Double Layer Pixelate Checkerboard Optimization for Ultrawideband Radar Absorber With Light Weight and Optical Transparency

IF 2.5 3区 计算机科学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Electromagnetic Compatibility Pub Date : 2024-10-23 DOI:10.1109/TEMC.2024.3478772
Hanyu Shan;Tao Jiang
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Abstract

An efficient low-profile design strategy for a multilayer metasurface is proposed in this work, based on which an ultrawideband absorbing metasurface with lightweight, optical transparency, and excellent radar absorber is created. First, we propose designing resistive patterns on both sides of the transparent substrates to simultaneously realize layer numbers’ compression and resonant structure abundance. The variables of the structure to be optimized are determined, which are converted into 1-bit strings. Second, the progressive multilayer optimization strategy with genetic algorithm-particle swarm optimization algorithms and reverse initial population method is proposed to optimize the 1-bit string corresponding to the structural parameters. Distance between layers is also considered during the optimization process, avoiding a narrow bandwidth caused by poor coupling between layers. Finally, an absorbing unit cell with more than 90% absorption rate in 6.0–41.0 GHz is achieved after the optimization process. After the periodic array layout, the absorbing metasurface also achieves excellent 10 dB mono-static and mirror bistatic radar cross-section reduction under large oblique incident angle. A sample is fabricated and measured to verify that the optical transparent metasurface achieves ultrawideband absorption, which will also be used in the electromagnetic shielding in the future.
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用于超宽带雷达吸收器的双层像素棋盘式优化设计,重量轻且具有光学透明度
本文提出了一种高效的多层超表面低轮廓设计策略,在此基础上设计了一种轻质、透明、超宽带吸收超表面。首先,我们提出在透明衬底两侧设计电阻模式,同时实现层数压缩和谐振结构丰富。确定要优化的结构变量,并将其转换为1位字符串。其次,提出了基于遗传算法-粒子群算法和反向初始种群法的渐进多层优化策略,对结构参数对应的1位字符串进行优化;优化过程中还考虑了层间的距离,避免了层间耦合度差造成的窄带宽。最后,经过优化工艺,获得了在6.0 ~ 41.0 GHz范围内吸收率大于90%的吸收单元电池。在大斜入射角下,经周期阵列布局后的吸波超表面也实现了10 dB的单静和反射镜双基地雷达截面减小。制作了样品并进行了测量,验证了光学透明超表面实现了超宽带吸收,这也将在未来的电磁屏蔽中得到应用。
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来源期刊
CiteScore
4.80
自引率
19.00%
发文量
235
审稿时长
2.3 months
期刊介绍: IEEE Transactions on Electromagnetic Compatibility publishes original and significant contributions related to all disciplines of electromagnetic compatibility (EMC) and relevant methods to predict, assess and prevent electromagnetic interference (EMI) and increase device/product immunity. The scope of the publication includes, but is not limited to Electromagnetic Environments; Interference Control; EMC and EMI Modeling; High Power Electromagnetics; EMC Standards, Methods of EMC Measurements; Computational Electromagnetics and Signal and Power Integrity, as applied or directly related to Electromagnetic Compatibility problems; Transmission Lines; Electrostatic Discharge and Lightning Effects; EMC in Wireless and Optical Technologies; EMC in Printed Circuit Board and System Design.
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