Optimizing Performance of Antenna Arrays with Clustered Fractal Shapes for Multiband Applications
DOI:
https://doi.org/10.26636/jtit.2024.1.1456Keywords:
array pattern optimization, clustered elements, fractal array antennas, multiband, Sierpinski carpet fractal arrayAbstract
Fractal antennas are mainly used in multiband applications. However, these types of arrays suffer from numerous disadvantages, such as high sidelobe levels, low directivity, poor taper efficiency, and high design computational complexity. In this paper, the conventional fractal procedures are redesigned and efficient clustered subarrays are deployed, such that their multiband properties are maintained while simultaneously achieving significant improvements in radiation characteristics. A genetic optimization algorithm is used to find the optimal clustered fractal shapes and their associated amplitude distributions, such that the sidelobe levels are minimized at the narrower beam width, i.e. maximum feasible directivity. Since the optimization process is carried out at the clustered level, it can be represented by merely a few variables, which solves the problem of time intensity. Simulation results confirm the superiority of the proposed clustered fractal array, where the sidelobe level has been reduced to more than -10 dB over a wide range of frequencies. Directivity and taper efficiency have been improved by more than 6 dB and 50%, respectively, in comparison to the parameters of conventional, original fractal arrays. Moreover, the proposed fractal array pattern offers an additional advantage, as it is capable of wide sidelobe nulling at some undesired directions.
Downloads
References
D.H. Werner, R.L. Haupt, and P.L. Werner, "Fractal Antenna Engineering: The Theory and Design of Antenna Arrays", IEEE Antennas and Propagation Magazine, vol. 41, no. 5, pp. 37-58, 1999.
View in Google Scholar
S.E. El‑Khamy, H.F. EL‑Sayed, and A.S. Eltrass, "A New Adaptive Beamforming of Multiband Fractal Antenna Array in Strong‑Jamming Environment", Wireless Personal Communications, vol. 126, pp. 285-304, 2022.
View in Google Scholar
A. Karmakar, R. Ghatak, R.K. Mishra, and D.R. Poddar, "Sierpinski Carpet Fractal-based Planar Array Optimization Based on Differential Evolution Algorithm", Journal of Electromagnetic Waves and Applications, vol. 29, no. 2, pp. 247-260, 2015.
View in Google Scholar
C. Puente-Baliarda and R. Pous, "Fractal Design of Multiband and Low Side-lobe Arrays", IEEE Transactions on Antennas and Propagation, vol. 44, no. 5, pp. 730-739, 1996.
View in Google Scholar
A. Karmakar, "Fractal Antennas and Arrays: A Review and Recent Developments", International Journal of Microwave and Wireless Technologies, vol. 13, no. 2, pp. 173-197, 2021.
View in Google Scholar
D.H. Werner, W. Kuhirun, and P.L. Werner, "The Peano-Gosper Fractal Array", IEEE Transactions on Antennas and Propagation, vol. 51, no. 8, pp. 2063-2072, 2003.
View in Google Scholar
C.A. Balanis, Antenna Theory, Analysis, and Design, 4th ed., Hoboken: Wiley, 1096 p., 2016 (ISBN: 9781118642061).
View in Google Scholar
P. Rocca, G. Oliveri, R.J. Mailloux, and A. Massa, "Unconventional Phased Array Architectures and Design Methodologies - A Review", Proceedings of the IEEE, vol. 104, no. 3, pp. 544-560, 2016.
View in Google Scholar
J.R. Mohammed, "Minimizing Grating Lobes in Large Arrays Using Clustered Amplitude Tapers", Progress in Electromagnetics Research C, vol. 120, pp. 93-103, 2022.
View in Google Scholar
H. Jiang, Y. Gong, J. Zhang, and S. Dun, "Irregular Modular Subarrayed Phased Array Tiling by Algorithm X and Differential Evolution Algorithm", IEEE Antennas and Wireless Propagation Letters, vol. 22, no. 7, pp. 1532-1536, 2023.
View in Google Scholar
J.R. Mohammed, A.J. Abdulkadeer, and R. Hamdan, "Antenna Pattern Optimization via Clustered Arrays", Progress in Electromagnetics Research M, vol. 95, pp. 177-187, 2020.
View in Google Scholar
R.J. Mailloux, S.G. Santarelli, T.M. Roberts, and D. Luu, "Irregular Polyomino-shaped Subarrays for Space-based Active Arrays", International Journal of Antennas and Propagation, vol. 2009, art. no. 956524, 2009.
View in Google Scholar
J.R. Mohammed and K.H. Sayidmarie, "Sensitivity of the Adaptive Nulling to Random Errors in Amplitude and Phase Excitations in Array Elements", Journal of Telecommunication, Electronic and Computer Engineering, vol. 10, no. 1, pp. 51-56, 2018 (https://jtec.utem.edu.my/jtec/article/view/2023).
View in Google Scholar
V.A.S. Ponnapallia and P.V.Y. Jayasreeb, "Thinning of Sierpinski Fractal Array Antennas Using Bounded Binary Fractal-tapering Techniques for Space and Advanced Wireless Applications", ICT Express, vol. 5, no. 1, pp. 8-11, 2019.
View in Google Scholar
K. Siakavara, "Novel Fractal Antenna Arrays for Satellite Networks: Circular Ring Sierpinski Carpet Arrays Optimized by Genetic Algorithms", Progress in Electromagnetics Research, vol. 103, pp. 115-138, 2010.
View in Google Scholar
J.R. Mohammed, "A Method for Thinning Useless Elements in the Planar Antenna Arrays", Progress in Electromagnetics Research Letters, vol. 97, pp. 105-113, 2021.
View in Google Scholar
Downloads
Published
Issue
Section
License
Copyright (c) 2024 Jafar Ramadhan Mohammed, Dalia Ahmad Al-Khafaf

This work is licensed under a Creative Commons Attribution 4.0 International License.