In this paper a critical investigation of layering phenomenon has been carried out, by means of experimental and numerical analyses, to explain the differences in thermal conductivity between nanofluids based on metal (Cu) and metal oxide (CuO) nanoparticles. Particularly, molecular dynamics simulations have been developed to investigate the adsorption of water molecules surrounding Cu and CuO nanoparticles of various sizes. Furthermore, different volume concentrations of nanoparticles in water have been analyzed. The numerical results revealed two shell-like formations of water molecules (layers) close to the Cu nanoparticle surface, differently from CuO nanoparticle, where no significant layering phenomenon has been observed. This resu...
In this study, steady flow and heat transfer through a copper–water nanofluid around a square cylind...
We present experimental results of the thermal conductivity of several nanofluids prepared by disper...
In a molecular dynamics study of water based nanofluids, we show that a hydration layer is formed at...
ABSTRACT Nanofluids -colloidal suspensions of nanoparticles in base fluids -are known to possess sup...
© 2020 Elsevier Ltd Molecular dynamics (MD) simulation is one of the most common simulation methods ...
This paper was presented at the 4th Micro and Nano Flows Conference (MNF2014), which was held at Uni...
© 2022 Loya et al.; licensee Beilstein-Institut. This is an open access article licensed under the t...
In this work, an experimental campaign on different nanofluids and micro-fluids, obtained by the dis...
This paper concerns the behaviour of a copper–argon nanofluid confined in a nanochannel. Using molec...
[[abstract]]Molecular Dynamics simulations are performed to calculate the thermal conductivity of na...
The present study is focused on the presentation of a numerical solution for copper-water nanofluid ...
Nanofluids exhibit enhanced thermal conductivity superior to traditional heat transfer fluids. The c...
This study discusses the merits of various physical mechanisms that are responsible for enhancing th...
Convective boiling heat transfer coefficient of spherical CuO (II) nanoparticles dispersed in water ...
Contribution of Cu (copper) nanoparticle shapes in base fluid – water on nanofluid flow over a movin...
In this study, steady flow and heat transfer through a copper–water nanofluid around a square cylind...
We present experimental results of the thermal conductivity of several nanofluids prepared by disper...
In a molecular dynamics study of water based nanofluids, we show that a hydration layer is formed at...
ABSTRACT Nanofluids -colloidal suspensions of nanoparticles in base fluids -are known to possess sup...
© 2020 Elsevier Ltd Molecular dynamics (MD) simulation is one of the most common simulation methods ...
This paper was presented at the 4th Micro and Nano Flows Conference (MNF2014), which was held at Uni...
© 2022 Loya et al.; licensee Beilstein-Institut. This is an open access article licensed under the t...
In this work, an experimental campaign on different nanofluids and micro-fluids, obtained by the dis...
This paper concerns the behaviour of a copper–argon nanofluid confined in a nanochannel. Using molec...
[[abstract]]Molecular Dynamics simulations are performed to calculate the thermal conductivity of na...
The present study is focused on the presentation of a numerical solution for copper-water nanofluid ...
Nanofluids exhibit enhanced thermal conductivity superior to traditional heat transfer fluids. The c...
This study discusses the merits of various physical mechanisms that are responsible for enhancing th...
Convective boiling heat transfer coefficient of spherical CuO (II) nanoparticles dispersed in water ...
Contribution of Cu (copper) nanoparticle shapes in base fluid – water on nanofluid flow over a movin...
In this study, steady flow and heat transfer through a copper–water nanofluid around a square cylind...
We present experimental results of the thermal conductivity of several nanofluids prepared by disper...
In a molecular dynamics study of water based nanofluids, we show that a hydration layer is formed at...