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Influence of nanofluid on turbulent forced convective flow in a channel with detached rib-arrays

机译:纳米流体对肋阵列分离的通道中湍流强迫对流的影响

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In this paper forced convection turbulent nanofluid flow is numerically investigated to analyze the effects of different types of nanoparticles with different nanoparticle parameters in a fully detached ribbed channel. The bottom wall of the channel is kept at a constant temperature while the upper wall is thermally insulated. The continuity, momentum and energy equations were discretized and solved by the Finite Volume Method (FVM). The influence of different types of nanoparticles (A1_2O_3, Cuo, SiO_2, and Zno) with nanoparticle concentration (1% to 4%) and nanoparticle diameter (20 nm to 50 nm) suspended in a water as a base fluid is studied on the heat transfer enhancement, friction factor and pressure drop. The Reynolds number was in the range of 10,000 to 50,000 in a rectangular channel having mounted rectangular ribs on its bottom wall with clearance ratio of 0.1. The results indicate that the highest heat transfer enhancement is achieved with SiO_2 nanofluid and the friction factor did not considerably change with using different types of nanoparticles in the base fluid. Furthermore, increment of nanoparticle concentration or Reynolds number has a positive impact on heat transfer enhancement due to the increment of the velocity and thermal conductivity of the mixture. However, a rise of nanoparticle diameter decreases the heat transfer enhancement due to stronger Brownian motion even at lower nanoparticle diameter.
机译:本文通过数值研究强迫对流湍流的纳米流体流动,以分析在完全分离的带肋通道中具有不同纳米颗粒参数的不同类型纳米颗粒的影响。通道的底壁保持恒定的温度,而上壁是绝热的。连续性,动量和能量方程式通过有限体积法(FVM)离散化并求解。研究了不同类型的纳米粒子(A1_2O_3,Cuo,SiO_2和Zno)的纳米粒子浓度(1%至4%)和纳米粒子直径(20 nm至50 nm)悬浮在作为基础流体的水中的影响。传递增强,摩擦系数和压降。在矩形通道中的雷诺数在10,000至50,000的范围内,该矩形通道在其底壁上以0.1的间隙比安装了矩形肋。结果表明,使用SiO_2纳米流体可获得最高的传热增强效果,并且在基础流体中使用不同类型的纳米颗粒时,摩擦系数没有明显变化。此外,由于混合物的速度和导热率的增加,纳米颗粒浓度或雷诺数的增加对传热的增强具有积极影响。然而,即使在较低的纳米粒径下,由于较强的布朗运动,纳米粒径的增加也会降低传热的增强。

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