DocumentCode :
891417
Title :
Radio-propagation model based on the combined method of ray tracing and diffraction
Author :
Huang, Xiaoyang ; Chen, Bingquan ; Cui, Hong-Liang ; Stamnes, Jakob J. ; Pastore, Robert ; Farwell, Mark ; Chin, Wilbur ; Ross, Jennifer
Author_Institution :
Dept. of Phys. & Eng. Phys., Shandong Univ., China
Volume :
54
Issue :
4
fYear :
2006
fDate :
4/1/2006 12:00:00 AM
Firstpage :
1284
Lastpage :
1291
Abstract :
In this paper, we consider UHF radio wave propagation in vegetated residential environments. The attenuating effects of trees as well as those due to diffraction over the buildings are investigated. A new radio wave propagation prediction model based on the combined method of ray tracing and diffraction (CMRTD) is proposed. A row of trees is modeled as a two-dimensional (2-D) cylinder. It is then represented by an equivalent phase object (EPO); a row of buildings is replaced by an absorbing screen. The position and size of the EPO as well as the amplitude and phase distributions of the input field at the EPO are determined by ray tracing. Next the scattered field is computed by the Kirchhoff diffraction theory. Among the numerical results are those of the scattering from a row of trees with circular or elliptic canopies and the scattering from a row of trees/buildings configuration. The calculations treat both plane- and cylindrical-incident waves. By comparing the results with those obtained from the exact eigenfunction expansion method, we show that the CMRTD is an accurate and efficient method to calculate the scattering from a 2-D cylinder. Moreover, the range of the validity of using the CMRTD to model the scattering from one row of trees is determined.
Keywords :
UHF radio propagation; electromagnetic wave absorption; electromagnetic wave diffraction; electromagnetic wave scattering; prediction theory; ray tracing; CMRTD; EPO; Kirchhoff diffraction theory; UHF radio wave propagation; absorbing screen; attenuation; circular canopy; combined method of ray tracing-diffraction; cylindrical-incident wave; elliptic canopy; equivalent phase object; plane-incident wave; prediction model; scattered field; two-dimensional cylinder; vegetated residential environment; Attenuation; Diffraction; Engine cylinders; Geometry; Physics; Predictive models; Radio communication; Ray tracing; Scattering; UHF measurements; Diffraction; elliptic cylinder; radio wave propagation; ray tracing; scattering;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2006.872593
Filename :
1614186
Link To Document :
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