The martensitic transformation in pure Fe and its alloys has been studied over many decades. Several theoretical models have been proposed to describe the atomic motion that leads to the fcc-to-bcc martensitic transformation. However, such models do not account for the effect of pre-existing planar defects such as twin boundaries and stacking faults, present in the high-temperature austenite phase prior to the transformation process. This work systematically studies the role of nano-spaced planar faults with different inter-spacing on the martensitic transformation using molecular dynamics simulations. Research shows that the investigated planar defects affect the nucleation and growth mechanisms during martensite formation, the morphology ...
We have performed molecular dynamics simulations of Fe80Ni20 alloys using an inter-atomic potential ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
Molecular dynamics simulations are used to study the effects of tensile loading on nucleation and su...
Molecular dynamics (MD) simulations are used to study the effect of different defect configurations ...
Molecular dynamics (MD) simulations are used to study the effect of different defect configurations ...
The aim of this PhD. thesis is to use molecular dynamics (MD) simulations to comprehend the mechanis...
Using molecular dynamics simulation, we studied the influence of pre-existing dislocations on the au...
The aim of this PhD. thesis is to use molecular dynamics (MD) simulations to comprehend the mechanis...
Using classical molecular dynamics simulations, we study the martensitic and austenitic phase transf...
Molecular dynamics (MD) simulation has been used to study the martensitic transformation in iron at ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
We used classical molecular dynamics simulation to study the ferrite–austenite phase transform...
We used classical molecular dynamics simulation to study the ferrite–austenite phase transform...
We have performed molecular dynamics simulations of Fe80Ni20 alloys using an inter-atomic potential ...
We have performed molecular dynamics simulations of Fe80Ni20 alloys using an inter-atomic potential ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
Molecular dynamics simulations are used to study the effects of tensile loading on nucleation and su...
Molecular dynamics (MD) simulations are used to study the effect of different defect configurations ...
Molecular dynamics (MD) simulations are used to study the effect of different defect configurations ...
The aim of this PhD. thesis is to use molecular dynamics (MD) simulations to comprehend the mechanis...
Using molecular dynamics simulation, we studied the influence of pre-existing dislocations on the au...
The aim of this PhD. thesis is to use molecular dynamics (MD) simulations to comprehend the mechanis...
Using classical molecular dynamics simulations, we study the martensitic and austenitic phase transf...
Molecular dynamics (MD) simulation has been used to study the martensitic transformation in iron at ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
We used classical molecular dynamics simulation to study the ferrite–austenite phase transform...
We used classical molecular dynamics simulation to study the ferrite–austenite phase transform...
We have performed molecular dynamics simulations of Fe80Ni20 alloys using an inter-atomic potential ...
We have performed molecular dynamics simulations of Fe80Ni20 alloys using an inter-atomic potential ...
Molecular dynamics simulations are used to investigate the atomic effects of carbon (C) addition in ...
Molecular dynamics simulations are used to study the effects of tensile loading on nucleation and su...