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High-frequency dynamics of ultrasound contrast agents

机译:超声造影剂的高频动力学

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摘要

Ultrasound contrast agents enhance echoes from the microvasculature and enable the visualization of flow in smaller vessels. Here, we optically and acoustically investigate microbubble oscillation and echoes following insonation with a 10 MHz center frequency pulse. A high-speed camera system with a temporal resolution of 10 ns, which provides two-dimensional (2-D) frame images and streak images, is used in optical experiments. Two confocally aligned transducers, transmitting at 10 MHz and receiving at 5 MHz, are used in acoustical experiments in order to detect subharmonic components. Results of a numerical evaluation of the modified Rayleigh-Plesset equation are used to predict the dynamics of a microbubble and are compared to results of in vitro experiments. From the optical observations of a single microbubble, nonlinear oscillation, destruction, and radiation force are observed. The maximum bubble expansion, resulting from insonation with a 20-cycle, 10-MHz linear chirp with a peak negative pressure of 3.5 MPa, has been evaluated. For an initial diameter ranging from 1.5 to 5 /spl mu/m, a maximum diameter less than 8 /spl mu/m is produced during insonation. Optical and acoustical experiments provide insight into the mechanisms of destruction, including fragmentation and active diffusion. High-frequency pulse transmission may provide the opportunity to detect contrast echoes resulting from a single pulse, may be robust in the presence of tissue motion, and may provide the opportunity to incorporate high-frequency ultrasound into destruction-replenishment techniques.
机译:超声造影剂可增强来自微脉管系统的回声,并能够可视化较小血管中的血流。在这里,我们以光学和声学方式研究了10 MHz中心频率脉冲产生声波后的微气泡振荡和回声。在光学实验中使用了具有10 ns时间分辨率的高速相机系统,该系统提供了二维(2-D)帧图像和条纹图像。在声学实验中使用了两个共聚焦对准的换能器,它们以10 MHz的频率发射和以5 MHz的频率接收,以检测次谐波分量。修改后的Rayleigh-Plesset方程的数值评估结果用于预测微气泡的动力学,并与体外实验的结果进行比较。从单个微气泡的光学观察,可以观察到非线性振荡,破坏和辐射力。评估了最大气泡膨胀,该膨胀是由20个周期的10 MHz线性chi发出的,峰值负压为3.5 MPa引起的。对于范围从1.5到5 / spl mu / m的初始直径,在声波期间产生小于8 / spl mu / m的最大直径。光学和声学实验可洞悉破坏机制,包括碎片和主动扩散。高频脉冲传输可能会提供检测单个脉冲产生的对比回声的机会,在组织运动存在的情况下可能会很健壮,并且可能会提供将高频超声合并到破坏补充技术中的机会。

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