Title :
Impedance matrix of an antenna array in a quasi-optical resonator
Author :
Heron, Patrick L. ; Monahan, Gregory P. ; Mink, J.W. ; Schwering, Felix K. ; Steer, Michael B.
Author_Institution :
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
fDate :
10/1/1993 12:00:00 AM
Abstract :
The power from numerous millimeter-wave solid-state sources can be efficiently combined using quasi-optical techniques. One technique is to place an array of active radiating sources within a quasi-optical resonator. The driving point impedance of each antenna is strongly affected by the presence of all other active antennas as well as by the mode structure and Q of the resonator. The impedance matrix for an array of antennas radiating into a plano-concave open resonator is determined here through use of the Lorentz integral. The resulting expressions include the effect of diffraction loss and are valid for arbitrary reflector spacing, source frequency, array location and geometry. The result can be used for impedance matching of each active source to its antenna, facilitating design of an efficient power combining system. Simulations using the impedance matrix in conjunction with an antenna impedance model are compared with two-port measurements
Keywords :
active antennas; antenna theory; cavity resonators; electric impedance; electromagnetic wave diffraction; impedance matching; integral equations; microwave antenna arrays; optical resonators; Lorentz integral; MM-wave sources; Q-factor; active antennas; active radiating sources; antenna array; antenna impedance model; array geometry; array location; diffraction loss; driving point impedance; impedance matching; impedance matrix; millimeter-wave solid-state sources; mode structure; plano-concave open resonator; power combining system; quasi-optical resonator; reflector spacing; source frequency; Antenna arrays; Antenna measurements; Diffraction; Frequency; Geometry; Impedance matching; Impedance measurement; Millimeter wave technology; Power system modeling; Solid state circuits;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on