Design of Ultra-wideband Low RCS Reflecting Screen Based on Phase Gradient Metasurface

被引:15
作者
Ji, Kefeng [1 ]
Gao, Jun [1 ]
Cao, Xiangyu [1 ]
Han, Jiangfeng [1 ]
Yang, Huanhuan [1 ]
机构
[1] Air Force Engn Univ, Informat & Nav Coll, Xian 710077, Shanxi, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Phase gradient metasurface; ultra-wideband; low RCS; SURFACES;
D O I
10.13164/re.2021.0314
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In order to realize full phase coverage of 360 degrees and abnormal reflection of incident wave, one kind of metasurface unit-cell with double diagonal opening cross petal and two types of one and two dimensional phase gra-dient metasurface with elements arranged on 6x6 array whose phase difference is 60 degrees, were designed and con-structed in this paper based on the abnormal reflection principle of phase gradient metasurface. By rotating the two phase gradient metasurfaces and arranging them in a spiral manner, three types of ultra-wideband low Radar Cross Section (RCS) reflecting screens with different unit configurations were devised. HFSS 14.0 was used for simu-lation experiment and the relative bandwidth of RCS reduc-tion above 10 dB is respectively 34.5%, 28.8% and 28.1%. Moreover, the peak value of RCS reduction can reach 44.9 dB. After testing the three reflecting screens in a mi-crowave anechoic chamber, it was found that the measured results were basically in agreement with the simulation data, which verified the feasibility of the design. The design of reflecting screen proposed in this paper can provide a new method and approach for new ultra-wideband stealth technology.
引用
收藏
页码:314 / 322
页数:9
相关论文
共 24 条
[1]   Checkerboard EBG Surfaces for Wideband Radar Cross Section Reduction [J].
Chen, Wengang ;
Balanis, Constantine A. ;
Birtcher, Craig R. .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2015, 63 (06) :2636-2645
[2]   Broadband anomalous reflector based on cross-polarized version phase gradient metasurface [J].
Fan Ya ;
Qu Shao-Bo ;
Wang Jia-Fu ;
Zhang Jie-Qiu ;
Feng Ming-De ;
Zhang An-Xue .
ACTA PHYSICA SINICA, 2015, 64 (18)
[3]  
[葛晨辰 Ge Chenchen], 2017, [微波学报, Journal of Microwaves], V33, P36
[4]  
[郭文龙 Guo Wenlong], 2016, [微波学报, Journal of Microwaves], V32, P51
[5]   An Overview of the Theory and Applications of Metasurfaces: The Two-Dimensional Equivalents of Metamaterials [J].
Holloway, Christopher L. ;
Kuester, Edward F. ;
Gordon, Joshua A. ;
O'Hara, John ;
Booth, Jim ;
Smith, David R. .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 2012, 54 (02) :10-35
[6]  
LI C., 2020, RES PROGR SSE, V40, P127, DOI [10.19623/j.cnki.rpsse.2020.02.010, DOI 10.19623/J.CNKI.RPSSE.2020.02.010]
[7]   Ultra-thin single-layer transparent geometrical phase gradient metasurface and its application to high-gain circularly-polarized lens antenna [J].
Li, Tang-Jing ;
Liang, Jian-Gang ;
Li, Hai-Peng ;
Liu, Ya-Qiao .
CHINESE PHYSICS B, 2016, 25 (09)
[8]   Wideband radar cross section reduction using two-dimensional phase gradient metasurfaces [J].
Li, Yongfeng ;
Zhang, Jieqiu ;
Qu, Shaobo ;
Wang, Jiafu ;
Chen, Hongya ;
Xu, Zhuo ;
Zhang, Anxue .
APPLIED PHYSICS LETTERS, 2014, 104 (22)
[9]   Wideband Phase-Gradient Metasurface Antenna With Focused Beams [J].
Liang, Jia-Jun ;
Huang, Guan-Long ;
Zhao, Jia-Ning ;
Gao, Zhi-Jian ;
Yuan, Tao .
IEEE ACCESS, 2019, 7 :20767-20772
[10]  
Liu Y., 2010, Prediction and Reduction of Antenna Radar Cross Section