Planar Antenna Design on the Characteristics of Moore Fractal-based High Impedance Surface

作者

  • Akash K. Gupta Research Scholar, Department of Electronics and Communication Engineering Centurion University of Technology and Management, Odisha, 761211, India https://orcid.org/0000-0001-5187-3133
  • Paladuga S. R. Chowdary Department of Electronics and Communication Engineering Raghu Engineering College, Visakhapatnam, Andhra Pradesh, 531162, India https://orcid.org/0000-0002-1649-4258
  • Mandhapati V. Krishna Department of Electronics and Communication Engineering Dhanekula Institute of Engineering and Technology, Vijayawada, Andhra Pradesh, 521139, India

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https://doi.org/10.13052/2023.ACES.J.380603

关键词:

High Impedance Surface (HIS), Moore Curve Fractals, Rectangular Patch Antenna

摘要

This work presents a planar antenna with a rectangular shape designed over a Moore curve fractal-shaped High Impedance Surface (HIS). The Moore fractal geometries are space-filling curves and are useful for multiband applications. The Moore curve-shaped fractal HIS is simulated up to three iterations, and performance is examined. The proposed antenna has multiband operation within the S-band, C-band, and lower X-band frequency of operation. The antenna has a peak gain of 5.08 dB, 4.69 dB, and 5.07 dB with a Moore curve fractal HIS, with iterations 1, 2, and 3 used as the ground plane. The antenna has been analyzed regarding the reflection coefficient, radiation pattern, 3-D polar plots, and surface current distribution. With Moore curve iteration 1, a shaped HIS provides a maximum bandwidth of 740 MHz with the center frequency of 10.95 GHz, 1.24 GHz with the center frequency of 10.57 GHz, and 1.09 GHz with the center frequency of 12.5 GHz with the second and third iterations, respectively.

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Akash Kumar Gupta received B. Tech and M. Tech degree from Jawaharlal Nehru Technological University, Kakinada, India in Electronics and Communication Engineering in 2011,2013 respectively. Since 2019 He is student Researcher in the Antenna Engineering, Centurion University of Technology and management Odisha, India. His research interests include microstrip antenna, electromagnetic band-gap structures, High Impedance surface antenna designs, and Embedded Systems.

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Paladuga S. R. Chowdary is a Professor and Vice Principal at Raghu Institute of Technology, Visakhapatnam, India. He obtained the M.Tech. and Ph.D. degrees from Andhra University, Visakhapatnam, and Jawaharlal Nehru Technological University, Kakinada, India, respectively. He has been teaching for 20 years and has 5 years of research experience. His research interests are evolutionary computing tools, computational electromagnetics, fractal antennas, and image processing. He is a Senior Member of the IEEE, the Applied Computational Electromagnetics Society, a Life Member of the Instrument Society of India (ISOI), the International Computer Science and Engineering Society (ICSES), and the Soft Computing Research Society (SCRS).

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M.Vamshi Krishna obtained PhD in Computational electromagnetics and antennas from Centurion University, Odisha,India..He obtained his PG in Radar & Microwave Engineering from Andhra University and B.Tech from Biju Patnaik University of Technology & Management. His research interests include soft computing, Evolutionary computing tools, Antennas and electromagnetic systems. At Present he is working as Professor, Head of Department Electronics and Communication Engineering, Dhanekula Institute of Engineering and Technology, Vijayawada, Andhra Pradesh, India.

参考

D. F. Sievenpiper, “High impedance electromagnetic surfaces,” Ph.D. dissertation, Dept. Elect. Eng., UCLA, Los Angeles, CA, USA, 1999.

F. Yang and Y. Rahmat-Samii, ”Reflection phase characterization of an electromagnetic band-gap (EBG) surface,” IEEE Antenna Propag. Soci. Int. Symp. (IEEE Cat. No. 02CH37313), San Antonio, TX, USA, pp. 744-747, doi: 10.1109/APS.2002.1018317, 2002.

