Identification method of the hydrodynamic and acoustic natures of wall pressure fluctuation based on dynamic mode decomposition

IF 4.3 2区 工程技术 Q1 ACOUSTICS
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Abstract

In this study, an analysis method is proposed to explain the dynamic mode decomposition (DMD) mode of wall fluctuating pressure from the perspective of hydrodynamics and acoustics. According to the phase velocity, the wavenumber–frequency spectrum is divided into hydrodynamic, acoustic, and subconvective regions. Multiple DMD modes of the pressure field are calculated to obtain the wavenumber–frequency spectrum of the reconstructed pressure, which is characterized by the fact that the energy is concentrated at different wavenumber positions of the same frequency. This behavioral feature enables the DMD mode to be identified as a hydrodynamic, acoustic, and hybrid property according to the wavenumber position where the energy spot appears. This method can realize the classification and contribution analysis of the hydrodynamic and acoustic properties of the wall pressure DMD mode, and establish the mapping relationship between the acoustic mode and the eddy current characteristics through the eigenvalues. The coherent structure of the trace acoustic energy radiation in the incompressible fluid is observed from the statistical perspective, which increases understanding of the flow noise. The zero-pressure gradient wall flow experiment of Abraham is numerically analyzed using the aforementioned method. The results indicate that most of the DMD modes are identified as hydrodynamic, and only the nineteenth-order DMD mode is identified as acoustic. The frequency of the acoustic mode is 23.9 Hz, which has obvious wave-packet characteristics, whereas the hydrodynamic mode exhibits nonradiative convection characteristics, and its eddy current structure is closer to the wall transfer.

基于动态模式分解的壁压波动流体力学和声学性质识别方法
本研究提出了一种从流体力学和声学角度解释壁面波动压力动态模式分解(DMD)模式的分析方法。根据相位速度,将波数频谱划分为流体动力区、声学区和亚对流区。通过计算压力场的多个 DMD 模式,可获得重构压力的波数-频谱,其特点是能量集中在同一频率的不同波数位置。这种行为特征使得 DMD 模式能够根据能量点出现的波长位置被识别为流体动力、声学和混合特性。该方法可实现壁压 DMD 模式的流体动力学特性和声学特性的分类和贡献分析,并通过特征值建立声学模式与涡流特性之间的映射关系。从统计角度观察了不可压缩流体中微量声能辐射的相干结构,加深了对流动噪声的理解。利用上述方法对 Abraham 的零压梯度壁流实验进行了数值分析。结果表明,大多数 DMD 模式被确定为流体动力学模式,只有 19 阶 DMD 模式被确定为声学模式。声学模式的频率为 23.9 Hz,具有明显的波包特征,而流体动力模式则表现出非辐射对流特征,其涡流结构更接近于壁面传递。
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来源期刊
Journal of Sound and Vibration
Journal of Sound and Vibration 工程技术-工程:机械
CiteScore
9.10
自引率
10.60%
发文量
551
审稿时长
69 days
期刊介绍: The Journal of Sound and Vibration (JSV) is an independent journal devoted to the prompt publication of original papers, both theoretical and experimental, that provide new information on any aspect of sound or vibration. There is an emphasis on fundamental work that has potential for practical application. JSV was founded and operates on the premise that the subject of sound and vibration requires a journal that publishes papers of a high technical standard across the various subdisciplines, thus facilitating awareness of techniques and discoveries in one area that may be applicable in others.
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