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首页> 外文期刊>Heat Transfer >Convective heat transfer in magnetohydrodynamic TiO2–CuO/ethylene glycol hybrid nanofluid flow toward stagnation point on a radially stretching disk with thermal radiation
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Convective heat transfer in magnetohydrodynamic TiO2–CuO/ethylene glycol hybrid nanofluid flow toward stagnation point on a radially stretching disk with thermal radiation

机译:Convective heat transfer in magnetohydrodynamic TiO2–CuO/ethylene glycol hybrid nanofluid flow toward stagnation point on a radially stretching disk with thermal radiation

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摘要

A prime concern of this analysis is to investigate a steady, two‐dimensional, axisymmetric magnetohydrodynamic (MHD) stagnation point flow of TiO2–CuO/ethylene glycol (TiO2–CuO/EG) hybrid nanofluid through a radially stretched disk. Effects of thermal radiation, viscous dissipation, and Joule heating along convective boundary conditions have been taken into consideration. Suitable similarity conversions have been employed to simplify the set of flow controlling partial differential equations of the arising model. Subsequently, the finite element method has been utilized for computational results of the obtained set of ordinary differential equations with associated boundary conditions. The influence of various pertinent parameters, stretching parameter, solid volume fraction, magnetic parameter, Biot number, radiation parameter, and Brinkman number on dimensionless velocity and temperature have been displayed graphically. Subsequently, the responses of hybrid nanofluid (TiO2–CuO/EG) and regular nanofluid (CuO/EG) for these parameters have been compared pairwise, and it has been observed that TiO2 ${text{TiO}}_{2}$ nanoparticles in ethylene glycol are both controlling the temperature and improving the fluid velocity. Moreover, variations in local skin friction and local Nusselt number for certain values of embedded parameters have been illustrated in tabulated form. It is comprehended that augmented solid volume fraction, magnetic parameter, local Biot number, radiation parameter, and Brinkman number have improved the temperature profile. The velocity profile has been enhanced for the stretching parameter, while the reverse trend has occurred in the case of solid volume fraction and magnetic parameter. The outcomes of this study may be applicable in solar thermal systems.
机译:这个分析主要关注的是调查一个稳定的、两维轴对称磁流体动力(磁流体动力)驻点流动TiO2-CuO /乙二醇(TiO2-CuO / EG)混合动力车nanofluid通过磁盘径向延伸。热辐射的影响,粘性耗散,焦耳加热对流已经采取了边界条件考虑。曾以简化的流控制的偏微分方程产生的模型。方法已用于计算获得的一组普通的结果微分方程与边界相关联条件。参数、拉伸参数、固体体积分数,磁参数,毕奥数,辐射参数,和边缘主义者数量无量纲速度和温度以图形方式显示。反应的混合nanofluid (TiO2-CuO / EG)常规nanofluid(措/ EG)为这些参数两两相比,它一直吗纳米粒子在乙二醇控制温度和提高流体速度。皮肤摩擦和局部努塞尔数某些嵌入参数的值表中所示的形式。增强固体体积分数,磁性参数,当地毕奥数,辐射参数和Brinkman数量有所改善的温度曲线。拉伸参数得到增强,而相反的趋势已经发生的情况固体体积分数和磁参数。本研究的结果可以适用于太阳能热系统。

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