DocumentCode :
343588
Title :
Physical realization of magnetic walls using finite-thickness 3D printed arrays
Author :
Contopanagos, H. ; Kyriazidou, C. ; Merrill, W. ; Alexopoulos, Nicolaos G.
Author_Institution :
Dept. of Electr. & Comput. Eng., California Univ., Irvine, CA, USA
Volume :
3
fYear :
1999
fDate :
11-16 July 1999
Firstpage :
1916
Abstract :
Perfect magnetic conductors (PMC) have been useful in electromagnetics for many years as subsidiary hypothetical surfaces in conjunction with formal dualities between dielectric and magnetic currents and vector potentials. This in turn helped formulating equivalence theorems and solving many scattering problems involving either a single scatterer in a solvable background (aperture in waveguiding structures) or many scatterers in highly symmetrical distributions. Physically, however, natural material, used in microwave engineering had been macroscopically classified as (low-loss) dielectrics and (im)perfect electric conductors. The natural dispersive characteristics of these materials are rarely considered in microwave engineering, because they occur at far greater frequencies. We show that artificial metalo-dielectric crystals, composed of printed elements in a 3D array do exhibit magnetic conductor behavior, provided the size of the elements is a good fraction of the wavelength. In essence, we can think of the printed elements as artificial atoms seated up to microwave frequencies. The resulting medium is analogous to a natural metal at plasma frequencies (ultraviolet regime) where the latter also behaves like a magnetic conductor.
Keywords :
dielectric materials; dispersive media; electromagnetic wave reflection; electromagnetic wave scattering; magnetic materials; microwave materials; photonic band gap; aperture; artificial metalo-dielectric crystals; dielectric current; dispersive characteristics; electromagnetics; equivalence theorems; finite-thickness 3D printed arrays; imperfect electric conductors; low-loss dielectrics; magnetic current; magnetic walls; microwave engineering; microwave frequencies; perfect magnetic conductors; photonic band gap materials; plane wave incidence; plasma frequencies; printed elements; reflection coefficient; scattering problems; symmetrical distributions; ultraviolet regime; vector potentials; waveguiding structures; wavelength; Apertures; Conducting materials; Conductors; Crystalline materials; Crystals; Dielectric materials; Dispersion; Electromagnetic scattering; Frequency; Magnetic materials;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Antennas and Propagation Society International Symposium, 1999. IEEE
Conference_Location :
Orlando, FL, USA
Print_ISBN :
0-7803-5639-x
Type :
conf
DOI :
10.1109/APS.1999.788332
Filename :
788332
Link To Document :
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