Particle size effects in the thermal conductivity enhancement of copper-based nanofluids

被引:69
|
作者
Saterlie, Michael [1 ]
Sahin, Huseyin [2 ]
Kavlicoglu, Barkan [2 ]
Liu, Yanming [2 ]
Graeve, Olivia [1 ]
机构
[1] Alfred Univ, Kazuo Inamori Sch Engn, Alfred, NY 14802 USA
[2] Adv Mat & Devices Inc, Reno, NV 89502 USA
来源
基金
美国国家科学基金会;
关键词
CONVECTIVE HEAT-TRANSFER; GLYCOL-BASED NANOFLUIDS; FLOW; NANOPARTICLES; SUSPENSIONS; FLUID; CTAB; REDUCTION; MONOLAYER; TRANSPORT;
D O I
10.1186/1556-276X-6-217
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We present an analysis of the dispersion characteristics and thermal conductivity performance of copper-based nanofluids. The copper nanoparticles were prepared using a chemical reduction methodology in the presence of a stabilizing surfactant, oleic acid or cetyl trimethylammonium bromide (CTAB). Nanofluids were prepared using water as the base fluid with copper nanoparticle concentrations of 0.55 and 1.0 vol.%. A dispersing agent, sodium dodecylbenzene sulfonate (SDBS), and subsequent ultrasonication was used to ensure homogenous dispersion of the copper nanopowders in water. Particle size distribution of the copper nanoparticles in the base fluid was determined by dynamic light scattering. We found that the 0.55 vol.% Cu nanofluids exhibited excellent dispersion in the presence of SDBS. In addition, a dynamic thermal conductivity setup was developed and used to measure the thermal conductivity performance of the nanofluids. The 0.55 vol.% Cu nanofluids exhibited a thermal conductivity enhancement of approximately 22%. In the case of the nanofluids prepared from the powders synthesized in the presence of CTAB, the enhancement was approximately 48% over the base fluid for the 1.0 vol. % Cu nanofluids, which is higher than the enhancement values found in the literature. These results can be directly related to the particle/agglomerate size of the copper nanoparticles in water, as determined from dynamic light scattering.
引用
收藏
页码:1 / 7
页数:7
相关论文
共 50 条
  • [31] Thermal conductivity enhancement of nanofluids by Brownian motion
    Chon, CH
    Kihm, KD
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2005, 127 (08): : 810 - 810
  • [32] Temperature dependence of thermal conductivity enhancement for nanofluids
    Das, SK
    Putra, N
    Thiesen, P
    Roetzel, W
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2003, 125 (04): : 567 - 574
  • [33] Investigation on characteristics of thermal conductivity enhancement of nanofluids
    Hwang, Y. J.
    Ahn, Y. C.
    Shin, H. S.
    Lee, C. G.
    Kim, G. T.
    Park, H. S.
    Lee, J. K.
    CURRENT APPLIED PHYSICS, 2006, 6 (06) : 1068 - 1071
  • [34] INFLUENCING FACTORS FOR THERMAL CONDUCTIVITY ENHANCEMENT OF NANOFLUIDS
    Xie, Huaqing
    Yu, Wei
    Li, Yang
    Chen, Lifei
    MNHMT2009, VOL 1, 2010, : 591 - 598
  • [35] Price-performance evaluation of thermal conductivity enhancement of nanofluids with different particle sizes
    Alirezaie, Ali
    Hajmohammad, Mohammad Hadi
    Ahangar, Mohammad Reza Hassani
    Hemmat Esfe, Mohammad
    APPLIED THERMAL ENGINEERING, 2018, 128 : 373 - 380
  • [36] Thermal Conductivity of Nanofluids: Influence of Particle Shape
    Eidelman, E. D.
    Vul, A. Y.
    TECHNICAL PHYSICS LETTERS, 2023, 49 (12) : 246 - 249
  • [37] Thermal Conductivity of Nanofluids: Influence of Particle Shape
    E. D. Eidelman
    A. Y. Vul
    Technical Physics Letters, 2023, 49 : 246 - 249
  • [38] Synthesis and thermal conductivity of microfluidic copper nanofluids
    Xiaohao Wei
    Particuology, 2010, 8 (03) : 262 - 271
  • [39] Synthesis and thermal conductivity of microfluidic copper nanofluids
    Wei, Xiaohao
    Wang, Liqiu
    PARTICUOLOGY, 2010, 8 (03) : 262 - 271
  • [40] A critical review on thermal conductivity enhancement of graphene-based nanofluids
    Pavia, Mauricio
    Alajami, Khoder
    Estelle, Patrice
    Desforges, Alexandre
    Vigolo, Brigitte
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2021, 294 (294)