Gain enhancement of antenna using tuned complementary FSS for wireless communication

被引:2
作者
Anand, Yukti [1 ]
Nath, Vandana [1 ]
机构
[1] Ggsipu Dwarka, Usict, ECE, Delhi 110078, India
关键词
Complementary FSS (C-FSS); fractal antenna; offset feed; PIN diodes; tuned FSS; BAND; DESIGN;
D O I
10.1080/00207217.2024.2354069
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
This article explains a tri-band low-cost monopole tunable complementary frequency selective surface (C-FSS) fractal antenna of similar FSS and substrates area 21.13 mm x 24.81 mm, i.e. 0.4426${{\rm{\lambda }}_0}$lambda 0 x0.4962${{\rm{\lambda }}_0},$lambda 0, where ${{\rm{\lambda }}_0}$lambda 0 is free space wavelength. The offset feeding technique and a fractal shape are used to achieve dual polarisation (linear and circular). An FR-4 substrate with a thickness of 1.6 mm was used to fabricate the radiating patch and C-FSS separately. Distance between two substrates is adjusted to achieve enhanced gain without affecting the tri-band nature. For achieving tuning, four PIN diodes (BAP 65 02115) are attached in C-FSS. PIN diode switching and radiation characteristics have been measured and compared with the simulated results of the proposed C-FSS fractal antenna and found in the same shape and pattern with a minor deviation in resonating frequencies. Maximum peak gain (with C-FSS) achieved by the antenna at three resonating frequencies 6.0 GHz, 9.05 GHz and 11.56 GHz are 8.24dBi, 6.04dBi and 8.63dBi, respectively, as compared to without C-FSS gain 7.63dBi, 5.25dBi and 7.12dBi. The proposed design is suitable for wireless, RADAR, satellite, microwave C-band (6.43 GHz-6.72 GHz), X-band (8.85 GHz-9.33 GHz) and (10.50 GHz-13.22 GHz) applications.
引用
收藏
页码:1090 / 1116
页数:27
相关论文
共 34 条
[1]  
Alsudani A., 2023, Journal of Communications, V18, P156, DOI [10.12720/jcm.18.3.156-163, DOI 10.12720/JCM.18.3.156-163]
[2]  
Anand Y., 2020, PROGR ELECTROMAGNE C, V101, P13, DOI [https://doi.org/10.2528/PIERC19123104, DOI 10.2528/PIERC19123104]
[3]   Frequency Selective Surfaces: A Review [J].
Anwar, Rana Sadaf ;
Mao, Lingfeng ;
Ning, Huansheng .
APPLIED SCIENCES-BASEL, 2018, 8 (09)
[4]  
Ara S, 2023, Int J Adv Technol Eng Explor, V10, P840
[5]  
Balanis C.A., 2009, Antenna Theory: Analysis and Design
[6]   Design and analysis of ultrathin X-band frequency selective surface structure for gain enhancement of hybrid antenna [J].
Bhattacharya, Anamiya ;
Dasgupta, Bidisha ;
Jyoti, Rajeev .
INTERNATIONAL JOURNAL OF RF AND MICROWAVE COMPUTER-AIDED ENGINEERING, 2021, 31 (02)
[7]  
Chang RF., 2015, MICROWAVE WIRELESS S, P90
[8]   Frequency-Selective Surface-Based MIMO Antenna Array for 5G Millimeter-Wave Applications [J].
Din, Iftikhar Ud ;
Alibakhshikenari, Mohammad ;
Virdee, Bal S. S. ;
Jayanthi, Renu Karthick Rajaguru ;
Ullah, Sadiq ;
Khan, Salahuddin ;
See, Chan Hwang ;
Golunski, Lukasz ;
Koziel, Slawomir .
SENSORS, 2023, 23 (15)
[9]  
Dwivedi S, 2017, PROCEEDINGS OF THE 7TH INTERNATIONAL CONFERENCE ON CLOUD COMPUTING, DATA SCIENCE AND ENGINEERING (CONFLUENCE 2017), P770, DOI 10.1109/CONFLUENCE.2017.7943254
[10]   A miniaturised Ka/V dual band millimeter wave antenna for 5G body centric network applications [J].
Farooq, Umar ;
Rather, G. M. .
ALEXANDRIA ENGINEERING JOURNAL, 2022, 61 (10) :8089-8096