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Numerical simulation of unsteady ethylene glycol/CNTs micropolar nanofluid flow through a squeezing channel: An approach to industrial applications

机译:Numerical simulation of unsteady ethylene glycol/CNTs micropolar nanofluid flow through a squeezing channel: An approach to industrial applications

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摘要

The impressive high thermal conductivity and low weight allow the carbon nanotubes (CNTs) to improve heat dissipation and cooling. In the present problem, we aim to analyze the CNTs embedded micropolar nanofluid flow between two parallel stretching sheets with the base fluid ethylene glycol (EG) which is effectively used as antifreeze and coolant. Both single-walled carbon nanotubes and multiwalled carbon nanotubes (MWCNTs) are considered. The fluid is influenced by the external magnetic field parallel to the microrotation along with viscous and Joule dissipations. The flow and heat equations are converted to a set of coupled ordinary differential equations with the aid of similarity transformations. Due to the nonexistence of the closed-form solution, we have developed the analytical approximate solution by homotopy analysis method using the polynomial base function. Furthermore, we have used the most efficient Runge-Kutta integration scheme of the fourth order associated with shooting technique to solve the system of equations. Results are exhibited graphically for various physical parameters and also found a good agreement with earlier work. From the results, we noticed that squeezing increases the angular velocity of the fluid particles. Also, in the case of squeezing, the volume fraction has enhanced the viscous drag and was found high for MWCNT-EG nanofluid.
机译:令人印象深刻的高导热系数低重量允许碳纳米管(碳纳米管)提高散热和冷却。现在的问题,我们的目标是分析碳纳米管两个嵌入微极nanofluid流平行伸展与基液表乙二醇(EG)的有效使用防冻液,冷却液。碳纳米管和碳纳米管微(热合)被认为是。由外部磁场平行microrotation粘性和焦耳量值。转换为一组耦合的普通微分方程的相似性转换。封闭的解决方案,我们已经开发了同伦分析近似解使用多项式基本分析方法函数。高效的龙格-库塔的集成方案四阶与射击技术解决方程组。以图形方式展示各种物理参数,也发现了一个很好的协议早些时候的工作。挤压增加的角速度流体粒子。体积分数提高了粘性阻力和被发现高MWCNT-EG nanofluid。

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