GAO H Y,WANG J,SUN B D.Effect of Ag on the thermal stability of deformation processed Cu-Fe in situ composites[J].Alloys and Compounds,2009,469:580-586.
[2]
RAADE D,HANGEN U.Correlation of microstructure and type II superconductivity of a heavily cold rolled Cu-20mass% Nb in situ composite[J].Acta Mater,1996,44:953-961.
[3]
HE W X,WANG E D,HU Lian-xi,et al.Effect of extrusion on microstructure and properties of a submicron crystalline Cu-5wt.%Cr alloy[J].J Mater Proc Technol,2008,208:205-210.
[4]
HONG S I,HILL M A.Mechanical properties of Cu-Nb microcomposites fabricated by the bundling and drawing process[J].Scripta Mater,2000,42:737-742.
[5]
SONG J S,KIM H S.Deformation processing and mechanical properties of Cu-Cr-X(X=Ag or Co) microcomposites[J].J Mater Proc Technol,2002,130-131:272-277.
[6]
ZHANG D L,MIHARA K,TAKAKURA K,et al.Effect of the amount of cold working and ageing on the ductility of a Cu-15%Cr-0.2%Ti in-situ composite[J].Acta Mater,1996,44:953-961.
[7]
LIU Qiang,ZHANG Xiang.Effect of processing and heat treatment on behavior of Cu-Cr-Zr alloys to railway contact wire[J].Metall Mater Trans A,2006,37:3233-3238.
[8]
SUN Z B,GUO J,SONG X P,et al.Effects of Zr addition on the liquid phase separation and the microstructures of Cu-Cr ribbons with 18-22at.% Cr[J].J Alloys Compd,2008,455:243-248.
MORISS D G,MORRIS M S.New model for strengthening by dislocation nucleation in nanoscale in situ composite microwires[J].Scripta Mater,2008,58:838-841.
[12]
GO Y S,SPITZIG W A.Strengthening in deformation-processed Cu-20% Fe composites[J].J Mater Sci,1991,26:163-171.
[13]
JIN Y,ADACHI K.Microstructural evolution of a heavily cold-rolled metal matrix composite[J].Mater Sci Eng A,1996,212:149-56.
[14]
HOLZWARTH U,STAMN H.The precipitation behavior of ITER-grade Cu-Cr-Zr alloy after simulating the thermal cycle of hot isostatic pressing[J].J Nucl Mater,2003,279:31-45.