首页> 外文期刊>International Communications in Heat and Mass Transfer >Turbulent forced convection effectiveness of alumina-water nanofluid in a circular tube with elevated inlet fluid temperatures: An experimental study
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Turbulent forced convection effectiveness of alumina-water nanofluid in a circular tube with elevated inlet fluid temperatures: An experimental study

机译:进口流体温度升高的圆管中氧化铝-水纳米流体的湍流强迫对流有效性:一项实验研究

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The present study aims to explore experimentally the influence of elevated inlet fluid temperature on the turbulent forced convective heat transfer effectiveness of using alumina-water nanofluid over pure water in an iso-flux heated horizontal circular tube at a fixed heating power. A copper circular pipe of inner diameter 3.4 mm was used in the forced convection experiments undertaken for the pertinent parameters in the following ranges: the inlet fluid temperature, T_(in) = 25 ℃, 37 ℃ and 50 ℃; the Reynolds number, Re_(bf) = 3000-13,000; the mass fraction of the alumina nanoparticles in the water-based nanofluid formulated, ω_(np) = 0,2, 5, and 10 wt.%; and the heating flux, q_0~" = 57.8-63.1 kW/m~2. The experimental results clearly indicate that the turbulent forced convection heat transfer effectiveness of the alumina-water nanofluid over that of the pure water can be further uplifted by elevating its inlet temperature entering the circular tube well above the ambient, thereby manifesting its potential as an effective warm functional coolant Specifically, an increase in the averaged heat transfer enhancement of more than 44% arises for the nanofluid of ω_(np) = 2 wt.% as the inlet fluid temperature is increased from 25 ℃ to 50 ℃.
机译:本研究旨在通过实验研究入口流体温度升高对在固定加热功率下在等通量加热的水平圆形管中使用氧化铝水纳米流体对纯水的湍流强迫对流换热效率的影响。强制对流实验中使用内径为3.4 mm的铜圆管,在以下范围内进行相关参数的测试:入口流体温度T_(in)= 25℃,37℃和50℃;雷诺数Re_(bf)= 3000-13,000;在配制的水基纳米流体中氧化铝纳米颗粒的质量分数ω_(np)= 0.2、5和10 wt。%;实验结果清楚地表明,通过提高氧化铝水纳米流体相对于纯水的湍流强迫对流换热效率,可以进一步提高纯水的湍流对流换热效率。进入圆管的入口温度远高于环境温度,从而显示出它作为有效的温暖功能性冷却剂的潜力。具体而言,对于纳米流体ω_(np)= 2 wt。%,平均传热增强幅度提高了44%以上随着入口流体温度从25℃增加到50℃。

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