Xing Wentao, Si Liming, Dong Lin, Zhang Hang, Ma Tianyu, Sun Houjun, Bao Xiue, Ding Jun
Opt Express. 2023 Aug 14;31(17):28444-28458. doi: 10.1364/OE.496423.
In this paper, a hybrid mechanism metasurface (HMM) employing 1-bit random coding is proposed to achieve polarization-insensitive and dual-wideband monostatic/bistatic radar cross section (RCS) reduction under a wide range of incident angles. The anisotropic unit cell is designed by the combination of the multi-objective particle swarm optimization (MOPSO) algorithm and Python-CST joint simulation, which facilitates the rapid acquisition of the desired unit cell with excellent dual-band absorption conversion capability. The unit cell and its mirrored version are used to represent the units "0" and "1", respectively. In addition, the array distribution with random coding of the units "0" and "1" is optimized under different incident angles, polarizations and frequencies, which enables better diffusion-like scattering. Simulation results demonstrate that the proposed coding HMM can effectively reduce the monostatic/bistatic RCS by over 10 dB within the dual-band frequency ranges of 2.07-3.02 THz and 3.78-4.71 THz. Furthermore, the specular and bistatic RCS reduction performances remain stable at oblique incident angles up to 45° for both TE and TM polarizations.
本文提出了一种采用1位随机编码的混合机制超表面(HMM),以在宽入射角范围内实现偏振不敏感和双宽带单站/双站雷达散射截面(RCS)缩减。通过多目标粒子群优化(MOPSO)算法与Python-CST联合仿真相结合来设计各向异性单元,这有助于快速获取具有优异双频段吸收转换能力的所需单元。该单元及其镜像版本分别用于表示单元“0”和“1”。此外,在不同入射角、偏振和频率下对单元“0”和“1”的随机编码阵列分布进行优化,从而实现更好的类扩散散射。仿真结果表明,所提出的编码HMM在2.07 - 3.02 THz和3.78 - 4.71 THz双频段范围内可有效将单站/双站RCS降低超过10 dB。此外,对于TE和TM偏振,在高达45°的斜入射角下,镜面和双站RCS缩减性能保持稳定。