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Non-invasive Estimation of Pressure Changes along a Streamline using Vector Velocity Ultrasound

机译:矢量速度超声对流线压力变化的无创估计

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摘要

A non-invasive method for estimating pressure changes along a streamline using ultrasound is presented. The suggested method estimates pressure gradients from 2-D vector velocity fields. Changes in pressure are derived using a model based on the Navier-Stokes equations. Scans of a carotid bifurcation phantom with a 70% constriction are performed using a linear array transducer connected to the experimental scanner, SARUS. 2-D fields of angle-independent vector velocities are acquired to a depth of 3 cm using directional synthetic aperture vector flow imaging. The performance of the suggested estimator is evaluated by comparing its results to a 3-D numerical simulation model. The study showed pressure drops across the constricted phantom varying from -5 Pa to 7 Pa with a standard deviation of 4%. The proposed method had a normalised rootmean-square error of 10% in reference to the simulation model. Further, an in-vivo scan of the carotid bifurcation is made to show the feasibility of the technique in a less experimental environment
机译:提出了一种使用超声估计沿流线的压力变化的非侵入性方法。建议的方法根据二维矢量速度场估算压力梯度。使用基于Navier-Stokes方程的模型可以得出压力的变化。使用连接到实验扫描仪SARUS的线性阵列换能器,对颈动脉分叉幻像进行70%收缩的扫描。使用方向性合成孔径矢量流成像,可将角度无关矢量速度的二维场获取到3 cm的深度。通过将估计的结果与3-D数值模拟模型进行比较,可以评估建议的估计器的性能。研究表明,收缩体模上的压降从-5 Pa到7 Pa不等,标准偏差为4%。相对于仿真模型,该方法的均方根误差为10%。此外,进行了颈动脉分叉的体内扫描,以显示该技术在较少实验环境中的可行性

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