Incremental equal channel angular pressing (I-ECAP) is an extension of the classical ECAP method used to produce ultrafine grained (UFG) metals. This paper investigates the first pass of I-ECAP performed on AA-1050 billets measuring 10x10x60mm and the effects of processing with two different dies with the channel intersection angle ϕ=90° and ϕ=120°. The forces required to produce billets were examined and compared. Micro hardness measurements were performed to create a hardness distribution contour map and to evaluate the strain distribution. Moreover FE simulations were performed to investigate the plastic strain distribution within the billets. It was found that using the ϕ=90° die results in higher deformation forces and also greater uni...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
Incremental equal channel angular pressing (I-ECAP) is an extension of the classical ECAP method use...
ECAP (Equal Channel Angular Pressing) is a very interesting method for modifying microstructure in p...
Incremental ECAP is a new method of ECAP process were the severe shear deformation is incrementally ...
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming proces...
Equal channel angular pressing (ECAP) is a severe plastic deformation technique for producing ultra ...
Equal-channel angular pressing (ECAP) is an effective fabrication process for obtaining ultrafine-gr...
Nowadays, equal channel angular pressing, known as the ECAP process, is one of the most popular meth...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming proces...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
Incremental equal channel angular pressing (I-ECAP) is an extension of the classical ECAP method use...
ECAP (Equal Channel Angular Pressing) is a very interesting method for modifying microstructure in p...
Incremental ECAP is a new method of ECAP process were the severe shear deformation is incrementally ...
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming proces...
Equal channel angular pressing (ECAP) is a severe plastic deformation technique for producing ultra ...
Equal-channel angular pressing (ECAP) is an effective fabrication process for obtaining ultrafine-gr...
Nowadays, equal channel angular pressing, known as the ECAP process, is one of the most popular meth...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
Equal Channel Angular Pressing (ECAP) is one of the most efficient technique in metal forming proces...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...
During the last decade ultrafine grained (UFG) and nano-structured (NS) materials have experienced a...