纳米流体
材料科学
氮化硼
石墨烯
热导率
化学工程
分散稳定性
乙二醇
粘度
共价键
热稳定性
流变学
氧化物
纳米颗粒
渗流阈值
复合材料
纳米技术
电阻率和电导率
有机化学
化学
冶金
工程类
电气工程
作者
Dongju Lee,Jin Ju Park,Min‐Ku Lee,Gyoung-Ja Lee
出处
期刊:Nanotechnology
[IOP Publishing]
日期:2017-08-14
卷期号:28 (40): 405704-405704
被引量:16
标识
DOI:10.1088/1361-6528/aa8615
摘要
Developing a thermally stable nanofluid that can maintain good thermo-conductive and flow performance at moderate or elevated temperatures for prolonged periods of time is a great challenge in heat transfer applications. Here, the thermal conductivity and rheological properties as well as their thermal stability characteristics of a nanofluid containing two-dimensional (2D) hexagonal boron nitride nanosheets (h-BNNSs) in ethylene glycol (EG) are presented, in comparison with those for a graphene oxide (GO) nanofluid as a counterpart. In place of a surfactant, hydroxyl functional groups covalently bound to the BNNS surface provided excellent compatibility and stable dispersion of the particles within EG at temperatures up to 90 °C. Owing to the percolation effect of the 2D sheets, the thermal conductivity of the EG base fluid was significantly enhanced by 80% at 5 vol% of BNNS, superior to that of the GO fluid. Moreover, the BNNS fluids exhibited excellent long-term stability at 90 °C for 5 d without loss of their high thermal conductivity, low viscosity and electrical insulating property, whereas the GO fluids underwent thermal degradation with irreversible particle aggregation and increasing viscosity due to the selective chemical reduction of the surface functional groups (i.e., C-O groups) of the GO.
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