The thermal stability of nanocrystalline cartridge brass and the effect of zirconium additions

被引:17
作者
Atwater, Mark A. [1 ]
Bahmanpour, Hamed [1 ]
Scattergood, Ronald O. [1 ]
Koch, Carl C. [1 ]
机构
[1] N Carolina State Univ, Dept Mat Sci & Engn, Raleigh, NC 27606 USA
关键词
SHORT-RANGE ORDER; SURFACE-ENERGY; ALPHA-BRASSES; ALLOYS; ZN; STABILIZATION; TEMPERATURE; SEGREGATION; COPPER; TECHNOLOGY;
D O I
10.1007/s10853-012-6731-5
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The thermal stability of nanocrystalline cartridge brass (Cu-30 at.% Zn) and brass-Zr alloys were investigated. The alloys were produced by cryogenic ball milling and subsequently heat treated to a maximum temperature of 800 A degrees C. The grain size of pure brass was found to be relatively stable in comparison to pure copper, and a high hardness was retained up to 600 A degrees C. When 1 at.% zirconium was alloyed with the brass, the grain size was stabilized near 100 nm even at 800 A degrees C. At the highest temperature, hardness was retained above 2.5 GPa for 1 and 5 at.% zirconium alloys, but the pure brass softened significantly. The stabilization is believed to be dominated by Zn-Zr interactions as a second phase of these two was observed in X-ray diffraction and transmission electron microscopy. Thermodynamic modeling indicates a zero grain boundary energy may be achieved depending on the mixing enthalpy value used (i.e., calculated vs. experimental) under ideal conditions, but microstructural features such as twinning and second phase particles are thought to be the dominant stabilization mechanism. Zr worked well in stabilizing the brass in the nanocrystalline state to nearly 90 % of its melting temperature.
引用
收藏
页码:220 / 226
页数:7
相关论文
共 42 条
[1]   Unraveling the nature of room temperature grain growth in nanocrystalline materials [J].
Ames, Markus ;
Markmann, Juergen ;
Karos, Rudolf ;
Michels, Andreas ;
Tschoepe, Andreas ;
Birringer, Rainer .
ACTA MATERIALIA, 2008, 56 (16) :4255-4266
[2]  
Arias D., 1990, Bull Alloy Phase Diagr, V11, P452, DOI [10.1007/BF02898260, DOI 10.1007/BF02898260]
[3]   A NEW HIGH-STRENGTH, HIGH CONDUCTIVITY CU-0.5WT-PERCENT ZR ALLOY PRODUCED BY RAPID SOLIDIFICATION TECHNOLOGY [J].
ARNBERG, L ;
BACKMARK, U ;
BACKSTROM, N ;
LANGE, J .
MATERIALS SCIENCE AND ENGINEERING, 1986, 83 (01) :115-121
[4]  
Atwater MA, 2012, ARLTR6007, P1
[5]  
Atwater MA, 2012, MAT SCI E A IN PRESS
[6]   Deformation twins and related softening behavior in nanocrystalline Cu-30% Zn alloy [J].
Bahmanpour, Hamed ;
Youssef, Khaled M. ;
Horky, Jelena ;
Setman, Daria ;
Atwater, Mark A. ;
Zehetbauer, Michael J. ;
Scattergood, Ronald O. ;
Koch, Carl C. .
ACTA MATERIALIA, 2012, 60 (08) :3340-3349
[7]   EFFECT OF SHORT-RANGE ORDER ON THE TEMPERATURE-DEPENDENCE OF PLASTIC-FLOW IN ALPHA-BRASSES [J].
BUTT, MZ ;
GHAURI, IM .
PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 1988, 107 (01) :187-195
[8]  
Cullity B.D., 2001, ELEMENTS OFX RAY DIF, P170
[9]   Sudden loss of thermal stability in Fe-based nanocrystalline alloys [J].
Dake, Jules M. ;
Krill, Carl E., III .
SCRIPTA MATERIALIA, 2012, 66 (06) :390-393
[10]  
Dalton W.K., 1994, TECHNOLOGY METALLURG