DocumentCode
1501933
Title
Time-domain version of the physical theory of diffraction
Author
Johansen, Peter M.
Author_Institution
Dept. of Electromagn. Syst., Tech. Univ. Denmark, Lyngby, Denmark
Volume
47
Issue
2
fYear
1999
fDate
2/1/1999 12:00:00 AM
Firstpage
261
Lastpage
270
Abstract
A time-domain version of the equivalent edge current (EEC) formulation of the physical theory of diffraction is derived. The time-domain EECs (TD-EECs) apply to the far-field analysis of diffraction by edges of perfectly conducting three dimensional (3-D) structures with planar faces illuminated by a time-domain plane wave. By adding the field predicted by the TD-EECs to the time-domain physical optics (TD-PO) field, a significant improvement is obtained compared to what can be achieved by using TD-PO alone. The TD-EECs are expressed as the integral of the time-domain fringe wave current (the exact current minus the TD-PO current) on the canonical wedge along truncated incremental strips. Closed-form expressions for the TD-EECs are obtained in the half-plane case by analytically carrying out the integration along the truncated incremental strip directly in the time domain. In the general wedge case, closed-form expressions for the TD-EECs are obtained by transforming the corresponding frequency-domain EECs to the time-domain. The TD-EECs are tested numerically on the triangular cylinder and the results are compared with those obtained using the method of moments in combination with the inverse fast Fourier transform
Keywords
electric current; integral equations; physical optics; physical theory of diffraction; time-domain analysis; TD-EEC; TD-PO; canonical wedge; closed-form expressions; edge diffraction; equivalent edge current; far-field analysis; half-plane; integral; inverse fast Fourier transform; method of moments; perfectly conducting 3D structures; physical theory of diffraction; planar faces; time-domain EEC; time-domain fringe wave current; time-domain physical optics field; time-domain plane wave; time-domain version; triangular cylinder; truncated incremental strips; Closed-form solution; Fast Fourier transforms; Frequency domain analysis; Moment methods; Optical diffraction; Physical optics; Physical theory of diffraction; Strips; Testing; Time domain analysis;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/8.761065
Filename
761065
Link To Document