The objective of the present study is to analyze the microstructure and mechanical properties of a twinning-induced plasticity (TWIP) steel at different temperatures. For this purpose, tensile tests were performed on a Fe-22Mn-0.65C TWIP steel in a temperature range between 25 °C and 400 °C. The microstructure after deformation was characterized via optical microscopy. It was observed that the microstructure consists of mainly deformation twins at low temperatures, whereas dislocation bands are the predominating feature at high temperatures. The analysis of mechanical data suggests a transition of the deformation mechanism from twinning at low temperatures to dislocation slip at high temperatures. The work-hardening rate and area reduction ...
The microstructure and mechanical properties of cold-rolled Fe-18Mn-3Al-3Si-0.03C transformation ind...
TWinning Induced Plasticity (TWIP) steels are single phase austenitic alloys that successfully comb...
High-manganese austenitic TWIP (TWinning Induced Plasticity) steels are currently under development ...
The objective of the present study is to analyze the microstructure and mechanical properties of a t...
This work investigates the tensile behavior of twinning induced plasticity (TWIP) steel under room t...
AbstractThis paper presents a physical computational model to study the influence of temperature on ...
The aim of the present study was to investigate the role of deformation temperature on the active de...
The influence of temperature and stacking fault energy (SFE) on the strain-hardening behavior and cr...
ABSTRACTA TWIP steel (0.65%C; 22%Mn; 0.28%Cr; 0.16%Si) was produced in the laboratory by melting, ca...
The severe plastic deformation of a Twinning Induced Plasticity (TWIP), 0.61C-22.3Mn-0.19Si-0.14Ni-0...
Temperature effect on deformation behavior has been investigated in relation to formation kinetics o...
In the current study, the work-hardening behaviour of a high manganese TWIP steel was investigated a...
The demands to save energy and reduce the CO2 emission have been pushing the automobile industry to ...
High-Mn Twinning Induced Plasticity (TWIP) steels have superior mechanical properties, which make th...
According to the downhole temperature filed, the mechanical behavior of TWIP steel for expansion tub...
The microstructure and mechanical properties of cold-rolled Fe-18Mn-3Al-3Si-0.03C transformation ind...
TWinning Induced Plasticity (TWIP) steels are single phase austenitic alloys that successfully comb...
High-manganese austenitic TWIP (TWinning Induced Plasticity) steels are currently under development ...
The objective of the present study is to analyze the microstructure and mechanical properties of a t...
This work investigates the tensile behavior of twinning induced plasticity (TWIP) steel under room t...
AbstractThis paper presents a physical computational model to study the influence of temperature on ...
The aim of the present study was to investigate the role of deformation temperature on the active de...
The influence of temperature and stacking fault energy (SFE) on the strain-hardening behavior and cr...
ABSTRACTA TWIP steel (0.65%C; 22%Mn; 0.28%Cr; 0.16%Si) was produced in the laboratory by melting, ca...
The severe plastic deformation of a Twinning Induced Plasticity (TWIP), 0.61C-22.3Mn-0.19Si-0.14Ni-0...
Temperature effect on deformation behavior has been investigated in relation to formation kinetics o...
In the current study, the work-hardening behaviour of a high manganese TWIP steel was investigated a...
The demands to save energy and reduce the CO2 emission have been pushing the automobile industry to ...
High-Mn Twinning Induced Plasticity (TWIP) steels have superior mechanical properties, which make th...
According to the downhole temperature filed, the mechanical behavior of TWIP steel for expansion tub...
The microstructure and mechanical properties of cold-rolled Fe-18Mn-3Al-3Si-0.03C transformation ind...
TWinning Induced Plasticity (TWIP) steels are single phase austenitic alloys that successfully comb...
High-manganese austenitic TWIP (TWinning Induced Plasticity) steels are currently under development ...