TY - JOUR
T1 - Study of viscosity and heat capacity characteristics of molten salt nanofluids for thermal energy storage
AU - El Far, Baha
AU - Rizvi, Syed Muhammad Mujtaba
AU - Nayfeh, Yousof
AU - Shin, Donghyun
N1 - Funding Information:
This work was supported by CMU Faculty Startup Fund . The authors acknowledge Dr. Jason Rama, Meliorum Technologies (Rochester, NY) for conducting photon correlation spectroscopy analysis. The authors acknowledge support of CMU imaging facility.
Publisher Copyright:
© 2020
PY - 2020/6/15
Y1 - 2020/6/15
N2 - In this study, we synthesized molten salt nanofluids by dispersing spherical SiO2 nanoparticles at a minute concentration (1 wt%) into a binary mixture of NaNO3-KNO3. The results showed that the heat capacity was enhanced by 15% and the viscosity was enhanced by 41–429%. Moreover, the nanofluids have shown significant non-Newtonian behavior (shear thinning). Nanofluids are known to show non-Newtonian behavior when particles have high aspect ratio (e.g., nanotube, rod-like structure) at high concentrations; however, only spherical nanoparticles were dispersed in molten salt at an extremely low concentration (1 wt%). The observed enhancement in heat capacity and the shear thinning behavior could result from the formation of dendritic salt nanostructures. Hence, we added hydroxide at an extremely low concentration (0.03 wt%) to disrupt the formation of such dendritic nanostructures to confirm their effects on the heat capacity and shear thinning behavior. The result showed that the heat capacity enhancement diminished from 15% to 3%. Moreover, the viscosity enhancement decreased from 429% to 148% at low shear rate (10/s) and from 41% to 10% at high shear rate (240/s). Furthermore, the enhanced viscosity of 10% at the highest shear rate (240/s), where the effect of the dendritic nanostructures is minimal, agreed well with a theoretical model developed for the viscosity of a simple liquid doped with nanoparticles. It supports that the dendritic salt nanostructures are primarily responsible for the enhanced heat capacity and the shear-thinning behavior of molten salt nanofluids. Material characterization using an electron microscope confirmed the presence of the dendritic salt nanostructures.
AB - In this study, we synthesized molten salt nanofluids by dispersing spherical SiO2 nanoparticles at a minute concentration (1 wt%) into a binary mixture of NaNO3-KNO3. The results showed that the heat capacity was enhanced by 15% and the viscosity was enhanced by 41–429%. Moreover, the nanofluids have shown significant non-Newtonian behavior (shear thinning). Nanofluids are known to show non-Newtonian behavior when particles have high aspect ratio (e.g., nanotube, rod-like structure) at high concentrations; however, only spherical nanoparticles were dispersed in molten salt at an extremely low concentration (1 wt%). The observed enhancement in heat capacity and the shear thinning behavior could result from the formation of dendritic salt nanostructures. Hence, we added hydroxide at an extremely low concentration (0.03 wt%) to disrupt the formation of such dendritic nanostructures to confirm their effects on the heat capacity and shear thinning behavior. The result showed that the heat capacity enhancement diminished from 15% to 3%. Moreover, the viscosity enhancement decreased from 429% to 148% at low shear rate (10/s) and from 41% to 10% at high shear rate (240/s). Furthermore, the enhanced viscosity of 10% at the highest shear rate (240/s), where the effect of the dendritic nanostructures is minimal, agreed well with a theoretical model developed for the viscosity of a simple liquid doped with nanoparticles. It supports that the dendritic salt nanostructures are primarily responsible for the enhanced heat capacity and the shear-thinning behavior of molten salt nanofluids. Material characterization using an electron microscope confirmed the presence of the dendritic salt nanostructures.
UR - http://www.scopus.com/inward/record.url?scp=85081688043&partnerID=8YFLogxK
U2 - 10.1016/j.solmat.2020.110503
DO - 10.1016/j.solmat.2020.110503
M3 - Article
AN - SCOPUS:85081688043
SN - 0927-0248
VL - 210
JO - Solar Energy Materials and Solar Cells
JF - Solar Energy Materials and Solar Cells
M1 - 110503
ER -