High Temperature Strength and Stress Relaxation Behavior of Dilute Binary Mg Alloys

被引:0
作者
Saeideh Abaspour
Carlos H. Cáceres
机构
[1] The University of Queensland,ARC Centre of Excellence Design in Light Metals, Materials Engineering, School of Engineering
来源
Metallurgical and Materials Transactions A | 2016年 / 47卷
关键词
Dislocation Substructure; Solid Solution Hardening; AZ91D Alloy; Orientation Texture; Stress Relaxation Behavior;
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摘要
Monotonic compression and stress relaxation tests were carried out on specimens of 6 cast binary alloys with (at. pct) 2.5 Al, 0.6 Sn, 2.2 Zn, 0.9 Nd, 0.8 Gd and 1.3 Y, and of a similarly cast AZ91D alloy for reference. The solute concentration of the binary alloys was kept deliberately low to limit precipitation hardening effects during the testing, done in the solution heat treated and quenched condition. Compression testing was carried out at 298 K, 373 K and 453 K (25 °C, 100 °C and 180 °C) for all of the alloys and at 493 K and 523 K (220 °C and 250 °C) for the Nd-, Gd- and Y- containing ones. Stress relaxation was done at 453 K (180 °C) at either a predetermined strain (0.05) or stress (150 MPa). The Mg-Al and the AZ91 alloys softened considerably above 373 K (100 °C). The rest of the alloys exhibited increasing linear strain hardening in compression and reduced stress relaxation, in the order Sn, Zn, Nd, Gd and Y, an indication of a progressively stable dislocation substructure, hence of an increasingly extended athermal regime in the strength-temperature relationship. The overall strain hardening behavior matches that of commercial alloys involving the same solutes at comparable or higher concentrations, and can be accounted for through the respective tendency of the solute atoms to develop short range order. This tendency is lowest for the near-random solid solution introduced by Al, and highest for Nd, Gd and Y, in agreement with their respective phase diagrams. The implications for creep resistant alloy selection and design are discussed.
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页码:1313 / 1321
页数:8
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  • [1] Terbush J.R.(2010)undefined Metall. Mater. Trans. A 41A 2435-42
  • [2] Saddock N.D.(2012)undefined Metall. Mater. Trans. A 43A 3891-3939
  • [3] Jones J.W.(2002)undefined Mater. Sci. Eng. A 324 103-12
  • [4] Pollock T.M.(2003)undefined Adv. Eng. Mater. 5 866-78
  • [5] Nie J.-F.(2010)undefined Int. Mater. Rev. 55 197-217
  • [6] Mordike B.L.(2004)undefined Metall. Mater. Trans. A 35A 1905-09
  • [7] Pekguleryuz M.O.(2002)undefined Metall. Mater. Trans. A 33A 875-82
  • [8] Kaya A.A.(2001)undefined Scripta Mater. 45 1423-29
  • [9] Pekguleryuz M.(2010)undefined Scripta Mater. 63 899-902
  • [10] Celikin M.(2010)undefined Scripta Mater. 63 698-703