Performance evaluation of substrate intergrated waveguide band-stop filters
This thesis presents the findings of the research work done on the evaluation and performance of substrate integrated waveguide (SIW) band-stop filters. The conventional waveguide has the advantages of low-insertion losses and high Q in microwave communication systems but their physical sizes of rec...
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T Technology (General) T Technology (General) Tan, Gan Siang Performance evaluation of substrate intergrated waveguide band-stop filters |
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This thesis presents the findings of the research work done on the evaluation and performance of substrate integrated waveguide (SIW) band-stop filters. The conventional waveguide has the advantages of low-insertion losses and high Q in microwave communication systems but their physical sizes of rectangular waveguides are large. The introduction of substrate integrated waveguide with similar properties of low insertion loss that can be integrated with planar circuits fulfill the requirement of microwave communication systems. Many researches have carried out detail research work on SIW band-pass filters but not many researches have spent enough time on the research of performance of SIW band-stop filters. In the construction of SIW band-stop filters, resonators feature significantly to realize the structure. Resonators can be constructed from
closed sections of SIW. Circular and radial shape cavity resonators are proposed to design the SIW band-stop filters. The SIW band-stop filters are designed by coupling the cavity resonator to the SIW line. The effects on the variation of parameters value of each type of resonators are investigated. CST microwave studio is used for all the simulation work in this research. The designs of the SIW band-stop filters have been realized by using standard PCB process. The measured results are found to be in consistent to the simulated results. The dual-radial cavity resonators SIW band-stop filter has shown enhanced performance in 9GHz band-stop response with a high stopband attenuation level and provide better roll-off of 0.15dB/MHz. These provide better frequency selectivity as compared to the rectangular cavity resonator in the previous research work. This band-stop filter can be used to provide better signal rejection in the X-band. |
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Thesis |
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Master of Philosophy (M.Phil.) |
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Master's degree |
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Tan, Gan Siang |
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Tan, Gan Siang |
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Tan, Gan Siang |
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Performance evaluation of substrate intergrated waveguide band-stop filters |
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Performance evaluation of substrate intergrated waveguide band-stop filters |
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Performance evaluation of substrate intergrated waveguide band-stop filters |
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Performance evaluation of substrate intergrated waveguide band-stop filters |
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Performance evaluation of substrate intergrated waveguide band-stop filters |
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performance evaluation of substrate intergrated waveguide band-stop filters |
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Universiti Teknikal Malaysia Melaka |
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Faculty Of Electronics And Computer Engineering |
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2015 |
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http://eprints.utem.edu.my/id/eprint/16830/1/Performance%20Evaluation%20Of%20Substrate%20Intergrated%20Waveguide%20Band-Stop%20Filters.pdf http://eprints.utem.edu.my/id/eprint/16830/2/Performance%20evaluation%20of%20substrate%20intergrated%20waveguide%20band-stop%20filters.pdf |
