High-pressure torsion provides the opportunity to introduce significant plastic strain at room temperature in magnesium and its alloys. It is now established that this processing operation produces ultrafine-grained structures and changes the properties of these materials. The present paper shows that the mechanism of grain refinement differs from f.c.c. and b.c.c. materials. It is shown that fine grains are formed at the grain boundaries of coarse grains and gradually consume the whole structure. Also, the processed material exhibits unusual mechanical properties due to the activation of grain boundary sliding at room temperature
An investigation was conducted on a magnesium AZ31 alloy to determine whether the deformation proces...
An investigation was conducted to examine the mechanical behavior and microstructure evolution durin...
A Mg–Zn–Zr alloy was processed by high-pressure torsion for up to 2 turns at room temperature to pro...
Magnesium and its alloys have attracted significant attention in recent years because they display h...
High pressure torsion provides an opportunity to process materials with low formability such as magn...
The low ductility of magnesium at room temperature is usually attributed to an insufficient number o...
Experiments were conducted on a Mg–9% Al alloy to evaluate the microstructural characteristics and t...
Severe plastic deformation by high pressure torsion (HPT) is used to process and refine the grain st...
Experiments were conducted on an AZ61 magnesium alloy to evaluate the microstructural characteristic...
Experiments were conducted on an AZ61 magnesium alloy to evaluate the microstructural characteristic...
An AZ31 magnesium alloy was processed by high-pressure torsion (HPT) at room temperature under an im...
AbstractAn AZ80 magnesium alloy with an initial grain size of ∼25μm and a hardness of Hv≈63 was proc...
A commercial magnesium AZ31 alloy was processed by high-pressure torsion (HPT) through 5 turns at 45...
AbstractHigh-pressure torsion (HPT) was used to impose severe plastic deformation on a magnesium all...
The processing of metals through the application of severe plastic deformation leads to significant ...
An investigation was conducted on a magnesium AZ31 alloy to determine whether the deformation proces...
An investigation was conducted to examine the mechanical behavior and microstructure evolution durin...
A Mg–Zn–Zr alloy was processed by high-pressure torsion for up to 2 turns at room temperature to pro...
Magnesium and its alloys have attracted significant attention in recent years because they display h...
High pressure torsion provides an opportunity to process materials with low formability such as magn...
The low ductility of magnesium at room temperature is usually attributed to an insufficient number o...
Experiments were conducted on a Mg–9% Al alloy to evaluate the microstructural characteristics and t...
Severe plastic deformation by high pressure torsion (HPT) is used to process and refine the grain st...
Experiments were conducted on an AZ61 magnesium alloy to evaluate the microstructural characteristic...
Experiments were conducted on an AZ61 magnesium alloy to evaluate the microstructural characteristic...
An AZ31 magnesium alloy was processed by high-pressure torsion (HPT) at room temperature under an im...
AbstractAn AZ80 magnesium alloy with an initial grain size of ∼25μm and a hardness of Hv≈63 was proc...
A commercial magnesium AZ31 alloy was processed by high-pressure torsion (HPT) through 5 turns at 45...
AbstractHigh-pressure torsion (HPT) was used to impose severe plastic deformation on a magnesium all...
The processing of metals through the application of severe plastic deformation leads to significant ...
An investigation was conducted on a magnesium AZ31 alloy to determine whether the deformation proces...
An investigation was conducted to examine the mechanical behavior and microstructure evolution durin...
A Mg–Zn–Zr alloy was processed by high-pressure torsion for up to 2 turns at room temperature to pro...