Cu and Cu-Al alloys with different stacking fault energies (SFEs) were processed using rolling and the Split Hopkinson pressure bar followed by rolling. The effect of strain rate on the microstructures and mechanical properties of the alloys were investigated using x-ray diffraction analyses, transmission electron microscopy, and tensile tests. Tensile testing results demonstrated that the strength and ductility of the samples increased simultaneously with decreasing SFE. Microstructural observations indicated that the average grain size of the samples decreased with decreasing SFE, but the twin and dislocation densities increased. With decreasing SFE, twinning becomes the dominant deformation mechanism. Our findings indicated that the SFEs ...
Copper-zinc alloys with different zinc contents contain different stacking fault energies (SFE). The...
Bulk ultrafine grained (UFG) materials produced by severe plastic deformation often have low ductili...
The present work compares two deformation techniques, rolling and Equal Channel Angular pressing (EC...
Cu and Cu-Al alloys with different stacking fault energies (SFEs) were processed using rolling and t...
The effects of stacking fault energy (SFE) and severe plastic deformation on the strength and ductil...
Pure Cu, Cu-5 at%Al, Cu-10 at%Al and Cu-15 at%Al with different stacking fault energy (SFE) of 78, 3...
The effect of stacking fault energy (SFE) on the mechanical properties of pure Cu and alloys of Cu-2...
The effect of stacking fault energy (SFE) and strain rate on the mechanical properties of Cu, Cu-10 ...
The effect of grain size and stacking fault energy (SFE) on the strain hardening rate behavior under...
399-406The effects of stacking fault energy (SFE) on the deformation mechanisms and mechanical prop...
AbstractCompression tests of Cu-2.2wt% Al, Cu-4.5 wt% Al and Cu-6.9 wt% Al with different stacking f...
Cu-Ge alloys with different stacking fault energies (SFEs) were prepared by induction melting and pr...
Disks of pure Cu and several Cu–Al alloys were processed by high-pressure torsion (HPT) at room temp...
Nanostructured Cu and Cu–Al alloys processed by high-pressure torsion were isochronally annealed to ...
Experiments were conducted on samples of pure Cu and two Cu–Zn alloys to evaluate the influence of t...
Copper-zinc alloys with different zinc contents contain different stacking fault energies (SFE). The...
Bulk ultrafine grained (UFG) materials produced by severe plastic deformation often have low ductili...
The present work compares two deformation techniques, rolling and Equal Channel Angular pressing (EC...
Cu and Cu-Al alloys with different stacking fault energies (SFEs) were processed using rolling and t...
The effects of stacking fault energy (SFE) and severe plastic deformation on the strength and ductil...
Pure Cu, Cu-5 at%Al, Cu-10 at%Al and Cu-15 at%Al with different stacking fault energy (SFE) of 78, 3...
The effect of stacking fault energy (SFE) on the mechanical properties of pure Cu and alloys of Cu-2...
The effect of stacking fault energy (SFE) and strain rate on the mechanical properties of Cu, Cu-10 ...
The effect of grain size and stacking fault energy (SFE) on the strain hardening rate behavior under...
399-406The effects of stacking fault energy (SFE) on the deformation mechanisms and mechanical prop...
AbstractCompression tests of Cu-2.2wt% Al, Cu-4.5 wt% Al and Cu-6.9 wt% Al with different stacking f...
Cu-Ge alloys with different stacking fault energies (SFEs) were prepared by induction melting and pr...
Disks of pure Cu and several Cu–Al alloys were processed by high-pressure torsion (HPT) at room temp...
Nanostructured Cu and Cu–Al alloys processed by high-pressure torsion were isochronally annealed to ...
Experiments were conducted on samples of pure Cu and two Cu–Zn alloys to evaluate the influence of t...
Copper-zinc alloys with different zinc contents contain different stacking fault energies (SFE). The...
Bulk ultrafine grained (UFG) materials produced by severe plastic deformation often have low ductili...
The present work compares two deformation techniques, rolling and Equal Channel Angular pressing (EC...