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A reconstruction of Hamilton-Crosser model for effective thermal conductivity of nanofluids based on particle clustering and nanolayer formation

机译:基于颗粒聚类和纳米组形成的纳米流体有效导热系数的汉密尔顿交叉模型的重构

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Although many models have been proposed to estimate the effective thermal conductivity (ETC) of nanofluids, the thermal conduction mechanisms need to be further addressed to improve the prediction accuracy of ETC model. In this paper, by fully considering the effects of particle clustering, Brownian motion, Kapitza resistance and nanolayer of particle, Hamilton-Crosser model is reconstructed to establish an improved model for the ETC of nanofluids. To develop this model, the particle clustering is characterized by the particle size distribution analysis, and the thermal conductivity distribution in the nanolayer is represented as a specific function of the distance from the nanoparticle. The influences of temperature, viscosity, particle size and other factors on the ETC of nanofluids are also included in this model. The results show that the accuracy of this model can be improved as compared to those considering only several of these factors, and the maximum error is 3% against the available experimental data. With this model, the inconsistency phenomena in ETC data of nanofluids can be explained in the view of the agglomeration and Brownian motion with the system conditions.
机译:尽管已经提出了许多模型来估计纳米流体的有效导热性(ETC),但是需要进一步解决热传导机构以提高ETC模型的预测精度。本文通过充分考虑粒子聚类的影响,褐线运动,Kapitza电阻和粒子的颗粒,汉密尔顿杂交模型被重建以建立纳米流体等的改进模型。为了开发该模型,粒子聚类的特征在于粒度分布分析,纳米层中的导热系数分布表示为与纳米颗粒的距离的特定功能。在该模型中还包括温度,粘度,粒度和其他因素对等等的影响。结果表明,与仅考虑这些因素中的几个因素的那些相比,可以提高该模型的准确性,并且对于可用的实验数据,最大误差为3%。利用该模型,可以在附聚和布朗运动与系统条件的视野中解释纳米流体的不一致现象。

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