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Effective Thermal Conductivity of Aqueous Suspensions of Carbon Nanotubes (Carbon Nanotube Nanofluids)

机译:碳纳米管(碳纳米管纳米流体)的水悬浮液的有效导热系数

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This work is concerned with the effective thermal conductivity of aqueous suspensions of multiwalled carbon nanotubes (nanofluids). Stable nanofluids were made using sodium dodecylbenzene sulfonate as the dispersant. The effects of concentration of carbon nanotubes and temperature on effective thermal conductivity were investigated. It was found that effective thermal conductivity increased with increasing concentration of carbon nanotubes, and the dependence was nonlinear even at very low concentrations, which was different from the results for metal/metal oxide nanofluids. The effective thermal conductivity increased with increasing temperature, and the dependence was also nonlinear. At temperatures lower than ~30℃, approximately linear dependence of the thermal conductivity enhancement on temperature was seen, but the dependence tended to level off above ~30℃. A comparison between the results of this work and those of published studies showed a large discrepancy in the effective thermal conductivity of carbon nanotube nanofluids. Differences in the interfacial resistances and thermal conductivities of carbon nanotubes used in these studies were proposed to be the main reasons. The experimental results were also compared with some classical macroscopic models for thermal conductivity of homogenous mixtures containing micrometer- or millimeter-sized particles. It was shown that the macroscopic models were inadequate for the prediction of the effective thermal conductivity of nanofluids. Analysis of possible mechanisms for thermal conduction enhancement suggested that networking of carbonnanotubes was likely to be responsible for the observed high effective thermal conductivity of carbon-nanotube nanofluids. Experiments at a temperature above 60-70℃ showed that the dispersant failed, which led to destabilization of nanofluids.
机译:这项工作涉及多壁碳纳米管(纳米流体)的水悬浮液的有效导热率。使用十二烷基苯磺酸钠作为分散剂制备稳定的纳米流体。研究了碳纳米管的浓度和温度对有效热导率的影响。发现有效导热系数随着碳纳米管浓度的增加而增加,并且即使在非常低的浓度下,其依赖性也是非线性的,这与金属/金属氧化物纳米流体的结果不同。有效导热系数随温度的升高而增加,并且相关性也是非线性的。在低于〜30℃的温度下,可以看到导热系数对温度的近似线性依赖性,但在〜30℃以上时,这种依赖性趋于平稳。这项工作的结果与已发表的研究的结果之间的比较显示,碳纳米管纳米流体的有效导热系数存在很大差异。提出了在这些研究中使用的碳纳米管的界面电阻和导热率的差异是主要原因。还将实验结果与一些经典的宏观模型进行了比较,这些模型包含了微米或毫米大小颗粒的均质混合物的热导率。结果表明,宏观模型不足以预测纳米流体的有效导热系数。对可能的热传导增强机制的分析表明,碳纳米管的联网很可能是所观察到的碳纳米管纳米流体的高效导热系数的原因。在60-70℃以上的温度下进行的实验表明,分散剂失效,从而导致纳米流体的不稳定。

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