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首页> 外文期刊>Journal of biomechanical engineering. >Pulse-Wave Propagation in Straight-Geometry Vessels for Stiffness Estimation: Theory, Simulations, Phantoms and In Vitro Findings
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Pulse-Wave Propagation in Straight-Geometry Vessels for Stiffness Estimation: Theory, Simulations, Phantoms and In Vitro Findings

机译:直线几何容器中用于刚度估计的脉搏波传播:理论,仿真,幻影和体外发现

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Pulse wave imaging (PWI) is an ultrasound-based method for noninvasive characterization of arterial stiffness based on pulse wave propagation. Reliable numerical models of pulse wave propagation in normal and pathological aortas could serve as powerful tools for local pulse wave analysis and a guideline for PWI measurements in vivo. The objectives of this paper are to (1) apply a fluid-structure interaction (FSI) simulation of a straight-geometry aorta to confirm the Moens-Korteweg relationship between the pulse wave velocity (PWV) and the wall modulus, and (2) validate the simulation findings against phantom and in vitro results. PWI depicted and tracked the pulse wave propagation along the abdominal wall of canine aorta in vitro in sequential Radio-Frequency (RF) ultrasound frames and estimates the PWV in the imaged wall. The same system was also used to image multiple polyacrylamide phantoms, mimicking the canine measurements as well as modeling softer and stiffer walls. Finally, the model parameters from the canine and phantom studies were used to perform 3D two-way coupled FSI simulations of pulse wave propagation and estimate the PWV. The simulation results were found to correlate well with the corresponding Moens-Korteweg equation. A high linear correlation was also established between PWV~2 and E measurements using the combined simulation and experimental findings (R~2=0.98) confirming the relationship established by the aforementioned equation.
机译:脉搏波成像(PWI)是一种基于超声的方法,可基于脉搏波传播对动脉僵硬度进行非侵入性表征。正常和病理主动脉中脉搏波传播的可靠数值模型可作为进行局部脉搏波分析的有力工具和体内PWI测量的指南。本文的目的是(1)对直线几何主动脉进行流固耦合(FSI)模拟,以确认脉搏波速度(PWV)与壁模量之间的Moens-Korteweg关系,以及(2)验证针对幻影和体外结果的仿真结果。 PWI在连续的射频(RF)超声帧中描绘并跟踪了脉冲波在体外沿犬主动脉腹壁的传播情况,并估算了成像壁中的PWV。相同的系统还用于对多个聚丙烯酰胺体模进行成像,模仿犬的测量以及对较软和较硬的壁进行建模。最后,来自犬类和体模研究的模型参数被用于执行3D双向耦合FSI的脉冲波传播仿真,并估计PWV。发现仿真结果与相应的Moens-Korteweg方程很好地相关。结合模拟和实验结果(R〜2 = 0.98),在PWV〜2和E测量值之间也建立了高线性相关性,从而证实了由上述方程式建立的关系。

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