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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >High frequency nonlinear B-scan imaging of microbubble contrast agents
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High frequency nonlinear B-scan imaging of microbubble contrast agents

机译:微泡造影剂的高频非线性B扫描成像

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It was previously shown that it is possible to produce nonlinear scattering from microbubble contrast agents using transmit frequencies in the 14-32 MHz range, suggesting the possibility of performing high-frequency, nonlinear microbubble imaging. In this study, we describe the development of nonlinear microbubble B-scan imaging instrumentation capable of operating at transmit center frequencies between 10 and 50 MHz. The system underwent validation experiments using transmit frequencies of 20 and 30 MHz. Agent characterization experiments demonstrate the presence of nonlinear scattering for the conditions used in this study. Using wall-less vessel phantoms, nonlinear B-scan imaging is performed using energy in one of the subharmonic, ultraharmonic, and second harmonic frequency regions for transmit frequencies of 20 and 30 MHz. Both subharmonic and ultraharmonic imaging modes achieved suppression of tissue signals to below the noise floor while achieving contrast to noise ratios of up to 26 and 17 dB, respectively. The performance of second harmonic imaging was compromised by nonlinear propagation and offered no significant contrast improvement over fundamental mode imaging. In vivo experiments using the subharmonic of a 20 MHz transmit pulse show the successful detection of microvessels in the rabbit ear and in the mouse heart. The results of this study demonstrate the feasibility of nonlinear microbubble imaging at high frequencies.
机译:先前已表明,可以使用14-32 MHz范围内的发射频率从微泡造影剂产生非线性散射,这暗示了执行高频非线性微泡成像的可能性。在这项研究中,我们描述了能够在10至50 MHz的发射中心频率下工作的非线性微泡B扫描成像仪器的发展。该系统使用20和30 MHz的发射频率进行了验证实验。代理商表征实验证明了在这项研究中使用的条件下存在非线性散射。使用无壁血管模型,使用次谐波,超谐波和二次谐波频率区域之一中的能量对20和30 MHz的发射频率执行非线性B扫描成像。次谐波和超谐波成像模式均实现了将组织信号抑制到本底噪声以下,同时实现了高达26 dB和17 dB的对比度。二次谐波成像的性能受到非线性传播的影响,与基本模式成像相比,对比度没有明显改善。使用20 MHz发射脉冲的次谐波的体内实验表明,成功检测了兔耳和小鼠心脏中的微血管。这项研究的结果证明了高频微气泡成像的可行性。

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