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my-utem-ep.168302022-06-13T15:42:42Z Performance evaluation of substrate intergrated waveguide band-stop filters 2015 Tan, Gan Siang T Technology (General) TK Electrical engineering. Electronics Nuclear engineering This thesis presents the findings of the research work done on the evaluation and performance of substrate integrated waveguide (SIW) band-stop filters. The conventional waveguide has the advantages of low-insertion losses and high Q in microwave communication systems but their physical sizes of rectangular waveguides are large. The introduction of substrate integrated waveguide with similar properties of low insertion loss that can be integrated with planar circuits fulfill the requirement of microwave communication systems. Many researches have carried out detail research work on SIW band-pass filters but not many researches have spent enough time on the research of performance of SIW band-stop filters. In the construction of SIW band-stop filters, resonators feature significantly to realize the structure. Resonators can be constructed from closed sections of SIW. Circular and radial shape cavity resonators are proposed to design the SIW band-stop filters. The SIW band-stop filters are designed by coupling the cavity resonator to the SIW line. The effects on the variation of parameters value of each type of resonators are investigated. CST microwave studio is used for all the simulation work in this research. The designs of the SIW band-stop filters have been realized by using standard PCB process. The measured results are found to be in consistent to the simulated results. The dual-radial cavity resonators SIW band-stop filter has shown enhanced performance in 9GHz band-stop response with a high stopband attenuation level and provide better roll-off of 0.15dB/MHz. These provide better frequency selectivity as compared to the rectangular cavity resonator in the previous research work. This band-stop filter can be used to provide better signal rejection in the X-band. 2015 Thesis http://eprints.utem.edu.my/id/eprint/16830/ http://eprints.utem.edu.my/id/eprint/16830/1/Performance%20Evaluation%20Of%20Substrate%20Intergrated%20Waveguide%20Band-Stop%20Filters.pdf text en public http://eprints.utem.edu.my/id/eprint/16830/2/Performance%20evaluation%20of%20substrate%20intergrated%20waveguide%20band-stop%20filters.pdf text en validuser https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=96177 mphil masters Universiti Teknikal Malaysia Melaka Faculty Of Electronics And Computer Engineering Husain, Mohd Nor 1. Ahmad, B. H., & Hunter, I. C., 2008. Design and Fabrication of a Substrate Integrated Waveguide Bandstop Filter. In: IEEE, Proceedings of the 38th European Microwave Conference. Amsterdam, Netherlands, 27-31 October 2008. 2. Ahmad, B. H., & Hunter, I. C., 2010. Substrate Integrated Waveguide Bandstop Filter. 3. Journal of Telecommunication, Electronics and Computer Engineering, 2(1), pp. 9-12. 4. Ahmad, B. H., Husain, M. N., & Tan, K. S., 2010. A Novel Hybrid Notch (HN) Substrate Integrated Waveguide (SIW) Bandstop Filter. Journal of Telecommunication, Electronic and Computer Engineering (JTEC), UTeM, 2(2), pp. 13-17. 5. Atia, A. E., & Williams, A. E., 1972. Narrow-bandpass Waveguide Filters. IEEE Transactions on Microwave Theory and Techniques, 20(4), pp. 258-265. 6. Bo, W., Xu, Z., Hao, L., Meijuan, X., & Liao, J., 2013. Substrate Integrated Waveguide Cross-coupling Filter with Multilayer Hexagonal Cavity. In: IEEE, International Workshop on Microwave and Millimeter Wave Circuits and System Technology (MMWCST). Chengdu, China, 24-25 October 2013. 7. Bolljahn, J. T., & Matthaei, G. L., 1962. A Study of the Phase and Filter Properties of Arrays of Parallel Conductors between Ground Planes. Proceedings of the IRE, 50(3), pp. 299-311. 8. Bozzi, M., Perregrini, L., & Wu, K., 2006. Direct Determination of Multi-mode Equivalent Circuit Models for Discontinuities in Substrate Integrated Waveguide Technology. In: IEEE, 2006 MTT-S International Microwave Symposium Digest. San Francisco, United States, 11-16 June 2006. 9. Bozzi, M., Perregrini, L., & Wu, K., 2008. Modeling of Conductor, Dielectric, and Radiation Losses in Substrate Integrated Waveguide by the Boundary Integral-resonant Mode Expansion Method. IEEE Transactions on Microwave Theory and Techniques, 56(12), pp. 3153-3161. 10. Bozzi, M., Perregrini, L., Wu, K., & Arcioni, P., 2009. Current and Future Research Trends in Substrate Integrated Waveguide Technology. Radioengineering, 18(2), pp. 201- 209. 