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二维区域上的实时血流速度向量测量。

Real-Time Blood Velocity Vector Measurement Over a 2-D Region.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2018 Feb;65(2):201-209. doi: 10.1109/TUFFC.2017.2781715.

Abstract

Quantitative blood velocity measurements, as currently implemented in commercial ultrasound scanners, are based on pulsed-wave (PW) spectral Doppler and are limited to detect the axial component of the velocity in a single sample volume. On the other hand, vector Doppler methods produce angle-independent estimates by, e.g., combining the frequency shifts measured from different directions. Moreover, thanks to the transmission of plane waves, the investigation of a 2-D region is possible with high temporal resolution, but, unfortunately, the clinical use of these methods is hampered by the massive calculation power required for their real-time execution. In this paper, we present a novel approach based on the transmission of plane waves and the simultaneous reception of echoes from 16 distinct subapertures of a linear array probe, which produces eight lines distributed over a 2-D region. The method was implemented on the ULAO-OP 256 research scanner and tested both in phantom and in vivo. A continuous real-time refresh rate of 36 Hz was achieved in duplex combination with a standard B-mode at pulse repetition frequency of 8 kHz. Accuracies of -11% on velocity and of 2°on angle measurements have been obtained in phantom experiments. Accompanying movies show how the method improves the quantitative measurements of blood velocities and details the flow configurations in the carotid artery of a volunteer.

摘要

定量血流速度测量,如目前在商业超声扫描仪中实现的,基于脉冲波(PW)频谱多普勒,并仅限于在单个取样体积中检测速度的轴向分量。另一方面,矢量多普勒方法通过例如组合从不同方向测量的频率偏移来产生与角度无关的估计。此外,由于平面波的传输,能够以高时间分辨率对二维区域进行研究,但不幸的是,这些方法的临床应用受到实时执行所需的大量计算能力的阻碍。在本文中,我们提出了一种新方法,该方法基于平面波的传输和线性阵列探头的 16 个不同子孔径的回声同时接收,该方法产生分布在二维区域上的 8 条线。该方法已在 ULAO-OP 256 研究扫描仪上实现,并在体模和体内进行了测试。在与脉冲重复频率为 8 kHz 的标准 B 模式的双工组合中,实现了 36 Hz 的连续实时刷新速率。在体模实验中,获得了速度为-11%和角度测量为 2°的准确度。伴随的电影展示了该方法如何改善血流速度的定量测量,并详细说明了志愿者颈动脉中的血流结构。

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