Ray-Tracing Model for Generalized Geodesic-Lens Multiple-Beam Antennas
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IEEE Xplore
Date
2023-01-09Referencia bibliográfica
Q. Liao, N. J. G. Fonseca, M. Camacho, Á. Palomares-Caballero, F. Mesa and O. Quevedo-Teruel, "Ray-Tracing Model for Generalized Geodesic-Lens Multiple-Beam Antennas," in IEEE Transactions on Antennas and Propagation, vol. 71, no. 3, pp. 2640-2651, March 2023, [doi: 10.1109/TAP.2022.3233643.]
Abstract
Geodesic lenses are a compelling alternative to traditional
planar dielectric lens antennas, as they are low loss and
can be manufactured with a simple mechanical design. However,
a general approach for the design and analysis of more advanced
geodesic-lens antennas has been elusive, limiting the available
tools to rotationally symmetric surfaces. In this article, we present
a fast and efficient implementation built on geometrical optics
and scalar diffraction theory. A numerical calculation of the
shortest ray path (geodesic) using an open-source library helps
quantify the phase of the electric field in the lens aperture,
while the amplitude is evaluated by applying ray-tube power
conservation theory. The Kirchhoff-Fresnel diffraction formula
is then employed to compute the far field of the lens antenna. This
approach is validated by comparing the radiation patterns of a
transversely compressed geodesic Luneburg lens (elliptical base
instead of circular) with the ones computed using commercial
full-wave simulators, demonstrating a substantial reduction in
computational resources. The proposed method is then used in
combination with an optimization procedure to study possible
compact alternatives of the geodesic Luneburg lens with size
reduction in both the transverse and vertical directions.