DocumentCode :
1697990
Title :
Modeling evaporation duct propagation above the rough sea surface with the aid of the parabolic equation and ray optics methods
Author :
Pan, Yue ; Ma, Yuanliang ; Yang, Kunde ; Zhang, Dahai
Author_Institution :
Inst. of Acoust. Eng., Northwestern Polytech. Univ., Xian
fYear :
2008
Firstpage :
1
Lastpage :
5
Abstract :
The problem of propagation above the rough sea surface in an evaporation duct environment has been received considerable attention. The current propagation model above the rough sea can lead to an overestimation of the radar detection range. An alternative method is the boundary integral equation (BIE) method. However, the BIE is not an efficient computationally. In this paper, a fast hybrid modeling technique is presented to model the evaporation duct propagation above Gaussian rough sea surface. The technique uses a combination of Fourier split-step (FSS) parabolic equation (PE) method and ray optics (RO). In this technique, the Ament boundary condition with shadowing effect is used at grazing angle. The examples analyze the influence of the shadowing effect of rough Gaussian surfaces on the evaporation duct propagation. The results indicate that the propagation modeling with the shadowing effect reduce this overestimation, when the wind speed exceed 5 m/s, the shadowing effect will influence the propagation, the propagation loss will become larger with the wind speed increasing, and when the duct height is between 10 m and 20 m, the influence of shadowing effect on the propagation will be the most obvious. Furthermore, for combinations of high frequencies, high duct heights and high wind speeds, models indicate that wind-driven surface roughness can reduce the effectiveness of the evaporation duct.
Keywords :
Fourier analysis; boundary integral equations; electromagnetic wave propagation; parabolic equations; radar detection; ray tracing; rough surfaces; Ament boundary condition; Fourier split-step method; Gaussian rough sea surface; boundary integral equation method; evaporation duct propagation modelling; fast hybrid modeling technique; parabolic equation; propagation loss; radar detection range; ray optics methods; shadowing effect; wind speed; wind-driven surface roughness; Ducts; Frequency selective surfaces; Integral equations; Optical propagation; Radar detection; Rough surfaces; Sea surface; Shadow mapping; Surface roughness; Wind speed;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Automation Congress, 2008. WAC 2008. World
Conference_Location :
Hawaii, HI
Print_ISBN :
978-1-889335-38-4
Electronic_ISBN :
978-1-889335-37-7
Type :
conf
Filename :
4699108
Link To Document :
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