Startseite Miniaturised ultra-wideband rectangular shaped slot antenna for ground penetrating radar applications
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Miniaturised ultra-wideband rectangular shaped slot antenna for ground penetrating radar applications

  • Jyotirmay Pande , Ankita Singh , Avni Gupta , Kuldeep Singh und Ankit Sharma ORCID logo EMAIL logo
Veröffentlicht/Copyright: 12. Juli 2022
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Abstract

In the proposed work, a miniaturised ultra-wideband tapered slot planar antenna with the aim of gain enhancement, working bandwidth containing lower frequency range, and improving antenna efficiency is presented. The proposed antenna consists of a slotted patch printed on the top layer of FR4 substrate with three 50-Ω resistors connected in the slotted arms and bottom layer consists of an optimized ground plane with a non-uniform parasitic patch which is used to achieve circular polarization in the frequency range of 2.4–2.6 GHz. The measured impedance bandwidth of the proposed antenna is 0.3–4 GHz with a peak gain of 3.2 dBi. The overall antenna efficiency is 83% and radiation patterns of the proposed design on different frequencies are shown to confirm the proposed antenna result, especially at lower frequencies. The proposed antenna can be used for the detection of artifacts in the deeper ground known as ground-penetrating radar applications.


Corresponding author: Ankit Sharma, Galgotias College of Engineering and Technology, Greater Noida, India, E-mail:

  1. Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission.

  2. Research funding: None declared.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

References

[1] M. Elsaid, K. R. Mahmoud, M. Hussein, M. F. Hameed, A. Yahia, and S. S. Obayya, “Ultra-wideband circularly polarized crossed-dual-arm bowtie dipole antenna backed by an artificial magnetic conductor,” Microw. Opt. Technol. Lett., vol. 61, no. 12, pp. 2801–2810, 2019, https://doi.org/10.1002/mop.31979.Suche in Google Scholar

[2] D. J. Daniels, Ed., Ground penetrating radar, London, IET, 2004.10.1049/PBRA015ESuche in Google Scholar

[3] X. L. Travassos, S. L. Avila, R. D. Adriano, and N. Ida, “A review of ground penetrating radar antenna design and optimization,” J. Microw. Optoelectron. Electromagn. Appl., vol. 17, pp. 385–402, 2018, https://doi.org/10.1590/2179-10742018v17i31321.Suche in Google Scholar

[4] A. Raza, W. Lin, Y. Chen, Z. Yanting, H. T. Chattha, and A. B. Sharif, “Wideband tapered slot antenna for applications in ground penetrating radar,” Microw. Opt. Technol. Lett., vol. 62, no. 7, pp. 2562–2568, 2020, https://doi.org/10.1002/mop.32338.Suche in Google Scholar

[5] J. Guo, J. Tong, Q. Zhao, J. Jiao, J. Huo, and C. Ma, “An ultrawide band antipodal Vivaldi antenna for airborne GPR application,” Geosci. Rem. Sens. Lett. IEEE, vol. 16, no. 10, pp. 1560–1564, 2019, https://doi.org/10.1109/lgrs.2019.2905013.Suche in Google Scholar

[6] W. Bousbaa, H. Medkour, F. Bouttout, and Z. Messali, “Fully planar frequency independent square Archimedean spiral antenna with impedance transformer for ground penetrating radars,” Microw. Opt. Technol. Lett., vol. 63, no. 1, pp. 295–309, 2021, https://doi.org/10.1002/mop.32577.Suche in Google Scholar

[7] B. Hammache, A. Messai, I. Messaoudene, and T. A. Denidni, “A compact ultra-wideband antenna with three C-shaped slots for notched band characteristics,” Microw. Opt. Technol. Lett., vol. 61, no. 1, pp. 275–279, 2019, https://doi.org/10.1002/mop.31535.Suche in Google Scholar

[8] J. Jihak, C. Wooyoung, and C. Jaehoon, “A small wideband microstrip-fed monopole antenna,” IEICE Proceeding Series, vol. 33, pp. 3B2–4, 2005, https://doi.org/10.1109/lmwc.2005.856834.Suche in Google Scholar

