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Heat transfer and entropy generation for laminar forced convection flow of graphene nanoplatelets nanofluids in a horizontal

机译:石墨烯纳米血小板纳米流体在水平方向上的层流强迫对流的传热和熵产生

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The results are reported of an investigation of the heat transfer characteristics and entropy generation for a graphene nanoplatelets (GNP) nanofluid with specific surface area of 750 m~2/g under laminar forced convection conditions inside a circular stainless steel tube subjected to constant wall heat flux. The analysis considers constant velocity flow and a concentration range from 0.025 wt.% to 0.1 wt%. The impact of the dispersed nanopar-ticles concentration on thermal properties, convective heat transfer coefficient thermal performance factor and entropy generation is investigated. An enhancement in thermal conductivity for GNP of between 12% and 28% is observed relative to the case without nanoparticles. The convective heat transfer coefficient for the GNP nanofluid is found to be up to 15% higher than for the base fluid. The heat transfer rate and thermal performance for 0.1 wt% of GNP nanofluid is found to increase by a factor of up to 1.15. For constant velocity flow, frictional entropy generation increases and thermal entropy generation decreases with increasing nanopartide concentration. But, the total entropy generation tends to decrease when nanoparticles are added at constant velocity and to decrease when velocity rises. Finally, it is demonstrated that a GNP nanofluid with a concentration between 0.075 wt.% and 0.1 wt.% is more energy efficient than for other concentrations. It appears that GNP nanofluids can function as working fluids in heat transfer applications and provide good alternatives to conventional working fluids in the thermal fluid systems.
机译:研究结果报道了在层流强制对流条件下,在恒定壁热作用下圆形不锈钢管内层流比表面积为750 m〜2 / g的石墨烯纳米片(GNP)纳米流体的传热特性和熵产生的研究。通量。该分析考虑了恒定流速,浓度范围为0.025 wt。%至0.1 wt%。研究了分散的纳米粒子浓度对热性能,对流传热系数热性能因子和熵产生的影响。相对于没有纳米颗粒的情况,观察到GNP的导热率提高了12%至28%。发现GNP纳米流体的对流传热系数比基础流体的对流传热系数高15%。发现0.1重量%的GNP纳米流体的传热速率和热性能提高了多达1.15倍。对于恒速流动,随着纳米颗粒浓度的增加,摩擦熵的产生增加而热熵的产生减少。但是,当以恒定速度添加纳米粒子时,总熵产生趋于减少,而当速度升高时,总熵产生趋于减少。最后,证明了浓度在0.075重量%至0.1重量%之间的GNP纳米流体比其他浓度更节能。看起来,GNP纳米流体可以在传热应用中充当工作流体,并为热流体系统中的常规工作流体提供良好的替代品。

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