Theoretical study on the sound absorption of acoustic coatings with pre-deformation induced by the hydrostatic pressure.

IF 2.3 2区 物理与天体物理 Q2 ACOUSTICS
Guanghua Wu, Chunhui Yuan, Xiang Zhu, Tianyun Li, Xinyi Han, Kehui Peng
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引用次数: 0

Abstract

Underwater acoustic coatings experience changes in geometric and material parameters under hydrostatic pressure. A theoretical method is proposed for investigating the pressure effect on the absorption coefficient of a viscoelastic coating embedded with a cylindrical cavity. Static deformation is analyzed using Murnaghan material model, and an equivalent model with transversely isotropic material behavior is constructed under pressure. The phase velocity and attenuation of the fundamental longitudinal [L(0,1)] wave mode in the stressed acoustic coating are investigated. Results show that increased pressure raises the longitudinal and shear stiffness coefficient related to the L(0,1) mode and induces a reduction in the inner radius and thickness of the acoustic coating. Consequently, the phase velocity of the L(0,1) mode increases and the peak frequency of the absorption coefficient shifts to a higher frequency range. Finally, the effectiveness of the proposed theoretical method is validated by the finite element method.

静水压力诱导下预变形声膜吸声特性的理论研究。
在静水压力作用下,水声涂层的几何参数和材料参数发生了变化。提出了一种研究压力对圆柱形腔内粘弹性涂层吸收系数影响的理论方法。采用Murnaghan材料模型分析了静力变形,建立了受压下具有横向各向同性材料行为的等效模型。研究了应力声涂层中纵向[L(0,1)]波模的相速度和衰减。结果表明,压力的增加使与L(0,1)模态相关的纵向刚度系数和剪切刚度系数升高,导致声涂层的内半径和厚度减小;因此,L(0,1)模的相速度增加,吸收系数的峰值频率向更高的频率范围移动。最后,通过有限元方法验证了所提理论方法的有效性。
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来源期刊
CiteScore
4.60
自引率
16.70%
发文量
1433
审稿时长
4.7 months
期刊介绍: Since 1929 The Journal of the Acoustical Society of America has been the leading source of theoretical and experimental research results in the broad interdisciplinary study of sound. Subject coverage includes: linear and nonlinear acoustics; aeroacoustics, underwater sound and acoustical oceanography; ultrasonics and quantum acoustics; architectural and structural acoustics and vibration; speech, music and noise; psychology and physiology of hearing; engineering acoustics, transduction; bioacoustics, animal bioacoustics.
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