Micro-mechanism of simultaneous improvement of strength and ductility of squeeze-cast Al–Cu alloy

Author(s):  
Jianyu Li ◽  
Shulin Lü ◽  
Shusen Wu ◽  
Dijia Zhao ◽  
Wei Guo
2012 ◽  
Vol 217-219 ◽  
pp. 338-342
Author(s):  
Cheng Gang Yang ◽  
Qiang Zhen ◽  
Ji Jun Xin

Hot ductility testing is used to evaluate the liquation cracking susceptibility of high Strength aluminum alloy 2219, the fracture surface of hot ductility samples are inspected by SEM, the results showed that the melting point of α(Al)-CuAl2 divorced eutectic is higher than that of α(Al)- CuAl2 eutectic. The α(Al)- CuAl2 divorced eutectic is prior to melting during heating process and solidification during cooling process, so the BTR of Al-Cu alloy 2219 is narrow. The low liquation cracking susceptible and good weldability of Al-Cu alloy 2219 due to the rapidly recover the strength and ductility in elevated temperature which caused by the α(Al)-CuAl2 divorced eutectic solidification during cooling process.


2020 ◽  
Vol 326 ◽  
pp. 05004
Author(s):  
Zhiguo Chen ◽  
Chenghua Lu ◽  
Jing Peng ◽  
Zhengui Yuan

The comprehensive performance of Al-Zn-Mg-Cu alloy can be significantly improved by a proposed novel thermo-mechanical treatment (NTMT). The influence of the NTMT on the properties and microstructure was investigated by tensile test, corrosion resistance test, X-ray diffraction (XRD), and transmission electron microscopy (TEM). Results show that Al-Zn-Mg-Cu alloy treated by the NTMT can obtain an excellent combination of strength and ductility. The highest yield strength and ultimate tensile strength reached 643 MPa and 664 MPa respectively, and the elongation was 9.7%. Meanwhile, electrochemical corrosion resistance and intergranular corrosion resistance in the aluminum alloy can be improved after the NTMT. The mechanism of the excellent combination of strength and ductility is thought to be the synergistic effect of dislocations substructures, texture configuration, and nanoprecipitates. The improvement of intergranular corrosion resistance of the aluminum alloy is caused by changes in the micro-morphology of grain boundary precipitates after the NTMT, which can block anodic dissolution channels along grain boundaries to reduce the rate of anodic dissolution and avoid hydrogen embrittlement.


2017 ◽  
Vol 707 ◽  
pp. 291-297 ◽  
Author(s):  
V.Yu. Zadorozhnyy ◽  
X. Shi ◽  
D.S. Kozak ◽  
T. Wada ◽  
J.Q. Wang ◽  
...  

2001 ◽  
Vol 17 (6) ◽  
pp. 639-644 ◽  
Author(s):  
H.R. Hashemi ◽  
H. Ashoori ◽  
P. Davami

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