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观察背向传播的声发射信号中的气泡空化。

Observing Bubble Cavitation by Back-Propagation of Acoustic Emission Signals.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2019 May;66(5):823-833. doi: 10.1109/TUFFC.2019.2897983. Epub 2019 Feb 7.

Abstract

Temporal- and spatial-resolved observations of microbubble cavitation generated through high-intensity ultrasound irradiation are key in improving both the efficiency and efficacy of ultrasound-assisted drug delivery systems. A method of measuring bubble cavitation applying an image-reconstruction technique of back-propagation of an acoustic cavitation emission (ACE) signal is proposed. A high-intensity focused ultrasound wave (pump wave) irradiates the bubble synchronously using ultrasound recording equipment to acquire the timing of the RF signal, which is produced when the bubble radiates a secondary wave during bubble cavitation. The ACE signal source is reconstructed through ultrasound-wave back-propagation followed by amplitude deconvolution. The proposed method was applied to microbubbles of an ultrasound contrast agent by changing the sound pressure of the pump wave. The method reliability of the temporal resolution was verified by simulating the amplitude-modulated signal of the virtual sound source. The temporal transition of the ACE signal exhibited sub-microsecond-order fluctuations in the signal intensity. From the amplitude signal image and the instantaneous frequency image reconstruction of the proposed method, two different ACE phenomena were visualized. One is the periodic pattern by the beat signals from the harmonic and ultraharmonic component of nonlinear oscillation under low-intensity ultrasound conditions. The other is the nonperiodic temporal and spatial distributions of this irradiation under high-intensity ultrasound conditions.

摘要

通过高强度超声辐射产生的微泡空化的时空分辨观察对于提高超声辅助药物输送系统的效率和效果至关重要。提出了一种应用反向传播声空化发射(ACE)信号的图像重建技术测量气泡空化的方法。高强度聚焦超声(泵波)同步辐照气泡,使用超声记录设备获取当气泡在气泡空化期间辐射二次波时产生的 RF 信号的定时。通过超声波反向传播和幅度解卷积重建 ACE 信号源。通过改变泵波的声压,将该方法应用于超声造影剂的微泡。通过模拟虚拟声源的幅度调制信号验证了时间分辨率的方法可靠性。ACE 信号的时间过渡表现出信号强度的亚微秒级波动。从所提出方法的幅度信号图像和瞬时频率图像重建中,可以可视化两种不同的 ACE 现象。一种是在低强度超声条件下非线性振荡的谐波和超谐波分量的拍频信号产生的周期性模式。另一种是在高强度超声条件下这种辐照的非周期性时空分布。

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