AbstractStructural property relationship indicates the significance of Ultra Fine Grain (UFG) for attainment of enhanced strength without any chemistry alteration. Ultra fine grain structure can be produced by Equal Channel Angular Pressing (ECAP) by proper selection of die geometry, route (method specimen rotation for each number passes) and processing temperature. The present study illustrates the significance of processing temperature on attainment of higher strength with ductility. Compared to room temperature, processing with 2000C, results in significant contribution of ECAP by way of structural-strengthening. However, both the processing indicates a critical value of 3, passes, for attaining the desired results
Pure Cu was processed by ECAP at five different temperatures from room temperature (RT) to 523 K. Th...
Ultrafine grain of pure copper 99.98% was produced by severe plastic deformation using the equalcha...
Ultrafine grained (UFG) and nanostructured (NS) materials have experienced a rapid development durin...
AbstractStructural property relationship indicates the significance of Ultra Fine Grain (UFG) for at...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Oxygen-free copper of >99.95% purity was processed by equal-channel angular pressing at room tempera...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Oxygen-free copper was processed by equal-channel angular pressing (ECAP) at room temperature for 1,...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The Equal Channel Angular Pressing is a hardening treatment with which ductile metals can beprocesse...
In this article, commercially pure copper samples were severely deformed by equal channel angular pr...
Mechanical and microstructural analysis of equal channel angular pressed copper was experimentally i...
Pure Cu was processed by ECAP at five different temperatures from room temperature (RT) to 523 K. Th...
Ultrafine grain of pure copper 99.98% was produced by severe plastic deformation using the equalcha...
Ultrafine grained (UFG) and nanostructured (NS) materials have experienced a rapid development durin...
AbstractStructural property relationship indicates the significance of Ultra Fine Grain (UFG) for at...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Oxygen-free copper of >99.95% purity was processed by equal-channel angular pressing at room tempera...
Abstract: The equal channel angular pressing (ECAP) technique is now recognised for achieving very s...
Oxygen-free copper was processed by equal-channel angular pressing (ECAP) at room temperature for 1,...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The equal channel angular pressing (ECAP) technique is now recognised for achieving very significant...
The Equal Channel Angular Pressing is a hardening treatment with which ductile metals can beprocesse...
In this article, commercially pure copper samples were severely deformed by equal channel angular pr...
Mechanical and microstructural analysis of equal channel angular pressed copper was experimentally i...
Pure Cu was processed by ECAP at five different temperatures from room temperature (RT) to 523 K. Th...
Ultrafine grain of pure copper 99.98% was produced by severe plastic deformation using the equalcha...
Ultrafine grained (UFG) and nanostructured (NS) materials have experienced a rapid development durin...