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A non-Newtonian fluid flow model for blood flow through a catheterized artery—Steady flow

机译:通过导管动脉的血流的非牛顿流体流模型-稳定流

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In this paper the effects catheterization and non-Newtonian nature of blood in small arteries of diameter less than 100 μm, on velocity, flow resistance and wall shear stress are analyzed mathematically by modeling blood as a Her-schel-Bulkley fluid with parameters n and θ and the artery and catheter by coaxial rigid circular cylinders. The influence of the catheter radius and the yield stress of the fluid on the yield plane locations, velocity distributions, flow rate, wall shear stress and frictional resistance are investigated assuming the flow to be steady. It is shown that the velocity decreases as the yield stress increases for given values of other parameters. The frictional resistance as well as the wall shear stress increases with increasing yield stress, whereas the frictional resistance increases and the wall shear stress decreases with increasing catheter radius ratio k (catheter radius to vessel radius). For the range of catheter radius ratio 0.3-0.6, in smaller arteries where blood is modeled by Herschel-Bulkley fluid with yield stress θ = 0.1, the resistance increases by a factor 3.98-21.12 for n = 0.95 and by a factor 4.35-25.09 for n= 1.05. When θ = 0.3, these factors are 7.47-124.6 when n = 0.95 and 8.97-247.76 when n = 1.05.
机译:本文通过将血液建模为参数为n和n的Her-schel-Bulkley流体,对直径小于100μm的小动脉中的导管插入和非牛顿性质对速度,流动阻力和壁切应力的影响进行了数学分析。 θ与动脉和导管由同轴的刚性圆柱体构成。在假定流量稳定的情况下,研究了导管半径和流体的屈服应力对屈服平面位置,速度分布,流速,壁切应力和摩擦阻力的影响。结果表明,对于给定的其他参数值,速度随着屈服应力的增加而降低。摩擦阻力以及壁切应力随着屈服应力的增加而增加,而摩擦阻力随着导管半径比k(导管半径与血管半径)的增加而增加,并且壁剪切应力减小。对于导管半径比0.3-0.6的范围,在较小的动脉中,血液以Herschel-Bulkley流体建模,屈服应力θ= 0.1,对于n = 0.95,阻力增加3.98-21.12倍,而在4.35-25.09倍。对于n = 1.05。当θ= 0.3时,这些因子在n = 0.95时为7.47-124.6,在n = 1.05时为8.97-247.76。

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