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Reseach Article

A comparative Analysis of Nonresonant Microstrip Patch-Fed Dielectric Resonator Antenna and Proximity-Fed Annular Slot Antenna

by Dipali Gupta, Abhinav Bhargava
International Journal of Computer Applications
Foundation of Computer Science (FCS), NY, USA
Volume 134 - Number 15
Year of Publication: 2016
Authors: Dipali Gupta, Abhinav Bhargava
10.5120/ijca2016908147

Dipali Gupta, Abhinav Bhargava . A comparative Analysis of Nonresonant Microstrip Patch-Fed Dielectric Resonator Antenna and Proximity-Fed Annular Slot Antenna. International Journal of Computer Applications. 134, 15 ( January 2016), 18-21. DOI=10.5120/ijca2016908147

@article{ 10.5120/ijca2016908147,
author = { Dipali Gupta, Abhinav Bhargava },
title = { A comparative Analysis of Nonresonant Microstrip Patch-Fed Dielectric Resonator Antenna and Proximity-Fed Annular Slot Antenna },
journal = { International Journal of Computer Applications },
issue_date = { January 2016 },
volume = { 134 },
number = { 15 },
month = { January },
year = { 2016 },
issn = { 0975-8887 },
pages = { 18-21 },
numpages = {9},
url = { https://ijcaonline.org/archives/volume134/number15/23991-2016908147/ },
doi = { 10.5120/ijca2016908147 },
publisher = {Foundation of Computer Science (FCS), NY, USA},
address = {New York, USA}
}
%0 Journal Article
%1 2024-02-06T23:34:18.867837+05:30
%A Dipali Gupta
%A Abhinav Bhargava
%T A comparative Analysis of Nonresonant Microstrip Patch-Fed Dielectric Resonator Antenna and Proximity-Fed Annular Slot Antenna
%J International Journal of Computer Applications
%@ 0975-8887
%V 134
%N 15
%P 18-21
%D 2016
%I Foundation of Computer Science (FCS), NY, USA
Abstract

This paper shows the comparative analysis of a cylindrical dielectric resonator antenna (CDRA) fed by nonresonant microstrip patch and a proximity-fed planar annular slot (PPAS) antenna. The antenna array having an antenna element for higher directive gain at the center frequency 9.04 GHz. The band-notch is detained by almost a half-wavelength split-ring parasitic element printed around the radiating patch which is excited via a proximity-fed strip line with a planning of EBG via holes. The voltage standing wave ratio (VSWR) of the annular slot antenna is less than 2.0 in the frequency band of 7.92 GHz i.e. from 2.82 to 10.74 GHz. The PPAS antenna provides good gain flatness, high efficiency and omnidirectional field pattern over its whole frequency band and is appropriate for UWB applications. While CDRA array offer a bandwidth of 3.8 GHz and maximum gain of 14.8 dBi at the operating frequency

References
  1. K. M. Luk and K. W. Leung, Dielectric Resonator Antennas. Baldock, England: Research Studies Press, 2003.
  2. A. W. Glisson, D. Kajfez, and J. James, “Evaluation of modes in dielectric resonators Using a surface a surface integral equation formulation,” IEEE Trans. Microw. Theory Tech., vol. MTT-31, no. 12, pp. 1023–1029, Dec. 1983.
  3. FCC, “Federal Communications Commission Revision of part 15 of the Commission’s Rules Regarding Ultra-Wideband Transmission System,” First Report and Order FCC, 02.V48, 2002.
  4. B. Rana and S. K. Parui, “Nonresonant Microstrip Patch-Fed Dielectric Resonator Antenna Array” IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, VOL. 14, 2015.
  5. E. E.M. Khaled, A.A. R. Saad and D. A. Salem “A Proximity-Fed Ultra-Wideband Annular Slot Antenna with Band-Notch Characteristics via a Split-Ring Parasitic Element” EuCAP 2012.
  6. A. Kerkhoff, and H. Ling, “Design of a planar monopole antenna for use with ultra-wideband (UWB) having a band-notched characteristic,” in Proc. IEEE AP-S Int. Symp. Dig., Columbus, OH, June 2003, vol. 1, pp. 830–833.
  7. E. S. Angelopouslos, A. Z. Anastopoulos, D. I. Kaklamani, A. A. Alexandridis, F. Lazarakis, and K. Dangakis, “Circular and elliptical CPW-fed slot and microstrip-fed antennas for ultrawideband applications,” IEEE Antennas Wireless Prop. Lett., vol. 5, no. 1, pp. 294-297, 2006.
  8. J. Kim, C. S. Cho and J. W. Lee, “5.2 GHz notched ultra-wideband antenna using slot-type SRR,” Electron. Lett., vol. 42, no. 6, pp. 315- 316, March 2006.
  9. W. Choi, K. Chung, J. Jung, and J. Choi, “Compact ultra-wideband printed antenna with band-rejection characteristic,” Electron. Lett., vol. 41, no. 18, pp. 990–991, Sep. 2005.
  10. J. Qiu, Z. Du, J. Lu, and K. Gong, “A band-notched UWB antenna,” Microw. Opt. Technol. Lett., vol. 45, no. 2, pp. 152–154, April 2005.
  11. R. Chair, A. A. Kishk, and K. F. Lee, “Ultrawide-band coplanar waveguide-fed rectangular slot antenna,” IEEE Antennas Wireless Prop. Lett., vol. 3, no. 1, pp. 227-229, 2004.
  12. A. A. Kalteh, R. Fallahi, and M. G. Roozbahani, “5-GHz band-notched UWB elliptical slot antenna fed by microstrip line,” in Proc. Med. Microw. Symp., MMS 2010, Guzelyurt, Aug. 2010, pp. 444–447.
  13. A. A. R. Saad, E. E. M. Khaled, and D. A. Salem, “Novel design of proximity-fed ultra-wide band annular slot antenna,” Proc. Prog. In Electro. Res. Symp., PIERS 2011, Suzhou, China, Sep. 2011, pp. 1429– 1433.
Index Terms

Computer Science
Information Sciences

Keywords

Antenna gain cylindrical DRA (CDRA) dielectric resonator antenna (DRA) nonresonant microstrip patch.