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The Computational Fluid Dynamics Analyses on Hemodynamic Characteristics in Stenosed Arterial Models

机译:狭窄动脉模型血流动力学特征的计算流体动力学分析

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摘要

Arterial stenosis plays an important role in the progressions of thrombosis and stroke. In the present study, a standard axisymmetric tube model of the stenotic artery is introduced and the degree of stenosis η is evaluated by the area ratio of the blockage to the normal vessel. A normal case (η = 0) and four stenotic cases of η = 0.25, 0.5, 0.625, and 0.75 with a constant Reynolds number of 300 are simulated by computational fluid dynamics (CFD), respectively, with the Newtonian and Carreau models for comparison. Results show that for both models, the poststenotic separation vortex length increases exponentially with the growth of stenosis degree. However, the vortex length of the Carreau model is shorter than that of the Newtonian model. The artery narrowing accelerates blood flow, which causes high blood pressure and wall shear stress (WSS). The pressure drop of the η = 0.75 case is nearly 8 times that of the normal value, while the WSS peak at the stenosis region of η = 0.75 case even reaches up to 15 times that of the normal value. The present conclusions are of generality and contribute to the understanding of the dynamic mechanisms of artery stenosis diseases.
机译:动脉狭窄在血栓形成和中风的进展中起重要作用。在本研究中,引入了标准的狭窄动脉轴对称管模型,并通过对正常血管的阻塞面积比来评估狭窄程度η。雷诺数为300的正常情况(η= 0)和四个狭窄情况η= 0.25、0.5、0.625和0.75分别通过计算流体力学(CFD)进行了仿真,并使用牛顿模型和Carreau模型进行了比较。结果表明,两种模型的狭窄后分离涡长度均随狭窄程度的增加而呈指数增长。但是,Carreau模型的涡旋长度比牛顿模型的涡旋长度短。动脉变窄会加速血液流动,从而导致高血压和壁切应力(WSS)。 η= 0.75情况下的压降几乎是正常值的8倍,而η= 0.75情况下狭窄部位的WSS峰值甚至达到正常值的15倍。目前的结论具有普遍性,有助于理解动脉狭窄疾病的动力学机制。

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