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首页> 外文期刊>Journal of nanomaterials >The effect of nanofluid volume concentration on heat transfer and friction factor inside a horizontal tube
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The effect of nanofluid volume concentration on heat transfer and friction factor inside a horizontal tube

机译:纳米流体体积浓度对水平管内传热和摩擦系数的影响

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摘要

The additives of solid nanoparticles to liquids are significant enhancement of heat transfer and hydrodynamic flow. In this study, the thermal properties of three types of nanoparticles (Al_2O_3, TiO_2, and SiO_2) dispersed in water as a base fluid were measured experimentally. Forced convection heat transfer turbulent flow inside heated flat tube was numerically simulated. The heat flux around flat tube is 5000 W/m~2 and Reynolds number is in the range of 5 × 10 3 to 50 × 10 3. CFD model by finite volume method used commercial software to find hydrodynamic and heat transfer coefficient. Simulation study concluded that the thermal properties measured and Reynolds number as input and friction factor and Nusselt number as output parameters. Data measured showed that thermal conductivity and viscosity increase with increasing the volume concentration of nanofluids with maximum deviation 19% and 6%, respectively. Simulation results concluded that the friction factor and Nusselt number increase with increasing the volume concentration. On the other hand, the flat tube enhances heat transfer and decreases pressure drop by 6% and -4%, respectively, as compared with circular tube. Comparison of numerical analysis with experimental data available showed good agreement with deviation not more than 2%.
机译:固体纳米颗粒向液体中的添加剂显着增强了传热和流体动力流动。在这项研究中,实验测量了三种类型的纳米颗粒(Al_2O_3,TiO_2和SiO_2)分散在作为基础流体的水中的热性能。对受热扁管内强迫对流传热湍流进行了数值模拟。扁管周围的热通量为5000 W / m〜2,雷诺数在5×10 3到50×10 3之间。有限体积法CFD模型使用商业软件来寻找流体动力和传热系数。仿真研究得出结论,测量的热性能和雷诺数为输入,摩擦系数和努塞尔数为输出参数。测得的数据表明,随着纳米流体体积浓度的增加,热导率和粘度增加,最大偏差分别为19%和6%。仿真结果表明,摩擦系数和努塞尔数随体积浓度的增加而增加。另一方面,与圆形管相比,扁平管增强了热传递,并分别降低了6%和-4%的压降。数值分析与现有实验数据的比较表明,偏差不超过2%的一致性很好。

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