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Thermal-Conductivity and Thermal-Diffusivity Measurements of Nanofluids by 3ω Method and Mechanism Analysis of Heat Transport

机译:3ω法测量纳米流体的热导率和热扩散率及传热机理

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摘要

A 3ω technique is developed for simultaneous determination of the thermal conductivity and thermal diffusivity of nanofluids. The 3ω measuring system is established, in which a conductive wire is used as both heater and sensor. At first, the system is calibrated using water with known thermophysical properties. Then, the thermal conductivity and thermal diffusivity of TiO2/distilled water nanofluids at different temperatures and volume fractions and the thermal conductivity of SiO2 nanofluids with different carrier fluids (water, ethanol, and EG) are determined. The results show that the working temperature and the carrier fluid play important roles in the enhancement of thermal transport in nanofluids. These results agree with the predictions for the temperature dependence effect by the Brownian motion model and the micro-convection model. For SiO2 nanofluids, the thermal-conductance enhancement becomes strong with a decrease in the heat capacity of the carrier fluids. Finally, according to our results and mechanism analysis, a corrected term is introduced to the Brownian motion model for providing better prediction of heat transport performance in nanofluids.
机译:开发了一种3ω技术,用于同时测定纳米流体的热导率和热扩散率。建立了3ω测量系统,其中导线同时用作加热器和传感器。首先,使用具有已知热物理性质的水对系统进行校准。然后,确定了不同温度和体积分数下TiO2 /蒸馏水纳米流体的热导率和热扩散率,以及不同载流体(水,乙醇和EG)下SiO2纳米流体的热导率。结果表明,工作温度和载液在增强纳米流体的热传递中起着重要作用。这些结果与布朗运动模型和微对流模型对温度依赖性效应的预测一致。对于SiO2 纳米流体,随着载流子热容量的降低,导热性增强。最后,根据我们的结果和机理分析,将校正项引入布朗运动模型,以便更好地预测纳米流体中的传热性能。

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