Uniaxial Dielectric Waveguide Filter Design Accounting for Losses Using Mode Matching Technique

Authors

  • Luke Murphy Department of Electrical Engineering and Computer Science Syracuse University, Syracuse, NY 13244, USA
  • Joseph Mautz Department of Electrical Engineering and Computer Science Syracuse University, Syracuse, NY 13244, USA
  • Mohsen Yazdani Department of Electrical Engineering and Computer Science Syracuse University, Syracuse, NY 13244, USA
  • Ercument Arvas Department of Electrical Engineering and Computer Science Syracuse University, Syracuse, NY 13244, USA
  • Samir Tozin Deptartment of Electrical Engineering Ajman University of Science and Technology, Ajman, UAE

Keywords:

Band-Pass Filter (BPF), Computer-Aided Design (CAD), dielectric waveguide filters, microwave filters, ModeMatching Technique (MMT) and uniaxial media

Abstract

Dielectric filters can provide compact solutions for filter design problems. However, most dielectrics exhibit uniaxial properties, as well as, losses that will undoubtedly affect performance if not accounted for. This paper derives dispersion relations for lossy uniaxial media in dielectric waveguides and also accounts for lossy conducting walls. The waveguide discontinuity problem in the presence of lossy uniaxial media and finite conductivity waveguide walls, is calculated by mode matching technique and the results are applied to a Ka band filter. The design specifications for the proposed filter are a 32.5 GHz center frequency with 6%. Good agreement between simulated and measured results are shown.

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References

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Published

2021-09-03

How to Cite

[1]
L. . Murphy, J. . Mautz, M. . Yazdani, E. . Arvas, and S. . Tozin, “Uniaxial Dielectric Waveguide Filter Design Accounting for Losses Using Mode Matching Technique”, ACES Journal, vol. 29, no. 07, pp. 515–520, Sep. 2021.

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General Submission