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首页> 外文期刊>International Journal of Differential Equations >Numerical Simulation of Dispersed Particle-Blood Flow in the Stenosed Coronary Arteries
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Numerical Simulation of Dispersed Particle-Blood Flow in the Stenosed Coronary Arteries

机译:狭窄冠状动脉中弥散性血流的数值模拟

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A mathematical model of dispersed bioparticle-blood flow through the stenosed coronary artery under the pulsatile boundary conditions is proposed. Blood is assumed to be an incompressible non-Newtonian fluid and its flow is considered as turbulence described by the Reynolds-averaged Navier-Stokes equations. Bioparticles are assumed to be spherical shape with the same density as blood, and their translation and rotational motions are governed by Newtonian equations. Impact of particle movement on the blood velocity, the pressure distribution, and the wall shear stress distribution in three different severity degrees of stenosis including 25%, 50%, and 75% are investigated through the numerical simulation using ANSYS 18.2. Increasing degree of stenosis severity results in higher values of the pressure drop and wall shear stresses. The higher level of bioparticle motion directly varies with the pressure drop and wall shear stress. The area of coronary artery with higher density of bioparticles also presents the higher wall shear stress.
机译:提出了在脉动边界条件下流经狭窄的冠状动脉的生物粒子血流的数学模型。假定血液是不可压缩的非牛顿流体,并且其流动被视为由雷诺平均Navier-Stokes方程描述的湍流。假定生物颗粒是具有与血液相同密度的球形,并且它们的平移和旋转运动受牛顿方程控制。通过使用ANSYS 18.2进行数值模拟,研究了三种严重程度不同的狭窄程度(包括25%,50%和75%)下颗粒运动对血流速度,压力分布和壁切应力分布的影响。狭窄程度的增加会导致压降和壁切应力的值更高。高水平的生物粒子运动直接随压降和壁切应力而变化。具有较高生物颗粒密度的冠状动脉面积也表现出较高的壁切应力。

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