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Investigating the origin of acoustic attenuation in liquid foams

机译:研究液体泡沫中声衰减的起源

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摘要

Liquid foams are known to be highly efficient to absorb acoustic waves but the origin of the sound dissipation remains unknown. In this paper, we present low frequency (0.5-4 kHz) experimental results measured with an impedance tube and we confront the recorded attenuations with a simple model that considers the foam as a concentrate bubbly liquid. In order to identify the influence of the different parameters constituting the foams we probe samples with different gases, and various liquid fractions and bubble size distributions. We demonstrate that the intrinsic acoustic attenuation in the liquid foam is due to both thermal and viscous losses. The physical mechanism of the viscous term is not elucidated but the microscopic effective viscosity evidenced here can be described by a phenomenological law scaling with the bubble size and the gas density. In our experimental configuration a third dissipation term occurs. It comes from the viscous friction on the wall of the impedance tube and it is well described by the Kirchhoff law considering the macroscopic effective viscosity classically measured in rheology experiments.
机译:已知液体泡沫是高效的,以吸收声波,但声耗的起源仍然未知。在本文中,我们呈现低频(0.5-4 kHz)用阻抗管测量的实验结果,并用简单的模型对记录的衰减表示,该模型认为泡沫作为浓缩液泡液。为了识别构成泡沫的不同参数的影响我们用不同的气体探测样品,以及各种液体级分和气泡尺寸分布。我们证明液体泡沫中的固有声学衰减是由于热和粘性损耗。不阐明粘性术语的物理机制,但这里可以通过气泡尺寸和气体密度来描述这里证明的微观有效粘度。在我们的实验配置中,发生第三个耗散术语。它来自阻抗管壁上的粘性摩擦,并且考虑到在流变实验中经过经典测量的宏观有效粘度,它是良好的描述。

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    UPMC Univ Paris 06 Sorbonne Univ Inst Jean Le Rond dAlembert CNRS UMR 7190 Paris France;

    Univ Paris Diderot Sorbonne Paris Cite Lab Matiere &

    Syst Complexes CNRS UMR 7057 Paris France;

    Univ Paris Diderot Sorbonne Paris Cite Lab Matiere &

    Syst Complexes CNRS UMR 7057 Paris France;

    Univ Paris Diderot Sorbonne Paris Cite Lab Matiere &

    Syst Complexes CNRS UMR 7057 Paris France;

    Univ Paris Diderot Sorbonne Paris Cite Lab Matiere &

    Syst Complexes CNRS UMR 7057 Paris France;

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  • 正文语种 eng
  • 中图分类 物理学;
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