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首页> 外文期刊>The Journal of the Acoustical Society of America >Nonlinear acoustic propagation in bubbly liquids: Multiple scattering, softening and hardening phenomena
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Nonlinear acoustic propagation in bubbly liquids: Multiple scattering, softening and hardening phenomena

机译:起泡液中的非线性声学传播:多次散射,软化和硬化现象

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摘要

The weakly nonlinear propagation of acoustic waves in monodisperse bubbly liquids is investigated numerically. A hydrodynamic model based on the averaged two-phase fluid equations is coupled with the Rayleigh-Plesset equation to model the dynamics of bubbles at the local scale. The present model is validated in the linear regime by comparing with the Foldy approximation. The analysis of the pressure signals in the linear regime highlights two resonance frequencies: the Minnaert frequency and a multiple scattering resonance that strongly depends on the bubble concentration. For weakly nonlinear regimes, the generation of higher harmonics is observed only for the Minnaert frequency. Linear combinations between the Minnaert harmonics and the multiple scattering resonance are also observed. However, the most significant effect observed is the appearance of softening-hardening effects that share some similarities with those observed for sandstones or cracked materials. These effects are related to the multiple scattering resonance. Downward or upward resonance frequency shifts can be observed depending on the characteristic of the incident wave when increasing the excitation amplitude. It is shown that the frequency shift can be explained assuming that the acoustic wave velocity depends on a law different from those usually encountered for sandstones or cracked materials. (C) 2016 Acoustical Society of America.
机译:在数值上研究了单分散泡沫液中声波的弱非线性传播。基于平均两相流体方程的流体动力学模型与瑞利 - Plesset方程联接,以在局部刻度模拟气泡的动态。通过与折叠近似进行比较,通过与折叠近似进行比较,在线性方案中验证本模型。线性调节中的压力信号的分析突出了两个共振频率:线性频率和强烈取决于气泡浓度的多个散射谐振。对于弱非线性制度,仅针对细线频率观察到更高次谐波的产生。还观察到MINAERT谐波与多个散射共振之间的线性组合。然而,观察到最显着的效果是外观的软化 - 硬化效应,其与观察到的砂岩或裂纹材料观察的一些相似之处。这些效果与多个散射共振有关。根据增加激励幅度时,可以观察到向下或向上共振频率偏移。结果表明,假设声波速度取决于与通常遇到的砂岩或裂纹材料不同的法律,可以解释频移。 (c)2016年声学学会。

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    Univ Paris 06 Univ Paris 04 Inst Jean Le Rond dAlembert CNRS UMR 7190 F-75005 Paris France;

    Univ Paris 06 Univ Paris 04 Inst Jean Le Rond dAlembert CNRS UMR 7190 F-75005 Paris France;

    Univ Paris 06 Univ Paris 04 Inst Jean Le Rond dAlembert CNRS UMR 7190 F-75005 Paris France;

    Univ Paris 06 Univ Paris 04 Inst Jean Le Rond dAlembert CNRS UMR 7190 F-75005 Paris France;

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  • 正文语种 eng
  • 中图分类 声学;
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