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首页> 外文期刊>Journal of Biomechanics >Experimental and numerical study of pulsatile flows through stenosis: wall shear stress analysis.
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Experimental and numerical study of pulsatile flows through stenosis: wall shear stress analysis.

机译:狭窄脉动流的实验和数值研究:壁切应力分析。

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摘要

Different shapes of pulsatile flows through a model of stenosis are experimentally and numerically modeled to validate both methods and to determine the wall shear stress temporal evolution downstream from the stenosis. Two-dimensional velocity measurements are performed in a 75% severity stenosis using a pulsed Doppler ultrasonic velocimeter. Finite element package is employed for the transient numerical simulations. Polynomial method, based on the experimental velocity values, is proposed to determine the wall shear stress temporal evolution. There is a good agreement between the numerical and experimental results. The wall shear stress temporal analysis shows oscillating wall shear stress values during the cycle with high wall shear stress values at the throat of about 120 dyn/cm2, and low values downstream from the stenosis of about - 2.5 dyn/cm2. The key result of the study is that the presence of the stenosis leads the artery to work in a direction which is opposite to the direction of a healthy artery.
机译:通过狭窄和狭窄的模型对不同形状的脉动流进行实验和数值模拟,以验证这两种方法并确定狭窄下游的壁切应力的时间演变。使用脉冲多普勒超声测速仪以75%的严重程度狭窄进行二维速度测量。有限元软件包用于瞬态数值模拟。提出了基于实验速度值的多项式方法来确定壁面剪应力的时间演化。数值和实验结果之间有很好的一致性。壁切应力时间分析显示,在循环过程中壁振动切应力值振荡,喉部处的壁切应力值较高,约为120 dyn / cm2,狭窄下游的壁切应力值较低,约为-2.5 dyn / cm2。该研究的关键结果是狭窄的存在导致动脉沿与健康动脉方向相反的方向工作。

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