Shuffled frog Leaping algorithm based circular patterns loaded ring shaped fractal antenna for multistandard wireless applications

被引:3
作者
Kaur, Manpreet [1 ]
Krishan, Ram [2 ]
Sivia, Jagtar Singh [1 ]
Kaur, Navneet [3 ]
机构
[1] Punjabi Univ Guru Kashi Campus, YDoE, Talwandi Sabo, Punjab, India
[2] Mata Sundri Univ Girls Coll, Mansa, Punjab, India
[3] Punjabi Univ, Patiala, Punjab, India
关键词
Bandwidth; Multiband behavior; Optimization; Radiation pattern; Ring shaped fractal antenna; Shuffled frog leaping algorithm; MONOPOLE ANTENNA; MULTIBAND ANTENNA; GROUND STRUCTURE; DESIGN; MINKOWSKI; CURVES; OPTIMIZATION; PATCH; WLAN; ANN;
D O I
10.1016/j.aeue.2024.155123
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper describes the design and experimental behavior of a 2nd iterated modified Square Ring Shaped Fractal Antenna (SRSFA). The radiator geometry consists of three symmetrical square-shaped rings loaded with circular patterns at the corners. The designed fractal patch is placed on a slot loaded ground structure. The electrical dimensions possessed by the realized structure are 0.15 lambda 0 x 0.15 lambda 0 x 0.080 lambda 0, and the whole antenna is implemented using FR4 substrate. In this design, transmission line width 'WF' and position 'FP' are optimized using Shuffled Frog Leaping Algorithm (SFLA) and Artificial Bee Colony (ABC) strategies. It has been examined that the optimized values of 'WF' and 'FP' using SFLA and ABC are 2.6 and 12.4 mm, and 3.2 and 15.9 mm, respectively. Results reveal that SFLA offers better solution quality and convergence speed than ABC. Further, experimental analysis has been demonstrated to effectively illustrate the recommended fractal approach. The equivalent circuit of the designed structure is implemented successfully. The conducted measurements show that for VSWR <= 2, the fabricated structure produces six resonance points with adorable S11 values. The resonances appear at 1.53 GHz (1.35-1.67 GHz), 4.30 GHz (4.20-4.40 GHz), 7.58 GHz (7.43-7.70 GHz), 11.35 GHz (10.37-11.58 GHz), 14.03 GHz (13.85-14.35 GHz), and 15.93 GHz (15.43-16.25 GHz). The examined -10 dB impedance bandwidth at the respective resonance points is 20.9 %, 4.6 %, 3.5 %, 11.3 %, 2.9 %, and 5.23 %. Healthy concordance is noticed among the experimental measurements and electromagnetic simulations. The demonstrated radiation patterns are arbitrary bidirectional/omnidirectional at the respective resonances with good stability. Additionally, the offered gain is within the range of 4.91-7.00 dB. Hence, by utilizing the abovementioned approaches, miniaturization of 65 % has been achieved. Practical outcomes suggest that the introduced prototype exhibiting multiband behavior, can be effectively applied in Radio location, Radio astronomy, Long-range tracking, Weather location Broadcasting, Search for extra-terrestrial intelligence, Radar altimeters, High resolution mapping, Aeronavigation, and Miscellaneous Radars.
引用
收藏
页数:14
相关论文
共 62 条
  • [1] Agrawal B, 2023, International Journal of Advanced Technology and Engineering Exploration, V10, P232
  • [2] [Anonymous], 2013, Advances in Artificial Neural Systems
  • [3] Optimal Locating and Sizing of DG in Radial Distribution System Using Modified Shuffled Frog Leaping Algorithm
    Asif, Rao Muhammad
    Rehman, Ateeq Ur
    Alsharabi, Naif
    Rabbani, Sajjad
    Shakir, Mustafa
    Malik, Nauman
    Rehman, Saif Ur
    Khan, Arfat Ahmad
    [J]. IETE JOURNAL OF RESEARCH, 2024, 70 (02) : 2148 - 2165
  • [4] Balanis C., ANTENNA THEORY ANAL
  • [5] Moore, Minkowski and Koch Curves Based Hybrid Fractal Antenna for Multiband Applications
    Bangi, Inkwinder Singh
    Sivia, Jagtar Singh
    [J]. WIRELESS PERSONAL COMMUNICATIONS, 2019, 108 (04) : 2435 - 2448
  • [6] A Miniaturized Tri-Wideband Sierpinski Hexagonal-Shaped Fractal Antenna for Wireless Communication Applications
    Benkhadda, Omaima
    Saih, Mohamed
    Ahmad, Sarosh
    Al-Gburi, Ahmed Jamal Abdullah
    Zakaria, Zahriladha
    Chaji, Kebir
    Reha, Abdelati
    [J]. FRACTAL AND FRACTIONAL, 2023, 7 (02)
  • [7] Quality of service optimization in orthogonal frequency division multiplexing-based cognitive radio systems based on shuffled frog leaping algorithm
    Benmammar, Badr
    [J]. CONCURRENCY AND COMPUTATION-PRACTICE & EXPERIENCE, 2022, 34 (01)
  • [8] Bharti G., 2021, Prog. Electromagn. Res. C, V108, P115, DOI 10.2528/pierc20110601
  • [9] Bhatia S-S., 2021, PROG ELECTROMAGN RES, V112, P99, DOI DOI 10.2528/PIERC21040601
  • [10] A Novel Design of Compact Monopole Antenna with Defected Ground Plane for Wideband Applications
    Bhatia, Sumeet S.
    Sahni, Aditi
    Rana, Shashi B.
    [J]. PROGRESS IN ELECTROMAGNETICS RESEARCH M, 2018, 70 : 21 - 31