An mmWave Dual-Band Integrated Substrate Gap Waveguide Single Cavity Filter with Frequency Selectivity

被引:0
|
作者
Qiuhua Lin [1 ]
Dongya Shen [2 ]
Lihui Wang [1 ]
Zhiyong Luo [1 ,3 ,4 ]
机构
[1] School of Electronics and Communication Engineering, Sun Yat-sen University
[2] School of Information Science and Engineering, Yunnan University
[3] Pengcheng Laboratory
[4] Shenzhen Key Laboratory of Navigation and Communication Integration
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
TN929.5 [移动通信]; TN713 [滤波技术、滤波器];
学科分类号
080402 ; 080902 ; 080904 ; 0810 ; 081001 ;
摘要
A novel dual-band ISGW cavity filter with enhanced frequency selectivity is proposed in this paper by utilizing a multi-mode coupling topology. Its cavity is designed to control the number of modes, and then the ports are determined by analyzing the coupling relationship between these selected modes. By synthesizing the coupling matrix of the filter, a nonresonating node(NRN) structure is introduced to flexibly tune the frequency of modes, which gets a dualband and quad-band filtering response from a tri-band filter no the NRN. Furthermore, a frequency selective surface(FSS) has been newly designed as the upper surface of the cavity, which significantly improves the bad out-of-band suppression and frequency selectivity that often exists in most traditional cavity filter designs and measurements. The results show that its two center frequencies are f01= 27.50 GHz and f02= 32.92GHz, respectively. Compared with the dual-band filter that there is no the FSS metasurface, the out-of-band suppression level is improved from measured 5 dB to18 dB, and its finite transmission zero(FTZ) numbers is increased from measured 1 to 4 between the two designed bands. Compared with the tri-band and quadband filter, its passband bandwidth is expanded from measured 1.17 %, 1.14 %, and 1.13 % or 1.31 %, 1.50%, 0.56 %, and 0.57 % to 1.71 % and 1.87 %. In addition, the filter has compact, small, and lightweight characteristics.
引用
收藏
页码:188 / 199
页数:12
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