We study the effects of thermally induced capillary waves in the fragmentation of a liquid ligament into multiple nanodroplets. Our numerical implementation is based on a fluctuating lattice Boltzmann (LB) model for nonideal multicomponent fluids, including nonequilibrium stochastic fluxes mimicking the effects of molecular forces at the nanoscales. We quantitatively analyze the statistical distribution of the breakup times and the droplet volumes after the fragmentation process at changing the two relevant length scales of the problem, i.e., the thermal length scale and the ligament size. The robustness of the observed findings is also corroborated by quantitative comparisons with the predictions of sharp interface hydrodynamics. Beyond th...
A transition from a d2 to a d law is observed in molecular dynamics (MD) simulations when the diamet...
We present a diffusion dominated evaporation model using the popular pseudopotential multicomponent ...
The instability of a thin liquid film on a solid surface is studied both by molecular dynamics simul...
We study the effects of thermally induced capillary waves in the fragmentation of a liquid ligament ...
The effects of thermal fluctuations on nanoscale flows are captured by a numerical scheme that is un...
The classical notion of the coalescence of two droplets of the same radius R is that surface tension...
We present three-dimensional numerical simulations, employing the well-established lattice Boltzmann...
The theoretical framework developed by Rayleigh and Plateau in the 19th century has been remarkably ...
In this work, we use a dissipative-particle-dynamics-based model for two-phase flows to simulate the...
The combined effects of thermal fluctuations and liquid-solid slip on nanoscale thin-film flows are ...
We study droplet dynamics and breakup in generic time-dependent flows via a multicomponent lattice B...
The dynamics of thin film liquid interfaces (< 100 nm) play dominant roles in many macroscale phenom...
We study the fragmentation of a liquid drop that is hit by a laser pulse. The drop expands into a th...
The dynamic behavior of charged micro and nanofluids plays a crucial role in a large variety of indu...
A transition from a d2 to a d law is observed in molecular dynamics (MD) simulations when the diamet...
We present a diffusion dominated evaporation model using the popular pseudopotential multicomponent ...
The instability of a thin liquid film on a solid surface is studied both by molecular dynamics simul...
We study the effects of thermally induced capillary waves in the fragmentation of a liquid ligament ...
The effects of thermal fluctuations on nanoscale flows are captured by a numerical scheme that is un...
The classical notion of the coalescence of two droplets of the same radius R is that surface tension...
We present three-dimensional numerical simulations, employing the well-established lattice Boltzmann...
The theoretical framework developed by Rayleigh and Plateau in the 19th century has been remarkably ...
In this work, we use a dissipative-particle-dynamics-based model for two-phase flows to simulate the...
The combined effects of thermal fluctuations and liquid-solid slip on nanoscale thin-film flows are ...
We study droplet dynamics and breakup in generic time-dependent flows via a multicomponent lattice B...
The dynamics of thin film liquid interfaces (< 100 nm) play dominant roles in many macroscale phenom...
We study the fragmentation of a liquid drop that is hit by a laser pulse. The drop expands into a th...
The dynamic behavior of charged micro and nanofluids plays a crucial role in a large variety of indu...
A transition from a d2 to a d law is observed in molecular dynamics (MD) simulations when the diamet...
We present a diffusion dominated evaporation model using the popular pseudopotential multicomponent ...
The instability of a thin liquid film on a solid surface is studied both by molecular dynamics simul...