11. Cameron, R. J., Kudsia, C. M., & Mansour, R. R., 2007. Microwave Filters for Communication Systems: Fundamentals, Design, and Applications. New Jersey: Wiley & Sons. 12. Cameron, R. J., Yu, M., & Wang, Y., 2005. Direct-coupled Microwave Filters with Single and Dual Stopbands. IEEE Transactions on Microwave Theory and Techniques, 53(11), pp. 3288-3297. 13. Cassivi, Y., Perregrini, L., Arcioni, P., Bressan, M., Wu, K., & Conciauro, G., 2002. Dispersion Characteristics of Substrate Integrated Rectangular Waveguide. Microwave and Wireless Components Letters, IEEE, 12(9), pp. 333-335. 14. Chen, L. N., Jiao, Y. C., Zhang, Z., & Zhang, F. S., 2012. Miniaturized Substrate Integrated Waveguide Dual-mode Filters Loaded by a Series of Cross-slot Structures. Progress in Electromagnetics Research C, 29, pp. 29-39. 15. Cheng, X., Senior, D. E., Jao, P., Kim, J., Whalen, J. J., & Yoon, Y. K., 2010. Non-Bragg Resonance in Substrate Integrated Waveguide. In: IEEE, 2010 Antennas and Propagation Society International Symposium (APSURSI), 2010. Toronto, Ontario, Canada, 11-17 July 2010. 16. Cheng, X., Kim, J., Kim, C., Jao, P., Senior, D. E., & Yoon, Y. K., 2011. Corrugated Substrate Integrated Waveguide with Dual Band Non-Bragg Resonance. In: IEEE, 2011 International Microwave Symposium Digest (MTT), 2011. Baltimore, MD, 5-10 June 2011. 17. Cohn, S. B., 1968. Microwave Bandpass Filters Containing High-Q Dielectric Resonators. 18. IEEE Transactions on Microwave Theory and Techniques, 16(4), pp. 218-227. 19. Cristal, E. G., & Frankel, S., 1972. Hairpin-line and Hybrid Hairpin-line/Half-wave parallel-coupled-line Filters. IEEE Transactions on Microwave Theory and Techniques, 20(11), pp. 719-728. 20. Deng, K., Guo, Z., Che, W., & Xue, Q., 2011. A Compact Bandpass Filter Using Quarter SIW Cavity Resonator with Source-load Cross Coupling. In: IEEE, Proceedings of the 41st European Microwave Conference (EuMC). Manchester, UK, 10-13 October 2011. 21. Deslandes, D., & Wu, K., 2001. Integrated Microstrip and Rectangular Waveguide in Planar Form. Microwave and Wireless Components Letters, IEEE, 11(2), pp. 68-70. 22. Deslandes, D., & Wu, K., 2003. Single-substrate Integration Technique of Planar Circuits and Waveguide Filters. IEEE Transactions on Microwave Theory and Techniques, 51(2), pp. 593-596. 23. Deslandes, D., & Wu, K., 2005. Analysis and Design of Current Probe Transition from Grounded Coplanar to Substrate Integrated Rectangular Waveguides. IEEE Transactions on Microwave Theory and Techniques, 53(8), pp. 2487-2494. 24. Dong, Y. D., Yang, T., & Itoh, T., 2009. Substrate Integrated Waveguide Loaded by Complementary Split-ring Resonators and its Applications to Miniaturized Waveguide Filters. IEEE Transactions on Microwave Theory and Techniques, 57(9), pp. 2211-2223. 25. Fei, Y., Hong-xi, Y., Shu-feng, S., Xin-yang, H., & Rui-zhu, L., 2013. Substrate Integrated Waveguide Transmitter Design. In: IEEE, 2013 Asia-Pacific Microwave Conference Proceedings (APMC), 2013. Coex, Seoul, Korea, 5-8 November 2013. 26. Flanick, B. A., Leahy, K. A., Piloto, A. J., & Zaki, K. A., Westinghouse Electric Corporation., 1995. Waveguide Filters Having a Layered Dielectric Structure. United States. Pat. 5,382,931. 27. Grigoropoulos, N., Sanz-Izquierdo, B., & Young, P. R., 2005. Substrate Integrated Folded Waveguides (SIFW) and Filters. IEEE microwave and wireless components letters, 15(12), pp. 829-831. 28. Han, S., Wang, X. L., & Fan, Y., 2007. Analysis and Design of Multiple-band Bandstop Filters. Progress in Electromagnetics Research, 70, pp. 297-306. 29. Hong, J. S., & Li, S., 2004. Theory and Experiment of Dual-mode Microstrip Triangular Patch Resonators and Filters. IEEE Transactions on Microwave Theory and Techniques, 52(4), pp. 1237-1243. 30. Hong, J. S. G., & Lancaster, M. J., 2004. Microstrip Filters for RF/Microwave Applications (Vol. 167), New Jersey: John Wiley & Sons. 31. Hong, J. S., 2011. Microstrip Filters for RF/Microwave Applications, 2nd ed., New Jersey: John Wiley & Sons. 32. Hong, W., Liu, B., Wang, Y., Lai, Q., Tang, H., Yin, X. X., Dong, Y. D., Zhang, Y. & Wu, K., 2006. Half Mode Substrate Integrated Waveguide: A New Guided Wave Structure for Microwave and Millimeter Wave Application. In: IEEE, Joint 31st International Conference on Infrared Millimeter Waves and 14th International Conference on Terahertz Electronics (IRMMW-THz 2006). Shanghai, China. 18-22 September 2006. 33. Horn III, A. F., LaFrance, P. A., Reynolds, J. W., & Coonrod, J., 2012. The Influence of Test Method, Conductor Profile and Substrate Anisotropy on the Permittivity Values Required for Accurate Modeling of High Frequency Planar Circuits. Circuit World, 38(4), pp. 219-231. 