模拟中尺度漩涡对波斯湾和阿曼海北部声波传播的影响

IF 3 4区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES International Journal of Environmental Science and Technology Pub Date : 2024-08-31 DOI:10.1007/s13762-024-05821-3
M. Ashuri Rudposhti, S. Allahyaribeik, M. Ghodsihassanabad, A. Hossein Javid
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引用次数: 0

摘要

要在水下环境中开发和建造先进的海洋系统,就必须彻底分析声波如何传播以及海洋物理现象如何影响声音传播。在波斯湾和阿曼海等各种水体中都能发现这样一种现象,即中尺度漩涡。这些漩涡在夏季尤为明显。为了研究声音在中尺度漩涡中的传播,这项研究使用了范围依赖性声学模型 (RAM)。如果输入正确,该模型可为海洋声学问题提供精确的解决方案。本文旨在确定波斯湾和阿曼海不同区域的声波传播模式,以帮助工程师进行各种应用。换句话说,本文的研究结果有助于设计人员根据波斯湾和阿曼海不同深度区域的声压剖面和声音传播损耗,确定声源和接收器的位置。研究结果表明,在存在咸核漩涡的区域,声压最低。这意味着声音无法穿透这些漩涡中心的高密度区域。相反,声音会转向速度最慢的区域。此外,声学 RAM 输出显示了声压曲线和传输损耗曲线的反转。因此,声学模型的结果表明,声音无法有效穿透涡流中心或其他深层区域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Simulating the effect of mesoscale eddies on sound wave propagation in the Persian Gulf and Northern Oman Sea

To develop and build advanced marine systems in underwater environments, it is essential to thoroughly analyze how sound waves travel and how oceanic physical phenomena impact sound propagation. One such phenomenon, called mesoscale eddies, can be found in various bodies of water like the Persian Gulf and the Sea of Oman. These eddies are particularly noticeable during the summer months. To study sound propagation in mesoscale eddies, this research utilized a Range-dependent Acoustic Model (RAM). This model provides an accurate solution for marine acoustic problems when given the correct inputs. The aim of this article is to identify the sound propagation patterns in different areas of the Persian Gulf and the Oman Sea to assist engineers in various applications. In other words, the results of this article help designers locate their sound sources and receivers based on the acoustic pressure profile and sound transmission loss in areas with different depths in the Persian Gulf and the Oman Sea. The findings revealed that the acoustic pressure is lowest in areas where a salty core eddy exists. This means that sound cannot penetrate areas with high density at the center of these eddies. Instead, the sound is redirected towards areas with the slowest speed. Furthermore, the acoustic RAM output shows a reversal in the acoustic pressure profile and transmission loss profile. As a result, the results of the acoustic model indicate that the sound did not effectively penetrate the eddy center or other deep areas.

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来源期刊
CiteScore
5.60
自引率
6.50%
发文量
806
审稿时长
10.8 months
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.
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