Title :
Application of a microgenetic algorithm (MGA) to the design of broadband microwave absorbers using multiple frequency selective surface screens buried in dielectrics
Author :
Chakravarty, Sourav ; Mittra, Raj ; Williams, Neil Rhodes
Author_Institution :
Pennsylvania State Univ., University Park, PA, USA
fDate :
3/1/2002 12:00:00 AM
Abstract :
Over the years, frequency selective surfaces (FSSs) have found frequent use as radomes and spatial filters in both commercial and military applications. In the literature, the problem of synthesizing broadband microwave absorbers using multilayered dielectrics through the application of genetic algorithms (GAs) have been dealt with successfully. Spatial filters employing multiple, freestanding, FSS screens have been successfully designed by utilizing a domain-decomposed GA. We present a procedure for synthesizing broadband microwave absorbers by using multiple FSS screens buried in a dielectric composite. A binary coded microgenetic algorithm (MGA) is applied to optimize various parameters, viz., the thickness and relative permittivity of each dielectric layer; the FSS screen designs and materials; their x- and y-periodicities; and their placement within the dielectric composite. The result is a multilayer composite that provides maximum absorption of both transverse electric (TE) and transverse magnetic (TM) waves simultaneously for a prescribed range of frequencies and incident angles. This technique automatically places an upper bound on the total thickness of the composite. While a single FSS screen is analyzed using the electric field integral equation (EFIE), multiple FSS screens are analyzed using the scattering matrix technique
Keywords :
dielectric materials; electric field integral equations; electromagnetic wave absorption; electromagnetic wave scattering; frequency selective surfaces; genetic algorithms; microwave materials; permittivity; radomes; EFIE; EM wave scattering; FSS screens; MoM; TE waves; TM waves; binary coded microgenetic algorithm; broadband microwave absorbers design; commercial applications; dielectric composite; dielectric layer; domain-decomposed GA; electric field integral equation; incident angles; method of moments; military applications; multilayer composite; multiple frequency selective surface screens; parameters optimization; radomes; relative permittivity; scattering matrix; spatial filters; thickness; transverse electric waves; transverse magnetic waves; upper bound; x-periodicity; y-periodicity; Algorithm design and analysis; Composite materials; Design optimization; Dielectric materials; Frequency selective surfaces; Genetic algorithms; Magnetic analysis; Magnetic materials; Permittivity; Spatial filters;
Journal_Title :
Antennas and Propagation, IEEE Transactions on