Direct hydroacoustics analyses of pipe orifice using lattice Boltzmann method

IF 2.9 2区 数学 Q1 MATHEMATICS, APPLIED Computers & Mathematics with Applications Pub Date : 2024-08-30 DOI:10.1016/j.camwa.2024.08.024
Beom-Jin Joe , Suk-Yoon Hong , Jee-Hun Song
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Abstract

Acoustic waves in water pipes pose a structural threat but also offer a valuable tool for non-invasive inspection. Complex pipe geometries such as bends and surface liners create complex fluid boundaries, triggering interactions between fluid flow and acoustics. The lattice Boltzmann method (LBM) excels at capturing these interactions near complex boundaries, in contrast to the finite volume method, which can result in errors. However, the application of LBM in water pipes has been limited by stability problems. This study proposes a two-step (DM-TS) collision operator based on a direct method (LBM-HA) for stable LBM simulations in water pipes. LBM-HA enables direct hydroacoustic predictions for both acoustic and dynamic flow fields in a pipe orifice. A novel acoustic-dynamic complex boundary condition was formulated from the linearized Euler's equation to account for the physical effects of the bounded domain of the LBM-HA analysis. To distinguish between dynamic and acoustic components, wavenumber and frequency decomposition techniques were applied to the pressure data obtained within the pipe. In addition, mode decomposition of the acoustic pressure was conducted to identify the dominant acoustic modes. By comparing the LBM-HA results with experimental data, we highlighted the method's potential for direct hydroacoustic analysis considering the acoustic characteristics of the water pipe.

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使用晶格玻尔兹曼法对管道孔口进行直接水声分析
水管中的声波会对结构造成威胁,但同时也为非侵入式检测提供了宝贵的工具。弯管和表面衬里等复杂的管道几何结构会产生复杂的流体边界,引发流体流动与声学之间的相互作用。晶格玻尔兹曼法(LBM)擅长捕捉复杂边界附近的这些相互作用,而有限体积法可能会导致误差。然而,LBM 在水管中的应用受到稳定性问题的限制。本研究提出了一种基于直接法(LBM-HA)的两步(DM-TS)碰撞算子,用于在水管中进行稳定的 LBM 模拟。LBM-HA 可以直接对管道口的声学和动态流场进行水声预测。根据线性化欧拉方程制定了新颖的声-动复合边界条件,以考虑 LBM-HA 分析的边界域的物理效应。为了区分动态和声学成分,对管道内获得的压力数据采用了波数和频率分解技术。此外,还对声压进行了模式分解,以确定主要的声学模式。通过将 LBM-HA 结果与实验数据进行比较,我们强调了该方法在考虑水管声学特性的情况下进行直接水声分析的潜力。
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来源期刊
Computers & Mathematics with Applications
Computers & Mathematics with Applications 工程技术-计算机:跨学科应用
CiteScore
5.10
自引率
10.30%
发文量
396
审稿时长
9.9 weeks
期刊介绍: Computers & Mathematics with Applications provides a medium of exchange for those engaged in fields contributing to building successful simulations for science and engineering using Partial Differential Equations (PDEs).
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