Development of a High Gain 325-500 GHz Antenna Using Quasi-Planar Reflectors

被引:50
作者
Fan, Kuikui [1 ]
Hao, Zhang-Cheng [1 ]
Yuan, Quan [1 ]
Hong, Wei [1 ]
机构
[1] Southeast Univ, Sch Informat Sci & Engn, State Key Lab Millimeter Waves, Nanjing 210096, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Conventional metallic milling; high gain; low cross-polarization; quasi-planar reflector; terahertz (THz) antenna; PRESCRIBED GEOMETRIC PARAMETERS; WAVE-GUIDE; TERAHERTZ TECHNOLOGY; DESIGN; SYSTEM; ARRAY; COMBINATIONS; CASSEGRAIN; FEED;
D O I
10.1109/TAP.2017.2705022
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
A high gain quasi-planar reflector antenna for 325-500 GHz applications is investigated in this paper. The antenna is composed of four parts: a feeding horn, quasi-planar reflectors, choke slots, and an E-plane flared horn. The quasi-planar reflectors are designed to expand the H-plane radiation aperture. The choke slots are used to suppress the reflected wave from the sidewall and reduce the impact on the radiation performance. Detailed design principle is presented, and a prototype having a center frequency of 400 GHz is designed for demonstrations. To verify the design, the fabricated prototype is measured using a terahertz vector network analyzer in a THz chamber. Measured results show that the fabricated prototype achieves a wide impedance bandwidth of 43.75% from 325 to 500 GHz with a reflection coefficient below -20 dB. The maximum gain is 32 dBi at 500 GHz and the gain is higher than 26.5 dBi over the whole operating band. The proposed antenna has a quasi-planar form which can be accurately fabricated by using the conventional low-cost metallic milling process. It has a compact size, a low fabrication cost, a high radiation gain, and a wide operating bandwidth.
引用
收藏
页码:3384 / 3391
页数:8
相关论文
共 31 条
[1]  
Balanis C. A., 2008, MODERN ANTENNA HDB, V1st
[2]   A DESIGN PROCEDURE FOR CLASSICAL OFFSET DUAL-REFLECTOR ANTENNAS WITH CIRCULAR APERTURES [J].
BROWN, KW ;
PRATA, A .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 1994, 42 (08) :1145-1153
[3]  
Buttgenbach T. H., 1993, MICROWAVE THEORY TEC, V41, P1750
[4]   1.9-THz Multiflare Angle Horn Optimization for Space Instruments [J].
Chahat, Nacer ;
Reck, Theodore J. ;
Jung-Kubiak, Cecile ;
Tinh Nguyen ;
Sauleau, Ronan ;
Chattopadhyay, Goutam .
IEEE TRANSACTIONS ON TERAHERTZ SCIENCE AND TECHNOLOGY, 2015, 5 (06) :914-921
[5]   Millimeter-wave substrate integrated waveguide multibeam antenna based on the parabolic reflector principle [J].
Cheng, Yu Jian ;
Hong, Wei ;
Wu, Ke .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2008, 56 (09) :3055-3058
[6]   340-GHz SIW Cavity-Backed Magnetic Rectangular Slot Loop Antennas and Arrays in Silicon Technology [J].
Deng, Xiao-Dong ;
Li, Yihu ;
Wu, Wen ;
Xiong, Yong-Zhong .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2015, 63 (12) :5272-5279
[7]   Leaky-Wave Slot Array Antenna Fed by a Dual Reflector System [J].
Ettorre, Mauro ;
Neto, Andrea ;
Gerini, Giampiero ;
Maci, Stefano .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2008, 56 (10) :3143-3149
[8]  
Fan K., 2016, P IEEE AP S INT S AN, P780
[9]   Phase characterization of reflectarray elements at infrared [J].
Ginn, James C. ;
Lail, Brian A. ;
Boreman, Glenn D. .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2007, 55 (11) :2989-2993
[10]   Designing axially symmetric Cassegrain or Gregorian dual-reflector antennas from combinations of prescribed geometric parameters, part 2: Minimum blockage condition while taking into account the phase-center of the feed [J].
Granet, C .
IEEE ANTENNAS AND PROPAGATION MAGAZINE, 1998, 40 (03) :82-85