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Investigation of the nonlinear propagation of ultrasound through a bubbly medium including multiple scattering and bubble-bubble interaction: Theory and experiment

机译:超声通过气泡介质对超声的非线性繁殖的研究,包括多种散射和气泡泡沫相互作用:理论与实验

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Understanding of the propagation of ultrasound through a bubbly medium is a challenging task because of the nonlinear dynamics of the bubbles and their effect on the attenuation and sound speed of the medium. The majority of the studies on this subject apply linear models, which will generate inaccurate results, especially at higher-pressure excitations. These studies have also ignored the effect of bubble-bubble interaction and nonlinear multiple scattering. In this work, we have numerically simulated the attenuation and sound speed of a bubbly medium by solving our recently developed nonlinear model. An efficient method to investigate the nonlinear bubble-bubble interaction and multiple scattering is developed, and this phenomenon is included the numerical investigations through considering a cluster of 130 randomly distributed interacting bubbles with sizes derived from experimental measurements. Broadband experimental attenuation measurements of monodisperse lipid-coated microbubble solutions were performed with peak acoustic pressures ranging within 10-100kPa. The bubble solutions had mean diameters of 4-6 micron and peak concentrations of 1000 to 15000 bubbles/ml. At lower concentrations (with minimal bubble-bubble interactions), predictions of the model (attenuation and sound speed vs frequency) in the absence of interaction are in good agreement with experimental measurements. At higher concentrations, secondary peaks in the attenuation and sound speed diagrams as a function of frequency appear. Through considering the bubble-bubble interactions, the numerical results can predict the quantitative and qualitative changes in the attenuation and frequency as well as the generation of secondary peaks.
机译:理解超声通过起泡介质的传播是一个具有挑战性的任务,因为气泡的非线性动力学及其对介质的衰减和声速的影响。对该主题的大多数研究应用了线性模型,这将产生不准确的结果,特别是在更高的压力激励下。这些研究还忽略了气泡 - 气泡相互作用和非线性多次散射的影响。在这项工作中,通过解决最近开发的非线性模型,我们已经数值模拟了一种泡泡介质的衰减和声速。开发了一种研究非线性气泡气泡相互作用和多次散射的有效方法,并且通过考虑一组130随机分布的相互作用气泡,这些现象包括从实验测量结果的尺寸。通过在10-100kPa内的峰值声压进行单分散涂覆的微泡溶液进行宽带实验衰减测量。气泡溶液的平均直径为4-6微米,峰值浓度为1000至15000气泡/ ml。在较低浓度(具有最小的气泡 - 泡相互作用),在没有相互作用的情况下,模型(衰减和声速VS频率)的预测与实验测量非常一致。在较高浓度下,衰减和声速图中的次级峰值出现在频率的函数中。通过考虑泡泡泡相互作用,数值结果可以预测衰减和频率的定量和定性变化以及二次峰的产生。

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