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Investigation of thermal transport in colloidal silica dispersions (nanofluids)

机译:胶态二氧化硅分散体(纳米流体)中的热传递研究

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Thermal conductivity enhancement in colloidal silica dispersions (nanofluids) is investigated experimentally using a novel optical technique. The effects of nanoparticle size, concentration, and state of aggregation are examined. New data on well dispersed systems are compared to published data obtained using the more conventional transient hot-wire technique and good agreement was found. Experimental results are also compared with model predictions for relative thermal conductivity based on effective medium theory. For systems composed of larger diameter nanoparticles (~30 nm), good agreement was found between the measured thermal conductivity enhancement and that predicted by the classical Maxwell-Garnett model. For systems composed of smaller nanoparticles (∼10 and 20 nm), thermal conductivity enhancement was reduced by as much as 10%, presumably because interfacial thermal resistance effects become important. Measurements on two systems that were induced to form gels exhibited an increase in thermal conductivity of approximately 5% relative to the well-dispersed systems. The observed increase in thermal conductivity is larger than that predicted by a recently proposed model for aggregated nanofluids.
机译:使用一种新型的光学技术,对胶态二氧化硅分散体(纳米流体)中的导热系数进行了实验研究。检查了纳米颗粒大小,浓度和聚集状态的影响。将分散良好的系统上的新数据与使用更常规的瞬态热线技术获得的已发布数据进行比较,发现具有良好的一致性。实验结果也与基于有效介质理论的相对热导率模型预测进行了比较。对于由较大直径的纳米粒子(约30 nm)组成的系统,测得的导热系数提高与经典Maxwell-Garnett模型所预测的导热率之间发现了很好的一致性。对于由较小的纳米粒子(约10和20 nm)组成的系统,导热率的提高最多降低了10%,这可能是因为界面热阻效应变得重要。相对于分散良好的系统,在被诱导形成凝胶的两个系统上进行的测量显示出导热率提高了约5%。观察到的热导率的增加大于最近提出的聚集纳米流体模型的预测。

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