Department of Mathematical Sciences, Abubakar Tafawa Balewa University, Bauchi, Nigeria.
Department of Mathematics and Statistics, Yobe State, University, Damaturu, Nigeria.
Comput Methods Biomech Biomed Engin. 2024 Apr;27(5):558-569. doi: 10.1080/10255842.2023.2190833. Epub 2023 Mar 23.
In this research work, we investigate the influence of heat source and chemical reaction on electro-magneto-hydrodynamic (EMHD) blood flow through bifurcated arteries with external tilted magnetic field for treating tumor. The potential electric field applied along the bifurcated arterial wall, accurately described the Poisson-Boltzmann equation. We modeled the EMHD blood flow to obtain the non-dimensionalized form of the equations. We converted the modeled equations to ordinary differential equations by the use of suitable variables. Exact solutions of the converted equations are calculated by the method of undetermined coefficients and the results obtained with the aid of Mathcad software were simulated and presented graphically. From the graphical representation of results, we observed that increase in Joule heating and Eckert number, increases the temperature distribution in the affected tumor cells which prevent high thermal radiation exposure from killing the healthy cells within the tumor region. The curves of the wall shear stress seem to be greater in the converging region in comparison to the diverging region, but when the strength of magnetic field and thermal radiation parameters increase the wall shear stress decreases at the bifurcated wall where blockage may likely occur due to the development of boundary layers on the inner walls of the bifurcated region. By increasing the heat radiation parameter, we observed that the curves representing both velocity and temperature profiles increase rapidly from the origin and the velocity of blood flow varies directly for the converging, diverging and the tumor regions of the bifurcated arteries. Thus, thermal radiation effect is a result of the higher rate of heat transfer at the vessel walls. Further, combining the electromagnetic field and the heat radiation together gives new insights of the physical properties of blood flow in the body system network which is essential for health practitioners and clinicians.
在这项研究工作中,我们研究了热源和化学反应对带有外部倾斜磁场的分叉动脉中电-磁-流体动力学(EMHD)血流的影响,以治疗肿瘤。沿分叉动脉壁施加的电势电场准确描述了泊松-玻尔兹曼方程。我们对 EMHD 血流进行建模,以获得方程的无量纲形式。我们通过使用合适的变量将模型方程转换为常微分方程。通过不确定系数法计算转换方程的精确解,并借助 Mathcad 软件获得结果并以图形方式呈现。从结果的图形表示中,我们观察到焦耳加热和埃克特数的增加会增加受影响肿瘤细胞中的温度分布,从而防止高热辐射暴露杀死肿瘤区域内的健康细胞。壁面剪切应力曲线在汇聚区域似乎比发散区域更大,但当磁场强度和热辐射参数增加时,壁面剪切应力在分叉壁处减小,由于分叉区域内壁上边界层的发展,可能会发生阻塞。通过增加热辐射参数,我们观察到代表速度和温度分布的曲线从原点迅速增加,并且血流速度在分叉动脉的汇聚、发散和肿瘤区域直接变化。因此,热辐射效应是血管壁处传热速率较高的结果。此外,将电磁场和热辐射结合在一起,可以深入了解体内系统网络中血流的物理性质,这对健康从业者和临床医生来说是必不可少的。