Title :
Identification of propagation regimes on integrated microstrip transmission lines
Author :
Bagby, Jonathan S. ; Lee, Ching-Her ; Nyquist, Dennis P. ; Yuan, Yi
Author_Institution :
Dept. of Electr. Eng., Florida Atlantic Univ., Boca Raton, FL, USA
fDate :
11/1/1993 12:00:00 AM
Abstract :
There has been a resurgence of interest in the propagation characteristics of open integrated microstrip transmission lines. This is due in part to the discovery of diverse propagation regimes for higher-order modes on open lines. In contrast to the dominant EH0 mode, three distinct propagation regimes exist for higher-order modes on microstrip transmission lines. In this paper, a rigorous spectral-domain integral equation formulation is used to analyze propagation in all three regimes. This formulation provides a clear physical picture of the different propagation regimes based on the mathematical location of poles and branch points in the complex spectral-variable plane. As an illustration, the formulation is applied to the case of an isolated uniform microstrip transmission line. The integral equation is discretized via the method of moments, and entire-domain basis functions incorporating suitable edge behavior are utilized to provide convergence with relatively few terms. The results obtained are compared to the results of other workers, and good agreement is observed
Keywords :
integral equations; microstrip lines; microwave integrated circuits; spectral-domain analysis; waveguide theory; edge behavior; entire-domain basis functions; isolated uniform microstrip transmission line; method of moments; open integrated microstrip transmission lines; propagation regimes; spectral-domain integral equation formulation; spectral-variable plane; waveguide theory; Attenuation; Integral equations; Microstrip; Moment methods; Power transmission lines; Propagation constant; Propagation losses; Surface waves; Transmission line theory; Transmission lines;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on