An innovative concept of water-based Cu–Al2O3 hybrid nanofluid has been employed to investigate the behavior of flow and heat transfer inside a rectangular channel whose permeable walls experiences dilation or contraction in height. The transformed set of ordinary differential equations is then solved by a well-known Runge–Kutta–Fehlberg algorithm. The analysis also includes three different shapes of copper nanocomposites, namely, platelet, cylinder and brick- shaped. The impact of various embedded parameters on the flow and heat transfer distributions have been demonstrated through the graphs. All the flow properties, temperature profile and rate of heat transfer at the walls are greatly influenced by the presence of copp...
The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer coolant is nu...
The energy and mass transition through Newtonian hybrid nanofluid flow comprised of copper Cu and al...
Abstract The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer cool...
An innovative concept of water-based Cu–Al2O3 hybrid nanofluid has been employed to investigat...
This study concerns the three-dimensional hybrid nanofluid flow and heat transfer due to a deformabl...
Purpose: The purpose of this paper is to study the flow and heat transfer of a hybrid nanofluid, Cu–...
Purpose: The purpose of this paper is to examine the axisymmetric flow and heat transfer of a hybrid...
The paper contains the analytical investigation of magnetohydrodynamic (MHD) flow of (Copper Al2O3)...
The paper contains the analytical investigation of magnetohydrodynamic (MHD) flow of (Copper Al2O3)...
The thermal characteristics of modified hybrid nanoparticles have been studied between two parallel ...
A steady flow and heat transfer of a hybrid nanofluid past a permeable moving surface is investigate...
This paper aims to analyze the effects of different nanoparticles shape factor, EMHD and radiation p...
The fascinating properties of hybrid nanofluid consisting of chemical and mechanical strength, excel...
The study scrutinizes the coupled effects of thermal stratification and mixed convection on boundary...
This article presents the magnetohydrodynamic flow and heat transfer of water-based nanofluid in div...
The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer coolant is nu...
The energy and mass transition through Newtonian hybrid nanofluid flow comprised of copper Cu and al...
Abstract The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer cool...
An innovative concept of water-based Cu–Al2O3 hybrid nanofluid has been employed to investigat...
This study concerns the three-dimensional hybrid nanofluid flow and heat transfer due to a deformabl...
Purpose: The purpose of this paper is to study the flow and heat transfer of a hybrid nanofluid, Cu–...
Purpose: The purpose of this paper is to examine the axisymmetric flow and heat transfer of a hybrid...
The paper contains the analytical investigation of magnetohydrodynamic (MHD) flow of (Copper Al2O3)...
The paper contains the analytical investigation of magnetohydrodynamic (MHD) flow of (Copper Al2O3)...
The thermal characteristics of modified hybrid nanoparticles have been studied between two parallel ...
A steady flow and heat transfer of a hybrid nanofluid past a permeable moving surface is investigate...
This paper aims to analyze the effects of different nanoparticles shape factor, EMHD and radiation p...
The fascinating properties of hybrid nanofluid consisting of chemical and mechanical strength, excel...
The study scrutinizes the coupled effects of thermal stratification and mixed convection on boundary...
This article presents the magnetohydrodynamic flow and heat transfer of water-based nanofluid in div...
The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer coolant is nu...
The energy and mass transition through Newtonian hybrid nanofluid flow comprised of copper Cu and al...
Abstract The proficiency of hybrid nanofluid from Cu-Al2O3/water formation as the heat transfer cool...