DocumentCode :
839775
Title :
A comparison of perturbation theory and the small-slope approximation for acoustic scattering from a rough interface for a Biot medium
Author :
Yang, Taiqian ; Broschat, Shira Lynn ; Galea, Cristina
Author_Institution :
Dept. of Electron. Eng. Technol., Central Washington Univ., Puyallup, WA, USA
Volume :
27
Issue :
3
fYear :
2002
fDate :
7/1/2002 12:00:00 AM
Firstpage :
403
Lastpage :
412
Abstract :
In this paper, the lowest order small-slope approximation (SSA) scattering cross section for Biot theory is derived. Numerical results are obtained for both backscattering and bistatic scattering using a modified power law spectrum, and these results are compared with those of lowest order perturbation theory (PT). Frequencies ranging from 100 Hz to 3 kHz are used for surfaces with RMS heights h of 0.1 and 1 m and a correlation length l of 10 m. The angle of incidence for the bistatic results is limited to 45°. It is found that for the smaller surface height roughness (h = 0.1 m), the SSA and PT give the same results for frequencies up to almost 1 kHz for both backscattering and bistatic scattering. For h = 1 m, the SSA and PT backscatter results are in good agreement at all frequencies for incident grazing angles up to approximately 45°. For the bistatic results, the SSA and PT results agree only at low grazing angles of scatter. In the specular region, the results differ significantly.
Keywords :
acoustic wave scattering; approximation theory; backscatter; interface roughness; perturbation theory; sediments; underwater acoustic propagation; 0.1 m; 1 m; 100 Hz to 3 kHz; Biot medium rough interface acoustic scattering; Biot theory; PT; SSA scattering cross section; acoustic frequency range; backscattering; bistatic scattering; fluid-fluid-saturated porous solid; incidence grazing angles; lowest order perturbation theory; lowest order small-slope approximation; power law spectrum; rough surface correlation length; rough surface scattering; sediments; surface height roughness; Acoustic scattering; Backscatter; Frequency; Kirchhoff´s Law; Oceans; Rough surfaces; Sea surface; Sediments; Solids; Surface roughness;
fLanguage :
English
Journal_Title :
Oceanic Engineering, IEEE Journal of
Publisher :
ieee
ISSN :
0364-9059
Type :
jour
DOI :
10.1109/JOE.2002.1040927
Filename :
1040927
Link To Document :
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