In this paper, a non-isobaric Marangoni boundary layer flow that can be formed along the interface of immiscible nanofluids in surface driven flows due to an imposed temperature gradient, is considered. The solution is determined using a similarity solution for both the momentum and energy equations and assuming developing boundary layer flow along the interface of the immiscible nanofluids. The resulting system of nonlinear ordinary differential equations is solved numerically using the shooting method along with the Runge-Kutta-Fehlberg method. Numerical results are obtained for the interface velocity, the surface temperature gradient as well as the velocity and temperature profiles for some values of the governing parameters...
This study aims to investigate the classical problems of boundary layer flow and heat transfer chara...
This numerical study is concerned with the rotating boundary layer flow past a stretching surface wi...
The main purpose of this paper is to introduce a boundary layer analysis for the fluid flow and heat...
The problem of steady Marangoni boundary layer flow and heat transfer over a flat plate in a nanoflu...
The problem of Marangoni convection boundary layer flow past a flat plate in a nanofluid when the wa...
The problem of Marangoni-driven boundary layer flow over a permeable flat surface in an electrically...
The present work deals with the steady free-convection boundary-layer flow past a horizontal permeab...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
Purpose – The purpose of this paper is to theoretically investigate the steady two‐dimensional bound...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
This report examines the three-dimensional flow characteristics and heat transfer of TiO2–Cu/water n...
The study of convection boundary layer ows over various surfaces in nano u- ids is considered. C...
An analysis of the steady mixed convection boundary layer flow past a vertical permeable surface emb...
This paper considers the extended Blasius and Sakiadis problems in nanofluids, by considering a unif...
This study aims to investigate the classical problems of boundary layer flow and heat transfer chara...
This numerical study is concerned with the rotating boundary layer flow past a stretching surface wi...
The main purpose of this paper is to introduce a boundary layer analysis for the fluid flow and heat...
The problem of steady Marangoni boundary layer flow and heat transfer over a flat plate in a nanoflu...
The problem of Marangoni convection boundary layer flow past a flat plate in a nanofluid when the wa...
The problem of Marangoni-driven boundary layer flow over a permeable flat surface in an electrically...
The present work deals with the steady free-convection boundary-layer flow past a horizontal permeab...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
Purpose – The purpose of this paper is to theoretically investigate the steady two‐dimensional bound...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
The present study accentuates the Marangoni convection flow and heat transfer characteristics of a h...
This report examines the three-dimensional flow characteristics and heat transfer of TiO2–Cu/water n...
The study of convection boundary layer ows over various surfaces in nano u- ids is considered. C...
An analysis of the steady mixed convection boundary layer flow past a vertical permeable surface emb...
This paper considers the extended Blasius and Sakiadis problems in nanofluids, by considering a unif...
This study aims to investigate the classical problems of boundary layer flow and heat transfer chara...
This numerical study is concerned with the rotating boundary layer flow past a stretching surface wi...
The main purpose of this paper is to introduce a boundary layer analysis for the fluid flow and heat...