倾斜MHD在具有蠕动的锥形非对称多孔通道中的效应:在生物医学中的应用

A. Tanveer, Sharak Jarral
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引用次数: 0

摘要

本文着重研究了滑移边界条件下带蠕动的锥形非对称多孔通道的倾斜磁流体力学效应。这里我们考虑了多孔介质的二维通道。将长波长和低雷诺数的基本假设应用于动量、热量和质量传递的相关非线性方程中,作为数学建模的一部分。利用Mathematica软件对滑移边界条件下的方程进行了数值求解。各种基本的物理特性的速度,温度,浓度,和传热率的图形捕获在最后。对于所涉及的各种参数,速度分布都是抛物线形的。我们观察到,与温度和浓度分布相比,嵌入的参数表现出完全相反的方式。传热速率的正弦特性也被显示出来。这项工作的独特之处在于,在滑移边界条件的影响下,具体地将非牛顿杰弗里流体在非对称锥形通道中的蠕动流动中的焦耳加热、达西阻力和倾斜磁场效应联系起来。这种偏好在工程、生物和工业中有着广泛的应用。所提出的工作成果也精通医学领域使用MHD治疗癌症。MHD还通过调节血流来帮助控制收缩压和舒张压条件下的血压。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inclined MHD Effects in Tapered Asymmetric Porous Channel with Peristalsis: Applications in Biomedicine
This paper emphasized an inclined magnetohydrodynamics (MHD) effects in tapered asymmetric porous channel with peristalsis in the presence of slip boundary conditions. Here we considered the two-dimensional channel with a porous medium. The fundamental assumptions of long wavelength and low Reynolds number are applied in the relevant nonlinear equations for momentum, heat, and mass transfer as part of mathematical modeling. The equations subjected to slip boundary conditions have been solved numerically by the Mathematica software. Various essential physical characteristics of velocity, temperature, concentration, and heat transfer rate are captured graphically in the end. The velocity profile is found parabolic for various involved parameters. It is observed that the embedded parameters behave in the exact opposite manner when compared with temperature and concentration distributions. The sinusoidal behavior of the heat transfer rate is also displayed. The unique aspect of this effort is specifically to relate the Joule heating, Darcy resistance, and inclined magnetic field effects in peristaltic flow for a non-Newtonian Jeffrey fluid in an asymmetric tapered channel under the influence of slip boundary conditions. Such preferences have a wide range of applications in engineering, biology, and industry. The outcomes of the presented work are also proficient in the medical field for the treatment of cancer using MHD. The MHD also aids in controlling blood pressure during systolic and diastolic pressure conditions by regulating the blood flow stream.
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