Thin viscous liquid films driven by capillarity arewell described in the lubrication theory through the thin film equation. In this article, we present an analytical solution of this equation for a particular initial profile: a stepped perturbation. This initial condition allows a linearization of the problem making it amenable to Fourier analysis. The solution is obtained and characterized. As for a temperature step in the heat equation, self-similarity of the first kind of the full evolution is demonstrated and a long-term expression for the excess free energy is derived. In addition, hydrodynamical fields are described. The solution is then compared to experimental profiles from a model system: a polystyrene nanostep above the glass tran...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Thin viscous liquid films driven by capillarity arewell described in the lubrication theory through ...
We report on the numerical implementation of thin-film equations that describe the capillary-driven ...
We report on the numerical implementation of thin-film equations that describe the capillary-driven ...
on the numerical implementation of thin-film equations that describe the capillary-driven evolution ...
The surface of a thin liquid film with a nonconstant curvature is unstable, as the Laplace pressure ...
The surface of a thin liquid film with a nonconstant curvature is unstable, as the Laplace pressure ...
A homogeneous thin polymer film with a stepped height profile levels due to the presence of Laplace ...
Capillary dynamics of common liquids and nanofluids is a ubiquitous everyday phenomenon. It has prac...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Thin viscous liquid films driven by capillarity arewell described in the lubrication theory through ...
We report on the numerical implementation of thin-film equations that describe the capillary-driven ...
We report on the numerical implementation of thin-film equations that describe the capillary-driven ...
on the numerical implementation of thin-film equations that describe the capillary-driven evolution ...
The surface of a thin liquid film with a nonconstant curvature is unstable, as the Laplace pressure ...
The surface of a thin liquid film with a nonconstant curvature is unstable, as the Laplace pressure ...
A homogeneous thin polymer film with a stepped height profile levels due to the presence of Laplace ...
Capillary dynamics of common liquids and nanofluids is a ubiquitous everyday phenomenon. It has prac...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
We present experiments to study the relaxation of a nano-scale cylindrical perturbation at one of th...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...
Flow in thin films is highly dependent on the boundary conditions. Here, we study the capillary leve...