We study the forced displacement of a thin film of fluid in contact with vertical and inclined substrates of different wetting properties, that range from hydrophilic to hydrophobic, using the lattice-Boltzmann method. We study the stability and pattern formation of the contact line in the hydrophilic and superhydrophobic regimes, which correspond to wedge-shaped and nose-shaped fronts, respectively. We find that contact lines are considerably more stable for hydrophilic substrates and small inclination angles. The qualitative behavior of the front in the linear regime remains independent of the wetting properties of the substrate as a single dispersion relation describes the stability of both wedges and noses. Nonlinear patterns show a cle...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2018.Ca...
Wetting phenomena are ubiquitous in nature and technology. A solid substrate exposed to the environm...
\u3cp\u3eWe propose an approach to the numerical simulation of thin-film flows based on the lattice ...
We study the forced displacement of a thin film of fluid in contact with vertical and inclined subst...
We study the forced displacement of a thin film of fluid in contact with vertical and inclined subst...
We investigate numerically the dynamics of unstable gravity driven three-dimensional thin liquid fil...
We investigate the time-dependent evolution of thin liquid films over inclined substrates using a mu...
We investigate the linear stability of dewetting thin polymer films on hydrophobised substrates driv...
We present fully nonlinear time-dependent simulations of the gravity driven flow of thin wetting liq...
A theoretical and numerical model is formulated to describe the instability and the long-time evolut...
The surface instability, dynamics, morphology, and spontaneous dewetting of a thin liquid film on ch...
We investigate the motion of liquid droplets on chemically defined radial wettability gradients. The...
The instability, dynamics, and morphological transitions of patterns in thin liquid films on physica...
We compare numerical and experimental results exploring the behaviour of liquid drops moving across ...
The directional wetting characteristics of droplets on chemically defined stripe-patterned anisotrop...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2018.Ca...
Wetting phenomena are ubiquitous in nature and technology. A solid substrate exposed to the environm...
\u3cp\u3eWe propose an approach to the numerical simulation of thin-film flows based on the lattice ...
We study the forced displacement of a thin film of fluid in contact with vertical and inclined subst...
We study the forced displacement of a thin film of fluid in contact with vertical and inclined subst...
We investigate numerically the dynamics of unstable gravity driven three-dimensional thin liquid fil...
We investigate the time-dependent evolution of thin liquid films over inclined substrates using a mu...
We investigate the linear stability of dewetting thin polymer films on hydrophobised substrates driv...
We present fully nonlinear time-dependent simulations of the gravity driven flow of thin wetting liq...
A theoretical and numerical model is formulated to describe the instability and the long-time evolut...
The surface instability, dynamics, morphology, and spontaneous dewetting of a thin liquid film on ch...
We investigate the motion of liquid droplets on chemically defined radial wettability gradients. The...
The instability, dynamics, and morphological transitions of patterns in thin liquid films on physica...
We compare numerical and experimental results exploring the behaviour of liquid drops moving across ...
The directional wetting characteristics of droplets on chemically defined stripe-patterned anisotrop...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2018.Ca...
Wetting phenomena are ubiquitous in nature and technology. A solid substrate exposed to the environm...
\u3cp\u3eWe propose an approach to the numerical simulation of thin-film flows based on the lattice ...