DOI QR코드

DOI QR Code

곡면 재구성 주파수 선택막의 투과특성

Transmission Characteristics of Curved Reconfigurable Frequency Selective Structure

  • 이인곤 (공주대학교 정보통신공학부) ;
  • 홍익표 (공주대학교 정보통신공학부) ;
  • 전흥재 (연세대학교 기계공학부) ;
  • 박용배 (아주대학교 전자공학과) ;
  • 김윤재 (국방과학연구소 제7기술연구본부)
  • Lee, In-Gon (Department of Information & Communication Engineering, Kongju National University) ;
  • Hong, Ic-Pyo (Department of Information & Communication Engineering, Kongju National University) ;
  • Chun, Heoung-Jae (School of Mechanical Engineering, Yonsei University) ;
  • Park, Yong-Bae (Department of Electronics Engineering, Ajou University) ;
  • Kim, Yoon-Jae (The 7th Research and Development Institute, Agency for Defense Development)
  • 투고 : 2014.01.20
  • 심사 : 2014.05.16
  • 발행 : 2014.06.05

초록

In this paper, the flexible and reconfigurable frequency selective surface for C-band was designed using patch array and grid structure for radome and other curved surface applications. Frequency reconfigurability was obtained by varying the capacitance of varactor diode and flexibility is implemented by using flexible PCB. For the validity of the proposed structure, we fabricated the flexible and reconfigurable frequency selective structure and measured the frequency reconfigurability for different bias voltages and different curvature surfaces from the optimized design parameters. From the measurement results, we know that the proposed structure has the wideband reconfigurable frequency bandwidth of 6.05-7.08GHz. We can apply this proposed structure to the curved surface like as radome of aircraft or warship.

키워드

참고문헌

  1. S. W. Lee, G. Zarrillo, and C. L. Law, "Simple Formulas for Transmission Through Metal Periodic Grids or Plates," IEEE Trans. on Antennas & Prop., Vol. 30, No. 5, pp. 904-909, Sep. 1982. https://doi.org/10.1109/TAP.1982.1142923
  2. E. L. Pelton and B. A. Munk, "A Streamlined Metallic Radome," IEEE Trans. on Antennas & Prop., Vol. 22, No. 6, pp. 799-803, Nov. 1974. https://doi.org/10.1109/TAP.1974.1140896
  3. A. E. Martynyuk, J. I. Martinez Lopez, and N. A. Martynyuk, "Spiraphase-type Reflectarrays based on Loaded Ring Slot Resonators," IEEE Trans. on Antennas & Prop., Vol. 52, No. 1, pp, 142-153, Jan. 2004. https://doi.org/10.1109/TAP.2003.820976
  4. G. I. Kiani, K. L. Ford, L. G. Olsson, K. P. Esselle and C. J. Panagamuwa, "Switchable Frequency Selective Surface for Reconfigurable Electromagnetic Architecture of Buildings," IEEE Trans. on Antennas & Prop., Vol. 58, No. 2, pp. 581-584, Feb. 2010. https://doi.org/10.1109/TAP.2009.2037772
  5. D. T. M. Rosales, A. E. Martynyuk, J. I. M. Lopez and J. R. Cuevas, "Frequency Selective Surfaces based on Ring Slots Loaded with Monolithically Integrated Capacitors," IET Microwaves, Antennas & Prop., Vol. 6, No. 3, pp. 245-250, Mar. 2012. https://doi.org/10.1049/iet-map.2010.0496
  6. B. Schoenlinner, A. A. Tamijani, L. C. Kempel and G. M. Rebeiz, "Switchable Low-loss RF MEMS Ka-band Frequency-selective Surface," IEEE Trans. on Microwave Theory & Tech., Vol. 52, No. 11, pp. 2474-2481, Nov. 2004. https://doi.org/10.1109/TMTT.2004.837148
  7. D. Robben, S. F. Peik, T. Henning, M. Becker and K. Froehner, "Laser Machined Microsystems for Active Frequency Selective Surfaces," 2012 IEEE MTT-S International, pp. 1-3, Jun. 2012.
  8. L. B. Qin, Q. S. Bo, T. C. Ming, Z. Hang, Z. H. Yang and L. Wei, "Varactor-tunable Frequency Selective Surface with Embedded Bias Network," Chin. Phy. B, Vol. 22, No. 9, 094103.1-094103.4, Sep. 2013.
  9. C. Mias and C. Tsakonas, "Waveguide Demonstration of Varactor-diode-tunable Band-pass Frequency Selective Surface," Microwave and Optical Technology Letters, Vol. 45, No. 1, pp. 62-66, 2005. https://doi.org/10.1002/mop.20724
  10. F. Bayatpur, K. Sarabandi, "Design and Analysis of a Tunable Miniaturized-element Frequency-selective Surface without Bias Network", IEEE Trans. on Antennas & Prop., Vol. 58, No. 4, pp. 1214-1219, Apr. 2010. https://doi.org/10.1109/TAP.2010.2041173
  11. F. Bayatpur, K. Sarabandi, "Tuning Performance of Metamaterial-based Frequency Selective Surfaces," IEEE Trans. on Antennas & Prop., Vol. 5, No. 2, pp. 590-592, Feb. 2009.
  12. Z. Sipus, M. Bosiljevac and J. Bartolic, "Rigorous and Approximate Analysis of Curved Frequency Selective Surfaces," 2008 IEEE AP-S International Symposium, pp. 1-4, Jul. 2008
  13. B. Philips, E. A. Parker and R. J. Langley, "Ray Tracing Analysis of Transmission Performance of Curved FSS," IEE Proc. Microwaves, Antennas & Prop., Vol. 142, No. 3, pp. 193-200, Mar. 1995. https://doi.org/10.1049/ip-map:19951896
  14. C, Yu and C. C. Lu, "Analysis of Finite and Curved Frequency-selective Surfaces using the Hybrid Volume-surface Integral Equation Approach," Microwave and Optical Technology Letters, Vol. 45, No. 2 pp. 107-112, Feb. 2005. https://doi.org/10.1002/mop.20738