DocumentCode :
1030731
Title :
On the tunneling hypothesis for ray reflection and transmission at a concave dielectric boundary
Author :
Heyman, Ehud
Author_Institution :
Tel Aviv University, Tel Aviv, Israel
Volume :
32
Issue :
9
fYear :
1984
fDate :
9/1/1984 12:00:00 AM
Firstpage :
978
Lastpage :
986
Abstract :
When a ray field is incident on a concave boundary confining a dielectric medium, total reflection is perturbed by leakage due to surface curvature. The resulting modification of the conventional Fresnel ray reflection coefficient, including its uniform transition through critical incidence, has previously been addressed by the so-called "tunneling hypothesis," which is based essentially on the behavior of a corresponding peripherally guided whispering gallery or leaky modal field; the former exhibits evanescent decay (tunneling) away from the boundary in the exterior region but eventually gives rise to radiation from a caustic whereon the modal phase speed equals the speed of light. It is shown here that inferring local ray field properties from global mode field properties has limited validity. The demonstration is based on a rigorous analysis of the two-dimensional Green\´s function for a circular boundary. Asymptotic solutions are constructed for the various ray-optical domains, and for the transition regions near caustics and especially near the critically refracted ray. Examination of the reflected and transmitted fields reveals that the tunneling hypothesis holds only near the critically refracted ray. Elsewhere, the transmitted ray field may deviate markedly from that predicted by the tunneling model. The results clarify not only the ray field behavior but also the mechanism of local energy reflection and transmission for a nonplanar interface.
Keywords :
Electromagnetic propagation in nonhomogeneous media; Electromagnetic reflection; Geometrical optics (GO); Acoustic propagation; Acoustic scattering; Dielectrics; Electromagnetic propagation; Electromagnetic reflection; Electromagnetic scattering; Fresnel reflection; Microwave propagation; Optical reflection; Tunneling;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.1984.1143446
Filename :
1143446
Link To Document :
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