Circularly polarized high gain Koch fractal antenna for space applications

被引:4
|
作者
Pandav, Subhasish [1 ]
Sadhukhan, Gautam [2 ]
Das, Tanmaya Kumar [3 ]
Behera, Santanu Kumar [1 ]
Mohanty, Madhusmita [2 ]
机构
[1] Natl Inst Technol, Dept Elect & Commun Engn, Rourkela 769008, Orissa, India
[2] Def Res & Dev Org, Integrated Test Range, Chandipur 756025, Orissa, India
[3] Vellore Inst Technol, Sch Elect Engn, Vellore 632014, Tamil Nadu, India
来源
SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES | 2022年 / 47卷 / 04期
关键词
Koch fractal; circular polarisation; cross polarisation; realized gain; axial ratio; MICROSTRIP ANTENNA; DESIGN; BANDWIDTH;
D O I
10.1007/s12046-022-02047-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A compact Koch curve fractal boundary antenna with circularly polarized characteristics is discussed in this article. The radiator is having a square shape with V-slotted truncations along four sides. The operational band of the fractal structure operates at 2.18 GHz to 2.3 GHz band. A 2nd order Koch fractal curve is incorporated along the perimeter of the radiating patch. The fractal antenna is excited by a coaxial probe feeding technique, positioned diagonally for the development of circularly polarized radiation. The patch element is designed using HFSS and also fabricated on a substrate (RT/Duroid 5880 (TM)) having dielectric constant (epsilon(r) = 2.2) is used to design the fractal antenna with dimensions 0.39 lambda(0) x 0.39 lambda(0) x 0.024 lambda(0) (f(r) (=) 2.26 GHz). The structure exhibits a peak gain response of 6.93 dBi along with omnidirectional radiation patterns covering the operational band. The results of simulations and measurements are validated and the presented design is found suitable for space applications.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] BROADBAND CIRCULARLY POLARIZED ANTENNA WITH HIGH GAIN AND WIDE AXIAL RATIO BEAMWIDTH
    Wang, Hao
    Wang, Xiang
    Liu, Shu Fang
    Li, Ping
    Shi, Xiao Wei
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2015, 57 (02) : 377 - 381
  • [32] High Gain Circularly Polarized X-shaped Aperture Coupled Antenna for WLAN Applications
    Meriche, Mohammed A.
    Messai, Abderraouf
    Denidni, Tayeb A.
    Attia, Hussein
    APPLIED COMPUTATIONAL ELECTROMAGNETICS SOCIETY JOURNAL, 2019, 34 (10): : 1508 - 1513
  • [33] A Broadband Circularly Polarized High-Temperature Superconductor Microstrip Antenna for Space Applications
    Zeng, Xiaoyong
    Hu, Zhongxia
    Chen, Qian
    Wei, Xiao
    Huang, Kama
    IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2018, 17 (12): : 2179 - 2182
  • [34] Circularly Polarized Broadband Antenna Deploying Fractal Slot Geometry
    Pakkathillam, Jayaram Kizhekke
    Kanagasabai, Malathi
    IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2015, 14 : 1286 - 1289
  • [35] Reactive impedance surface-based broadband circularly polarized Koch fractal boundary microstrip antenna
    Reddy, V. V.
    Sarma, N. V. S. N.
    INTERNATIONAL JOURNAL OF MICROWAVE AND WIRELESS TECHNOLOGIES, 2016, 8 (02) : 243 - 250
  • [36] Hexagonal Fractal Antenna using Koch for Wireless Applications
    Gupta, Manisha
    Mathur, Vinita
    FREQUENZ, 2018, 72 (9-10) : 443 - 453
  • [37] CIRCULARLY ARCED KOCH FRACTAL MULTIBAND MULTIMODE MONOPOLE ANTENNA
    Li, Daotie
    Mao, Junfa
    PROGRESS IN ELECTROMAGNETICS RESEARCH-PIER, 2013, 140 : 653 - 680
  • [38] Wideband Circularly Polarized Antenna With Gain Improvement
    Zhang, Zhi-Ya
    Liu, Neng-Wu
    Zhao, Jia-Yue
    Fu, Guang
    IEEE ANTENNAS AND WIRELESS PROPAGATION LETTERS, 2013, 12 : 456 - 459
  • [39] Dual-Band Circularly Polarized Aperture-coupled Stack Antenna with Fractal Patch for WLAN and WiMAX Applications
    Hung, Tian-Fu
    Liu, Ji-Chyun
    Wei, Chia-Yen
    Chen, Chih-Chiang
    Bor, Sheau-Shong
    INTERNATIONAL JOURNAL OF RF AND MICROWAVE COMPUTER-AIDED ENGINEERING, 2014, 24 (01) : 130 - 138
  • [40] A Broadband High Gain Circularly Polarized Antenna System for Cognitive Radio
    Parida, Rajeev Kumar
    Swain, Rajanikanta
    Panda, Dhruba Charan
    Mishra, Rabindra Kishore
    RADIOENGINEERING, 2020, 29 (03) : 486 - 493