DocumentCode
1201210
Title
Modeling and Simulation of Near-Earth Propagation in Presence of a Truncated Vegetation Layer
Author
Liao, DaHan ; Sarabandi, Kamal
Author_Institution
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI
Volume
55
Issue
3
fYear
2007
fDate
3/1/2007 12:00:00 AM
Firstpage
949
Lastpage
957
Abstract
The far-field radiation from an infinitesimal electric dipole embedded inside a truncated vegetation layer above a dielectric ground plane is calculated in this paper. Through an application of the equivalence or Huygen´s principle, a semi-exact solution for the received field at locations exterior to the vegetation layer is obtained by a surface-field integration technique in which the spatial domain of integration is over a plane containing the truncated face of the vegetation canopy. The numerical results are computed using stationary phase approximations and show improvement over those determined through an existing ray-tracing approach. Simulation results are also compared against measured data from controlled experiments carried out within a laboratory environment using a well-characterized scaled-replica of the propagation medium at a proportionally higher frequency. It is shown that ray-tracing provides accurate results at distant points from the vegetation truncation plane when the receiver height is large in terms of the wavelength but slightly underestimates the path loss when the receiver is close to the ground
Keywords
approximation theory; radio links; radiowave propagation; ray tracing; tropospheric electromagnetic wave propagation; vegetation; Huygen´s principle; canopy; dielectric ground plane; equivalence principle; far-field radiation; infinitesimal electric dipole; near-earth propagation; ray-tracing approach; spatial domain integration; surface-field integration technique; truncated vegetation layer; Computational modeling; Dielectrics; Electromagnetic propagation; Finite difference methods; Frequency measurement; Ray tracing; Time domain analysis; Transmitters; Vegetation mapping; Wavelength measurement; Near-earth wave propagation; scaled propagation modeling; stationary phase approximation; truncated vegetation layer;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2007.891812
Filename
4120278
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