Title :
Analysis of the annular-ring-loaded circular-disk microstrip antenna
Author :
Nie, Zaiping ; Chew, Weng Cho ; Lo, Yuew Tze
Author_Institution :
Dept of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fDate :
6/1/1990 12:00:00 AM
Abstract :
A rigorous analysis of the natural resonance frequencies and input impedance characteristics of an annular-ring-loaded (ARL) circular-disk microstrip antenna is presented. Using vector Hankel transforms, the problem is formulated in terms of vector dual-integral equations. Galerkin´s method is then used to solve the equations to obtain the resonance frequencies and the current distribution on the conductive patches arising from a probe excitation. Due to the singular nature of the current distribution, the singularity subtraction method has been used to accelerate the convergence of basis function expansions. Experiments for determining resonance frequencies and input impedance characteristics of an ARL circular-disk microstrip antenna with various substrate thicknesses have been made. The theoretical results are in good agreement with the experimental data even when the thickness of the substrate is 0.1 substrate wavelength. It is shown that this theory can be used to analyze some microstrip antennas with an electrically thick substrate, including the analysis of mutual coupling between conductive patches or between the path and the feed of a microstrip antenna
Keywords :
antenna theory; current distribution; electric impedance; integral equations; microstrip antennas; Galerkin´s method; annular-ring-loaded antenna; basis function expansions; circular-disk microstrip antenna; conductive patches; convergence; current distribution; electrically thick substrate; input impedance; mutual coupling; natural resonance frequencies; probe excitation; singularity subtraction method; vector Hankel transforms; vector dual-integral equations; Antenna feeds; Antenna theory; Current distribution; Equations; Impedance; Microstrip antennas; Moment methods; Resonance; Resonant frequency; Transforms;
Journal_Title :
Antennas and Propagation, IEEE Transactions on