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Optical and acoustic monitoring of bubble cloud dynamics at a tissue-fluid interface in ultrasound tissue erosion

机译:超声和组织侵蚀中组织-流体界面处气泡云动力学的光学和声学监测

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摘要

Short, high-intensity ultrasound pulses have the ability to achieve localized, clearly demarcated erosion in soft tissue at a tissue-fluid interface. The primary mechanism for ultrasound tissue erosion is believed to be acoustic cavitation. To monitor the cavitating bubble cloud generated at a tissue-fluid interface, an optical attenuation method was used to record the intensity loss of transmitted light through bubbles. Optical attenuation was only detected when a bubble cloud was seen using high speed imaging. The light attenuation signals correlated well with a temporally changing acoustic backscatter which is an excellent indicator for tissue erosion. This correlation provides additional evidence that the cavitating bubble cloud is essential for ultrasound tissue erosion. The bubble cloud collapse cycle and bubble dissolution time were studied using the optical attenuation signals. The collapse cycle of the bubble cloud generated by a high intensity ultrasound pulse of 4–14 μs was ~40–300 μs depending on the acoustic parameters. The dissolution time of the residual bubbles was tens of ms long. This study of bubble dynamics may provide further insight into previous ultrasound tissue erosion results.
机译:短而高强度的超声脉冲能够在组织-流体界面处实现对软组织的局部清晰划定的侵蚀。超声组织侵蚀的主要机制被认为是声空化。为了监视在组织-流体界面处产生的空化气泡云,使用光学衰减方法记录通过气泡的透射光的强度损失。仅在使用高速成像看到气泡云时才检测到光学衰减。光衰减信号与随时间变化的声学反向散射很好地相关,声学反向散射是组织侵蚀的极佳指标。这种相关性提供了另外的证据,即空化气泡云对超声组织的侵蚀至关重要。利用光衰减信号研究了气泡云的崩溃周期和气泡溶解时间。取决于声学参数,由4–14μs的高强度超声脉冲产生的气泡云的崩溃周期约为40–300μs。残留气泡的溶解时间为数十毫秒长。气泡动力学的这项研究可以提供对以前的超声组织侵蚀结果的进一步了解。

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