The influence of Si and Al on the lattice parameter and stacking fault energy (SFE) of austenitic steel was studied. X-ray diffraction indicated that 2.5 wt.% Al alloying increased the austenite lattice parameter by 1.41 x 10(-3) nm, whereas 2.5 wt.% Si alloying had little effect. Partial dislocation separation measurements from weak-beam dark-field images indicated that 2.5 wt.% Al alloying increased the SFE by 12-17 mJ m(-2) and 2.5 wt.% Si alloying decreased the SFE by 6-7 mJ m(-2). (C) 2014 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.X111514Nsciescopu
Advanced high strength steels (AHSS) are developed to reduce vehicle weight without sacrificing pass...
International audienceA Ti-stabilized cold-worked 15Cr-15Ni steel, called AIM1 (Austenitic Improved ...
Two austenitic stainless steels of compositions Fe-17Cr-9Ni-6Mn-0.4C-(0 and 4)Al (mass-%) were tensi...
The effect of Al on the stacking fault energy (SFE) of Fe-18Mn-0.6C twinning-induced plasticity stee...
The stacking-fault energy (SFE) is a composition- and temperature-dependent materials property that ...
Silicon is an essential alloying element in quenching and partitioning (Q&P) steels, because it is k...
A systematic study of the stacking fault energy (γSF) for the dilute Al-based alloys (Al23X, Al47X a...
A critical assessment has been performed to determine the stacking fault energy (SFE) of the austeni...
A deformation-dependent stacking fault energy (SEE) viewpoint is invoked to interpret the low strain...
In the Fe-Mn-Si alloys with very low stacking fault energy ($\gamma_0$), the $\gamma$(fcc)$\to$(hcp)...
© 2015 Acta Materialia Inc. Understanding the relationship between the stacking-fault energy (SFE), ...
The effect of C fraction (C/N) on stacking fault energy (SFE) of austenitic Fe-18Cr-10Mn steels with...
International audienceBy changing the testing temperature, an austenitic Fe-Mn-Al-Si alloy presents ...
On single crystals of Hadfield steel (Fe-13Mn-1.3C, Fe-13Mn-2.7Al-1.3C, wt.%) the systematical inv...
Deformation twinning, martensitic phase transformation and mechanical properties of austenitic Fe-(1...
Advanced high strength steels (AHSS) are developed to reduce vehicle weight without sacrificing pass...
International audienceA Ti-stabilized cold-worked 15Cr-15Ni steel, called AIM1 (Austenitic Improved ...
Two austenitic stainless steels of compositions Fe-17Cr-9Ni-6Mn-0.4C-(0 and 4)Al (mass-%) were tensi...
The effect of Al on the stacking fault energy (SFE) of Fe-18Mn-0.6C twinning-induced plasticity stee...
The stacking-fault energy (SFE) is a composition- and temperature-dependent materials property that ...
Silicon is an essential alloying element in quenching and partitioning (Q&P) steels, because it is k...
A systematic study of the stacking fault energy (γSF) for the dilute Al-based alloys (Al23X, Al47X a...
A critical assessment has been performed to determine the stacking fault energy (SFE) of the austeni...
A deformation-dependent stacking fault energy (SEE) viewpoint is invoked to interpret the low strain...
In the Fe-Mn-Si alloys with very low stacking fault energy ($\gamma_0$), the $\gamma$(fcc)$\to$(hcp)...
© 2015 Acta Materialia Inc. Understanding the relationship between the stacking-fault energy (SFE), ...
The effect of C fraction (C/N) on stacking fault energy (SFE) of austenitic Fe-18Cr-10Mn steels with...
International audienceBy changing the testing temperature, an austenitic Fe-Mn-Al-Si alloy presents ...
On single crystals of Hadfield steel (Fe-13Mn-1.3C, Fe-13Mn-2.7Al-1.3C, wt.%) the systematical inv...
Deformation twinning, martensitic phase transformation and mechanical properties of austenitic Fe-(1...
Advanced high strength steels (AHSS) are developed to reduce vehicle weight without sacrificing pass...
International audienceA Ti-stabilized cold-worked 15Cr-15Ni steel, called AIM1 (Austenitic Improved ...
Two austenitic stainless steels of compositions Fe-17Cr-9Ni-6Mn-0.4C-(0 and 4)Al (mass-%) were tensi...