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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Combined passive detection and ultrafast active imaging of cavitation events induced by short pulses of high-intensity ultrasound
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Combined passive detection and ultrafast active imaging of cavitation events induced by short pulses of high-intensity ultrasound

机译:高强度超声短脉冲诱发的空化事件的被动检测和超快速主动成像相结合

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The activation of natural gas nuclei to induce larger bubbles is possible using short ultrasonic excitations of high amplitude, and is required for ultrasound cavitation therapies. However, little is known about the distribution of nuclei in tissues. Therefore, the acoustic pressure level necessary to generate bubbles in a targeted zone and their exact location are currently difficult to predict. To monitor the initiation of cavitation activity, a novel all-ultrasound technique sensitive to single nucleation events is presented here. It is based on combined passive detection and ultrafast active imaging over a large volume using the same multi-element probe. Bubble nucleation was induced using a focused transducer (660 kHz, f-number = 1) driven by a high-power electric burst (up to 300 W) of one to two cycles. Detection was performed with a linear array (4 to 7 MHz) aligned with the single-element focal point. In vitro experiments in gelatin gel and muscular tissue are presented. The synchronized passive detection enabled radio-frequency data to be recorded, comprising highfrequency coherent wave fronts as signatures of the acoustic emissions linked to the activation of the nuclei. Active change detection images were obtained by subtracting echoes collected in the unnucleated medium. These indicated the appearance of stable cavitating regions. Because of the ultrafast frame rate, active detection occurred as quickly as 330 ??s after the highamplitude excitation and the dynamics of the induced regions were studied individually.
机译:短时间的高振幅超声激发可能激活天然气核以诱导更大的气泡,这是超声空化治疗所必需的。但是,关于组织中细胞核的分布知之甚少。因此,当前难以预测在目标区域中产生气泡所需的声压水平及其确切位置。为了监视空化活动的启动,此处介绍了一种对单个成核事件敏感的新型全超声波技术。它基于使用相同的多元素探针在大体积上进行的被动检测和超快速主动成像的组合。使用聚焦换能器(660 kHz,f值= 1),由一到两个周期的高功率电脉冲(高达300 W)驱动,诱导气泡成核。使用与单元素焦点对齐的线性阵列(4至7 MHz)进行检测。提出了在明胶凝胶和肌肉组织中的体外实验。同步的被动检测使得能够记录射频数据,包括高频相干波阵面,作为与核的激活相关的声发射的特征。主动变化检测图像是通过减去在无核介质中收集的回波来获得的。这些表明出现了稳定的空化区域。由于帧速率超快,因此在高振幅激发后最快330 s内即可进行主动检测,并分别研究了感应区域的动力学。

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