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UWB antenna with novel FSS reflector for the enhancement of the gain and bandwidth

Published online by Cambridge University Press:  26 January 2022

Rashmi A. Pandhare*
Affiliation:
Department of Electronics & Communication Engineering, Indian Institute of Information Technology, Nagpur, India
Mahesh P. Abegaonkar
Affiliation:
Center for Applied Research in Electronics, Indian Institute of Technology, New Delhi, India
Chandresh Dhote
Affiliation:
Department of Electronics & Communication Engineering, Indian Institute of Information Technology, Nagpur, India
*
Author for correspondence: Rashmi A. Pandhare, E-mail: rush9ap@gmail.com

Abstract

In this paper, a novel ultra-wide-band antenna backed by a suspended ground for an enhancement of bandwidth and a frequency selective surface (FSS) reflector for the enhancement of gain is proposed in order to meet the specific coverage requirements for broadband applications. The impedance bandwidth of the proposed antenna is 13.4 GHz (1.8–15.2 GHz). To enhance the gain of the antenna, a FSS reflector is employed below the suggested ultra wide-band antenna. A novel FSS, which consists of 5 × 5 array of elements, located at a distance of 1.01 λ (36.14 mm) below the proposed antenna. There is 4–5 dBi improvement in antenna gain after application of the FSS. In order to observe the signal correlation of the proposed antenna, the time domain analysis using similar antennas in face-to-face and side-to-side scenarios has been performed using the EM simulation tool CST-STUDIO. The simulated results of the proposed antenna exhibit good agreement with the experimental results of the prototype model antenna.

Type
Antenna Design, Modelling and Measurements
Copyright
Copyright © The Author(s), 2022. Published by Cambridge University Press in association with the European Microwave Association