34. Hunter, I. C., & Rhodes, J. D., 1982. Electronically Tunable Microwave Bandpass Filters. 35. IEEE Transactions on Microwave Theory and Techniques, 30(9), pp. 1354-1360. 36. Hunter, I.C., 2001. Theory and Design of Microwave Filter, London: Institution of Electrical Engineers. 37. Hunter, I. C., Billonet, L., Jarry, B., & Guillon, P., 2002. Microwave Filters - Applications and Technology. IEEE Transactions on Microwave Theory and Techniques, 50(3), pp. 794-805. 38. Jin, C., Chen, J. X., Chu, H., & Bao, Z. H., 2014. X-band Differential Bandpass Filter with High Common-mode Suppression using Substrate Integrated Waveguide Cavity. Electronics letters, 50(2), pp. 88-89. 39. Jones, G. M. L. Y. E., & Young, L., 1980. Microwave Filters, Impedance Matching Networks and Coupling Structures, Boston: Artech House. 40. Lee, J. S., & Pottier, E., 2009. Polarimetric Radar Imaging: From Basics to Applications, Florida: CRC press. 41. Levy, R., & Cohn, S. B., 1984. A History of Microwave Filter Research, Design, and Development. IEEE Transactions on Microwave Theory and Techniques, 32(9), pp. 1055- 1067. 42. Levy, R., Snyder, R. V., & Matthaei, G., 2002. Design of Microwave Filters. IEEE Transactions on Microwave Theory and Techniques, 50(3), pp. 783-793. 43. Pozar, D. M., 2005. Microwave engineering, 3rd ed., Danvers, MA: Wiley. 44. Rhodes, J. D., 1976. Theory of electrical filters (Vol. 976), New York: Wiley. 45. Salehi, M., Bornemann, J., & Mehrshahi, E., 2013. Pseudo-elliptic Substrate Integrated Waveguide Filters with Higher-order Mode Resonances. In: IEEE, 2013 Asia-Pacific Microwave Conference Proceedings (APMC), 2013. Coex, Seoul, Korea, 5-8 November 2013. 46. Uchimura, H., Takenoshita, T., & Fujii, M., 1998. Development of a “Laminated Waveguide”. IEEE Transactions on Microwave Theory and Techniques, 46(12), pp. 2438- 2443. 47. Wenzel, R. J., 1971. Synthesis of Combline and Capacitively loaded Interdigital Bandpass Filters of Arbitrary Bandwidth. IEEE Transactions on Microwave Theory and Techniques, 19(8), pp. 678-686. 48. Wolff, I., 1972. Microstrip Bandpass Filter using Degenerate Modes of a Microstrip Ring Resonator. Electronics Letters, 8(12), pp. 302-303. 49. Wu, K., Deslandes, D., & Cassivi, Y., 2003. The Substrate Integrated Circuits - A New Concept for High-frequency Electronics and Optoelectronics. In: IEEE, 6th International Conference on Telecommunications in Modern Satellite, Cable and Broadcasting Service (TELSIKS), 2003. Serbia and Montenegro, Niš, 1-3 October 2003. 50. Wu, K., 2006. Towards System-on-substrate Approach for Future Millimeter-wave and Photonic Wireless Applications. In: IEEE, 2006 Asia-Pacific Microwave Conference Proceedings. Yokohama, Japan, 12-15 December 2006. 51. Wu, K., 2007. On the Losses in Substrate Integrated Waveguides. In: IEEE, Proceedings of 37th European Microwave Conference. Munich, Germany, 9-12 October 2007. 52. Wu, X. H., & Kishk, A. A., 2008. Hybrid of Method of Moments and Cylindrical Eigenfunction Expansion to Study Substrate Integrated Waveguide Circuits. IEEE Transactions on Microwave Theory and Techniques, 56(10), pp. 2270-2276. 53. Xu, F., & Wu, K., 2005. Guided-wave and Leakage Characteristics of Substrate Integrated Waveguide. IEEE Transactions on Microwave Theory and Techniques, 53(1), pp. 66-73. 54. Yang, F., Yu, H. X., He, X. Y., Zhou, Y., & Liu, R. Z., 2012. Novel Multi-band Filter Design and Substrate Integrated Waveguide Filter Realization. In: IEEE, 2012 International Microwave Symposium Digest (MTT). Montréal, Québec, Canada, 17-22 June 2012. 55. Zakaria, Z., & Hunter, I., 2011. Substrate Integrated Waveguide Filters Based on Even- And Odd-Mode Predistortion Technique. Journal of Telecommunication, Electronic and Computer Engineering (JTEC), UTeM, 3(2), pp. 61-71. 56. Zhai, G. H., Hong, W., Wu, K., Chen, J. X., Chen, P., Wei, J., & Tang, H. J., 2008. Folded Half Mode Substrate Integrated Waveguide 3 dB Coupler. Microwave and Wireless Components Letters, IEEE, 18(8), pp. 512-514. 57. Zhang, S., Bian, T. J., Zhai, Y., & Ren, Z. H., 2011. November). Novel Fractal-shaped Bandpass Filter using Quarter Substrate Integrated Waveguide Resonator (QSIWR). In: IEEE, 4th International Symposium on Microwave, Antenna, Propagation, and EMC Technologies for Wireless Communications (MAPE). 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