DocumentCode :
1229702
Title :
A uniform double diffraction coefficient for a pair of wedges in arbitrary configuration
Author :
Albani, Matteo
Author_Institution :
Matter Phys. & Adv. Phys. Technol. Dept., Univ. of Messina, Italy
Volume :
53
Issue :
2
fYear :
2005
Firstpage :
702
Lastpage :
710
Abstract :
An analytic closed-form solution is presented for the double diffraction at a pair of arbitrarily placed wedges that is suitable to be used in a uniform theory of diffraction (UTD) ray description framework. Here, the particular assumption, present in all the past literature, that the two diffracting edges are coplanar is removed. The doubly diffracted (DD) field at a pair of wedges is constructed via spectral synthesis. Such a procedure provides a double spectral integral representation of the DD field that is asymptotically evaluated by resorting to transition functions, typical in double diffraction problems, that can be expressed in terms of generalized Fresnel integrals. The final expression is arranged in the typical UTD fashion and contains a uniform double diffraction dyadic coefficient. The DD field behavior is analyzed in its transition regions to show how the DD field smoothly compensates for the total field discontinuities occurring at shadow boundaries where a singly diffracted field from a wedge is shadowed by the other wedge. Numerical examples are provided to verify such analysis and to test the accuracy of our UTD ray description against method of moments full wave results.
Keywords :
Fresnel diffraction; electromagnetic wave scattering; geometrical theory of diffraction; ray tracing; spectral analysis; UTD ray description; analytic closed-form solution; arbitrary configuration; asymptotic diffraction theory; double spectral integral representation; dyadic coefficient; electromagnetic edge diffraction; field discontinuities; generalized Fresnel integral; shadow boundaries; spectral synthesis; transition function; uniform double diffraction coefficient; uniform theory of diffraction; wedges pair; Closed-form solution; Electromagnetic coupling; Electromagnetic diffraction; Electromagnetic scattering; Fresnel reflection; Optical diffraction; Optical scattering; Physical theory of diffraction; Radar scattering; Testing;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2004.841289
Filename :
1391141
Link To Document :
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