CROSS-DISCIPLINARY PHYSICS AND RELATED AREAS OF SCIENCE AND TECHNOLOGY |
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Partially Loaded Cavity Analysis by Using the 2-D FDTD Method |
YAO Bin1,2, ZHENG Qin-Hong1,2**, PENG Jin-Hui3, ZHONG Ru-Neng2, XIANG Tai2, XU Wan-Song2
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1College of Physical Science and Technology, Yunnan University, Kunming 650092
2School of Physics and Electronic Information, Yunnan Normal University, Kunming 650092
3Faculty of Materials and Metallurgical Engineering, Kunming University of Science and Technology, Kunming 650093
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Cite this article: |
YAO Bin, ZHENG Qin-Hong, PENG Jin-Hui et al 2011 Chin. Phys. Lett. 28 118401 |
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Abstract A compact two-dimensional (2-D) finite-difference time-domain (FDTD) method is proposed to calculate the resonant frequencies and quality factors of a partially loaded cavity that is uniform in the z−direction and has an arbitrary cross section in the x–y plane. With the description of z dependence by kz , the three-dimensional (3-D) problem can be transformed into a 2-D problem. Therefore, less memory and CPU time are required as compared to the conventional 3-D FDTD method. Three representative examples, a half-loaded rectangular cavity, an inhomogeneous cylindrical cavity and a cubic cavity loaded with dielectric post, are presented to validate the utility and efficiency of the proposed method.
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Keywords:
84.40.-x
03.50.De
41.20.-q
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Received: 24 June 2011
Published: 30 October 2011
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PACS: |
84.40.-x
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(Radiowave and microwave (including millimeter wave) technology)
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03.50.De
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(Classical electromagnetism, Maxwell equations)
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41.20.-q
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(Applied classical electromagnetism)
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[1] Yee K S 1966 IEEE Trans. Antennas Propag. 14 302
[2] Li J, Guo L X and ZENG H 2009 Chin. Phys. Lett. 26 034101
[3] Zhu S L and Zhou W 2010 Chin. Phys. Lett. 27 067801
[4] Bi Z, Shen Y, Wu K and Litva J 1992 IEEE Trans. Microwave Theory Technol. 40 1611
[5] Pereda J A, Vielva L A, Vegas A and Prieto A 1992 IEEE Microwave Guided Wave Lett. 2 431
[6] Dey S and Mittra R 1998 IEEE Microwave Guided Wave Lett. 8 415
[7] Guo W H, Li W J and Huang Y Z 2001 IEEE Microwave Wireless Compon. Lett. 11 223
[8] Zhang Y J, Zheng W H, Xing M X, Ren G, Wang H L and Chen L H 2008 Opt. Commun. 281 2774
[9] Xiao S, Vahldieck R and Jin H 1992 IEEE Microwave Guided Wave Lett. 2 165
[10] Xu F and Wu K 2008 IEEE Trans. Antennas Propag. 56 501
[11] Lu Q Y, Guo W H, Bryne D C and Donegan J F 2009 Electron. Lett. 45 700
[12] Lu Q Y, Guo W H, Byrne D C and Donegan J F 2010 J. Lightwave Technol. 28 1638
[13] Xiao S and Vahldieck R 1993 IEEE Microwave Guided Wave Lett. 3 127
[14] Jung K Y, Ju S and Teixeira F L 2011 IEEE Microwave Wireless Compon. Lett. 21 179
[15] Zhao A P, Juntunen J and Raisanen A V 1997 IEEE MTT-S International Microwave Symposium Digest (Denver, CO, USA 08–13 June 1997) 1 83
[16] Zheng F H, Chen Z Z and Zhang J Z 2000 IEEE Transition Microwave Theory Technology 48 1550
[17] Lech R and Mazur J 2007 IEEE Transition Microwave Theory Technology 55 2115
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