V. Zarepour, M. Ezam, S. Allahyaribeik, A. A. Bidokhti
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引用次数: 0
Abstract
Sea surface waves along with wind lead to the formation of a near-surface bubbly layer in the oceans and cause an upward refraction of sound speed profile in the layer adjacent to the surface. This refraction enhances the surface scattering and affects the accuracy of sound field simulation, and underwater sound source localization. This research investigates the impact of sound speed profile mismatch due to wind-generated bubbles on the matched field sound source localization in a shallow-water environment of the Persian Gulf. A bubble layer and a sound propagation Parabolic Equation models are combined with a high-resolution maximum-likelihood matched field processor to calculate and analyze the acoustic pressure field and source localization in the bubbly environment. To calculate the localization error, the bubble environment is compared to the bubble-free environment in five wind speeds from 6.6 to 10.2 m/s, source depths of 10, 45, and 75 m, and nine acoustic frequencies ranging from 2 to 10 kHz. The results demonstrate that the range and depth localization errors increase by increasing the degree of the mismatch and the source frequency. However, the errors are significant only at frequencies equal to or higher than 8 kHz and wind speeds greater than 8 m/s. Moreover, the values of these errors depend on the source depth. This result indicates that the errors of the source located at a depth of 10 m are more than those in the source in depths of 45 and 75 m. The matched field processor overestimates the source range and depth. The range estimation error is less than that of depth.
期刊介绍:
International Journal of Environmental Science and Technology (IJEST) is an international scholarly refereed research journal which aims to promote the theory and practice of environmental science and technology, innovation, engineering and management.
A broad outline of the journal''s scope includes: peer reviewed original research articles, case and technical reports, reviews and analyses papers, short communications and notes to the editor, in interdisciplinary information on the practice and status of research in environmental science and technology, both natural and man made.
The main aspects of research areas include, but are not exclusive to; environmental chemistry and biology, environments pollution control and abatement technology, transport and fate of pollutants in the environment, concentrations and dispersion of wastes in air, water, and soil, point and non-point sources pollution, heavy metals and organic compounds in the environment, atmospheric pollutants and trace gases, solid and hazardous waste management; soil biodegradation and bioremediation of contaminated sites; environmental impact assessment, industrial ecology, ecological and human risk assessment; improved energy management and auditing efficiency and environmental standards and criteria.