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

被引:0
作者
Michael Saterlie
Huseyin Sahin
Barkan Kavlicoglu
Yanming Liu
Olivia Graeve
机构
[1] Alfred University,Kazuo Inamori School of Engineering
[2] Advanced Materials and Devices,undefined
[3] Inc,undefined
来源
Nanoscale Research Letters | / 6卷
关键词
Thermal Conductivity; Oleic Acid; Nusselt Number; Base Fluid; Copper Nanoparticles;
D O I
暂无
中图分类号
学科分类号
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
相关论文
共 155 条
[1]  
Hamilton RL(1962)Thermal conductivity of heterogeneous two-component systems Ind Eng Chem Fundam 1 187-91
[2]  
Crosser OK(1995)Enhancing thermal conductivity of fluids with nanoparticles American Society of Mechanical Engineers, Fluids Engineering Division (Publication) FED 231 99-105
[3]  
Choi SUS(2002)Thermal conductivity of suspensions containing nanosized SiC particles Int J Thermophys 23 571-80
[4]  
Xie H(1999)Thermal conductivity of nanoparticle-fluid mixture J Thermophys Heat Transfer 13 474-80
[5]  
Wang J(1993)Alteration of thermal conductivity and viscosity of liquid by dispersing ultra-fine particles (dispersion of γ-Al Netsu Bussei 7 227-33
[6]  
Xi T(1999)O J Heat Transfer 121 280-90
[7]  
Liu Y(2002), SiO J Appl Phys 91 4568-72
[8]  
Wang X(2009), and TiO J Appl Phys 106 064307-67
[9]  
Xu X(2010) ultra-fine particles Biomaterials 31 4259-8
[10]  
Choi SUS(2010)Measuring thermal conductivity of fluids containing oxide nanoparticles J Am Ceram Soc 93 3035-7