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Two -fluid nonlinear mathematical model for pulsatile blood flow through catheterized arteries

机译:流经导管动脉的脉动血流的双流体非线性数学模型

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The pulsatile flow of blood through a catheterized artery is analyzed, assuming the blood as a two-fluid model with the suspension of all the erythrocytes in the core region as a Herschel-Bulkley fluid and the peripheral region of plasma as a Newtonian fluid. The resulting system of the nonlinear implicit system of partial differential equations is solved by perturbation method. The expressions for shear stress, velocity, flow rate, wall shear stress and longitudinal impedance are obtained. The variations of these flow quantities with yield stress, catheter radius ratio, amplitude, pulsatile Reynolds number ratio and peripheral layer thickness are discussed. The velocity and flow rate are observed to decrease, and the wall shear stress and resistance to flow increase when the yield stress increases. The plug flow velocity and flow rate decrease, and the longitudinal impedance increases when the catheter radius ratio increases. The velocity and flow rate increase while the wall shear stress and longitudinal impedance decrease with the increase of the peripheral layer thickness. The estimates of the increase in the longitudinal impedance are significantly lower for the present two-fluid model than those of the single-fluid model.
机译:分析了通过导管动脉的脉动血流,并假设血液为双流体模型,核心区域中所有红细胞的悬浮液为Herschel-Bulkley流体,血浆外围区域为牛顿流体。用摄动法求解偏微分方程非线性隐式系统的结果系统。得到了剪应力,速度,流速,壁剪应力和纵向阻抗的表达式。讨论了这些流量随屈服应力,导管半径比,振幅,脉动雷诺数比和外围层厚度的变化。当屈服应力增加时,观察到速度和流速降低,并且壁切应力和流动阻力增加。当导管半径比增加时,塞子流速和流速降低,并且纵向阻抗增加。随着外围层厚度的增加,速度和流速增加,而壁切应力和纵向阻抗减小。对于当前的双流体模型,纵向阻抗增加的估计值明显低于单流体模型。

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