Recent Advances in Thermal Conductivity of Nanofluids

被引:3
|
作者
Witharana, Sanjeeva [1 ]
Weliwita, Jinendrika Anushi [2 ]
Chen, Haisheng [3 ]
Wang, Liang [3 ]
机构
[1] Univ Leeds, Inst Particle Sci & Engn, Leeds LS2 9JT, W Yorkshire, England
[2] Univ Leeds, Sch Math, Leeds LS2 9JT, W Yorkshire, England
[3] Chinese Acad Sci, Inst Engn Thermophys, Beijing 100190, Peoples R China
关键词
Aggregation; brownian motion; enhancement; nanofluids; thermal conductivity; HEAT-TRANSFER CHARACTERISTICS; PARTICLE-SIZE; INTERFACIAL LAYERS; CARBON NANOTUBES; BROWNIAN-MOTION; ENHANCEMENT; MODEL; SUSPENSIONS; FLUID; AGGREGATION;
D O I
10.2174/18722105113079990006
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This paper presents the most recent review of research articles and patents on thermal conductivity on nanofluids. Larger portion of literature accounts for experimental investigations, which is a sign of the preference for hands-on work by experimentalists. Metallic, non-metallic as well as ceramic nanoparticles of different sizes and shapes were suspended in common heat transfer liquids and their thermal conductivities were measured. In contrast to previous belief, it has now been proven that when the nanoparticle concentration is kept low the degree of enhancement falls reasonably within the boundaries predicted by the effective medium theories. There are strong evidences to suggest that the main mechanisms driving the thermal conductivity behavior are nanoparticle aggregation and the particle Brownian motion in suspension.
引用
收藏
页码:198 / 207
页数:10
相关论文
共 50 条
  • [41] Nanodiamond Nanofluids for Enhanced Thermal Conductivity
    Branson, Blake T.
    Beauchamp, Paul S.
    Beam, Jeremiah C.
    Lukehart, Charles M.
    Davidson, Jim L.
    ACS NANO, 2013, 7 (04) : 3183 - 3189
  • [42] Thermal Conductivity Behavior of Yttria Nanofluids
    Masharqa, Salim J. S.
    Tesfai, Waka
    Singh, Pawan K.
    Chiesa, Matteo
    Shatilla, Youssef
    PROCEEDINGS OF THE ASME MICRO/NANOSCALE HEAT AND MASS TRANSFER INTERNATIONAL CONFERENCE, 2012, 2012, : 201 - 206
  • [43] Thermal conductivity of interfacial layers in nanofluids
    Liang, Zhi
    Tsai, Hai-Lung
    PHYSICAL REVIEW E, 2011, 83 (04):
  • [44] Effect of clusters on thermal conductivity in nanofluids
    Xu Jie
    Yu Bo-Ming
    Yun Mei-Juan
    CHINESE PHYSICS LETTERS, 2006, 23 (10) : 2819 - 2822
  • [45] Investigations of thermal conductivity and viscosity of nanofluids
    Murshed, S. M. S.
    Leong, K. C.
    Yang, C.
    INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2008, 47 (05) : 560 - 568
  • [46] Synthesis and thermal conductivity of ZnO nanofluids
    Jiang, Wei
    Su, Jingwen
    Zhang, Canying
    Wu, Daxiong
    Zhu, Haitao
    RESOURCES AND SUSTAINABLE DEVELOPMENT, PTS 1-4, 2013, 734-737 : 2415 - 2419
  • [47] Stability and thermal conductivity characteristics of nanofluids
    Hwang, Y.
    Lee, J. K.
    Lee, C. H.
    Jung, Y. M.
    Cheong, S. I.
    Lee, C. G.
    Ku, B. C.
    Jang, S. P.
    THERMOCHIMICA ACTA, 2007, 455 (1-2) : 70 - 74
  • [48] Study of the effective thermal conductivity of nanofluids
    Shukla, Ratnesh K.
    Dhir, Vijay K.
    PROCEEDINGS OF THE ASME HEAT TRANSFER DIVISION 2005, VOL 2, 2005, 376-2 : 537 - 541
  • [49] Effect of Nanostructure on Thermal Conductivity of Nanofluids
    Lotfizadeh, Saba
    Matsoukas, Themis
    JOURNAL OF NANOMATERIALS, 2015, 2015
  • [50] Recent advances of solar thermal conversion with wide absorption spectrum based on plasmonic nanofluids
    Xing, Linzhuang
    Ha, Yuan
    Wang, Ruipeng
    Li, Zhimin
    SOLAR ENERGY, 2023, 262