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首页> 外文期刊>Journal of thermal analysis and calorimetry >CFD simulation of nanofluid heat transfer considering the aggregation of nanoparticles in population balance model
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CFD simulation of nanofluid heat transfer considering the aggregation of nanoparticles in population balance model

机译:纳米流体传热的CFD模拟考虑纳米粒子群体平衡模型的聚集

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摘要

The effect of nanoparticles aggregation on the heat transfer coefficient in a heat dissipation process of a circular tube is evaluated through computational fluid dynamics (CFD) technique, and the simulation results are compared to experimental data. The experimental data of MgO/CuO/Al(2)O(3)water-based nanofluids which were obtained in our previous study under turbulent flow regime and Reynolds numbers ranging from 11,000 to 47,000 are used to validate the CFD results. Two-phase mixture andk-epsilon RNG turbulence models are coupled with the population balance model (PBM) to consider the impact of nanoparticles aggregation in the flow domain using the commercial CFD software ANSYS Fluent 17.2. The particle size distribution (PSD) determined by conducting dynamic light scattering (DLS) analysis for nanoparticle concentrations of 0.02, 0.05, 0.07 and 0.09%v. is fed to solve the governing equations. The CFD model with aggregation results is in very good agreement with the experimental data, and the maximum relative absolute average deviation (RAAD) from the experiments is about 7.5%, while the CFD model without aggregation leads to less accurate results with maximum 17.56% deviation compared to experimental data. The consideration of the aggregation effect with accurate PSD data enhances the CFD simulation and makes its outcomes more reliable.
机译:利用计算流体力学(CFD)技术研究了纳米颗粒聚集对圆管散热过程中传热系数的影响,并将模拟结果与实验数据进行了比较。利用我们之前研究中获得的MgO/CuO/Al(2)O(3)水基纳米流体在湍流状态下的实验数据,以及11000到47000的雷诺数,对CFD结果进行了验证。将两相混合物和KεRNG湍流模型与人口平衡模型(PBM)相结合,以考虑使用CFD软件ANSYS FLUENT 17.2对流场中纳米颗粒聚集的影响。通过对0.02、0.05、0.07和0.09%v的纳米颗粒浓度进行动态光散射(DLS)分析确定的粒度分布(PSD)用于求解控制方程。与实验数据相比,具有聚集结果的CFD模型与实验数据非常吻合,与实验数据的最大相对绝对平均偏差(RAAD)约为7.5%,而没有聚集结果的CFD模型导致的结果不太准确,最大偏差为17.56%。通过精确的PSD数据考虑聚集效应,增强了CFD模拟,并使其结果更加可靠。

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