Impacts of activation energy and electroosmosis on peristaltic motion of micropolar Newtonian nanofluid inside a microchannel

N. Eldabe, M. Y. Abouzeid, M. Abdelmoneim, M. Ouaf
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Abstract

This study investigates the impact of electroosmosis on the peristaltic flow of unsteady micropolar nanofluid with heat transfer. The findings could enhance the design of peristaltic pumps, potentially improving drug delivery systems, simulations of blood flow in medical devices, and cancer treatments. The fluid under investigation adheres to a micropolar model and flows through a microchannel that exhibits peristalsis along its walls. Moreover, the system is subjected to various external effects, including a uniform magnetic field, the electroosmotic phenomenon, heat absorption, and a chemical reaction with activation energy. Consequently, the problem is mathematically modulated by a system of nonlinear partial differential equations governing the velocity, temperature, and nanoparticle concentration. By employing wave transformation, these governing equations are reduced to ordinary differential equations (ODEs). The reduced equations were solved both analytically, using the homotopy perturbation method, and numerically, using the Runge–Kutta–Merson method. A comparison was made between the solutions, which were found to be closely aligned. Furthermore, a series of figures were employed to provide visual representation and discussion of the implications of the physical properties. The calculations reveal that the electroosmotic flow (EOF) enhances the axial flow of the micropolar fluid along the direction of the applied electric field. It is also observed that the increase in the activation energy (which indicates a low reaction rate) increases the concentration profile whereas the increase in the reaction rate parameter reduces the concentration profile. Additionally, the spin velocity of the particles is diminished by either an increase in the magnetic parameter or the coupling parameter.
活化能和电渗对微通道内微波牛顿纳米流体蠕动的影响
这项研究探讨了电渗对带有热传导的非稳定微波纳米流体蠕动流动的影响。研究结果可改进蠕动泵的设计,从而改善药物输送系统、医疗设备中的血流模拟以及癌症治疗。所研究的流体附着在微极模型上,流经微通道,沿通道壁发生蠕动。此外,系统还受到各种外部效应的影响,包括均匀磁场、电渗现象、吸热以及具有活化能的化学反应。因此,该问题在数学上是由一个非线性偏微分方程系统来调节速度、温度和纳米粒子浓度的。通过波变换,这些控制方程被简化为常微分方程(ODE)。利用同调扰动法对简化方程进行了分析求解,并利用 Runge-Kutta-Merson 方法对其进行了数值求解。比较后发现,这些解法非常接近。此外,还采用了一系列图表来直观地表示和讨论物理特性的含义。计算结果表明,电渗流(EOF)增强了微极流体沿外加电场方向的轴向流动。计算还发现,活化能的增加(表明反应速率较低)会增加浓度分布,而反应速率参数的增加则会降低浓度分布。此外,磁参数或耦合参数的增加都会降低粒子的自旋速度。
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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