Martensite damage in Dual-Phase (DP) steel has been studied extensively, yet, the exact deformation mechanisms that trigger or inhibit damage initiation remain mostly unexplored. Whereas generally assumed to be hard and brittle, lath martensite in fact deforms in a highly anisotropic manner, showing large strains under favorable habit plane orientations, which is attributed both to the lath morphology and to so-called ’substructure boundary sliding’. Yet, the correlation (or interplay) between plasticity and damage in lath martensite has not received much attention. Therefore, we raise the question whether these soft martensite plasticity mechanisms can delay or even inhibit damage initiation. We analyze several ’damage-sensitive’ martensit...
This study analyses the effect of martensite grain size and its volume fraction in dual-phase (DP) s...
Ferritic–martensitic dual phase (DP) steels deform spatially in a highly heterogeneous manner, i.e. ...
Martensite/ferrite (M/F) interface damage plays a critical role in controlling failure of dual-phase...
Martensite damage in Dual-Phase (DP) steel has been studied extensively, yet, the exact deformation ...
Lath martensite iswidely present in advanced high strength steels as the key strengthening phase. Un...
Martensite/ferrite (M/F) interface damage is relevant to failure of many dual-phase (DP) steels, but...
Multi-phase microstructures with high mechanical contrast phases are prone to microscopic damage mec...
Multi-phase microstructures with high mechanical contrast phases are prone to microscopic damage mec...
Dual-phase steels have long been used in the automotive industry for their excellent mechanical prop...
Martensite/ferrite (M/F) interface damage plays a critical role in controlling failure of dual-phase...
This study analyses the effect of martensite grain size and its volume fraction in dual-phase (DP) s...
Ferritic–martensitic dual phase (DP) steels deform spatially in a highly heterogeneous manner, i.e. ...
Martensite/ferrite (M/F) interface damage plays a critical role in controlling failure of dual-phase...
Martensite damage in Dual-Phase (DP) steel has been studied extensively, yet, the exact deformation ...
Lath martensite iswidely present in advanced high strength steels as the key strengthening phase. Un...
Martensite/ferrite (M/F) interface damage is relevant to failure of many dual-phase (DP) steels, but...
Multi-phase microstructures with high mechanical contrast phases are prone to microscopic damage mec...
Multi-phase microstructures with high mechanical contrast phases are prone to microscopic damage mec...
Dual-phase steels have long been used in the automotive industry for their excellent mechanical prop...
Martensite/ferrite (M/F) interface damage plays a critical role in controlling failure of dual-phase...
This study analyses the effect of martensite grain size and its volume fraction in dual-phase (DP) s...
Ferritic–martensitic dual phase (DP) steels deform spatially in a highly heterogeneous manner, i.e. ...
Martensite/ferrite (M/F) interface damage plays a critical role in controlling failure of dual-phase...