In this study, different nanofluids (NFs) were developed by mixing a molten salt mixture (60% NaNO3–40% KNO3) with 1.0 wt % of silica–alumina nanoparticles using different methods. These NFs can be used as thermal energy storage materials in concentrating solar plants with a reduction of storage material if the thermal properties of the base fluid are increased. New mixing procedures without sonication were introduced with the aim to avoid the sonication step and to allow the production of a greater amount of NF with a procedure potentially more suitable for large-scale productions. For this purpose, two mechanical mixers and a magnetic stirrer were used. Each NF was prepared in aqueous solution with a concentration of 100 g/l. The effect of different concentrations (300 g/l and 500 g/l) was also studied with the most effective mixer. Specific heat, melting temperature, and latent heat were measured by means of differential scanning calorimeter. Thermal conductivity and diffusivity in the solid state were also evaluated. The results show that the highest increase of the specific heat was obtained with 100 g/l both in solid (up to 31%) and in liquid phase (up to 14%) with the two mechanical mixers. The same NFs also showed higher amount of stored heat. An increase in thermal conductivity and diffusivity was also detected for high solution concentrations with a maximum of 25% and 47%, respectively. Scanning electron microscopy (SEM) and energy-dispersive X-ray analyses revealed that the grain size in the NFs is much smaller than in the salt mixture, especially for the NF showing the highest thermal properties increase, and a better nanoparticles distribution is achieved with the lowest concentration. NFs with enhanced thermal properties can be synthesized in a cost-effective form in high concentrated aqueous solutions by using mechanical mixers.
Skip Nav Destination
Article navigation
Research-Article
Synthesis and Characterization of Nanofluids Useful in Concentrated Solar Power Plants Produced by New Mixing Methodologies for Large-Scale Production
Manila Chieruzzi,
Manila Chieruzzi
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Strada di Pentima 4,
Terni 05100, Italy
e-mail: manila.chieruzzi@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4,
Terni 05100, Italy
e-mail: manila.chieruzzi@unipg.it
Search for other works by this author on:
Adio Miliozzi,
Adio Miliozzi
ENEA—Italian National Agency
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
Rome 00123, Italy
e-mail: adio.miliozzi@enea.it
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
S. Maria di Galeria 301
,Rome 00123, Italy
e-mail: adio.miliozzi@enea.it
Search for other works by this author on:
Tommaso Crescenzi,
Tommaso Crescenzi
ENEA—Italian National Agency
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
Rome 00123, Italy
e-mail: tommaso.crescenzi@enea.it
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
S. Maria di Galeria 301
,Rome 00123, Italy
e-mail: tommaso.crescenzi@enea.it
Search for other works by this author on:
José M. Kenny,
José M. Kenny
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Terni 05100, Italy
e-mail: jose.kenny@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4
,Terni 05100, Italy
e-mail: jose.kenny@unipg.it
Search for other works by this author on:
Luigi Torre
Luigi Torre
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Terni 05100, Italy
e-mail: luigi.torre@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4
,Terni 05100, Italy
e-mail: luigi.torre@unipg.it
Search for other works by this author on:
Manila Chieruzzi
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Strada di Pentima 4,
Terni 05100, Italy
e-mail: manila.chieruzzi@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4,
Terni 05100, Italy
e-mail: manila.chieruzzi@unipg.it
Adio Miliozzi
ENEA—Italian National Agency
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
Rome 00123, Italy
e-mail: adio.miliozzi@enea.it
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
S. Maria di Galeria 301
,Rome 00123, Italy
e-mail: adio.miliozzi@enea.it
Tommaso Crescenzi
ENEA—Italian National Agency
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
Rome 00123, Italy
e-mail: tommaso.crescenzi@enea.it
for New Technologies,
Energy and Sustainable Economic Development,
Casaccia Research Centre Via Anguillarese,
S. Maria di Galeria 301
,Rome 00123, Italy
e-mail: tommaso.crescenzi@enea.it
José M. Kenny
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Terni 05100, Italy
e-mail: jose.kenny@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4
,Terni 05100, Italy
e-mail: jose.kenny@unipg.it
Luigi Torre
Civil and Environmental Engineering Department,
University of Perugia,
UdR INSTM,
Terni 05100, Italy
e-mail: luigi.torre@unipg.it
University of Perugia,
UdR INSTM,
Strada di Pentima 4
,Terni 05100, Italy
e-mail: luigi.torre@unipg.it
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received January 29, 2017; final manuscript received September 7, 2017; published online January 10, 2018. Assoc. Editor: Gennady Ziskind.
J. Heat Transfer. Apr 2018, 140(4): 042401 (13 pages)
Published Online: January 10, 2018
Article history
Received:
January 29, 2017
Revised:
September 7, 2017
Citation
Chieruzzi, M., Miliozzi, A., Crescenzi, T., Kenny, J. M., and Torre, L. (January 10, 2018). "Synthesis and Characterization of Nanofluids Useful in Concentrated Solar Power Plants Produced by New Mixing Methodologies for Large-Scale Production." ASME. J. Heat Transfer. April 2018; 140(4): 042401. https://doi.org/10.1115/1.4038415
Download citation file:
Get Email Alerts
Cited By
Effect of Rib Blockage Ratio and Arrangements on Impingement Heat Transfer in Double-Wall Cooling
J. Heat Mass Transfer (September 2023)
Numerical Simulation of Mixed Convection Cooling of Electronic Component Within a Lid-Driven Cubic Cavity Filled With Nanofluid
J. Heat Mass Transfer (September 2023)
Experimental Analysis of the Influential Factors on Mixed Convection Flow in Horizontal Pipes
J. Heat Mass Transfer (September 2023)
The Effect of Biot Number on a Generalized Heat Conduction Solution
J. Heat Mass Transfer
Related Articles
Nano-Phase Change Materials for Electronics Cooling Applications
J. Heat Transfer (May,2017)
Analysis and Design of a Paraffin/Graphite Composite PCM Integrated in a Thermal Storage Unit
J. Sol. Energy Eng (November,2010)
Low-Temperature Melting of Silver Nanoparticles in Subcooled and Saturated Water
J. Heat Transfer (May,2016)
Heat Transfer Coefficient in Rapid Solidification of a Liquid Layer on a Substrate
J. Heat Transfer (November,2000)
Related Proceedings Papers
Related Chapters
Numerical Study on Dynamic Charging Performance of Packed Bed Using Spherical Capsules Containing N-Tetradecane
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)
Pool Boiling
Thermal Management of Microelectronic Equipment, Second Edition
Simultaneous Thermal Conductivity and Specific Heat Measurements of Thin Samples by Transient Joule Self-Heating
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)