[9] D. J. Sawyer, S. Das, N. Diamanti, A. P. Annan, and A. K. Iyer, “Choke rings for pattern shaping of a GPR dipole antenna,” IEEE Trans. Antenn. Propag., vol. 66, no. 12, pp. 6781–6790, 2018, https://doi.org/10.1109/tap.2018.2874689.Suche in Google Scholar

[10] A. Raza, W. Lin, Y. Liu, A. B. Sharif, Y. Chen, and C. Ma, “A magnetic-loop based monopole antenna for GPR applications,” Microw. Opt. Technol. Lett., vol. 61, no. 4, pp. 1052–1057, 2019, https://doi.org/10.1002/mop.31690.Suche in Google Scholar

[11] S. R. Pennock and C. H. Jenks, “UWB shielded teardrop monopole antenna for GPR and communications,” in 2017 IEEE-APS Topical Conference on Antennas and Propagation in Wireless Communications (APWC), Verona, IEEE, 2017, pp. 288–291.10.1109/APWC.2017.8062303Suche in Google Scholar

[12] 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, 2010, https://doi.org/10.1007/s10762-010-9655-7.Suche in Google Scholar

[13] R. K. Badhai and N. Gupta, “Reduced size bow-tie slot monopole antenna for land mine detection,” Microw. Opt. Technol. Lett., vol. 52, no. 1, pp. 122–125, 2010, https://doi.org/10.1002/mop.24872.Suche in Google Scholar

[14] H. Alsariera, Z. Zakaria, and A. A. Isa, “A broadband p-shaped circularly polarized monopole antenna with a single parasitic strip,” IEEE Antenn. Wireless Propag. Lett., vol. 18, no. 10, pp. 2194–2198, 2019, https://doi.org/10.1109/lawp.2019.2940160.Suche in Google Scholar

[15] T. Sutham, W. Thaiwirot, and P. Akkaraekthalin, “A printed wide slot antenna with a double-shaped feeding strip for GPR applications,” in 2020 8th International Electrical Engineering Congress (iEECON), Chiang Mai, IEEE, 2020, pp. 1–4.10.1109/iEECON48109.2020.236458Suche in Google Scholar

[16] S. M. Momin, A. P. Khandare, S. D. Sawarkar, and D. J. Pethe, “Design of high performance & wide-bandwidth bow-tie antenna for ground penetrating radar (GPR) system,” in 2019 IEEE Pune Section International Conference (PuneCon), Pune, IEEE, 2019, pp. 1–5.10.1109/PuneCon46936.2019.9105672Suche in Google Scholar

[17] H. Cheng, H. Yang, Y. Li, and Y. Chen, “A compact Vivaldi antenna with artificial material lens and Sidelobe suppressor for GPR applications,” IEEE Access, vol. 8, pp. 64056–64063, 2020, https://doi.org/10.1109/access.2020.2984010.Suche in Google Scholar

[18] H. Takizawa, K. Matsubayashi, N. Michishita, H. Morishita, and K. Kawabata, “Study on impedance matching and miniaturization of bow-tie antenna with folded structure and slit for ground penetrating radar,” in 2020 International Workshop on Antenna Technology (iWAT), Bucharest, IEEE, 2020, pp. 1–2.10.1109/iWAT48004.2020.1570608964Suche in Google Scholar

[19] A. Chaabane and M. Guerroui, “Printed UWB rhombus shaped antenna for GPR applications,” Iran. J. Electr. Electron. Eng., vol. 17, no. 4, p. 1, 2021.Suche in Google Scholar

[20] H. H. Sun, Y. H. Lee, W. Luo, L. F. Ow, M. L. Yusof, and A. C. Yucel, “Compact dual-polarized Vivaldi antenna with high gain and high polarization purity for GPR applications,” Sensors, vol. 21, no. 2, p. 503, 2021, https://doi.org/10.3390/s21020503.Suche in Google Scholar PubMed PubMed Central

Received: 2021-12-27
Accepted: 2022-06-21
Published Online: 2022-07-12
Published in Print: 2023-01-27

© 2022 Walter de Gruyter GmbH, Berlin/Boston

Heruntergeladen am 24.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/freq-2021-0318/html
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