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脉冲超声处理过程中未加种子气泡云次谐波发射的超快监测与控制

Ultrafast monitoring and control of subharmonic emissions of an unseeded bubble cloud during pulsed sonication.

作者信息

Cornu Corentin, Guédra Matthieu, Béra Jean-Christophe, Liu Hao-Li, Chen Wen-Shiang, Inserra Claude

机构信息

Univ Lyon, Université Claude Bernard Lyon 1, Centre Léon Bérard, INSERM, UMR 1032, LabTAU, F-69003 Lyon, France.

Univ Lyon, Université Claude Bernard Lyon 1, Centre Léon Bérard, INSERM, UMR 1032, LabTAU, F-69003 Lyon, France.

出版信息

Ultrason Sonochem. 2018 Apr;42:697-703. doi: 10.1016/j.ultsonch.2017.12.026. Epub 2017 Dec 16.

DOI:10.1016/j.ultsonch.2017.12.026
PMID:29429720
Abstract

In the aim of limiting the destructive effects of collapsing bubbles, the regime of stable cavitation activity is currently targeted for sensitive therapeutic applications such as blood-brain barrier opening by ultrasound. This activity is quantified through the emergence of the subharmonic component of the fundamental frequency. Due to the intrinsically stochastic behavior of the cavitation phenomenon, a better control of the different (stable or inertial) cavitation regimes is a key requirement in the understanding of the mechanisms involving each bubble-induced mechanical effect. Current strategies applied to stable cavitation control rely on the use of either seeded microbubbles or a long-lasting pulse to reinitiate subharmonic emission. The present work aims at developing an ultrafast (inferior to 250 μs) monitoring and control of subharmonic emissions during long-pulsed (50 ms) sonication. The use of a FPGA-based feedback loop provides reproducible level of subharmonic emissions combined with temporal stability during the sonication duration. In addition, stable cavitation events are differentiated from the broadband noise characterizing inertial cavitation activity, with perspectives in the discrimination of the involved mechanisms underlying bubble-mediated therapeutic applications.

摘要

为了限制空化泡破裂的破坏作用,目前稳定空化活动模式被用于诸如超声打开血脑屏障等敏感治疗应用中。这种活动通过基频的次谐波分量的出现来量化。由于空化现象本质上具有随机性,更好地控制不同的(稳定或惯性)空化模式是理解涉及每个气泡诱导的机械效应的机制的关键要求。目前用于稳定空化控制的策略依赖于使用种子微泡或长脉冲来重新启动次谐波发射。本工作旨在开发一种在长脉冲(50毫秒)超声处理期间对次谐波发射进行超快(小于250微秒)监测和控制的方法。基于现场可编程门阵列(FPGA)的反馈回路的使用在超声处理持续时间内提供了可重复的次谐波发射水平以及时间稳定性。此外,稳定空化事件与表征惯性空化活动的宽带噪声区分开来,这为区分气泡介导的治疗应用背后的相关机制提供了思路。

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