Meng Zan Kui, Shi Yan
Opt Express. 2024 Apr 8;32(8):13014-13034. doi: 10.1364/OE.514750.
In this paper a novel antenna array-based metasurface design method for wide-angle and polarization-insensitive radar cross section (RCS) reduction has been proposed, which can be applied to a variety of RCS reduction scenarios. The proposed metasurface subarray design employs a dual-element antenna array in which the two ports of each element are connected through a Wilkinson power divider, and meanwhile, two power dividers are connected through a microstrip line with a lumped resistor. The use of dual-polarized wide-beam antennas enables the metasurface array to respond to arbitrarily polarized as well as wide-angle obliquely incident electromagnetic waves. A portion of the electromagnetic waves received will be absorbed by the lumped resistor and converted into heat, while the remaining portion will be canceled in the space, achieving the low RCS characteristic. The proof-of-concept experiments have been conducted in several application scenarios for RCS reduction, including a metasurface array integrated with a microstrip antenna, a densely distributed dual-element metasurface array, and a randomly distributed dual-element metasurface array. Simulated and measured results confirm that the proposed method opens up a new avenue for more flexible and versatile RCS reduction devices and systems.
本文提出了一种基于新型天线阵列的超表面设计方法,用于实现广角和偏振不敏感的雷达散射截面(RCS)缩减,该方法可应用于多种RCS缩减场景。所提出的超表面子阵列设计采用了双元件天线阵列,其中每个元件的两个端口通过威尔金森功率分配器连接,同时,两个功率分配器通过带有集总电阻的微带线连接。双极化宽波束天线的使用使超表面阵列能够响应任意极化以及广角斜入射的电磁波。接收到的一部分电磁波将被集总电阻吸收并转化为热量,而其余部分将在空间中抵消,从而实现低RCS特性。已在几种RCS缩减应用场景中进行了概念验证实验,包括与微带天线集成的超表面阵列、密集分布的双元件超表面阵列和随机分布的双元件超表面阵列。仿真和测量结果证实,所提出的方法为更灵活、通用的RCS缩减装置和系统开辟了一条新途径。