The limiting behavior of the thermal conductivity of nanoparticles and nanofluids

被引:39
|
作者
Teja, Amyn S. [1 ]
Beck, Michael P. [1 ]
Yuan, Yanhui [1 ]
Warrier, Pramod [1 ]
机构
[1] Georgia Inst Technol, Sch Chem & Biomol Engn, Atlanta, GA 30332 USA
关键词
colloids; nanofluidics; nanoparticles; particle size; phonons; thermal conductivity; titanium compounds; SUSPENSIONS; MIXTURES; LAYERS;
D O I
10.1063/1.3354094
中图分类号
O59 [应用物理学];
学科分类号
摘要
We present experimental evidence of negative thermal conductivity enhancement in nanofluids consisting of 2 nm titania nanoparticles dispersed in 50% (w/w) water+ethylene glycol. This behavior is unlike that of other nanofluids, which have been shown to exhibit positive thermal conductivity enhancements. Our results for titania nanofluids suggest that the thermal conductivity of 2 nm titania nanoparticles is smaller than the thermal conductivity of the base fluid at the same temperature, indicating a dramatic decrease in the thermal conductivity of titania particles as the particle size becomes of the same order as the phonon mean free path. Although such a decrease has been predicted for semiconductor nanoparticles by theory and simulation, experimental evidence has hitherto been lacking. Our results provide indirect experimental evidence for this decrease in metal oxide particles, and validate our previous work on alumina nanofluids that showed an exponential decrease in the thermal conductivity of alumina particles with decreasing particle size, from a limiting value for large (micron-sized) particles. (C) 2010 American Institute of Physics. [doi:10.1063/1.3354094]
引用
收藏
页数:4
相关论文
共 50 条
  • [31] Thermal conductivity of nanofluids and size distribution of nanoparticles by Monte Carlo simulations
    Feng, Yongjin
    Yu, Boming
    Feng, Kaiming
    Xu, Peng
    Zou, Mingqing
    JOURNAL OF NANOPARTICLE RESEARCH, 2008, 10 (08) : 1319 - 1328
  • [32] Nanoparticles Shape Effect on Thermal Conductivity of Nanofluids: A Molecular Dynamics Study
    Roni, Md. Rakibul Hasan
    Morshed, A. K. M. M.
    Tikadar, Amitav
    Paul, Titan C.
    Khan, Jamil A.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2019, VOL 8, 2019,
  • [33] Thermal conductivity of nanofluids and size distribution of nanoparticles by Monte Carlo simulations
    Yongjin Feng
    Boming Yu
    Kaiming Feng
    Peng Xu
    Mingqing Zou
    Journal of Nanoparticle Research, 2008, 10 : 1319 - 1328
  • [34] Effect of Nanolayer and Aggregation of Nanoparticles in Predicting Effective Thermal Conductivity of Nanofluids
    Chauhan, Deepti
    Singhvi, Nilima
    JOURNAL OF NANOFLUIDS, 2014, 3 (04) : 361 - 367
  • [35] A model for thermal conductivity of nanofluids
    Emami-Meibodi, Majid
    Vafaie-Sefti, Mohsen
    Rashidi, Ali Morad
    Amrollahi, Azadeh
    Tabasi, Mohsen
    Sid-Kalal, Hossein
    MATERIALS CHEMISTRY AND PHYSICS, 2010, 123 (2-3) : 639 - 643
  • [36] Review on Thermal Conductivity of Nanofluids
    Sarviya, R. M.
    Fuskele, Veeresh
    MATERIALS TODAY-PROCEEDINGS, 2017, 4 (02) : 4022 - 4031
  • [37] A model of nanofluids thermal conductivity
    Wang, Jinbo
    Chen, Gang
    Zhang, Zongqin
    HT2005: Proceedings of the ASME Summer Heat Transfer Conference 2005, Vol 1, 2005, : 501 - 508
  • [38] Thermal conductivity enhancement of nanofluids
    Cherkasova, A
    Shan, J
    CARBON NANOTUBES: FROM BASIC RESEARCH TO NANOTECHNOLOGY, 2006, 222 : 235 - +
  • [39] Modelling the thermal conductivity of nanofluids
    Tillman, P.
    Hill, J. M.
    IUTAM SYMPOSIUM ON MECHANICAL BEHAVIOR AND MICRO-MECHANICS OF NANOSTRUCTURED MATERIALS, 2007, 144 : 105 - +
  • [40] Thermal conductivity measurements of nanofluids
    Pryazhnikov, M. I.
    Minakov, A. V.
    Rudyak, V. Ya.
    Guzei, D. V.
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 104 : 1275 - 1282