Cho Y I, Kensey K R
Department of Mechanical Engineering, Drexel University, Philadelphia, PA 19104.
Biorheology. 1991;28(3-4):241-62. doi: 10.3233/bir-1991-283-415.
Effects of the non-Newtonian viscosity of blood on a flow in a coronary arterial casting of man were studied numerically using a finite element method. Various constitutive models were examined to model the non-Newtonian viscosity of blood and their model constants were summarized. A method to incorporate the non-Newtonian viscosity of blood was introduced so that the viscosity could be calculated locally. The pressure drop, wall shear stress and velocity profiles for the case of blood viscosity were compared for the case of Newtonian viscosity (0.0345 poise). The effect of the non-Newtonian viscosity of blood on the overall pressure drop across the arterial casting was found to be significant at a flow of the Reynolds number of 100 or less. Also in the region of flow separation or recirculation, the non-Newtonian viscosity of blood yields larger wall shear stress than the Newtonian case. The origin of the non-Newtonian viscosity of blood was discussed in relation to the viscoelasticity and yield stress of blood.
采用有限元方法对血液非牛顿粘性对人体冠状动脉铸型内血流的影响进行了数值研究。研究了各种本构模型以模拟血液的非牛顿粘性,并总结了它们的模型常数。介绍了一种纳入血液非牛顿粘性的方法,以便能够局部计算粘性。将血液粘性情况下的压降、壁面剪应力和速度分布与牛顿粘性(0.0345泊)情况下进行了比较。发现在雷诺数为100或更小的流量下,血液非牛顿粘性对整个动脉铸型上的总压降有显著影响。同样在流动分离或再循环区域,血液的非牛顿粘性产生的壁面剪应力比牛顿情况更大。结合血液的粘弹性和屈服应力讨论了血液非牛顿粘性的起源。