Min Pingping, Song Zicheng, Yang Lei, Ralchenko Victor G, Zhu Jiaqi
Center for Composite Materials and Structures, Harbin Institute of Technology, Harbin 150080, China.
Research Center of Analysis and Measurement, Harbin Institute of Technology, Harbin 150080, China.
Micromachines (Basel). 2021 Nov 18;12(11):1419. doi: 10.3390/mi12111419.
A conformal metamaterial absorber with simultaneous optical transparency and broadband absorption is proposed in this paper. The absorptance above 90% over a wide frequency range of 5.3-15 GHz can be achieved through topology optimization combined with a genetic algorithm (GA). The broadband absorption can be kept at incident angles within 45° and 70° for TE mode and TM mode, respectively. In the meantime, by employing transparent substrates, including polyvinyl chloride (PVC) and polyethylene terephthalate (PET), good optical transmittance and flexibility can be obtained simultaneously. The experimental results agree well with the numerical simulations, which further validates the reliability of our design and theoretical analysis. With its visible-wavelength transparency, flexibility, broadband absorption, low profile, excellent angle stability and polarization insensitivity, the proposed absorber is highly favored for practical applications in microwave engineering, such as electromagnetic interference and stealth technology. Moreover, the proposed design method of topology optimization can be extended to design the absorber quickly and efficiently, according to specific engineering requirements.
本文提出了一种具有同时光学透明性和宽带吸收特性的共形超材料吸收体。通过结合遗传算法(GA)的拓扑优化,可在5.3 - 15 GHz的宽频率范围内实现90%以上的吸收率。对于TE模式和TM模式,宽带吸收分别可在45°至70°的入射角范围内保持。同时,通过使用包括聚氯乙烯(PVC)和聚对苯二甲酸乙二酯(PET)在内的透明基板,可同时获得良好的光学透过率和柔韧性。实验结果与数值模拟结果吻合良好,进一步验证了我们设计和理论分析的可靠性。所提出的吸收体具有可见波长透明性、柔韧性、宽带吸收、低剖面、出色的角度稳定性和偏振不敏感性,在微波工程的实际应用中,如电磁干扰和隐身技术,受到高度青睐。此外,所提出的拓扑优化设计方法可根据特定工程要求,扩展用于快速高效地设计吸收体。