Acoustic wave propagation in depth-evolving sound-speed field using the lattice Boltzmann method

IF 4.1 2区 工程技术 Q1 MECHANICS
Xuesen Chu, Feng Zhao, Zhengdao Wang, Yuehong Qian, Guangwen Yang
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Abstract

This study investigates the propagation of sound waves within deep-sea low-sound-speed channels using the lattice Boltzmann method, with a key focus on the influence of depth-dependent sound speed on wave propagation. The depth-variable sound speed condition is realized through the incorporation of an external force proportional to the density gradient. After the model verification, investigations into the two-dimensional spreading of sound sources reveal that the depth-dependent sound speed curves the wave propagation. When source depths differing from the low-sound-speed channel, wave paths deviate due to contrasting speeds above and below. When the sound source is situated within the low-sound-speed channel, waves exhibit converging patterns. The simulations also detail the total reflection behavior of sound waves. When the incident angle falls exceeds the critical angle, the waves remain intact within the low-sound-speed channel, thereby enabling the preservation of high amplitude acoustic signals even at remote locations. The subsequent simulations of sound wave propagation around obstacles demonstrate that the low-sound-speed channel also exhibits better signal transmission capabilities in the presence of obstacles. In a uniform sound speed environment, acoustic wave propagation around a submarine exhibits a symmetric pattern. By contrast, under depth-evolving speed conditions, submarines operating at various depths manifest distinct propagation characteristics, such as asymmetric wave propagation during shallow diving, as well as wave attenuation or even silencing when cruising within low-sound-speed channels. These findings underscore the profound implications of depth-evolving sound speed on underwater acoustic signal detection and transmission.
利用晶格玻尔兹曼法研究声波在深度演化声速场中的传播
本研究采用晶格玻尔兹曼法研究了声波在深海低声速通道内的传播,重点关注随深度变化的声速对声波传播的影响。随深度变化的声速条件是通过加入与密度梯度成比例的外力来实现的。在模型验证之后,对声源二维传播的研究表明,随深度变化的声速会影响波的传播。当声源深度不同于低声速通道时,由于上下声速的对比,波的路径会出现偏差。当声源位于低声速通道内时,波浪会呈现汇聚模式。模拟还详细说明了声波的全反射行为。当入射角超过临界角时,声波在低声速通道内保持完整,因此即使在遥远的地方也能保留高振幅声学信号。随后对声波在障碍物周围传播的模拟结果表明,低声速通道在障碍物存在的情况下也具有更好的信号传输能力。在均匀声速环境下,声波在潜艇周围的传播呈现对称模式。相比之下,在声速不断变化的深度条件下,在不同深度工作的潜艇会表现出不同的传播特性,例如在浅潜时声波传播不对称,以及在低声速信道内巡航时声波衰减甚至消声。这些发现强调了声速深度变化对水下声学信号探测和传输的深远影响。
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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来源期刊
Physics of Fluids
Physics of Fluids 物理-力学
CiteScore
6.50
自引率
41.30%
发文量
2063
审稿时长
2.6 months
期刊介绍: Physics of Fluids (PoF) is a preeminent journal devoted to publishing original theoretical, computational, and experimental contributions to the understanding of the dynamics of gases, liquids, and complex or multiphase fluids. Topics published in PoF are diverse and reflect the most important subjects in fluid dynamics, including, but not limited to: -Acoustics -Aerospace and aeronautical flow -Astrophysical flow -Biofluid mechanics -Cavitation and cavitating flows -Combustion flows -Complex fluids -Compressible flow -Computational fluid dynamics -Contact lines -Continuum mechanics -Convection -Cryogenic flow -Droplets -Electrical and magnetic effects in fluid flow -Foam, bubble, and film mechanics -Flow control -Flow instability and transition -Flow orientation and anisotropy -Flows with other transport phenomena -Flows with complex boundary conditions -Flow visualization -Fluid mechanics -Fluid physical properties -Fluid–structure interactions -Free surface flows -Geophysical flow -Interfacial flow -Knudsen flow -Laminar flow -Liquid crystals -Mathematics of fluids -Micro- and nanofluid mechanics -Mixing -Molecular theory -Nanofluidics -Particulate, multiphase, and granular flow -Processing flows -Relativistic fluid mechanics -Rotating flows -Shock wave phenomena -Soft matter -Stratified flows -Supercritical fluids -Superfluidity -Thermodynamics of flow systems -Transonic flow -Turbulent flow -Viscous and non-Newtonian flow -Viscoelasticity -Vortex dynamics -Waves
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