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      Comparative Investigation of Water-Based Al2O3 Nanoparticles Through Water-Based CuO Nanoparticles Over an Exponentially Accelerated Radiative Riga Plate Surface via Heat Transport

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          Numerical Investigation of Hydromagnetic Hybrid Cu – Al2O3/Water Nanofluid Flow over a Permeable Stretching Sheet with Suction

          An emerging concept of hybrid nanofluid with a new improved model of its thermophysical properties are introduced in the present work. Hybrid nanofluid is an advanced type of conventional heat transfer fluids, which has been employed for the enhancement of heat transfer rate. Two distinct fluids, namely hybrid nanofluid (CuAl2O3/water) and nanofluid (Cu/water) are used to investigate the parametric features of the flow and heat transfer phenomena over a permeable stretching sheet in the presence of magnetic field. The effects of various physical parameters and effecting physical quantities of interest are analyzed. From this study it is observed that the heat transfer rate of hybrid nanofluid (CuAl2O3/water) is higher than that of Nanofluid (Cu/water) under magnetic field environment. More combinations of different nanocomposites can be tried so that the desired heat transfer rate can be achieved.
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            Empirical correlating equations for predicting the effective thermal conductivity and dynamic viscosity of nanofluids

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              Free convection on a vertical stretching surface with suction and blowing

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Arabian Journal for Science and Engineering
                Arab J Sci Eng
                Springer Science and Business Media LLC
                2193-567X
                2191-4281
                January 04 2022
                Article
                10.1007/s13369-021-06355-3
                43dd8879-e262-46f3-a851-c6f8df2cb8b2
                © 2022

                https://www.springer.com/tdm

                https://www.springer.com/tdm

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