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Single Bubble Sonoluminescence and Bubble Surface Stability in Surfactant Solutions

机译:表面活性剂溶液中的单气泡声致发光和气泡表面稳定性

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The radial dynamics of a single sonoluminescing bubble has been investigated in surfactant solutions. Experimental results show that an increase in the surfactant concentration leads to a decline in the oscillation amplitude and hence light emission intensity. Numerical simulations support this result, showing that under the driving pressures required to achieve single bubble sonoluminescence (SBSL), the surface properties, namely the surface elasticity and dilatational viscosity, contribute to the damping of the radial amplitude in the bubble oscillation. In most cases this stabilises the bubble surface, but leads to a decreased light intensity due to smaller oscillation amplitude. The application of a stronger driving pressure in an attempt to produce equivalent light emission to a surfactant-free bubble, leads to a decrease in the surface stability, making it practically very difficult for a bubble to achieve high SBSL intensities in concentrated surfactant solutions. Although the bubble oscillates at a smaller amplitude, the instability mechanism for a surfactant-coated bubble at higher ambient radii and surfactant concentrations, is more likely to be of the Rayleigh-Taylor type than that of a clean bubble at the same given acoustic parameters. This can lead to bubble disintegration before correcting mechanisms can bring the bubble back into the stable SL regime.
机译:已经在表面活性剂溶液中研究了单个声致发光气泡的径向动力学。实验结果表明,表面活性剂浓度的增加导致振荡幅度的下降,从而导致发光强度的下降。数值模拟支持该结果,表明在实现单气泡声致发光(SBSL)所需的驱动压力下,表面特性(即表面弹性和膨胀粘度)有助于气泡振荡中径向振幅的衰减。在大多数情况下,这使气泡表面稳定,但由于振荡幅度较小,导致光强度降低。试图向无表面活性剂的气泡产生相等的光发射而施加更大的驱动压力会导致表面稳定性降低,实际上使气泡很难在浓缩的表面活性剂溶液中获得高的SBSL强度。尽管气泡以较小的幅度振荡,但在相同的给定声学参数下,表面活性剂涂层的气泡在较高的环境半径和表面活性剂浓度下的不稳定性机制比干净气泡的不稳定性机制更可能是瑞利泰勒式的。这可能导致气泡崩解,然后再通过校正机制使气泡回到稳定的SL状态。

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  • 会议地点 Melbourne(AU)
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    Faculty of Engineering Science and TechnologySwinburne University of Technology Hawthorn VIC 3122 Australia Department of Chemical and Biomolecular EngineeringThe University of Melbourne Parkville VIC 3010 Australia;

    National Institute of Advanced Industrial Science and Technology (AIST)2266-98 Anagahora Shimoshidami Moriyama-ku Nagoya 463-8560 Japan;

    School of ChemistryThe University of Melbourne VIC 3010 Australia;

    Department of Chemical and Biomolecular EngineeringThe University of Melbourne Parkville VIC 3010 Australia;

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