TRANSMISSION AND REFLECTION CHARACTERISTICS OF A CLASS OF MODIFIED COPLANAR WAVEGUIDE STRUCTURES

Authors

  • Abdelnasser A. Eldek Department of Electrical Engineering The University of Mississippi University, MS 38677
  • Atef Z. Elsherbeni Department of Electrical Engineering The University of Mississippi University, MS 38677
  • Charles E. Smith Department of Electrical Engineering The University of Mississippi University, MS 38677

Keywords:

TRANSMISSION AND REFLECTION CHARACTERISTICS OF A CLASS OF MODIFIED COPLANAR WAVEGUIDE STRUCTURES

Abstract

In this paper, several geometries of a class of grounded coplanar waveguide (GCPW) are investigated using the finite difference time domain (FDTD) method, and their losses are computed. A uniform grounded coplanar waveguide (GCPW) structure is used as a reference case for the other non-uniform geometries. First, this reference case is studied. For this case, four geometries are proposed to study the transmission and loss effect of replacing parts of the dielectric substrate with free space. Afterwards, two new geometries are simulated to study the effect of introducing a neck and a gap in the microstrip feeding line, with and without a bridge that connects the two parts of the microstrip feeding line separated with the gap. The effect of adding a PEC cap above the microstrip feeding line, and connecting the two side ground planes, is also studied. The conductor attenuation is studied for the basic GCPW geometry. The power losses are also calculated for the uniform geometries. The line impedance is calculated for all geometries at several points.

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References

C. P. Wen, “Coplanar waveguide: a surface strip

trans-mission line suitable for nonreciprocal

gyromagnetic device applications,” IEEE Trans.

Microwave Theory Tech., vol. MTT-17, pp. 1087-

, Dec. 1969.

N. I. Dib, W. P. Harokopus Jr., G. E. Ponchak, and

L. P. B. Katheti, “A comparative study between

shielded and open coplanar waveguide

discontinuities,” International Journal of

Microwave and Millimeter-Wave Computer-Aided

Engineering, vol. 2, no. 4, pp. 331-341, 1992.

(GHz)

N. K. Das and D. M. Pozar, “Multiport scattering

analysis of multilayered printed antennas fed by

multiple feed ports, part I: theory; part II:

applications,” IEEE Trans. Antennas Progagat.

vol-AP 40, pp. 469-491, May 1992.

H. Shigeswa, M. Tsuji and A. A. Oliner, “Dominant

mode power leakage from printed-circuit

waveguide,” Radio Sci., vol. 26, pp. 559-564,

Mar./Apr. 1991.

Z. Ma and E. Yamashita, “Comparative studies of

discontinuities in single and double layered

conductor-backed coplanar waveguides,” IEEE

MTT-S Int. Microwave Symp. Dig., vol. 3 pp. 1803-

, 1996.

Y. Liu and T. Itoh, “Control of leakage in

multilayered conductor-backed coplanar

structures,” IEEE MTT-S Int. Microwave Symp.

Dig., pp. 141-144, 1994.

(GHz)

A. Z. Elsherbeni, “The finite difference time domain

for electromagnetic applications,” class notes,

Electrical Engineering Department, The University

of Mississippi, Jan. 2002.

Z. P. Liao, H. L. Wong, B. –P. Yang, and Y. –F.

Yuan, “A transmitting boundary for transient wave

analysis,” Scientia Sinica, Series A, vol. 27, pp.

-1076, 1984.

D. M. Pozar, Microwave Engineering. New York,

NY: John Wiley, 1998

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Published

2022-07-09

How to Cite

[1]
A. A. . Eldek, A. Z. . Elsherbeni, and C. E. . Smith, “TRANSMISSION AND REFLECTION CHARACTERISTICS OF A CLASS OF MODIFIED COPLANAR WAVEGUIDE STRUCTURES”, ACES Journal, vol. 17, no. 2, pp. 158–165, Jul. 2022.

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General Submission