ISSN: 1003-6326
CN: 43-1239/TG
CODEN: TNMCEW

Vol. 30    No. 10    October 2020

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Effect of rapid cold stamping on fracture behavior of long strip S′ phase in Al-Cu-Mg alloy
Cai-he FAN1,2, Ling OU1,2, Ze-yi HU1, Shu WANG3, Jun-hong WANG3
(1. College of Metallurgy and Material Engineering, Hunan University of Technology, Zhuzhou 412007, China;
2. Anhui Jianye Science and Technology Co., Ltd., Huaibei 235000, China;
3. 208 Research Institute of China Ordnance Industries, Beijing 102202, China
)
Abstract: High-angle annular dark-field scanning transmission electron microscopy and selected area electron diffraction techniques were used to study the mechanism that underlies the influence of rapid cold-stamping deformation on the fracture behavior of the elongated nanoprecipitated phase in extruded Al-Cu-Mg alloy. Results show that the interface between the long strip-shaped S′ phase and the aluminum matrix in the extruded Al-Cu-Mg alloy is flat and breaks during rapid cold-stamping deformation. The breaking mechanisms are distortion and brittle failure, redissolution, and necking. The breakage of the long strip S′ phase increases the contact surface between the S′ phase and the aluminum matrix and improves the interfacial distortion energy. This effect accounts for the higher free energy of the S′ phase than that of the matrix and creates conditions for the redissolution of solute atoms back into the aluminum matrix. The brittle S′ phase produces a resolved step during rapid cold-stamping deformation. This step further accelerates the diffusion of solute atoms and promotes the redissolution of the S′ phase. Thus, the S′ phase necks and separates, and the long strip-shaped S′ phase in the extruded Al-Cu-Mg alloy is broken into a short and thin S′ phase.
Key words: Al-Cu-Mg alloy; rapid cold stamping; nanoprecipitate; fracture behavior; breaking mechanism
Superintended by The China Association for Science and Technology (CAST)
Sponsored by The Nonferrous Metals Society of China (NFSOC)
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