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References

Mobashsher, AT and Abbosh, A (2015) Utilizing symmetry of planar ultra-wideband antennas for size reduction and enhanced performance. IEEE Antennas and Propagation Magazine 57, 153166.Google Scholar
Federal Communications Commission (2002) Revision of part 15 of the commission's rules regarding ultra-wide band transmission systems. First Report and Order, FCC 02-48.Google Scholar
Kushwaha, N and Kumar, R (2013) An UWB fractal antenna with defected ground structure and swastika shape electromagnetic band Gap. Progress In Electromagnetics Research B 52, 383403.CrossRefGoogle Scholar
Soliman, MS, Dwairi, MO and Alahmadi, AA (2018) Design and performance analysis of a UWB patch antenna with enhanced bandwidth characteristics. 12th European Conference on Antennas and Propagation EuCAP, 2018, page, 4 pp. doi: 10.1049/cp.2018.1039.Google Scholar
Prombutr, N, Kirawanich, P and Akkaraekthalin, P (2009) Bandwidth enhancement of UWB microstrip antenna with a modified ground plane. International Journal of Microwave Science and Technology 4, 821515.Google Scholar
Meshal, A, Al-zahrani, S, Osama, I and Al-qahtani, S (2017) Design and Performance Analysis of an Ultra-wideband Monopole Microstrip Patch Antenna with Enhanced Bandwidth and Single Band-notched Characteristics, Progress In Electromagnetic Research Symposium-Fall (PIERS-FALL), Singapore, 1922.Google Scholar
Paul, PM, Kandasamy, K and Sharawi, MS (2019) Dispersion engineered transmission line loaded slot antenna for UWB applications. IEEE Antennas and Wireless Propagation Letters 18, 323327.CrossRefGoogle Scholar
Guo, Z, Tian, H, Wang, X, Luo, Q and Ji, Y (2013) Bandwidth enhancement of monopole UWB antenna With New slots and EBG structures. IEEE Antennas and Wireless Propagation Letters 12, 15501553.CrossRefGoogle Scholar
Anum, K, Singh, MS, Mishra, R and Tripathi, GS (2018) Bandwidth enhancement of a microstrip patch antenna for ultra-wide band applications. AIP Conference Proceedings 1952, 020053-1020053-7.Google Scholar
Kushwaha, N and Kumar, R (2014) Design of A high-gain ultra-wideband slot antenna using frequency selective surface. Microwave And Optical Technology Letters 56, 14981502.Google Scholar
Kushwaha, N and Kumar, R (2014) High Gain UWB Antenna Using Compact Multilayer FSS, IEEE International Microwave and RF Conference (IMaRC).CrossRefGoogle Scholar
Yuan, Y, Xi, X and Zhao, Y (2019) Compact UWB FSS reflector for antenna gain enhancement. IET Microwaves Antennas and Propagation 13, 17491755.CrossRefGoogle Scholar
Abdulkareem, S and Gopalakrishnan, S (2021) Modelling of a polarization-insensitive UWB FSS with bandstop response. Radio Engineering 30, 342348. doi: 10.13164/re.2021.0342Google Scholar
Saraswat, RK and Kumar, M (2015) A frequency band reconfigurable UWB antenna for high gain applications. Progress In Electromagnetics Research B 64, 2945.CrossRefGoogle Scholar
Ibtisam, A and Otman, A (2021) Ultra-wideband antenna combined with a reconfigurable stop-band filter for medical imaging detection applications. Arabian Journal for Science and Engineering 46, 10191028.Google Scholar
Wei, XL, Yin, ZY, Wen, LX and Shao, LZ (2011) Compact open-slot antenna with bandwidth enhancement. IEEE Antennas and Wireless Propagation Letters 10, 850853.Google Scholar
Meshal, A and Al-zahrani, S (2017) Design and Performance Analysis of an Ultra-wideband Monopole Microstrip Patch Antenna with Enhanced Bandwidth and Single Band-notched Characteristics, Progress In Electromagnetics Research Symposium-2017, Fall, Singapore.Google Scholar
Anum, K, Saurabh Singh, M, Mishra, R and Tripathi, GS (1952) Bandwidth Enhancement of a Microstrip Patch Antenna for Ultra-Wideband Applications, International Conference on Electrical, Electronics, Materials and Applied Science AIP Conf. 2018, Proc. 1952, 020053-1–020053-7. https://doi.org/10.1063/1.5032015.CrossRefGoogle Scholar
Sahoo, S, Mohanty;, MN and Mishra, LP (2018) Bandwidth improvement of compact planar antenna for UWB application with dual notch band performance using parasitic resonant structure. Progress In Electromagnetics Research 66, 2939.Google Scholar
Swetha, A and Naidu, KR (2020) Gain enhancement of an UWB antenna based on a FSS reflector for broadband applications. Progress In Electromagnetics Research C 99, 193208.CrossRefGoogle Scholar
Marcuitz, N (1951) Waveguide Handbook, 1st Edn. New York: McGraw-Hill.Google Scholar
Sheng, X, Gao, X and Liu, N (2020) An improved particle swarm optimization algorithm for frequency selective surface design. Indian Journal of Physics 94, 19091915. doi: 10.1007/s12648-019-01646CrossRefGoogle Scholar
David, F, Rafael, FS, Caldeirinha, IC and Fernandes, TR (2015) Square loop and slot frequency selective surfaces study for equivalent circuit model optimization. IEEE Transactions on Antennas and Propagation 63, 39473955.Google Scholar
Ali Ramezani, V, Zaker Hossein, F and Abolghasem Zeidaabadi, N (2017) An equivalent circuit model for array of circular loop FSS structures at oblique angles of incidence. IET Microwave Antenna & Propagation 12, 749755.Google Scholar
Udeshwari, J, Narang, N, Singh, D and Yadav, KL (2020) Development of an analytical approach to design FSS absorber as per user requirement. Transaction of Indian National Academy of Engineering 5, 739748.Google Scholar
Rabia, Y and Makoto, I (2015) Design of constant gain UWB planar antenna using single-layer FSS, IEEE International Symposium on Antennas and Propagation & USNC/URSI National Radio Science Meeting, 2015, 2015–2016. doi: 10.1109/APS.2015.7305397Google Scholar
Rabia, Y, Nakamura, A, Itami, M and Denidni, TA (2017) A novel UWB FSS-based polarization diversity antenna. IEEE Antennas and Wireless Propagation Letters 16, 25252528.Google Scholar
Ranga, Y, Esselle, KP, Matekovits, L and Hay, SG (2012) Increasing the Gain of a Semicircular Slot UWB Antenna Using an FSS Reflector, IEEE-APS Topical Conference on Antennas and Propagation in Wireless Communications (APWC). doi: 10.1109/apwc.2012.6324954, 2012Google Scholar
Tahir, FA, Arshad, T, Ullah, S and Flint, JA (2017) A novel FSS for gain enhancement of printed antennas in UWB frequency spectrum. Microwave and Optical Technology Letters 59, 26982704.Google Scholar
Sarthak, S, Pragya, S and Amit, KS (2016) Asymmetrically Cpw-Fed octagonal sierpinski UWB fractal antenna. Microwave and Optical Technology Letters 58, 17381745.Google Scholar
Werner, W, Grzegorz, A and Christian, S (2009) Basic properties and design principles of UWB antennas. Proceedings of the IEEE 97, 372385. doi: 10.1109/jproc.2008.2008838Google Scholar