Title :
Theory and Applications of Infinitesimal Dipole Models for Computational Electromagnetics
Author :
Mikki, Said M. ; Kishk, Ahmed A.
Author_Institution :
Dept. of Electr. Eng., Univ. of Mississippi, University, MS
fDate :
5/1/2007 12:00:00 AM
Abstract :
The recently introduced quantum particle swarm optimization (QPSO) algorithm is employed to find infinitesimal dipole models (IDM) for antennas with known near-fields (measured or computed). The IDM can predict accurately both the near-fields and the far-fields of the antenna. A theory is developed to explain the mechanism behind the IDM using the multipole expansion method. The IDM obtained from single frequency solutions is extrapolated over a frequency range around the design frequency. The method is demonstrated by analyzing conducting- and dielectric-type antennas. A calibration procedure is proposed to systematically implement infinitesimal dipoles within existing method of moment (MoM) codes. The interaction of the IDM with passive and active objects is studied through several examples. The IDM proved to predict the interaction efficiently. A closed-form expression for the mutual admittance between similar or dissimilar antennas, with arbitrary orientations and/or locations, is derived using the reaction theorem
Keywords :
computational electromagnetics; dipole antennas; extrapolation; method of moments; particle swarm optimisation; IDM; MoM; QPSO algorithm; calibration procedure; closed-form expression; computational electromagnetics; dielectric-type antenna; extrapolation; infinitesimal dipole model; method of moment; multipole expansion method; mutual admittance; quantum particle swarm optimization; reaction theorem; Antenna measurements; Computational electromagnetics; Computational modeling; Dipole antennas; Electromagnetic measurements; Electromagnetic modeling; Frequency; Particle measurements; Particle swarm optimization; Quantum computing; Infinitesimal dipole model; multipole expansion; mutual coupling;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2007.895625