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Numerical study of convective heat transfer of nanofluids in a circular tube two-phase model versus single-phase model

机译:圆管两相模型与单相模型中纳米流体对流传热的数值研究

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摘要

Laminar convective heat transfer of nanofluids in a circular tube under constant wall temperature condition is studied numerically using a CFD~1 approach. Single-phase and two-phase models have been used for prediction of temperature, flow field, and calculation of heat transfer coefficient. Effects of some important parameters such as nanoparticle sources, nanoparticle volume fraction and nanofluid Peclet number on heat transfer rate have been investigated. The results of CFD simulation based on two-phase model were used for comparison with single-phase model, theoretical models and experimental data. Results have shown that heat transfer coefficient clearly increases with an increase in particle concentration. Also the heat transfer enhancement increases with Peclet number. Two-phase model shows better agreement with experimental measurements. For Cu/Water nanofluid with 0.2% concentration, the average relative error between experimental data and CFD results based on single-phase model was 16% while for two-phase model was 8%. Based on the results of the simulation it was concluded that the two-phase approach gives better predictions for heat transfer rate compared to the single-phase model.
机译:利用CFD〜1方法对纳米管在恒定壁温条件下的层流对流换热进行了数值研究。单相和两相模型已用于温度,流场的预测和传热系数的计算。研究了一些重要的参数,如纳米粒子的来源,纳米粒子的体积分数和纳米流体的Peclet数对传热速率的影响。将基于两相模型的CFD仿真结果与单相模型,理论模型和实验数据进行了比较。结果表明,传热系数随着颗粒浓度的增加而明显增加。另外,传热增强随佩克雷数增加。两相模型显示出与实验测量结果更好的一致性。对于浓度为0.2%的Cu /水纳米流体,基于单相模型的实验数据和CFD结果之间的平均相对误差为16%,而两相模型的为8%。根据仿真结果,得出的结论是,与单相模型相比,两相方法可以更好地预测传热速率。

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