倾斜磁场影响下血液流经轻度狭窄的倾斜锥形多孔动脉的流动特性分析

Neetu Srivastava
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引用次数: 0

摘要

在倾斜磁场的影响下,对多孔倾斜狭窄动脉中的 MHD 血流进行了分析研究。血液被视为导电的牛顿流体。该问题的物理现象由通常的 MHD 方程和适当的边界条件来描述。最后将流动控制方程转换为非均质二阶常微分方程。该模型符合磁流体力学原理。推导出了速度曲线、容积流量、壁面剪应力和压力梯度的分析表达式。针对模型分析中涉及的不同参数的特定值集,计算出了血流特征,并以图表形式展示出来。一些结果表明,汇聚区(ξ < 0)、发散区(ξ > 0)和非锥形区(ξ = 0)的流动模式受到磁场存在、动脉倾斜度变化以及磁场的有效影响。渗透率对管壁剪应力和容积流速也有显著影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Analysis of Flow Characteristics of the Blood Flowing through an Inclined Tapered Porous Artery with Mild Stenosis under the Influence of an Inclined Magnetic Field.

Analysis of Flow Characteristics of the Blood Flowing through an Inclined Tapered Porous Artery with Mild Stenosis under the Influence of an Inclined Magnetic Field.

Analysis of Flow Characteristics of the Blood Flowing through an Inclined Tapered Porous Artery with Mild Stenosis under the Influence of an Inclined Magnetic Field.

Analysis of Flow Characteristics of the Blood Flowing through an Inclined Tapered Porous Artery with Mild Stenosis under the Influence of an Inclined Magnetic Field.

Analytical investigation of MHD blood flow in a porous inclined stenotic artery under the influence of the inclined magnetic field has been done. Blood is considered as an electrically conducting Newtonian fluid. The physics of the problem is described by the usual MHD equations along with appropriate boundary conditions. The flow governing equations are finally transformed to nonhomogeneous second-order ordinary differential equations. This model is consistent with the principles of magnetohydrodynamics. Analytical expressions for the velocity profile, volumetric flow rate, wall shear stress, and pressure gradient have been derived. Blood flow characteristics are computed for a specific set of values of the different parameters involved in the model analysis and are presented graphically. Some of the obtained results show that the flow patterns in converging region (ξ < 0), diverging region (ξ > 0), and nontapered region (ξ = 0) are effectively influenced by the presence of magnetic field and change in inclination of artery as well as magnetic field. There is also a significant effect of permeability on the wall shear stress as well as volumetric flow rate.

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