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Effect of Brownian motion on flow and heat transfer of nanofluids over a backward-facing step with and without adiabatic square cylinder

机译:布朗运动对南风流体流动和热传热的影响,在落后的侧向横向阶段,无水方圆柱

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A mathematical model to predict large enhancement of thermal conductivity of nanofluids by considering the Brownian motion is proposed. The effect of the Brownian motion on the flow and heat transfer characteristics is examined. The computations were done for various types of nanoparticles such as CuO, Al_2O_3, and ZnO dispersed in a base fluid (water), volume fraction of nanoparticles ? in the range of 1 % to 6 % at a fixed Reynolds number Re = 450 and nanoparticle diameter d_(np) = 30 nm. Our results demonstrate that Brownian motion could be an important factor that enhances the thermal conductivity of nanofluids. Nanofluid of Al_2O_3 is observed to have the highest Nusselt number Nu among other nanofluids types, while nanofluid of ZnO nanoparticles has the lowest Nu. Effects of the square cylinder on heat transfer characteristics are significant with considering Brownian motion. Enhancement in the maximum value of Nu of 29 % and 26 % are obtained at the lower and the upper walls of the channel, respec-tively, by considering the Brownian effects, with square cylinder, compared with that in the case without considering the Brownian motion. On the other hand, results show a marked improvement in heat transfer compared to the base fluid, this improvement is more pronounced on the upper wall for higher ?.
机译:提出了一种数学模型,提出了通过考虑褐色运动来预测纳米流体的热导电率大的提高。检查了棕色运动对流动和传热特性的影响。为各种类型的纳米颗粒(例如CuO,Al_2O_3和分散在基础流体(水)中,纳米颗粒的体积分数)进行计算。固定雷诺数Re = 450和纳米颗粒直径D_(NP)= 30nm的范围内为1%至6%。我们的结果表明,布朗运动可能是增强纳米流体的导热率的重要因素。观察到Al_2O_3的纳米流体在其他纳米流体类型中具有最高的营养数NU,而ZnO纳米颗粒的纳米流体具有最低的Nu。方形气缸对考虑布朗运动的显着的影响是显着的。通过考虑布朗效果,在通道的下壁和上壁上获得29%和26%的最大值的增强率为29%和26%,与方形圆筒相比,在不考虑布朗的情况下运动。另一方面,结果显示出与基础流体相比的传热显着改善,该改进在上壁上更加明显,以便更高?

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