S. Clavijo, R. E. Diaz, and W. E. McKinzie, “Design methodology for Sievenpiper high-impedance surfaces: An artificial magnetic conductor for positive gain electrically small antennas,” IEEE Trans. Antennas Propag., vol. 51, no. 10, pp. 2678-2690, Oct. 2003.

F. Yang and Y. Rahmat-Samii, “Reflection phase characterizations of the EBG ground plane for low profile wire antenna applications,” IEEE Trans. Antenna Propag., vol. 51, no. 10, pp. 2691-2703, Oct. 2003.

F. Costa, A. Monorchio, S. Talarico, and F. M. Valeri, “An active high-impedance surface for low-profile tunable and steerable antennas,” IEEE Antennas Wireless Propag. Lett., vol. 7, pp. 676-680, Sep. 2008.

D. J. Kern, D. H. Werner, A. Monorchio, L. Lanuzza, and M. J. Wilhelm, “The design synthesis of multiband artificial magnetic conductors using high impedance frequency selective surfaces,” IEEE Trans. Antennas Propag., vol. 53, no. 1, pp. 8-17, Jan. 2005.

M. Hosseini, A. Pirhadi, and M. Hakkak, “Design of a non-uniform high impedance surface for a low profile antenna,” J. Electromagn. Waves Appl., vol. 20, no. 11, pp. 1455-1464, Jan. 2006.

M. Li, S.-Q. Xiao, and B.-Z. Wang, “Investigation of using high impedance surfaces for wide-angle scanning arrays,” IEEE Trans. Antenna Propag. vol. 63, no. 7, pp. 2895-2901, July 2015.

G. Gupta and A. R. Harish, “Circularly polarized antenna using a double layered via-less high impedance surface,” Microw. Opt. Technol. Lett. vol. 58, no. 2, pp. 340-343, Feb. 2016.

P. K. Panda and D. Ghosh, “Wideband bow-tie antenna with increased gain and directivity by using high impedance surface,” Int. J. RF Microw. Comput. Aided Eng., vol. 29, no. 3, pp. e21619, Mar. 2019.

A. T. Almutawa, H. Kazemi, and F. Capolino, “Analyze and design of thin planar high impedance surface as an antenna,” 2018 Int. Conf. Electromag. Adv. Appl. (ICEAA), Cartagena, Colombia, pp. 623-624, doi: 10.1109/ICEAA.2018.8520480, 2018.

G. Cheng, Y.-M. Wu, J.-X. Yin, N. Zhao, T. Qiang, and X. Lv, “Planar Luneburg lens based on the high impedance surface for effective Ku-band wave focusing,” IEEE Access, vol. 6, pp. 16942-16847, Feb. 2018.

M. M. Bait-Suwailam, I. I. Labiano, and A. Alomainy, “Impedance enhancement of textile grounded loop antenna using high-impedance surface (HIS) for healthcare applications,” Sensors, vol. 20, no. 14, p. 3809, July 2020.

J. K. Ali, “A new microstrip-fed printed slot antenna based on Moore space-filling geometry,” 2009 Loughborough Antenna & Propag. Conf., Loughborough, UK, pp. 449-452, doi: 10.1109/LAPC.2009.5352551, 2009.

M. Ali, T. Sittironnarit, V. K. Kunda, H. S. Hwang, R. A. Sadler, and G. J. Hayes, “Wideband patch antenna for 5-6 GHz WLAN applications,” IEEE Antennas and Propag. Society Int. Symp. Digest, Columbus, OH, USA, pp. 930-933, vol. 2, doi: 10.1109/APS.2003.1219387, 2003.

J. Anguera, A. Andújar, J. Jayasinghe, V. V. S. S. S. Chakravarthy, P. S. R. Chowdary, J. L. Pijoan, T. Ali, and C. Cattani, “Fractal antennas: An historical perspective,” Fractal and Fractional, vol. 4, no. 1, p. 3, Jan. 2020.

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已出版

2023-06-30