Weerappuli D P, Popel A S
Department of Biomedical Engineering, School of Medicine, Johns Hopkins University, Baltimore, Md 21205.
J Biomech Eng. 1989 Feb;111(1):24-31. doi: 10.1115/1.3168335.
A mathematical model is developed to study the effect of capillary convection on oxygen transport around segments of arterioles and venules that are surrounded by capillaries. These capillaries carry unidirectional flow perpendicular to the vessel. The discrete capillary structure is distributed in a manner determined by the capillary blood flow and capillary density. A nonlinear oxyhemoglobin dissociation curve described by the Hill equation is used in the analysis. Oxygen flux from the vessel is expressed as a relationship between Sherwood and Peclet numbers, as well as other dimensionless combinations involving parameters of the capillary bed. A numerical solution is obtained with a finite difference method. The numerical results obtained within the physiological range of parameters allow the prediction of longitudinal gradients of hemoglobin-oxygen saturation along the arterioles and venules.
建立了一个数学模型,以研究毛细血管对流对被毛细血管包围的小动脉和小静脉段周围氧气输送的影响。这些毛细血管携带垂直于血管的单向流动。离散的毛细血管结构以由毛细血管血流和毛细血管密度决定的方式分布。分析中使用了由希尔方程描述的非线性氧合血红蛋白解离曲线。来自血管的氧通量表示为舍伍德数和佩克莱特数之间的关系,以及涉及毛细血管床参数的其他无量纲组合。用有限差分法获得了数值解。在参数的生理范围内获得的数值结果允许预测沿小动脉和小静脉的血红蛋白-氧饱和度的纵向梯度。