Calculation of Near Field of Circular Aperture Antenna Using Geometrical Theory of Diffraction

1971 ◽  
Vol EMC-13 (2) ◽  
pp. 29-34 ◽  
Author(s):  
T. Cherot
2011 ◽  
Vol 58 (12) ◽  
pp. 1041-1050
Author(s):  
Xinrong Shi ◽  
Yuan'an Liu ◽  
Fang Liu ◽  
Kaiming Liu ◽  
Gang Xie

2013 ◽  
Vol 2013 ◽  
pp. 1-13
Author(s):  
María Jesús Algar ◽  
Jose-Ramón Almagro ◽  
Javier Moreno ◽  
Lorena Lozano ◽  
Felipe Cátedra

An efficient approach for the analysis of surface conformed reflector antennas fed arbitrarily is presented. The near field in a large number of sampling points in the aperture of the reflector is obtained applying the Geometrical Theory of Diffraction (GTD). A new technique named Master Points has been developed to reduce the complexity of the ray-tracing computations. The combination of both GTD and Master Points reduces the time requirements of this kind of analysis. To validate the new approach, several reflectors and the effects on the radiation pattern caused by shifting the feed and introducing different obstacles have been considered concerning both simple and complex geometries. The results of these analyses have been compared with the Method of Moments (MoM) results.


2012 ◽  
Vol 24 (2) ◽  
pp. 423-427
Author(s):  
史信荣 Shi Xinrong ◽  
刘元安 Liu Yuan’an ◽  
刘芳 Liu Fang

2007 ◽  
Vol 5 ◽  
pp. 101-106
Author(s):  
A. Tzoulis ◽  
T. F. Eibert

Abstract. Numerical modeling of problems including composite metallic/dielectric objects with arbitrary shapes and electrically large conducting objects within a common environment is performed in an optimum way with the recently developed powerful hybrid numerical method, which combines the Finite Element Boundary Integral (FEBI) method and the Multilevel Fast Multipole Method (MLFMM) with the Uniform Geometrical Theory of Diffraction (UTD), giving full electromagnetic coupling between all involved objects. In this contribution, the hybrid FEBI-MLFMM-UTD method is extended to double diffracted fields on pairs of straight metallic edges, formulated with the hard and soft scalar diffraction coefficients of UTD. The diffraction points on each pair of edges are determined by an iterative three-dimensional parametric realization of the generalized Fermat's principle. The divergence factor of the double diffracted field is computed by multiplying the appropriate divergence factors of the single diffracted UTD fields on each edge for the particular case. Thereby, the ray caustic distance of the diffracted field at the second edge is determined by linear interpolation between the radii of curvature in the two principal planes of the incident astigmatic ray tube. Further, fast near-field computation in the postprocessing stage of the hybrid method is extended in each translation domain to ray optical contributions due to the presence of electrically large objects, according to the hybridization of MLFMM with UTD. Formulations and numerical results will be presented.


2015 ◽  
Vol 2015 ◽  
pp. 1-5 ◽  
Author(s):  
Husnu Deniz Basdemir

The scattering of the Bessel beam by a circular aperture in an opaque screen is investigated by the geometrical theory of diffraction approach. The geometrical optics and diffracted and scattered fields are obtained. The effect of the aperture to the scattering process is analyzed. The uniform versions of field expressions are derived. The geometrical optics and diffracted and scattered fields are examined numerically.


Author(s):  
Luyin Xiao ◽  
Yong Jun Xie ◽  
Peiyu Wu ◽  
Junbao Li
Keyword(s):  

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