A three-dimensional (3D) lattice Boltzmann (LB) model is developed to simulate the dendritic growth during solidification of Al-Cu alloys under forced and natural convection. The LB method is used to solve for solute diffusion and fluid flow. It is assumed that the dendritic growth is driven by the difference between the local actual and local equilibrium composition of the liquid in the interface. A cellular automaton (CA) scheme is adopted to capture new interface cells. The LB models for solute transport and fluid flow are first validated against two benchmark problems. The dendrite growth model is also validated with available analytical solutions. The evolution of a 3D dendrite affected by melt convection is investigated. Also, density...
Density change is ubiquitous in phase transformation, and it can induce melt convection which strong...
This article presents a novel coupling of numerical techniques that enable three-dimensional convect...
The wettability between solid and porosity plays an important role in the growth of dendrites and po...
A three-dimensional (3D) lattice Boltzmann (LB) model is developed to simulate the dendritic growth ...
AbstractA two-dimensional (2D) coupled model is developed for the simulation of dendritic growth dur...
A new two-dimensional modeling approach combining the cellular automaton(CA) and the lattice Boltzma...
A multi-relaxation-time (MRT) lattice Boltzmann (LB) based model is utilized to simulate the dendrit...
To simulate three dimensional (3D) solute-driven dendrite growth, a new numerical technique is intro...
An anisotropic lattice Boltzman - phase field scheme is proposed to study dendritic growth in the pr...
A two-dimensional model for the simulation of a binary dendritic growth with convection has been dev...
A two-dimensional model is developed to simulate dendrite growth and movement in a gravity environme...
The paper presents the cellular automaton (CA) model for tracking the development of dendritic struc...
At present, the calculation of three-dimensional (3D) dendrite motion using the cellular automata (C...
This paper presents a comparative study between the pseudopotential Shan-Chen model and the phase fi...
We compared a cellular automaton (CA)-finite element (FE) model and a phase-field (PF)-FE model to s...
Density change is ubiquitous in phase transformation, and it can induce melt convection which strong...
This article presents a novel coupling of numerical techniques that enable three-dimensional convect...
The wettability between solid and porosity plays an important role in the growth of dendrites and po...
A three-dimensional (3D) lattice Boltzmann (LB) model is developed to simulate the dendritic growth ...
AbstractA two-dimensional (2D) coupled model is developed for the simulation of dendritic growth dur...
A new two-dimensional modeling approach combining the cellular automaton(CA) and the lattice Boltzma...
A multi-relaxation-time (MRT) lattice Boltzmann (LB) based model is utilized to simulate the dendrit...
To simulate three dimensional (3D) solute-driven dendrite growth, a new numerical technique is intro...
An anisotropic lattice Boltzman - phase field scheme is proposed to study dendritic growth in the pr...
A two-dimensional model for the simulation of a binary dendritic growth with convection has been dev...
A two-dimensional model is developed to simulate dendrite growth and movement in a gravity environme...
The paper presents the cellular automaton (CA) model for tracking the development of dendritic struc...
At present, the calculation of three-dimensional (3D) dendrite motion using the cellular automata (C...
This paper presents a comparative study between the pseudopotential Shan-Chen model and the phase fi...
We compared a cellular automaton (CA)-finite element (FE) model and a phase-field (PF)-FE model to s...
Density change is ubiquitous in phase transformation, and it can induce melt convection which strong...
This article presents a novel coupling of numerical techniques that enable three-dimensional convect...
The wettability between solid and porosity plays an important role in the growth of dendrites and po...