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On the role of enclosure side walls thickness and heater geometry in heat transfer enhancement of water-Al2O3 nanofluid in presence of a magnetic field

机译:基于外壳侧壁厚度和加热器几何形状的作用在磁场存在下水 - Al2O3纳米流体的热传递增强

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The natural heat convection within a square enclosure filled with water-Al2O3 nanofluid has been studied numerically in the presence of a magnetic field. The effect of heat source geometry attached to the bottom wall on the Nusselt number was investigated by changing its nondimensional width and height, and side walls thickness of the enclosure ranging from 0.1 to 0.5, 0.1 to 0.8 and 0.05 to 0.2, respectively. A regression model has been obtained along with conducting a sensitivity analysis seeking an optimal heat transfer. Results, reveal that Nusselt number increases by enlarging the fin, and reaching a peak point before it declines. Thus, interestingly, the ever-increasing heat transfer by means of fin size does not retain and there is an optimal point wherein the maximum heat transfer occurs. Moreover, the thermal performance of the system largely depends on the fin size rather than the relative side walls thickness. However, its effect intensifies as the fin width increases. Results of optimization show that the maximum heat transfer occurs at W = 0:4615, H = 0:6467 and L-b = 0:2.
机译:在磁场的存在下,在数值上进行了在磁场的存在下进行了方形外壳内的自然热对。通过将其非尺寸宽度和高度和侧壁厚度改变为0.1至0.5,0.8和0.05至0.2,通过改变其非尺寸宽度和高度和侧壁厚度来研究附着于底壁的热源几何的效果。已经获得了回归模型以及进行敏感性分析,寻求最佳传热。结果,揭示了通过扩大鳍片,并在下降之前达到峰值的纽带数增加。因此,有趣的是,通过翅片尺寸不断增加的传热不保留并且存在最佳点,其中发生最大传热。此外,系统的热性能在很大程度上取决于翅片尺寸而不是相对侧壁厚度。然而,随着翅片宽度的增加,其效果增强。优化结果表明,最大热传递发生在W = 0:4615,H = 0:6467和L-B = 0:2。

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