Browse > Article

High-Frequency Bistatic Scattering from a Corrugated Sediment Surface  

Cho, Hong-Sang (Department of Earth & Marine Sciences, Hanyang University)
La, Hyoung-Sul (Department of Earth & Marine Sciences, Hanyang University)
Yoon, Kwan-Seob (Department of Earth & Marine Sciences, Hanyang University)
Na, Jung-Yul (Department of Earth & Marine Sciences, Hanyang University)
Kim, Bong-Chae (Korea Ocean Research and Development Institute)
Abstract
High-frequency bistatic scattering measurements from a corrugated surface were made in an acoustic water tank. First the azimuthal scattering pattern was measured from an artificially corrugated surface which has varying impedance. The corrugated surface was installed both transverse to the direction of incident wave and longitudinal to the direction of incident wave. The angle between the corrugated surface and the direction of the incident wave was about $45^{\circ}$. Second, the scattering strengths were measured from the flat sediment and the corrugated sediment. A critical angle of about $37^{\circ}$ was calculated in the acoustic water tank. The measurements were made at three fixed grazing angles: $33^{\circ}$ (lower than critical angle), $37^{\circ}$ (critical angle), and $41^{\circ}$ (higher than critical angle). The scattering angle and the grazing angle are equal in each measurement. Frequencies were from 50 kHz to 100 kHz with an increment of 1 kHz. The corrugated sediment was made transverse to the direction of the incident wave. The first measurement indicates that the scattering patterns depend on the relations between the corrugated surface and the direction of the incident wave. In the second measurement, the data measured from the flat sediment were compared to the APL-UW model and to the NRL model. The NRL model's output shows more favorable comparisons than the APL-UW model. In case of the corrugated sediment, the model and the measured data are different because the models used an isotropic wave spectrum of sediment roughness in the scattering calculations. The isotropic wave spectrum consists of $w_2$ and ${\gamma}_2$. These constants derived from sediment names or bulk size. The model which used the constants didn't consider the effect of a corrugated surface. In order to consider a corrugated surface, the constants were varied in the APL-UW model.
Keywords
Bistatic; Bottom scattering; scattering model; Corrugated surface; Bottom scattering model;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 Boehme, H. N. P. Chotiros, L. D. Rolleigh, S. P. Pitt, A. L. Garcia, T. G. Goldsberry, and R. A. Lamb, 'Acoustic backscattering at low grazing angles from the ocean bottom, Part I, Bottom backscattering strength,' J. Acoust. Soc. Am., 77, 962-974, 1985   DOI
2 Eckart, C., 'The scattering of sound from the sea surface,' J. Acoust. Soc. Am., 25, 566-570, 1953   DOI
3 Voronovich, A. G., Wave Scattering from Rough Surfaces, Springer- Verlag, (New York, 1993)
4 Urick, R. J., 'Side scattering of sound in shallow water' J. Acoust. Soc. Am., 32, 351-355, 1959   DOI
5 Stanic, S., E. Kennedy, and R. I. Ray, 'High-frequency bistatic reverberation from a smooth ocean bottom,' J. Acoust. Soc. Am. 93, 2633-2638, 1993   DOI   ScienceOn
6 Thorsos, E. I., 'The validity of the Kirchhoff approximation for rough surface scattering using a Gaussian roughness spectrum,' J. Acoust. Soc. Am., 83, 78-92, 1988   DOI
7 APL-UW 'High-Frequency Ocean Environmental Acoustic Models Handbook', Ch. IV, Bottom, APL-UW TR 9407, October 1994
8 Choi, J. W., J. Na, K. Park, K. Yoon, J. S. Park, and Y. N. Na, 'Measurements of high-frequency sea surface backscattering signals,' J. Acoust. Soc. Korea, 21 (4) 421-429, 2002 (in Korean)   과학기술학회마을
9 Medwin, H. and C. S. Clay Fundamentals of Acoustical Oceanography, (Academic Press, Boston, 1998)
10 NRL, 'Broadband Models for Predicting Bistatic Bottom, Surface, and Volume Scattering Strengths,' Technical Report NRL/FL/7100-02-10, 042, 2002
11 Dahl, P. H., 'On bistatic sea surface scattering: Field measurements and modeling,' J. Acoust. Soc. Am., 105, 2155-2169, 1999   DOI   ScienceOn
12 Williams, N. J., 'An experiment to measure low frequency acoustic backscatter from the ocean wave surface-The acoustic surface reverberation experiment, ASREX,' Ph.D. thesis, University of Miami, 1996
13 Bass, F. G. and I. M. Fuks, Wave Scattering From Statistically Rough Surfaces, Tergamon, (New York, 1979)
14 McDaniel, S. T. and A. D. Gorman, 'An examination of the composite-roughness scattering model,' J. Acoust. Soc. Am., 73, 1476-1486, 1983   DOI   ScienceOn
15 Cox, H. 'Fundamentals of bistatic active sonar,' in Underwater Acoustic Data Processing, edited by Y. T. Chan, Kluwer Academic Publishers, Dordrecht, 1988
16 Nolle, A. W. and W. A. Hoyer, J. F. Mifsud, W. R. Runyan, and M. B. Ward, 'Acoustical properties of water-filled sands,' J. Acoust, Soc. Am., 35, 1394-1408, 1963   DOI
17 Xavier Lurton, An Introduction to Underwater Acoustics, (Chichester, UK, 2002)