Title of article
Microstructural evolution and mechanical properties of Cu–Al alloys subjected to equal channel angular pressing Original Research Article
Author/Authors
K. Marti and S. Qu، نويسنده , , X.H. An، نويسنده , , H.J. Yang، نويسنده , , C.X. Huang، نويسنده , , G. Yang، نويسنده , , Q.S. Zang، نويسنده , , Z.G. WANG، نويسنده , , S.D. Wu، نويسنده , , Z.F. Zhang، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2009
Pages
16
From page
1586
To page
1601
Abstract
Ultrafine-grained (UFG) or nanocrystalline (NC) Cu–Al alloys were prepared using equal-channel angular pressing (ECAP) to investigate the influence of stacking fault energy (SFE) on the microstructural evolution during deformation and the corresponding mechanical properties. The grain refinement mechanism was gradually transformed from dislocation subdivision to twin fragmentation by tailoring the SFE of alloys. Meanwhile, homogeneous microstructures and nanoscale grains were readily achieved in the low-SFE Cu–Al alloys and the equilibrium grain size was decreased by lowering the SFE. Moreover, in the Cu–Al alloy with extremely low SFE, shear fracture occurred during ECAP at strain levels higher than two due to the formation of macroscopic shear bands. In addition, the normalized deformation conditions at large strain were qualitatively discussed. More significantly, the strength and uniform elongation were simultaneously improved by lowering the SFE. This simultaneity results from the formation of profuse deformation twins and microscale shear bands, and their extensive intersections.
Keywords
Ductility , Cu–Al alloys , Strength , Equal channel angular pressing (ECAP) , Stacking fault energy (SFE)
Journal title
ACTA Materialia
Serial Year
2009
Journal title
ACTA Materialia
Record number
1144148
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