Experimental investigation on properties of hybrid nanofluids (TiO2 and ZnO) in water–ethylene glycol mixture

Authors

  • N.S.M. Sahid Faculty of Mechanical Engineering, Universiti Malaysia Pahang 26600 Pekan, Pahang, Malaysia
  • M.M. Rahman Faculty of Mechanical Engineering, Universiti Malaysia Pahang 26600 Pekan, Pahang, Malaysia
  • K. Kadirgama Faculty of Mechanical Engineering, Universiti Malaysia Pahang 26600 Pekan, Pahang, Malaysia
  • M.A. Maleque Department of Manufacturing and Materials Engineering International Islamic University Malaysia 53100 Kuala Lumpur, Malaysia

DOI:

https://doi.org/10.15282/jmes.11.4.2017.11.0277

Keywords:

Hybrid nanofluids; thermal conductivity; temperature; ethylene glycol; titanium oxide; zinc oxide.

Abstract

This paper presents an experimental investigation on properties and stability of hybrid nanofluids (TiO2 and ZnO) in water-ethylene glycol mixture. The nanofluids are important in heat enhanced due to its inherent operative performance. The performance of hybrid nanofluids in mixture based fluids is not explored vigorously yet. The properties of TiO2 and ZnO nanoparticle dispersed in mixture of water and ethyelene glycol (EG) were considered in this study. The outcome of base fluid proportion (water: EG) to hybrid nanofluids was investigated. Hybrid nanofluids with different volume concentration up to 0.1-1.5% were prepared with 21nm particle size of TiO2 and 10-30nm ZnO nanoparticle. The nanoparticle were suspended in various ratio of TiO2 : ZnO including 70:30, 80:20 and 90:10 by volume percent. The measurements of viscosity were performed using Brookfield LVDV III Ultra Rheometer for hybrid nanofluid temperature of 50 to 70 oC, while the measurements of thermal conductivity were performed using KD2 PRO thermal conductivity. Viscosity and thermal conductivity of hybrid nanofluids were perceived to impact by hybrid nanofluids concentration, temperature and waterethelene glycol as base fluid strongly.

References

Esfe MH, Behbahani PM, Arani AAA, Sarlak MR. Thermal conductivity enhancement of SiO 2–MWCNT (85: 15%)–EG hybrid nanofluids. Journal of Thermal Analysis and Calorimetry. 2017;128:249-58.

Verma SK, Tiwari AK. Progress of nanofluid application in solar collectors: a review. Energy Conversion and Management. 2015;100:324-46.

Jafarmadar S, Azizinia N, Razmara N, Mobadersani F. Thermal analysis and entropy generation of pulsating heat pipes using nanofluids. Applied Thermal Engineering. 2016;103:356-64.

Afrand M, Najafabadi KN, Akbari M. Effects of temperature and solid volume fraction on viscosity of SiO2-MWCNTs/SAE40 hybrid nanofluid as a coolant and lubricant in heat engines. Applied Thermal Engineering. 2016;102:45-54.

Hussein AM, Bakar R, Kadirgama K, Sharma K. Experimental measurement of nanofluids thermal properties. International Journal of Automotive and Mechanical Engineering. 2013;7:850-63.

Eastman JA, Phillpot S, Choi S, Keblinski P. Thermal transport in nanofluids 1. Annu Rev Mater Res. 2004;34:219-46.

Das SK, Putra N, Thiesen P, Roetzel W. Temperature dependence of thermal conductivity enhancement for nanofluids. Journal of Heat Transfer. 2003;125:567-74.

Sundar LS, Ramana EV, Singh M, De Sousa A. Viscosity of low volume concentrations of magnetic Fe 3 O 4 nanoparticles dispersed in ethylene glycol and water mixture. Chemical physics letters. 2012;554:236-42.

Namburu PK, Kulkarni DP, Misra D, Das DK. Viscosity of copper oxide nanoparticles dispersed in ethylene glycol and water mixture. Experimental Thermal and Fluid Science. 2007;32:397-402.

Nguyen C, Desgranges F, Roy G, Galanis N, Maré T, Boucher S, et al. Temperature and particle-size dependent viscosity data for water-based nanofluids–hysteresis phenomenon. International Journal of Heat and Fluid Flow. 2007;28:1492-506.

