Article
Licensed
Unlicensed Requires Authentication

Bird Face Microstrip Printed Monopole Antenna Design for Ultra Wide Band Applications

  • EMAIL logo , , , and
Published/Copyright: August 11, 2016
Become an author with De Gruyter Brill

Abstract

In this paper, a novel bird face microstrip printed monopole ultra-wideband (UWB) antenna is investigated. The proposed compact antenna consists of a ring-shaped with additional slot and slotted ground plane on FR4 material. The overall electrical dimension of the proposed antenna is 0.25 λ×0.36 λ×0.016 λ and is energized by microstrip feed line. The Computer Simulation Technology (CST) and the High Frequency Structural Simulator (HFSS) is applied in this analysis. The impedance bandwidth of the monopole antenna cover 3.1–12.3 GHz (9.2 GHz, BW) frequency range. The messurement displayed that the designed antenna achieved excellent gain and stable omnidirectional radiation patterns within the UWB. The maximum gain of 6.8 dBi and omnidirectional radiation pattern makes the proposed antenna that is suitable for UWB systems.

References

[1] M. M. Islam, M. T. Islam, M. R. I. Faruque, H. Arshad, M. Samsuzzaman, M. Hossain, and T. Alam, “A compact disc-shaped super wideband patch antenna with a structure of parasitic element,” Int. J. Appl. Electromag. Mech., vol. 50, pp. 11–28, 2016.10.3233/JAE-140188Search in Google Scholar

[2] H. G. Schantz, “UWB magnetic antennas,” in Proc. IEEE Antennas Propag. Soc. Int. Symp., USA, 2003, pp. 604–607.Search in Google Scholar

[3] M. T. Islam, M. M. Islam, M. Samsuzzaman, M. R. I. Faruque, and N. Misran, “A negative index metamaterial-inspired UWB antenna with an integration of complementary SRR and CLS unit cells for microwave imaging sensor applications,” Sensors, vol. 15, pp. 11601–11627, 2015.10.3390/s150511601Search in Google Scholar PubMed PubMed Central

[4] F. Zhu, S. Gao, A. T. Ho, R. A. Abd-Alhameed, C. H. See, T. W. C. Brown, J. Li, G. Wei, and J. Xu, “Multiple band-notched UWB antenna with band-rejected elements integrated in the feed line,” IEEE Trans. Antenna Propag., vol. 61, no. 08, pp. 3952–3960, Nov. 2013.10.1109/TAP.2013.2260119Search in Google Scholar

[5] T. Alam, M. R. I. Faruque, and M. T. Islam, “Printed circular patch wideband antenna for wireless communication,” J. Microelectron. Electronic Comp. Mater., vol. 44, no. 3, pp. 212–217, 2014.10.1109/SCORED.2014.7072959Search in Google Scholar

[6] R. Azim, M. T. Islam, and N. Misran, “Printed planar antenna for wideband applications”, J. Infrared Millim. Terahertz Waves, vol. 31, no. 8, pp. 969–978, May. 2010.10.1007/s10762-010-9655-7Search in Google Scholar

[7] Y. J. Ren and K. Chang, “Ultra-wideband planar elliptical ring antenna”, Electron Lett., vol. 42, no. 8, pp. 447–449, May. 2006.10.1049/el:20060210Search in Google Scholar

[8] J. Liang, C. C. Chiau, X. Chen, and C. G. Parini, “Study of a printed circular disc monopole antenna for UWB systems,” IEEE Trans. Antenna Propag., vol. 53, no. 11, pp. 3500–3504, Nov. 2005.10.1109/TAP.2005.858598Search in Google Scholar

[9] N. C. Azenui and H. Y. D. Yang, “A printed crescent patch antenna for ultrawideband applications,” IEEE Antenna Wirel. Propag. Lett., vol. 6, pp. 113–116, Apr. 2007.10.1109/LAWP.2007.891522Search in Google Scholar

[10] R. Azim, M. T. Islam, and N. Misran, “Microstrip line-fed printed planar monopole antenna for UWB applications,” Arab J Sci Eng., vol. 38, no. 9, pp. 2415–2422, Sep 2013.10.1007/s13369-013-0553-xSearch in Google Scholar

[11] M. M. Islam, M. T. Islam, and M. R. I. Faruque, “Dual-band operation of a microstrip patch antenna on a duroid 5870 substrate for ku- and K-bands,” Scientific World J., vol. 2013, pp. 10 pages, Nov 2013.10.1155/2013/378420Search in Google Scholar PubMed PubMed Central

[12] A. M. Abbosh, “Directive antenna for ultrawideband medical imaging systems,” Int. J. Antennas Propag., vol. 2008, pp. 854012:1–6, 2008.10.1155/2008/854012Search in Google Scholar

[13] M. C. Ezuma, S. Subedi, and J.-Y. Pyun, “Design of a compact UWB antenna for multi-Band wireless applications,” in Proc. International Conference on Information Networking (ICOIN), Cambodia, pp. 456–461, 2015.10.1109/ICOIN.2015.7057945Search in Google Scholar

[14] A. M. Nada and A. M. Allam, “UWB antenna for wi-fi and radar applications,” Int. J. Computer Info. Tech., vol. 3, no. 5, pp. 1033–1036, 2014.Search in Google Scholar

[15] H. Nazli, E. Bicak, B. Turetken, and M. Sezgin, “An improved design of planar elliptical dipole antenna for UWB applications,” IEEE Antennas Wireless Propag. Lett., vol. 9, pp. 264–267, 2010.10.1109/LAWP.2010.2046999Search in Google Scholar

[16] Y. Ren and K. Chang, “An annual ring antenna for UWB communications,” IEEE Antennas Wireless Propag. Lett., vol. 5, pp. 274–276, 2006.10.1109/LAWP.2006.875897Search in Google Scholar

[17] M. Tzyh-Ghuang and T. Chao-Hsiung, “An ultrawideband coplanar waveguide-fed tapered ring slot antenna,” IEEE Trans. Antennas Propag., vol. 54, pp. 1105–1110, 2006.10.1109/TAP.2006.872562Search in Google Scholar

Received: 2016-4-13
Published Online: 2016-8-11
Published in Print: 2016-11-1

©2016 by De Gruyter

Downloaded on 2.4.2026 from https://www.degruyterbrill.com/document/doi/10.1515/freq-2016-0113/html
Scroll to top button