Browse > Article
http://dx.doi.org/10.5515/KJKIEES.2016.27.6.512

Miniaturized Frequency Selective Surface with a Scalability of Operating Frequency  

Lee, In-Gon (Department of Information & Communication Engineering, Kongju National University)
Hong, Ic-Pyo (Department of Information & Communication Engineering, Kongju National University)
Publication Information
Abstract
In this paper, a miniaturized frequency selective surface(FSS) for bandstop operation that provides stability for an angle of incidence and polarization is presented. The proposed miniaturized FSS has the unit cell of hexagonal structure with triangular loops and size of the unit cell is $0.081{\lambda}{\times}0.081{\lambda}$ at 2.5 GHz operating frequency, which is very small compared to operating wavelength. In addition, unlike the conventional design, which requires complicated design parameters, the proposed FSS is easily expanded to the desired operating frequency for 2~8 GHz, by controlling the specific design parameters. To validate the simulation results, the FSS structures having different operating frequencies, 2.5 GHz, 5 GHz and 8.2 GHz were designed, fabricated and measured. The comparisons between the simulation and the measured results show good agreement. The proposed miniaturized FSS can provide better frequency stability for different incidence angles and polarizations.
Keywords
Miniaturized Frequency Selective Surface; Angle Of Incidence; Polarization; Frequency Stability;
Citations & Related Records
연도 인용수 순위
  • Reference
1 B. A. Munk, Frequency Selective Surfaces: Theory and Design, John Wiley & Sons, 2000.
2 L. K. Sun, H. F. Cheng, Y. J. Zhou, and J. Wang, "Broadband metamaterial absorber based on coupling resistive frequency selective surface", Optics Express, vol. 20, no. 4, pp. 4675-4680. 2012.   DOI
3 H. Vettikalladi, A. Basem, and A. A. Majeed, "Frequency selective surface superstate antenna for 79-GHz automotive applications", IEEE Radio and Antenna Days of the Indian Ocean (RADIO), Belle Mare, pp. 21-24, 2015.
4 M. Yan, S. Qu, J. Wang, J. Zhang, H. Zhou, H. Chen, and L. Zheng, "A miniaturized dual-band FSS with stable resonance frequencies of 2.4 GHz/5 GHz for WLAN applications", IEEE Antennas and Wireless Propagation Letters, vol. 13, pp. 895-898, 2014.   DOI
5 P. Wu, F. Bai, Q. Xue, X. Liu, and S. Y. R. Hui, "Use of frequency-selective surface for suppressing radio-frequency interference from wireless charging pads", IEEE Transactions on Industrial Electronics, vol. 61, no. 8, pp. 3969-3977, 2014.   DOI
6 F. C. Huang, C. N. Chiu, T. L. Wu, and Y. P. Chiou, "A circular-ring miniaturized-element metasurface with many good features for frequency selective shielding applications", IEEE Transactions on Electromagnetic Compatibility, vol. 57, no. 3, pp. 365-374, 2015.   DOI
7 F. Costa, M. Agostino, "A frequency selective radome with wideband absorbing properties", IEEE Transactions on Antennas and Propagation, vol. 60, no. 6, pp. 2740-2747, 2012.   DOI
8 T. K. Wu, Frequency Selective Surface and Grid Array, John Wiley & Sons, 1995.
9 Z. Sipus, B. Marko, and S. Sinisa, "Analysis of curved frequency selective surfaces", 2007 2nd European Conference on Antennas and Propagation(EuCAP), Edinburgh, pp. 1-5, 2007.
10 S. B. Savia, E. A. Parker, "Current distribution across curved ring element FSS", IEEE National Conference on Antennas and Propagation, York, UK, pp. 332-335, 1999.
11 A. Dalkilic, A. Lale, and C. B. Top, "Analysis of conformal frequency selective surface radome", 2014 8th European Conference on Antennas and Propagation (EuCAP), Hague, 2014.
12 F. Bayatpur, S. Kamal, "Single-layer high-order miniaturized-element frequency-selective surfaces", IEEE Transactions on Microwave Theory and Techniques, vol. 56, no. 4, pp. 774-781, 2008.   DOI
13 D. Feng, X. Wu, "A novel miniaturized frequency selective surface", 2012 10th International Symposium on Antennas, Propagation and EM Theory (ISAPE), Xian, pp. 377-380, 2012.
14 H. Liu, L. F. Kenneth, and J. L. Richard, "Design methodology for a miniaturized frequency selective surface using lumped reactive components", IEEE Transactions on Antennas and Propagation, vol. 57, no. 9, pp. 2732-2738, 2009.   DOI
15 R. Xu, Z. Rong, Z. Yuan, and W. Wen, "Low-frequency miniaturized dual band frequency selective surfaces with close band spacing", Microwave and Optical Technology Letters, vol. 51, no. 5, pp. 1238-1240, 2009.   DOI
16 B. Sanz-Izquierdo, E. A. Parker, J. B. Robertson, and J. C. Batchelor, "Singly and dual polarized convoluted frequency selective structures", IEEE Transactions on Antennas and Propagation, vol. 58, no. 3, pp. 690-696. 2010.   DOI
17 F. Deng, Y. XueQin, and W. Wu, "Design and performance of a double-layer miniaturized-element frequency selective surface", IEEE Antennas and Wireless Propagation Letters, vol. 12, pp. 721-724, 2013.   DOI
18 S. N. Azemi, K. Ghorbani, and W. S. T. Rowe, "Angularly stable frequency selective surface with miniaturized unit cell", IEEE Microwave and Wireless Components Letters, vol. 25, no. 7, pp. 454-456, 2015.   DOI
19 S. Barbagallo, A. Monorchio, and G. Manara, "Small periodicity FSS screens with enhanced bandwidth performance", Electronics Letters, vol. 42, no. 7, 2006.
20 E. A. Parker, "The gentleman's guide to frequency selective surfaces", 17th QMW Antenna Symposium. London, UK, Queen Mary and Westfield College, 1991.
21 M. Nauman, R. Saleem, A. K. Rashid, and M. F. Shafique, "A miniaturized flexible frequency selective surface for X-band applications", IEEE Transactions on Electromagnetic Compatibility, vol. 58, no. 2, pp. 419-428, 2016.   DOI