A comprehensive review of thermo-physical properties and convective heat transfer to nanofluids

被引:224
作者
Solangi, K. H. [1 ]
Kazi, S. N. [1 ]
Luhur, M. R. [2 ]
Badarudin, A. [1 ]
Amiri, A. [1 ]
Sadri, Rad [1 ]
Zubir, M. N. M. [1 ]
Gharehkhani, Samira [1 ]
Teng, K. H. [1 ]
机构
[1] Univ Malaya, Dept Mech Engn, Fac Engn, Kuala Lumpur 50603, Malaysia
[2] QUEST Nawabshah, Fac Engn, Dept Mech Engn, Sindh, Pakistan
关键词
Nanofluids; Heat transfer; Stability; Thermal conductivity; Rheological properties; WATER-BASED NANOFLUIDS; PRESSURE-DROP CHARACTERISTICS; CARBON NANOTUBES; CONDUCTIVITY ENHANCEMENT; GLYCOL NANOFLUIDS; BROWNIAN-MOTION; PARTICLE-SIZE; THERMOPHYSICAL PROPERTIES; TRANSFER PERFORMANCE; AQUEOUS SUSPENSIONS;
D O I
10.1016/j.energy.2015.06.105
中图分类号
O414.1 [热力学];
学科分类号
摘要
Nanofluids are fluid nanoparticle suspensions that exhibit enhanced properties at modest nanoparticle concentrations. Nanofluids have unique heat transfer properties and are utilized in high heat flux systems (e.g., electronic cooling systems, heat exchanger liquids, solar collectors, and nuclear reactors). However, suspension stability is critical in the development and application of these heat transfer fluids. Reynolds number, mass concentration, and particle size control the heat transfer behavior of fluids. Sedimentation and agglomeration of nanoparticles in nanofluids and their dispersion have rarely been investigated. Therefore, this paper explains the parameters that affect the stability of nanofluids and the different techniques used to evaluate the stability of nanofluids. This paper also presents an updated review of properties of nanofluids, such as physical (thermal conductivity) and theological properties, with emphasis on their heat transfer enhancement characteristics. Studies on zeta potential as a function of pH are discussed and extended further to identify opportunities for future research. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1065 / 1086
页数:22
相关论文
共 281 条
[41]  
Das SK, 2008, NANOFLUIDS: SCIENCE AND TECHNOLOGY, P1
[42]   Temperature dependence of thermal conductivity enhancement for nanofluids [J].
Das, SK ;
Putra, N ;
Thiesen, P ;
Roetzel, W .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2003, 125 (04) :567-574
[43]   Pool boiling of nano-fluids on horizontal narrow tubes [J].
Das, SK ;
Putra, N ;
Roetzel, W .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2003, 29 (08) :1237-1247
[44]   A critical review of convective heat transfer of nanofluids [J].
Daungthongsuk, Weerapun ;
Wongwises, Somchai .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2007, 11 (05) :797-817
[45]  
David Martinez CM, 2009, HEAT TRANSFER ENHANC
[46]   Application of the modulated temperature differential scanning calorimetry technique for the determination of the specific heat of copper nanofluids [J].
De Robertis, E. ;
Cosme, E. H. H. ;
Neves, R. S. ;
Kuznetsov, A. Yu ;
Campos, A. P. C. ;
Landi, S. M. ;
Achete, C. A. .
APPLIED THERMAL ENGINEERING, 2012, 41 :10-17
[47]  
Dehkordi BL, 2011, STUDY THERMOPHYSICAL
[48]  
Derjaguin B.V., 1941, ACTA PHYSICOCHIM URS, V14, P633, DOI DOI 10.1016/0079-6816(93)90013-L
[49]   The surface science of titanium dioxide [J].
Diebold, U .
SURFACE SCIENCE REPORTS, 2003, 48 (5-8) :53-229
[50]   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