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Advantages in using multi-frequency driving ultrasound for optimizing echo particle image velocimetry techniques.

机译:使用多频驱动超声优化回波粒子图像测速技术的优势。

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We have recently developed an ultrasound based velocimetry technique, termed echo particle image velocimetry (echo PIV). This method takes advantage of the non-linear backscatter characteristics of ultrasound contrast microbubbles when exposed to certain ultrasonic field. Preliminary in vitro, animal and clinical studies have shown significant promise of this method for measuring multiple velocity components with good temporal and spatial resolution. However, there is still difficulty in maximizing the non-linearity of bubble backscatter using conventional Gaussian-pulse excitation techniques because significant harmonic components may not be produced at modest pressure amplitudes and the higher incident pressure amplitudes required to induce non-linear behavior may cause bubble destruction. We present here a potential solution to this problem through the use of multi-frequency excitation. A rectangular pulse with multiple harmonics is used to drive the bubble. The backscatter process is studied through a modified Rayleigh-Plesset equation. Results show that the rectangular wave is effective in improving the visibility of microbubbles with ultrasound backscattered efficiency significantly higher than the widely used Gaussian waveform. Use of rectangular pulses with 4 and 2 harmonics showed no significant difference in bubble backscatter behavior, indicating that a two-frequency excitation may be sufficient to induce non-linear behavior of the microbubbles practically at modest incident pressures.
机译:我们最近开发了一种基于超声的测速技术,称为回波粒子图像测速(echo PIV)。当暴露于某些超声场时,该方法利用了超声对比微泡的非线性反向散射特性。初步的体外,动物和临床研究表明,该方法具有良好的时空分辨率,可用于测量多个速度分量,具有重大前景。但是,使用常规的高斯脉冲激励技术使气泡反向散射的非线性最大化仍然很困难,因为在适度的压力幅度下可能不会产生明显的谐波分量,并且引起非线性行为所需的较高的入射压力幅度可能会导致气泡破坏。通过使用多频激励,我们在这里提出了解决该问题的潜在方法。具有多个谐波的矩形脉冲用于驱动气泡。通过修正的Rayleigh-Plesset方程研究反向散射过程。结果表明,矩形波有效地改善了微气泡的可见性,其超声反向散射效率明显高于广泛使用的高斯波形。使用具有4次和2次谐波的矩形脉冲在气泡反向散射行为中没有显着差异,这表明实际上在适度的入射压力下,双频激励可能足以引起微气泡的非线性行为。

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