Timofeeva EV, Yu W, France DM, Singh D, Routbort JL. Base fluid and temperature effects on the heat transfer characteristics of SiC in ethylene glycol/H2O and H2O nanofluids. Journal of Applied Physics. 2011;109, 014914.

Yu W, Xie H, Li Y, Chen L, Wang Q. Experimental investigation on the heat transfer properties of Al2O3 nanofluids using the mixture of ethylene glycol and water as base fluid. Powder Technology. 2012;230:14-9.

Hamid KA, Azmi W, Mamat R, Usri N, Najafi G. Investigation of Al 2 O 3 Nanofluid Viscosity for Different Water/EG Mixture Based. Energy Procedia. 2015;79:354-9.

Masuda H, Ebata A, Teramae K. Alteration of thermal conductivity and viscosity of liquid by dispersing ultra-fine particles. Dispersion of Al2O3, SiO2 and TiO2 ultra-fine particles. 1993.

Wen D, Ding Y. Natural convective heat transfer of suspensions of titanium dioxide nanoparticles (nanofluids). IEEE Transactions on Nanotechnology. 2006;5:220-7.

Azmi W, Sharma K, Sarma P, Mamat R, Anuar S. Comparison of convective heat transfer coefficient and friction factor of TiO 2 nanofluid flow in a tube with twisted tape inserts. International Journal of Thermal Sciences. 2014;81:84-93.

Azmi W, Sharma K, Sarma P, Mamat R, Najafi G. Heat transfer and friction factor of water based TiO2 and SiO2 nanofluids under turbulent flow in a tube. International Communications in Heat and Mass Transfer. 2014;59:30-8.

Azmi W, Sharma K, Sarma P, Mamat R, Anuar S, Rao VD. Experimental determination of turbulent forced convection heat transfer and friction factor with SiO2 nanofluid. Experimental Thermal and Fluid Science. 2013;51:103-11.

Sahid N, Rahman M, Kadirgama K, Ramasamy D, Maleque M, Noor M. Experimental investigation on the performance of the TiO2 and ZnO hybrid nanocoolant in ethylene glycol mixture towards AA6061-T6 machining. International Journal of Automotive & Mechanical Engineering. 2017;14:3913-26.

Kulkarni DP, Namburu PK, Ed Bargar H, Das DK. Convective heat transfer and fluid dynamic characteristics of SiO2 ethylene glycol/water nanofluid. Heat Transfer Engineering. 2008;29:1027-35.

Vajjha RS, Das DK, Kulkarni DP. Development of new correlations for convective heat transfer and friction factor in turbulent regime for nanofluids. International Journal of Heat and Mass Transfer. 2010;53:4607-18.

Kole M, Dey T. Viscosity of alumina nanoparticles dispersed in car engine coolant. Experimental Thermal and Fluid Science. 2010;34:677-83.

Keblinski P, Phillpot S, Choi S, Eastman J. Mechanisms of heat flow in suspensions of nano-sized particles (nanofluids). International Journal of Heat and Mass Transfer. 2002;45:855-63.

Teng T-P, Hung Y-H, Teng T-C, Mo H-E, Hsu H-G. The effect of alumina/water nanofluid particle size on thermal conductivity. Applied Thermal Engineering. 2010;30:2213-8.

Vajjha RS, Das DK. Experimental determination of thermal conductivity of three nanofluids and development of new correlations. International Journal of Heat and Mass Transfer. 2009;52:4675-82.

Azmi W, Sharma K, Mamat R, Anuar S. Nanofluid properties for forced convection heat transfer: an overview. Journal of Mechanical Engineering and Sciences. 2013;4:397-408.

Hamid KA, Azmi W, Mamat R, Sharma K. Experimental investigation on heat transfer performance of TiO2 nanofluids in water–ethylene glycol mixture. International Communications in Heat and Mass Transfer. 2016;73:16-24.

Yu W, Xie H. A review on nanofluids: preparation, stability mechanisms, and applications. Journal of Nanomaterials. 2012;2012:1-17.

Downloads

Published

2017-12-31

How to Cite

[1]
N. Sahid, M. Rahman, K. Kadirgama, and M. Maleque, “Experimental investigation on properties of hybrid nanofluids (TiO2 and ZnO) in water–ethylene glycol mixture”, J. Mech. Eng. Sci., vol. 11, no. 4, pp. 3087–3094, Dec. 2017.