Oscillatory Blood Flow and Embolitic Plaque Effect Through a Microchannel with Metabolic Heat and Magnetic Field

K. Bunonyo, L. Ebiwareme
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引用次数: 2

Abstract

An attempt was made to investigate an embolitic plaque effect on blood flow through a microchannel and the impact of the magnetic field, metabolic heat, and external heat source on improving blood flow. To address the aforementioned objectives, mathematical models were developed for blood flow and heat transfer with a source. The governing models were scaled using the dimensionless quantities, and the plaque area was derived from Dominguez [28], in which it was incorporated into the governing equations. The governing equations were further reduced to ordinary differential equations using the perturbation method, and the subsequent ordinary differential equations were solved using the method of undermined coefficients, and the constants obtained with the help of the matrix method using the boundary conditions. Furthermore, simulation was carried out to study the effect of the pertinent parameters using Wolfram Mathematica, a computational software. From the simulated results, it is seen that the entering parameters such as magnetic field parameter, the Reynolds number, Womersley number, oscillatory frequency parameter, and permeability parameter all affect the blood velocity and temperature profiles, showing significant impactful results that are useful to both mathematicians and clinicians.
代谢热和磁场微通道振荡血流和栓塞斑块效应
我们试图研究栓塞斑块对微通道血流的影响,以及磁场、代谢热和外部热源对改善血流的影响。为了实现上述目标,开发了具有热源的血液流动和传热的数学模型。控制模型使用无因次量进行缩放,斑块面积由Dominguez[28]导出,并纳入控制方程。利用微扰法将控制方程进一步化简为常微分方程,利用破坏系数法求解后续的常微分方程,利用边界条件借助于矩阵法求得常数。在此基础上,利用Wolfram Mathematica软件对相关参数的影响进行了仿真研究。从模拟结果可以看出,磁场参数、雷诺数、沃默斯利数、振荡频率参数、磁导率参数等输入参数都会影响血流速度和血流温度分布,具有显著的影响结果,对数学家和临床医生都有一定的参考价值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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