In this work, the effect of surface mechanical attrition treatment (SMAT) on the cyclic behaviour of a 316L stainless steel under low cycle fatigue (LCF) is investigated. The LCF results are presented in the form of cyclic stress amplitude evolution for both untreated and SMATed samples. In order to better understand the microstructure change due to cyclic loading, electron backscatter diffraction (EBSD) is used to characterize the microstructure of the SMATed samples before and after fatigue tests. A microstructure gradient is highlighted for samples after SMAT from the top surface layer in nanocrystalline grains to the interior region non-affected by impacts. Under LCF loading, new slip systems are activated in the work hardened region, w...
The effect of 20% prior cold work on low cycle fatigue (LCF) behaviour of type 316L(N) stainless ste...
The effects of surface softening on fatigue behavior of AISI 316L stainless steel were investigated....
We report the effect of cell structures on the fatigue behavior of additively manufactured (AM) 316L...
In this work, the effect of surface mechanical attrition treatment (SMAT) on the cyclic behaviour of...
International audienceEffect of surface mechanical attrition treatment (SMAT) on low cycle fatigue p...
Direct Energy Deposition (DED), as one common type of additive manufacturing, is capable of fabricat...
International audienceThe effect of a nanocrystalline surface layer on the fatigue behavior of a 316...
International audienceIn this work, the effects of surface mechanical attrition treatment (SMAT) and...
tal fo e 1 vior sur these mechanical characteristics after SMAT can be significantly improved by the...
The effect of Residual stresses induced by Surface mechanical attrition treatment (SMAT) on Fatigue ...
As a promising surface treatment technique, the surface mechanical attrition treatment (SMAT) has be...
Based on the twin bridge shear specimen, the cyclic shear experiments were performed on 1.2 mm thin ...
International audienceGradient microstructure generated by surface mechanical attrition treatment (S...
Surface mechanical attrition treatment (SMAT) is a high strain and strain rate severe plastic deform...
This work focuses on experimental analysis and multiscale modelling of LCF behaviour of 316L steels ...
The effect of 20% prior cold work on low cycle fatigue (LCF) behaviour of type 316L(N) stainless ste...
The effects of surface softening on fatigue behavior of AISI 316L stainless steel were investigated....
We report the effect of cell structures on the fatigue behavior of additively manufactured (AM) 316L...
In this work, the effect of surface mechanical attrition treatment (SMAT) on the cyclic behaviour of...
International audienceEffect of surface mechanical attrition treatment (SMAT) on low cycle fatigue p...
Direct Energy Deposition (DED), as one common type of additive manufacturing, is capable of fabricat...
International audienceThe effect of a nanocrystalline surface layer on the fatigue behavior of a 316...
International audienceIn this work, the effects of surface mechanical attrition treatment (SMAT) and...
tal fo e 1 vior sur these mechanical characteristics after SMAT can be significantly improved by the...
The effect of Residual stresses induced by Surface mechanical attrition treatment (SMAT) on Fatigue ...
As a promising surface treatment technique, the surface mechanical attrition treatment (SMAT) has be...
Based on the twin bridge shear specimen, the cyclic shear experiments were performed on 1.2 mm thin ...
International audienceGradient microstructure generated by surface mechanical attrition treatment (S...
Surface mechanical attrition treatment (SMAT) is a high strain and strain rate severe plastic deform...
This work focuses on experimental analysis and multiscale modelling of LCF behaviour of 316L steels ...
The effect of 20% prior cold work on low cycle fatigue (LCF) behaviour of type 316L(N) stainless ste...
The effects of surface softening on fatigue behavior of AISI 316L stainless steel were investigated....
We report the effect of cell structures on the fatigue behavior of additively manufactured (AM) 316L...