The pumping power diminution consequent to the use of nanoparticle suspensions as heat transfer fluids is analyzed theoretically assuming that nanofluids behave like single-phase fluids. In this hypothesis, all the heat transfer and friction factor correlations originally developed for single-phase flows can be used also for nanoparticle suspensions, provided that the thermophysical properties appearing in them are the nanofluid effective properties calculated at the reference temperature. In this regard, two empirical equations, based on a wide variety of experimental data reported in the literature, are used for the evaluation of the nanofluid effective thermal conductivity and dynamic viscosity. Conversely, the other effective properties are computed by the traditional mixing theory. Both laminar and turbulent flow regimes are investigated, using the operating conditions, the nanoparticle diameter, and the solid–liquid combination as control parameters. The fundamental result obtained is the existence of an optimal particle loading for minimum cost of operation at constant heat transfer rate. A set of empirical dimensional algebraic equations is proposed to determine the optimal particle loading of water-based nanofluids.
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December 2012
This article was originally published in
Journal of Heat Transfer
Research-Article
Pumping Energy Saving Using Nanoparticle Suspensions as Heat Transfer Fluids
Massimo Corcione,
Massimo Corcione
1
Mem. ASME
e-mail: massimo.corcione@uniroma1.it
e-mail: massimo.corcione@uniroma1.it
1Corresponding author.
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Alessandro Quintino
Alessandro Quintino
DIAEE Sezione Fisica Tecnica,
via Eudossiana 18,
00184 Rome,
Sapienza Università di Roma
,via Eudossiana 18,
00184 Rome,
Italy
Search for other works by this author on:
Massimo Corcione
Mem. ASME
e-mail: massimo.corcione@uniroma1.it
e-mail: massimo.corcione@uniroma1.it
Alessandro Quintino
DIAEE Sezione Fisica Tecnica,
via Eudossiana 18,
00184 Rome,
Sapienza Università di Roma
,via Eudossiana 18,
00184 Rome,
Italy
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received December 15, 2011; final manuscript received April 30, 2012; published online October 5, 2012. Assoc. Editor: Robert D. Tzou.
J. Heat Transfer. Dec 2012, 134(12): 121701 (9 pages)
Published Online: October 5, 2012
Article history
Received:
December 15, 2011
Revision Received:
April 30, 2012
Citation
Corcione, M., Cianfrini, M., and Quintino, A. (October 5, 2012). "Pumping Energy Saving Using Nanoparticle Suspensions as Heat Transfer Fluids." ASME. J. Heat Transfer. December 2012; 134(12): 121701. https://doi.org/10.1115/1.4007314
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