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首页> 外文期刊>International communications in heat and mass transfer >Fluid and heat transfer characteristics of aqueous graphene nanoplatelet (GNP) nanofluid in a microchannel
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Fluid and heat transfer characteristics of aqueous graphene nanoplatelet (GNP) nanofluid in a microchannel

机译:微通道中石墨烯纳米片(GNP)纳米流体的流体和传热特性

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In the present work, thermo-physical properties of aqueous Graphene Nanoplatelet (GNP) at various mass concentrations of GNPs was experimentally measured. An experimental investigation was conducted to quantify the heat transfer coefficient, friction factor, pressure drop value, pumping power and thermo-hydraulic performance index of the nanofluid within a microchannel at various heat flux and Reynolds number. Results showed that GNP/water nanofluid can plausibly enhance the heat transfer coefficient and the Nusselt number by similar to 80%. In addition, a small increase in the friction factor and the pressure drop value was seen, which was attributed to the augmentation in the friction forces. The maximum increase in the pressure drop was 18.3% recorded at the highest Reynolds number and the highest mass concentration of the nanofluid. Also, despite the augmentation in the pressure drop value, the thermal performance of the system increased by 76% showing the great potential of the GNP/water nanofluid cooling and/or heating applications despite similar to 20% augmentation in the pumping power at Reynolds number 1376. The enhancement in the thermal performance of the system was attributed to the thermophoresis effect, Brownian motion and the enhancement in the thermal conductivity of the nanofluid due to the presence of the GNP nanoplatelets.
机译:在本作本作中,实验测量各种质量浓度的GNPS的石墨烯纳米片(GNP)的热物理性质。进行实验研究以在各种热通量和雷诺数的微通道内的纳米流体内的传热系数,摩擦因子,压降值,泵送功率和热液压性能指标。结果表明,GNP /水纳米流体可以合理地增强传热系数,并通过类似于80%的营养数。另外,看到摩擦系数和压降值的小幅增加,这归因于摩擦力的增强。压降的最大增加为18.3%,以最高的雷诺数和纳米流体的最高质量浓度记录。此外,尽管在压降值中增加了增强,但系统的热性能提高了76%,显示出GNP /水纳米流体冷却和/或加热应用尽管在雷诺数的泵浦电力中增加了20%的增强> 1376.由于存在GNP纳米孔的存在,该系统热性能的增强归因于热孔效应,褐色运动和纳米流体的导热率的增强。

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