Enhanced thermal conductivity of nanofluids: a state-of-the-art review

被引:526
作者
Ozerinc, Sezer [2 ]
Kakac, Sadik [1 ]
Yazicioglu, Almila Guevenc [2 ]
机构
[1] TOBB Univ Econ & Technol, Ankara, Turkey
[2] Middle E Tech Univ, TR-06531 Ankara, Turkey
关键词
Nanofluids; Nanoparticles; Thermal conductivity; Thermal conductivity model; Heat transfer enhancement; HEAT-TRANSFER; AQUEOUS SUSPENSIONS; ELECTROKINETIC PROPERTIES; INTERFACIAL LAYERS; CARBON NANOTUBE; PARTICLE-SIZE; MODEL; AGGREGATION; FLOW; MECHANISMS;
D O I
10.1007/s10404-009-0524-4
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Adding small particles into a fluid in cooling and heating processes is one of the methods to increase the rate of heat transfer by convection between the fluid and the surface. In the past decade, a new class Of fluids called nanofluids, in which particles of size 1-100 nm with high thermal conductivity are Suspended in a conventional heat transfer base fluid, have been developed. It has been shown that nanofluids containing a small amount of metallic or nonmetallic particles, Such as Al2O3, CuO, Cu, SiO2, TiO2, have increased thermal conductivity compared with the thermal conductivity of the base fluid. In this work, effective thermal conductivity models of nanofluids are reviewed and comparisons between experimental findings and theoretical predictions are made. The results show that there exist significant discrepancies among the experimental data available and between the experimental findings and the theoretical model predictions.
引用
收藏
页码:145 / 170
页数:26
相关论文
共 98 条
[21]   Heat transfer of aqueous suspensions of carbon nanotubes (CNT nanofluids) [J].
Ding, YL ;
Alias, H ;
Wen, DS ;
Williams, RA .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2006, 49 (1-2) :240-250
[22]   Heat transfer between two nanoparticles through near field interaction [J].
Domingues, G ;
Volz, S ;
Joulain, K ;
Greffet, JJ .
PHYSICAL REVIEW LETTERS, 2005, 94 (08)
[23]   Anomalously increased effective thermal conductivities of ethylene glycol-based nanofluids containing copper nanoparticles [J].
Eastman, JA ;
Choi, SUS ;
Li, S ;
Yu, W ;
Thompson, LJ .
APPLIED PHYSICS LETTERS, 2001, 78 (06) :718-720
[24]   A new determination of the molecular dimensions [J].
Einstein, A .
ANNALEN DER PHYSIK, 1906, 19 (02) :289-306
[25]   Role of Brownian motion hydrodynamics on nanofluid thermal conductivity [J].
Evans, W ;
Fish, J ;
Keblinski, P .
APPLIED PHYSICS LETTERS, 2006, 88 (09)
[26]   Effect of aggregation and interfacial thermal resistance on thermal conductivity of nanocomposites and colloidal nanofluids [J].
Evans, William ;
Prasher, Ravi ;
Fish, Jacob ;
Meakin, Paul ;
Phelan, Patrick ;
Keblinski, Pawel .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2008, 51 (5-6) :1431-1438
[27]   The effective thermal conductivity of nanofluids based on the nanolayer and the aggregation of nanoparticles [J].
Feng, Yongjin ;
Yu, Boming ;
Xu, Peng ;
Zou, Mingqing .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2007, 40 (10) :3164-3171
[28]   Monolithic red-green-blue laser light source based on cascaded wavelength conversion in periodically poled stoichiometric lithium tantalate [J].
Gao, Z. D. ;
Zhu, S. N. ;
Tu, Shih-Yu ;
Kung, A. H. .
APPLIED PHYSICS LETTERS, 2006, 89 (18)
[29]  
Geiger G.H., 1973, Transport Phenomena in Metallurgy
[30]   THERMAL CONDUCTIVITY OF HETEROGENEOUS 2-COMPONENT SYSTEMS [J].
HAMILTON, RL ;
CROSSER, OK .
INDUSTRIAL & ENGINEERING CHEMISTRY FUNDAMENTALS, 1962, 1 (03) :187-&