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The results obtained from the nanofluids were compared with the results obtained from pure water.
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Several existing theoretical models for thermal conductivity of nanofluids were compared with the experimental data, but they all showed disagreement.
The experimental results of thermal conductivity of nanofluids are compared with the modeling results predicted by Jang and Choi model [14].
In other words, the experimental data obtained with the Al2O3/water nanofluid was compared with baseline values.
The SHC in liquid phase, the melting temperatures, and the startup heat were compared with those of the solar salt nanofluids.
The predicted viscosities were compared with experimental data for four nanofluids, which were Al2O3, CuO, TiO2 and SiO2, and with water as base fluid.
Predicted thermal conductivities as well as viscosities were compared with experimental data for three different nanofluids, having nanoparticles volume concentrations of 0.00125% and 0.050%.
Ag-water nanofluids with different concentrations including 0.005%, 0.01%, and 0.02% volume fractions were used, and their results were compared with those ones for base fluid.
In addition, the convective heat transfer coefficient obtained from the current simulation method was compared with the one obtained from the experimental study of Wen and Ding [34] for water-Al2O3 nanofluid flow inside a horizontal tube at φ = 1 % and Re = 1600.
The performance of the ETSC using Al2O3 nanofluid and water was compared with the flow rate inside the coil was varied from 20 to 60 l/h.
Varying dilutions of the Ag SiO2 nanofluid are compared to solutions diluted with dispersed CNTs.
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