Our recently developed lattice Boltzmann model is used to simulate droplet dynamical behaviour governed by thermocapillary force in microchannels. One key research challenge for developing droplet-based microfluidic systems is control of droplet motion and its dynamic behaviour. We numerically demonstrate that the thermocapillary force can be exploited for microdroplet manipulations including synchronisation, sorting, and splitting. This work indicates that the lattice Boltzmann method provides a promising design simulation tool for developing complex droplet-based microfluidic devices
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...
We present lattice Boltzmann simulations of rarefied flows driven by pressure drops along two-dimens...
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...
Our recently developed lattice Boltzmann model is used to simulate droplet dynamical behaviour gover...
To understand how thermocapillary forces manipulate droplet motion in microfluidic channels, we deve...
The dynamic behavior of charged micro and nanofluids plays a crucial role in a large variety of indu...
This dissertation provides a detailed description of a new thermal lattice Boltzmann model capable o...
To understand how thermocapillary forces manipulate the droplet motion in a confined microchannel, a...
In this paper, a lattice Boltzmann method (LBM) based simulation of microscale flow has been carried...
In this work, we develop a two-phase lattice Boltzmann method (LBM) to simulate axisymmetric thermoc...
A multiphase lattice Boltzmann model is developed to simulate immiscible thermocapillary flows with ...
Recent technological developments have made it possible to design various microdevices where fluid f...
Gas flow in microchannels can often encounter tangential slip motion at the solid surface even under...
Recent technological developments have made it possible to design various microdevices where fluid f...
In recent years, microflow has become a popular field of interest due to the appearance of microelec...
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...
We present lattice Boltzmann simulations of rarefied flows driven by pressure drops along two-dimens...
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...
Our recently developed lattice Boltzmann model is used to simulate droplet dynamical behaviour gover...
To understand how thermocapillary forces manipulate droplet motion in microfluidic channels, we deve...
The dynamic behavior of charged micro and nanofluids plays a crucial role in a large variety of indu...
This dissertation provides a detailed description of a new thermal lattice Boltzmann model capable o...
To understand how thermocapillary forces manipulate the droplet motion in a confined microchannel, a...
In this paper, a lattice Boltzmann method (LBM) based simulation of microscale flow has been carried...
In this work, we develop a two-phase lattice Boltzmann method (LBM) to simulate axisymmetric thermoc...
A multiphase lattice Boltzmann model is developed to simulate immiscible thermocapillary flows with ...
Recent technological developments have made it possible to design various microdevices where fluid f...
Gas flow in microchannels can often encounter tangential slip motion at the solid surface even under...
Recent technological developments have made it possible to design various microdevices where fluid f...
In recent years, microflow has become a popular field of interest due to the appearance of microelec...
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...
We present lattice Boltzmann simulations of rarefied flows driven by pressure drops along two-dimens...
For gas flows in microchannels, slip motion at the solid surface can occur even if the Mach number i...