Strength and ductility optimization of Mg-Y-Nd-Zr alloy by microstructural design

被引:63
作者
Kumar, N. [1 ]
Choudhuri, D. [1 ]
Banerjee, R. [1 ]
Mishra, R. S. [1 ]
机构
[1] Univ N Texas, Dept Mat Sci & Engn, Denton, TX 76203 USA
关键词
Microstructures; Anisotropic material; Strength; Ductility; Fracture; DEFORMATION-BEHAVIOR; MAGNESIUM ALLOY; GRAIN-SIZE; WROUGHT MAGNESIUM; TEXTURE EVOLUTION; ROOM-TEMPERATURE; PRECIPITATION; RECRYSTALLIZATION; MECHANISMS; ANISOTROPY;
D O I
10.1016/j.ijplas.2014.11.003
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Understanding of essential microstructural features necessary to develop an optimum combination of strength and ductility in magnesium alloys is needed for materials by the microstructural design approach. Microstructural features required to optimize both strength and ductility of Mg Y Nd Zr alloy were investigated by examining different thermo-mechanical processing conditions. Different microstructural states were obtained by either isothermally aging the hot-rolled base alloy or by friction stir processing (FSP) the base alloy and then aging the FSP microstructure. The plastic deformation behavior of different microstructural states was characterized by uniaxial tensile testing, whereas microstructural features were probed using scanning electron microscope, electron backscatter diffraction, and transmission electron microscope. As expected, precipitate formation within a-Mg matrix increased the alloy strengthirrespective, of processing condition. Concomitantly, the base alloy experienced a drastic drop in ductility. The presence of twins, coupled with a loss of toughness due to aging heat treatment, resulted in very poor ductility of the alloy. A good combination of strength and ductility was achieved by altering the base Mg Y Nd Zr microstructure through FSP and subsequent aging. In addition to producing refined grains, FSP resulted in twin-free microstructure. The refined microstructure had a near-random texture, where a large fraction of grains was favorably oriented for plastic deformation. In this condition, intragranular precipitation increased the strength while retaining good ductility by activating additional slip systems. These results indicate that an optimum balance of strength and ductility is achieved by engineering a microstructure containing randomly-oriented fine grains, intragranular precipitation and minimal twins within a-Mg matrix. An empirical correlation among ductility, work hardening exponent, and slope of work hardening vs. flow stress curve was established, and will serve as a useful guideline for designing microstructure for the optimization of strength and ductility in magnesium alloys. (C) 2014 Elsevier Ltd. All rights reserved.
引用
收藏
页码:77 / 97
页数:21
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