參考文獻 |
[1] L. Yo-Shen and C. Chun-Hsiung, "Lumped-element impedance-transforming uniplanar transitions and their antenna applications," Microwave Theory and Techniques, IEEE Transactions on, vol. 52, pp. 1157-1165, 2004.
[2] N. Behdad, M. Al-Joumayly, and M. Salehi, “A Low-Profile Third-Order Bandpass Frequency Selective Surface,” Antennas and Propagation, IEEE Transactions on, vol. 57, pp. 460-466, 2009.
[3] D. Singh, A. Kumar, S. Meena, and V. Agarwala, “Analysis of frequency selective surfaces for radar absorbing materials,” Progress In Electromagnetics Research B, Vol. 38, 297-314, 2012.
[4] F. Costa, A. Monorchio, and G. Manara, “Efficient Analysis of Frequency-Selective Surfaces by a Simple Equivalent-Circuit Model,” Antennas and Propagation Magazine, IEEE, vol. 54, pp. 35-48, 2012.
[5] H. Xiao-Dong, Z. Xi-Lang, W. Lin-Sheng, Z. Liang, and Y. Wen-Yan, “A Miniaturized Dual-Band Frequency Selective Surface (FSS) With Closed Loop and Its Complementary Pattern,” Antennas and Wireless Propagation Letters, IEEE, vol. 8, pp. 1374-1377, 2009.
[6] Langley, R. J. and E. A. Parker, “Equivalent circuit model for arrays of square loops,” Electronic Letters, Vol. 18, No. 7, 294-296, 1982.
[7] Dubrovka, R., J. Vazquez, C. Parini, and D. Moore, “Equivalent circuit method for analysis and synthesis of frequency selective surfaces,” IEEE Proceeding on Microwave Antennas Propagation, Vol. 153, No. 3, 213-220, 2006.
[8] Sung, G. H., K. W. Sowerby, and A. G. Williamson, “Equivalent circuit modelling of a frequency selective plasterboard wall,” IEEE Antennas and Propagation Society International Symposium, Vol. 4A, 400-403, 2005.
[9] Munk, B. A., Frequency Selective Surfaces-Theory and Design, John Wiley and Sons, Inc., New York, 2000.
[10] David M. Pozar, Microwave Engineering, 4th Edition.2012.
[11] R. M. Fano, “Theoretical Limitations on the Broad-Band Matching of Arbitrary Impedances, ”Journal of the Franklin Institute, vol. 249, pp. 57-83, January 1950, and pp. 139-154, February 1950.
[12] W. Desong, C. Wenquan, C. Yumei, C. Kuo-Sheng, and Y. L. Chow, “A Low-Profile Frequency Selective Surface With Controllable Triband Characteristics,” Antennas and Wireless Propagation Letters, IEEE, vol. 12, pp. 468-471, 2013.
[13] M. A. Al-Joumayly and N. Behdad, “A Generalized Method for Synthesizing Low-Profile, Band-Pass Frequency Selective Surfaces With Non-Resonant Constituting Elements,” Antennas and Propagation, IEEE Transactions on, vol. 58, pp. 4033-4041,2010.
[14] Y. Ranga, L. Matekovits, K. P. Esselle, and A. R. Weily, “Multilayer frequency-selective-surface reflector for constant gain over ultra wideband,” Antennas and Propagation, Proceedings of the 5th European Conference on, pp. 332-334. , 2011
[15] B. A. Munk, P. Munk, and J. Prior, “On designing Jaumann and circuit analog of absorbers (CA absorbers) for oblique angle of incidence,”IEEE Trans. Antennas Propagation, vol. 55, no. 1, pp. 186–193, Jan. 2007.
[16] John D. Kraus, Ronald J. Marhefka, Antennas for All Applications, McGraw-Hill, 3rd edition, 2002.
[17] S. F. Liu and X. W. Shi, "A novel wideband waveguide-to-microstrip transition with waveguide stepped impedance transformer," in Microwave and Millimeter Wave Technology (ICMMT), 2012 International Conference on, 2012, pp. 1-4.
[18] G. Wei-Da, C. Wei-Ning, W. Chien-Lin, S. Guang-Hwa, and W. Ruey-Beei, "Design of Wideband Impedance Matching for Through-Hole Via Transition Using Ellipse-Shaped Anti-Pad," in Electrical Performance of Electronic Packaging, IEEE, pp. 245-248. , 2006.
[19] 盧盈維,「帶通圓形極化頻率選擇面之設計」,國立中央大學,碩士論文,民國101年。
[20] R. A. Ross, "Radar cross section of rectangular flat plates as a function of aspect angle," Antennas and Propagation, IEEE Transactions on, vol.14, pp. 329-335, 1966.
[21] R. A. Ross, "Radar cross section of rectangular flat plates as a function of aspect angle," Antennas and Propagation, IEEE Transactions on, vol. 14, pp. 329-335, 1966. |