Local inhomogeneity of mechanical properties in stir zone of friction stir welded AA1050 aluminum alloy

被引:0
作者
LIU X.-C. [1 ,2 ,3 ]
ZHEN Y.-Q. [1 ]
SUN Y.-F. [4 ]
SHEN Z.-K. [1 ,2 ,3 ]
CHEN H.-Y. [1 ,2 ,3 ]
GUO W. [1 ]
LI W.-Y. [1 ,2 ,3 ]
机构
[1] School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an
[2] State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an
[3] Shaanxi Key Laboratory of Friction Welding Technologies, Xi'an
[4] School of Materials Science and Engineering, Zhengzhou University, Zhengzhou
来源
Transactions of Nonferrous Metals Society of China (English Edition) | 2020年 / 30卷 / 09期
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
face-centered cubic metal; friction stir welding; local inhomogeneity; mechanical properties; micro-texture;
D O I
10.1016/S1003-6326(20)65385-7
中图分类号
学科分类号
摘要
The local inhomogeneity of the stir zone in friction stir welded face-centered cubic metal was investigated, which has multiple activated slip systems during plastic deformation, by selecting commercial AA1050 aluminum alloy as an ideal experimental material. The local inhomogeneity was evaluated by uniaxial tensile tests using small samples with a 1 mm gauge length. The corresponding microstructural parameters such as grain size, misorientation angle distribution, and micro-texture, were quantified by the backscattered electron diffraction technique. A comprehensive model was used to reveal the microstructure−mechanical property relationship. The experimental results showed that the uniaxial tensile property changes significantly across the weld. The maximum ultimate tensile strength (UTS) occurred in the center of the stir zone, which was 99.0 MPa. The weakest regions were located at the two sides of the stir zone. The largest difference value in UTS reached 14.9 MPa, accounting for 15% of the maximum UTS. The analysis on the structure−mechanical property relationship suggests that the micro-texture change with the location formed during the rotational material flow is the main reason for the local inhomogeneity. © 2020 The Nonferrous Metals Society of China
引用
收藏
页码:2369 / 2380
页数:11
相关论文
共 67 条
[61]  
HANSEN N., HUANG X., Microstructure and flow stress of polycrystals and single crystals [J], Acta Materialia, 46, 5, pp. 1827-1836, (1998)
[62]  
SATO Y.S., URATA M., KOKAWA H., IKEDA K., Hall–Petch relationship in friction stir welds of equal channel angular-pressed aluminium alloys [J], Materials Science and Engineering A, 354, 1, pp. 298-305, (2003)
[63]  
CAHOON J.R., BROUGHTON W.H., KUTZAK A.R., The determination of yield strength from hardness measurements [J], Metallurgical Transactions, 2, 7, pp. 1979-1983, (1971)
[64]  
ASHBY M.F., JONES D.R.H., Engineering Materials (I) [M], (1980)
[65]  
LIU X.C., SUN Y.F., NAGIRA T., USHIODA K., FUJII H., Microstructure evolution of Cu–30Zn during friction stir welding [J], Journal of Materials Science, 53, 14, pp. 10423-10441, (2018)
[66]  
STARINK M.J., WANG S.C., A model for the yield strength of overaged Al–Zn–Mg–Cu alloys [J], Acta Materialia, 51, 17, pp. 5131-5150, (2003)
[67]  
XU C., HORITA Z., LANGDON T.G., The evolution of homogeneity in processing by high-pressure torsion [J], Acta Materialia, 55, 1, pp. 203-212, (2007)