Experimental investigation of turbulent flow and convective heat transfer characteristics of alumina water nanofluids in fully developed flow regime

In this paper the convective heat transfer and friction factor of the nanofluids in a circular tube with constant wall temperature under turbulent flow conditions were investigated experimentally. Al2O3 nanoparticles with diameters of 40nm dispersed in distilled water with volume concentrations of 0...

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Veröffentlicht in:International communications in heat and mass transfer 2012-10, Vol.39 (8), p.1272-1278
Hauptverfasser: Heyhat, M.M., Kowsary, F., Rashidi, A.M., Alem Varzane Esfehani, S., Amrollahi, A.
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Sprache:eng
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Zusammenfassung:In this paper the convective heat transfer and friction factor of the nanofluids in a circular tube with constant wall temperature under turbulent flow conditions were investigated experimentally. Al2O3 nanoparticles with diameters of 40nm dispersed in distilled water with volume concentrations of 0.1–2vol.% were used as the test fluid. All physical properties of the Al2O3–water nanofluids needed to calculate the pressure drop and the convective heat transfer coefficient were measured. The results show that the heat transfer coefficient of nanofluid is higher than that of the base fluid and increased with increasing the particle concentrations. Moreover, the Reynolds number has a little effect on heat transfer enhancement. The experimental data were compared with traditional convective heat transfer and viscous pressure drop correlations for fully developed turbulent flow. It was found that if the measured thermal conductivities and viscosities of the nanofluids were used in calculating the Reynolds, Prandtl, and Nusselt numbers, the existing correlations perfectly predict the convective heat transfer and viscous pressure drop in tubes.
ISSN:0735-1933
1879-0178
DOI:10.1016/j.icheatmasstransfer.2012.06.024