聚焦超声中的空化云平移

Keith Johnston, P. Prentice, B. Gerold
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引用次数: 3

摘要

空化介导的液体暴露在超声波中,在许多工业领域发挥关键作用,包括精密声学清洗(megasonics)和声化学。然而,人们对空化的自发发生以及随后与液体和声场的相互作用知之甚少,这阻碍了对任何给定应用的优化。在本文中,我们报告了单个孤立的空化气泡云的观测结果,暴露在特征良好的传播聚焦超声爆发中,以及由此产生的云在主声辐射力作用下的平移运动。正如预期的那样,在高强度的声波下形成了更大的云,这些声波更快地从超声波源转移出去,尽管更大的相关阻力在某种程度上缓和了这种影响。然而,关键的是,我们发现了一个共振条件,在这个条件下,低强度的小云的转换速度比预期的要快得多。根据第一性原理推导了一个模型,该模型适应了实验条件,与观测结果(包括频率共振)吻合良好。我们预计这些结果将对理解和预测动态空化液体的任何应用具有重要意义,特别是在非驻波条件下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cavitation cloud translation in focused ultrasound
Cavitation mediated effects in liquids exposed to ultrasound, play pivotal roles in a number of industrial arenas, including precision acoustic cleaning (megasonics) and sonochemistry. The spontaneous occurrence of cavitation, and the subsequent interaction with the liquid and the acoustic field, is however poorly understood, which prevents optimization for any given application. In this paper we report on observations made of single isolated cavitation-bubble clouds, exposed to a well characterized burst of propagating focused ultrasound, and the resulting translational motion of the clouds under the action of the primary acoustic radiation force. As may be expected, larger clouds develop under higher intensity insonations, which translate away from the ultrasound source more rapidly, although a larger associated drag force somewhat tempers the effect. Critically, however, a resonant condition is identified whereby small clouds at lower intensities translate much more rapidly than might otherwise be expected. A model is derived from first principles, adapted to the experimental conditions and demonstrates good agreement with the observations, including the frequency resonance. We anticipate the results will have significance for any application in which understanding and predicting a dynamic cavitating liquid is important, particularly under non-standing wave conditions.
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