A three-dimensional (3-D) granular model which simulates fluid flow within solidifying alloys with a globular microstructure, such as that found in grain refined Al alloys, is presented. The model geometry within a representative volume element (RVE) consists of a set of prismatic triangular elements representing the intergranular liquid channels. The pressure field within the liquid channels is calculated using a finite elements (FEs) method assuming a Poiseuille flow within each channel and flow conservation at triple lines. The fluid flow is induced by solidification shrinkage and openings at grain boundaries due to deformation of the coherent solid. The granular model predictions are validated against bulk data calculated with averaging...
One of the long-standing challenges in joining of aluminum alloys is the occurrence of solidificati...
The methodology of direct finite element (FE) simulation was used to predict the semi-solid constitu...
Compacted granular materials expand in response to shear(1), and can exhibit different behaviour fro...
A three-dimensional (3-D) coupled hydromechanical granular model has been developed and validated to...
A coupled hydromechanical granular model aimed at predicting hot tear formation and stress-strain be...
A coupled hydromechanical granular model aimed at predicting hot tear formation and stress-strain be...
The gradual transformation of a mushy zone during alloy solidification, from a continuous liquid fil...
As a necessary step toward the quantitative prediction of hot tearing defects, a three-dimensional s...
Hot cracking is a spontaneous failure of an alloy during solidification. It is a severe problem for ...
Two important factors affecting hot tearing - semi-solid constitutive behaviour and grain percolatio...
Hot tearing, one of the most severe defects observed in castings, is due to both tensile stresses an...
Multi-axial compression of the mushy zone occurs in various pressurized casting processes. Here, we ...
International audienceA 3D meso-scale discrete-element model has been developed to simulate fluid fl...
One of the long-standing challenges in joining of aluminum alloys is the occurrence of solidificati...
Two numerical models have been developed to describe the volumetric changes during solidification i...
One of the long-standing challenges in joining of aluminum alloys is the occurrence of solidificati...
The methodology of direct finite element (FE) simulation was used to predict the semi-solid constitu...
Compacted granular materials expand in response to shear(1), and can exhibit different behaviour fro...
A three-dimensional (3-D) coupled hydromechanical granular model has been developed and validated to...
A coupled hydromechanical granular model aimed at predicting hot tear formation and stress-strain be...
A coupled hydromechanical granular model aimed at predicting hot tear formation and stress-strain be...
The gradual transformation of a mushy zone during alloy solidification, from a continuous liquid fil...
As a necessary step toward the quantitative prediction of hot tearing defects, a three-dimensional s...
Hot cracking is a spontaneous failure of an alloy during solidification. It is a severe problem for ...
Two important factors affecting hot tearing - semi-solid constitutive behaviour and grain percolatio...
Hot tearing, one of the most severe defects observed in castings, is due to both tensile stresses an...
Multi-axial compression of the mushy zone occurs in various pressurized casting processes. Here, we ...
International audienceA 3D meso-scale discrete-element model has been developed to simulate fluid fl...
One of the long-standing challenges in joining of aluminum alloys is the occurrence of solidificati...
Two numerical models have been developed to describe the volumetric changes during solidification i...
One of the long-standing challenges in joining of aluminum alloys is the occurrence of solidificati...
The methodology of direct finite element (FE) simulation was used to predict the semi-solid constitu...
Compacted granular materials expand in response to shear(1), and can exhibit different behaviour fro...