Borode Adeola, Tshephe Thato, Olubambi Peter, Sharifpur Mohsen, Meyer Josua
Centre for Nanoengineering and Advanced Materials, University of Johannesburg, Johannesburg 2028, South Africa.
Department of Mechanical and Aeronautical Engineering, University of Pretoria, Pretoria 0024, South Africa.
Nanomaterials (Basel). 2023 Mar 31;13(7):1238. doi: 10.3390/nano13071238.
The study focused on the impact of concentration and temperature on the electrical conductivity, viscosity, and thermal conductivity of GNP/FeO hybrid nanofluids. The study found that nanofluids have better electrical conductivity, viscosity, and thermal conductivity than water. The electrical conductivity and thermal conductivity increase linearly with concentration for a constant temperature. However, the nanofluid's viscosity increases with the addition of the hybrid nanoparticles and decreases as the temperature increases. Furthermore, the study shows that the thermal conductivity of the nanofluid is enhanced with increased addition of hybrid nanoparticles in the base fluid and that the thermal conductivity ratio increases with increased addition of nanoparticles. Overall, the results suggest that GNP/FeO hybrid nanofluids could be used in various industrial applications to improve the heat transfer and energy efficiency of systems.
该研究聚焦于浓度和温度对GNP/FeO混合纳米流体的电导率、粘度和热导率的影响。研究发现,纳米流体比水具有更好的电导率、粘度和热导率。在恒定温度下,电导率和热导率随浓度呈线性增加。然而,纳米流体的粘度随着混合纳米颗粒的添加而增加,并随着温度升高而降低。此外,研究表明,基础流体中混合纳米颗粒添加量增加时,纳米流体的热导率会增强,且热导率比随着纳米颗粒添加量的增加而增大。总体而言,结果表明GNP/FeO混合纳米流体可用于各种工业应用中,以提高系统的传热和能源效率。