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Electromagnetics

Design and Mode Matching Analysis of Stepped Substrate Integrated Waveguide and Filters

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References

  • A. Iqbal, J. J. Tiang, S. K. Wong, M. Alibakhshikenari, F. Falcone, and E. Limiti, “Miniaturization trends in substrate integrated waveguide (SIW) filters: A review,” IEEE. Access., Vol. 8, pp. 223287–223305, 2020.
  • M.-H. Weng, C.-Y. Tsai, D.-L. Chen, Y.-C. Chung, and R.-Y. Yang, “A bandpass filter using half mode SIW structure with step impedance resonator,” Electronics. (Basel), Vol. 10, no. 51, 2021.
  • X. Wang, X.-W. Zhu, Z. Jiang, Z.-C. Hao, Y.-W. Wu, and W. Hong, “Analysis of eighth-mode substrate-integrated waveguide cavity and flexible filter design,” IEEE Trans. Microwave Theory Tech., Vol. 67, no. 7, pp. 2701–2712, July 2019.
  • X.-L. Huang, L. Zhou, Y. Huang, L.-F. Qiu, and J.-F. Mau, ““Quintuple-mode wideband packaged filter based on a modified quarter-mode substrate integrated waveguide cavity” IEEE transactions on components,” Packaging and Manufacturing Technology, Vol. 9, no. 11, pp. 2237–2247, 2019.
  • M. Bozzi, L. Perregrini, K. Wu, and P. Arcioni, “Current and future trends in substrate integrated waveguide technology,” Radioengineering, Vol. 18, no. 2, pp. 201–209, June 2009.
  • A. Khan, and M. K. Mandal, “Narrowband substrate integrated waveguide bandpass filter with high selectivity,” IEEE Microwave Wireless Component Letters, Vol. 28, no. 5, pp. 416–418, 2018.
  • J. Li, Y. Huang, H. Wang, P. Wang, and G. Wen, “38 GHz SIW filter based on the stepped-impedance face-to-face E-shaped DGSs for 5G application.,” Microwave Optical Technology Letters, Vol. 61, no. 6, pp. 1500–1504, 2019.
  • A. R. Azad, D. K. Jhariya, and A. Mohan, “Substrate-integrated waveguide cross-coupled filters with mixed electric and magnetic coupling structure,” International of Journal Microwave and Wireless Technologies, Vol. 10, no. 8, pp. 896–903, 2018.
  • Y. Cassivi, L. Perregrini, P. Arcioni, M. Bressan, K. Wu, and G. Conciauro, “Dispersion characteristics of substrate integrated rectangular waveguide,” IEEE Microwave. Wireless Compon. Letter, Vol. 12, no. 9, pp. 333–335, Sep. 2002.
  • X. Chen, W. Hong, T. Cui, J. Chen, and K. Wu, “Substrate integrated waveguide (SIW) linear phase filter,” IEEE Microwave. Wireless Compon. Lett, Vol. 15, no. 11, pp. 787–789, Nov. 2005.
  • D. Deslandes, and K. Wu, “Integrated microstrip and rectangular waveguide in planar form,” IEEE Microw. Wireless Compon. Lett, Vol. 11, no. 2, pp. 68–70, Feb. 2001.
  • M. Bozzi, A. Georgiadis, and K. Wu, “Review of substrate integrated waveguide circuits and antennas,” IET Microwave and Antenna Propagation ,Special Issue on RF/Microwave Communication Subsystems for Emerging Wireless Technologies, Vol. 5, pp. 909–920, 2011.
  • S. Kumar, and A. De, “Design and analysis of sinusoidally modulated substrate integrated waveguide and filters,” International Journal of RF and Microwave Computer Added Engineering, Vol. 32, no. 1/ e 22912, pp. 1–8, January 2022.
  • D. Deslandes, and K. Wu, “Accurate modeling, wave mechanisms, and design considerations of a substrate integrated waveguide,” IEEE Trans. Microwave Theory Tech., Vol. 54, no. 6, pp. 2516–2526, 2006.
  • F. Grine, T. Djerafi, M. T. Benhabiles, K. Wu, and M. L. Riabi, “High-Q substrate integrated waveguide resonator filter With dielectric loading,” IEEE Access, Vol. 5, pp. 12526–12532, 2017.
  • R. Garg, I. Bahl, and M. Bozzi, Microstrip lines and slotline, 3rd ed.. London: Artech House, p. 506, 2013.
  • Z. Kordiboroujeni, and J. Bornemann, “Designing the width of substrate integrated waveguide structures,” IEEE Microwave Compon. Lett., Vol. 23, no. 10, pp. 518–520, October 2013.
  • Z. Kordiboroujeni, and J. Bornemann, “Mode-matching analysis and design of substrate integrated waveguide T-junction diplexer and corner filter,” International Journal of Numerical Modelling: Electronic Networks, Devices and Fields Int. J. Numer. Model, Vol. 28, pp. 497–507, 2015.
  • J. Bornemann, and R. Vahldieck, “Characterization of a class of waveguide discontinuities using A modified TExmn mode approach,” IEEE Transactions On Microwave Theory Techniques, Vol. 38, no. 12, pp. 1816–1822, Dlclmuek 1990.
  • C. A. Balanis, Advanced engineering electromagnetics. Hoboken: John Wiley and Sons, 2008, pp. 26–28.
  • A. Vladimir Labay, and J. Bornemann, “Generalized modal scattering matrix Of discontinuity-distorted waveguide multiport junctions,” International Journal of Numerical Modelling: Electronic Networks, Devices and Fields, Vol. 10, pp. 153–167, 1997.

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