Water-based Al2O3, CuO and TiO2 nanofluids as secondary fluids for refrigeration systems: a thermal conductivity study

被引:0
作者
Vipin Nair
A. D. Parekh
P. R. Tailor
机构
[1] Sardar Vallabhbhai National Institute of Technology,Advanced Refrigeration and Air Conditioning Laboratory, Department of Mechanical Engineering
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2018年 / 40卷
关键词
Nanofluids; Secondary refrigerant; Thermal conductivity; ANOVA; R718;
D O I
暂无
中图分类号
学科分类号
摘要
The existing models for predicting the thermal conductivity of nanofluid are not suitable for R718 (water)-based applications due to its lower working temperature as compared to other heat transfer fluids. R718 is used as a secondary refrigerant in industrial and central air conditioning systems where the working temperature of R718 may vary between 280 and 298 K. Therefore, it is important to develop a thermal conductivity model which can make accurate predictions for this particular temperature range. Another motivation for this study comes from the fact that most of the research on water-based nanofluids have been conducted at elevated temperatures (above 293 K) whereas in this work, the thermal conductivity measurements were taken at a temperature as low as 280 K. The objective of the present work is to generate a regression model for the prediction of the thermal conductivity of R718-based nanofluids for low particle volume fraction scenarios. The four primary factors which are included in this analysis are thermal conductivity of nanoparticle (knp), particle volume fraction (φ), particle size (dp) and temperature (T). The thermal conductivity data available in the literature for TiO2, Al2O3 and CuO-based nanofluids were considered while generating the model. The higher particle volume fraction leads to a higher viscosity rise and higher pumping power; consequently, the model was designed for low particle volume fractions ranging from 0.25 to 1.0%.
引用
收藏
相关论文
共 189 条
[51]  
Choi SUS(2014)Review of heat conduction in nanofluids J Therm Anal Calorim 109 50-16
[52]  
Mintsa HA(2008)A review of thermal conductivity models for nanofluids J Nanopart Res 39 665-1226
[53]  
Roy G(2007)The role of interfacial layers in the enhanced thermal conductivity of nanofluids: a renovated Maxwell model Thermochim Acta 33 706-1036
[54]  
Nguyen CT(2005)Aggregation structure and thermal conductivity of nanofluids Int J Therm Sci 7 151-2656
[55]  
Doucet D(2012)A new thermal conductivity model for nanofluids Int J Refrig 6 1-undefined
[56]  
Das SK(2008)A cell model approach for thermal conductivity of nanofluids Mater Chem Phys 30 1213-undefined
[57]  
Putra N(2012)Temperature dependence of thermal conductivity enhancement for nanofluids Int Commun Heat Mass Transf 102 1024-undefined
[58]  
Thiesen P(2009)Techniques for measuring the thermal conductivity of nanofluids: a review Exp Therm Fluid Sci 51 2651-undefined
[59]  
Roetzel W(2010)Formulation of nanofluids for natural convective heat transfer applications J Nanopart Res undefined undefined-undefined
[60]  
Zhang X(2009)Thermal conductivity of metal-oxide nanofluids: particle size dependence and effect of laser irradiation Particuology undefined undefined-undefined