DocumentCode
949136
Title
Measurement of sound transmission and signal gain in the complex Strait of Korea
Author
Carey, William M. ; Cable, Peter G. ; Siegmann, William L. ; Lynch, James F. ; Rozenfeld, Ilya
Author_Institution
Dept. of Aerosp. & Mech. Eng., Boston Univ., MA, USA
Volume
27
Issue
4
fYear
2002
fDate
10/1/2002 12:00:00 AM
Firstpage
841
Lastpage
852
Abstract
The experiment, The Acoustic Characterization Test III, was conducted in the oceanographically complex Strait of Korea to accurately measure the sound transmission under known environmental conditions. Geoacoustic profiles derived from geophysical measurements, measured bathymetry, and sound-speed profiles were the basis for range dependent parabolic equation (PE) calculations. Agreement between measured and calculated transmission loss was obtained with an attenuation profile in the near water-sediment interface layer with a dependence on frequency to the 1.8 power consistent with measurements in other sand-silt areas. Since the environment was oceanographically complex and the shipping noise levels were high, the coherency of the sound transmission was estimated using relative signal gain (RSG). RSG was taken as the difference between the gain calculated with PE and measured with the array and at longer ranges and higher frequencies was found to be approximately -2 dB with a signal gain coefficient of variation of 5%. This RSG degradation, attributed to the random signal phase fluctuations resulting from scattering from the surfaces and volume of the waveguide, yielded using a Gaussian coherence function a spatial coherence length of 30λ @ 400 Hz-40 km. In addition, high resolution imaging of five targets with two bottom mounted arrays illustrate the achievable performance of low-to-mid frequency active sonar in this environment.
Keywords
sonar arrays; underwater acoustic propagation; Acoustic Characterization Test III; Gaussian coherence function; Strait of Korea; active sonar; attenuation profile; bathymetry; bottom mounted array; geoacoustic profile; geophysical measurement; high-resolution imaging; oceanographic environment; parabolic equation; relative signal gain; sand-silt area; shipping noise; signal gain; sound speed profile; sound transmission; spatial coherence length; transmission loss; water-sediment interface layer; Acoustic measurements; Acoustic testing; Area measurement; Attenuation measurement; Frequency measurement; Gain measurement; Geophysical measurements; Loss measurement; Power measurement; Sea measurements;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.2002.805099
Filename
1134183
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