A third-order ordinary differential equation with application in the flow of a thin liquid film is considered. The boundary conditions come from Tanner's problem for the surface tension driven flow of a thin film. Symmetric and nonsymmetric finite difference schemes are implemented in order to obtain steady state solutions. We show that a central difference approximation to the third derivative in the model equation produces a solution curve with oscillations. A difference scheme based on a combination of forward and backward differences produces a smooth accurate solution curve. The stability of these schemes is analysed through the use of a von Neumann stability analysis
Abstract. We consider an equation for a thin-film of fluid on a rotating cyl-inder and present sever...
The stability and dynamics of thin liquid films has been the subject of extensive study for the past...
AbstractIn this paper, we describe for the first time the properties of the general solution to the ...
We solve the steady thin film flow problem for a third grade fluid by using Taylor series and shooti...
AbstractIn this paper, we describe for the first time the properties of the general solution to the ...
We present a computational method for quasi 3D unsteady flows of thin liquid films on a solid substr...
This dissertation studies the steady state of thin film type equations. Different considerations of ...
The stability and dynamics of thin liquid films subjected to van der Waals attraction, thermocapilla...
The stability and dynamics of thin liquid films subjected to van der Waals attraction, thermocapilla...
Numerical solutions of a coupled system of nonlinear partial differential equations modelling the ef...
The description of steady non-uniform laminar flow was attempted. The model used was that of a thin ...
The classical problem of the stability and dynamics of thin liquid films on solid surfaces has been...
Abstract. We consider an equation for a thin-film of fluid on a rotating cylinder and present severa...
The classical problem of the stability and dynamics of thin liquid films on solid surfaces has been...
Film flow equations are simplified equations for modeling the flow of thin liquid films. They are or...
Abstract. We consider an equation for a thin-film of fluid on a rotating cyl-inder and present sever...
The stability and dynamics of thin liquid films has been the subject of extensive study for the past...
AbstractIn this paper, we describe for the first time the properties of the general solution to the ...
We solve the steady thin film flow problem for a third grade fluid by using Taylor series and shooti...
AbstractIn this paper, we describe for the first time the properties of the general solution to the ...
We present a computational method for quasi 3D unsteady flows of thin liquid films on a solid substr...
This dissertation studies the steady state of thin film type equations. Different considerations of ...
The stability and dynamics of thin liquid films subjected to van der Waals attraction, thermocapilla...
The stability and dynamics of thin liquid films subjected to van der Waals attraction, thermocapilla...
Numerical solutions of a coupled system of nonlinear partial differential equations modelling the ef...
The description of steady non-uniform laminar flow was attempted. The model used was that of a thin ...
The classical problem of the stability and dynamics of thin liquid films on solid surfaces has been...
Abstract. We consider an equation for a thin-film of fluid on a rotating cylinder and present severa...
The classical problem of the stability and dynamics of thin liquid films on solid surfaces has been...
Film flow equations are simplified equations for modeling the flow of thin liquid films. They are or...
Abstract. We consider an equation for a thin-film of fluid on a rotating cyl-inder and present sever...
The stability and dynamics of thin liquid films has been the subject of extensive study for the past...
AbstractIn this paper, we describe for the first time the properties of the general solution to the ...