable Frequency Selective Rasorber with Polarization Selectivity
论文作者
论文摘要
本文介绍了具有极化选择性的水基开关频率选择性的射摩尔。所提出的结构包括一个包含水平和垂直通道的容器,可划分水和交叉隙FSS。该设计的新颖性在于它通过将水注入水通道中的四个不同工作状态之间的切换性。当容器为空时,该结构充当偏振强度的FSS,其插入-3.75 GHz为-0.42 dB插入损耗。当水平通道充满水并且垂直通道中没有水时,该结构可以用作具有单极化选择性的FSR。从6.8 GHz到18.8 GHz具有-10 dB吸收带的FSR仅允许某些偏振电磁(EM)波在3.1 GHz处通过,插入损失为-0.78 dB,而另一个极化的EM波不能通过。当容器充满水时,该结构作为吸收剂起作用,在吸收带下方具有反射带,在该吸收带中,极化EM波无法传输。此外,建立了可重构水基FSR自动控制系统,以实现容器内水的状态切换和温度恒定。最终,制造,模拟和测量了呈现的设计的原型以验证可行性。这项工作在Radome设计中具有潜在的应用,以实现带外RCS的减少。
A water-based switchable frequency selective rasorber with polarization selectivity using the Great Wall structures is presented in this paper. The proposed structure comprises a container containing horizontal and vertical channels enabling dividable injection of water, and a cross-gap FSS. The novelty of the design lies in its switchability among four different operating states by injecting water or not into the water channels. When the container is empty, the structure acts as a polarization-intensive FSS with a -0.42 dB insertion loss passband at 3.75 GHz. When the horizontal channel is filled with water and there is no water in the vertical channel, this structure can be used as an FSR with single polarization selectivity. The FSR with -10 dB absorption band from 6.8 GHz to 18.8 GHz only allows certain polarized electromagnetic (EM) waves to pass at 3.1 GHz with an insertion loss of -0.78 dB, while another polarized EM wave cannot pass. When the container is full of water, the structure operates as an absorber with a reflection band below the absorption band, where neither of polarization EM waves can transmit. Besides, a reconfigurable water-based FSR automatic control system is built to achieve state switching and temperature constancy of the water within the container. Ultimately, a prototype of the presented design is fabricated, simulated and measured to verify the feasibility. This work has potential application in radome design to realize the out-of-band RCS reduction.