DocumentCode
836279
Title
The null field approach to electromagnetic scattering from composite objects: the case of concavo-convex constituents
Author
Zheng, Wenxin ; StrÖm, Staffan
Author_Institution
Dept. of Electromagn. Theory, R. Inst. of Technol., Stockholm, Sweden
Volume
37
Issue
3
fYear
1989
fDate
3/1/1989 12:00:00 AM
Firstpage
373
Lastpage
383
Abstract
Time-harmonic electromagnetic scattering from a composite body consisting of a (dielectric or metallic) core plus one or several dielectric coatings was studied using the null-field approach. Previously developed null-field approaches to scattering from composite bodies do not apply when these coatings are of concavo-convex shapes. The authors examine this case and develop alternative null-field approaches to such geometries. While the scattering problem is usually solved by determination of the total transition matrix, referring to spherical waves, for the composite scatterer, the authors´ approaches lead to different algebraic expressions for the transition matrix. Two main alternatives are studied. One of these makes use of Q-matrices for open surfaces while the other is based on a limit procedure applied to a previously developed formalism for layered scatterers. The numerical accuracy of the results is less than that obtained for homogeneous scatterers of similar exterior shape and electrical size. The convergence of the numerical implementation of the equations is studied in terms of several indicators such as dependence on the truncation order, the accuracy with which general constraints such as symmetry and unitarity are fulfilled, and the influence of different choices of expansion functions obtained from a moment-method solution.<>
Keywords
electromagnetic wave scattering; Q-matrices; composite objects; concavo-convex constituents; electromagnetic scattering; expansion functions; moment-method; null field; total transition matrix; truncation order; Coatings; Computer aided software engineering; Convergence of numerical methods; Dielectrics; Electromagnetic scattering; Frequency; Geometry; Integral equations; Shape; Surface treatment;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/8.18734
Filename
18734
Link To Document