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Influence of oriented magnetic field on natural convection in an equilateral triangular enclosure filled with water- and kerosene-based ferrofluids using a two-component nonhomogeneous thermal equilibrium model

机译:使用两组分非均质热平衡模型,定向磁场对充满水和煤油基铁磁流体的等边三角形外壳中自然对流的影响

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In this paper, hydromagnetic natural convection heat transfer in an equilateral triangular enclosure filled with water- and kerosene-based ferrofluids has been analyzed using a two-component non-homogeneous thermal equilibrium model. The enclosure is permeated by an inclined magnetic field of having uniform strength. The effects of Brownian motion and thermophoresis of the nanoparticles are incorporated into the ferrofluid model. The Galerkin weighted residual finite-element method has been employed to solve the governing nondimensional partial differential equations. Fe_(3)O_(4)-water and Co-kerosene ferrofluids have been used for the present investigation. The effects of various model parameters such as Rayleigh number, Hartmann number, and inclination angle of the magnetic field on the streamlines, isotherms, and isoconcentrations have been displayed graphically. In addition, the heat transfer augmentation for various combinations of model parameters have been done in light of the average Nusselt number from the bottom heated wall. The results indicate that increment in the magnetic field reduces the heat transfer rate, whereas increment in the magnetic field inclination angle augments the heat transfer rate significantly. The results further indicate that there exists a strong interaction between cobalt and kerosene in the presence of magnetic field which can be utilized efficiently for desired heat transfer augmentation in engineering problems.
机译:在本文中,使用两组分非均质热平衡模型分析了在充满水和煤油基铁磁流体的等边三角形外壳中的水磁自然对流换热。外壳被具有均匀强度的倾斜磁场所渗透。布朗运动和纳米粒子的热泳的影响被纳入铁磁流体模型。 Galerkin加权残差有限元方法已被用来求解控制的无量纲偏微分方程。 Fe_(3)O_(4)-水和煤油铁磁流体已用于本研究。各种模型参数(如瑞利数,哈特曼数和磁场倾角)对流线,等温线和等浓度的影响已通过图形显示。另外,已经根据来自底部加热壁的平均努塞尔数对模型参数的各种组合进行了传热增强。结果表明,磁场的增加会降低传热速率,而磁场倾斜角的增加会显着提高传热速率。结果还表明,在磁场存在下,钴和煤油之间存在很强的相互作用,可以有效地用于工程问题中所需的传热增强。

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