综述

钛合金中的正交相变及其应用

  • 杨锐 ,
  • 郝玉琳 ,
  • Edward G. Obbard ,
  • 董利民 ,
  • 卢斌
展开
  • 中国科学院金属研究所, 沈阳 110016
杨 \ \ 锐, 男, 1965年生, 研究员

收稿日期: 2010-09-17

  网络出版日期: 2010-11-11

ORTHORHOMBIC PHASE TRANSFORMATIONS IN TITANIUM ALLOYS AND THEIR APPLICATIONS

  • YANG Rui ,
  • HAO Yu-Lin ,
  • DONG Li-Min ,
  • LV Bin
Expand

Received date: 2010-09-17

  Online published: 2010-11-11

摘要

本文概述了钛合金及Ti3Al经过渡族元素合金化形成的正交相的联系与区别, 简要总结了作者研究组近期针对这些正交相变的研究结果, 分析了需进一步澄清的科学问题. 结合低弹性模量超弹性钛合金研制、冷镦紧固件丝材超细网篮显微组织制备以及Ti2AlNb基合金板材和箔材研发3个实例, 展示了正交相变规律的实际应用.

本文引用格式

杨锐 , 郝玉琳 , Edward G. Obbard , 董利民 , 卢斌 . 钛合金中的正交相变及其应用[J]. 金属学报, 2010 , 46(11) : 1443 -1449 . DOI: 10.3724/SP.J.1037.2010.00483

Abstract

The link and difference between orthorhombic phase transformations in β-type titanium alloys and in Ti3Al containing high concentrations of transition metal elements such as Nb are first outlined in this paper. Recent investigations on these transformations conducted in the authors' group are reviewed followed by discussions of remaining problems. Three examples were presented to illustrate the applications of the orthorhombic phase transformations: design and development of superelastic titanium alloys for biomedical use, preparation of ultra-fine basketweave microstructure of titanium alloy wire for fastener manufacturing, and sheet and foil production of alloys based on Ti2AlNb.

参考文献

[1] Shih C H, Averbach B L, Cohen M. Trans AIME, 1955; 203: 183 [2] Bagariatskii Y A, Nosova G I, Tagunova T V. Dok Akad Nauk SSSR, 1958; 122: 593 [3] Jepson K S, Brown A R G, Gray J A. In: Jaffee R I, Promisel N E, eds., The Science, Technology and Application of Titanium (Proc 1st Int Conf Titanium), London: Pergamon, 1970: 677 [4] Williams J C. In: Jaffee R I, Burte H M, eds., Titanium Science and Technology (Proc 2nd Int Conf Titanium), New York: Plenum, 1973: 1433 [5] Flower H M, Davis R,West D R F. In: Williams J C, Belov A F, eds., Titanium and Titanium Alloys: Scientific and Technological Aspects (Proc 3rd Int Conf Titanium), New York: Plenum, 1982: 1703 [6] Banerjee D, Gogia A K, Nandy T K, Joshi V A. Acta Metall, 1988; 36: 871 [7] Hao Y L, Li S J, Sun S Y, Zheng C Y, Hu Q M, Yang R. Appl Phys Lett, 2005; 87: 091906 [8] Hao Y L, Li S J, Sun B B, Sui M L, Yang R. Phys Rev Lett, 2007; 98: 216405 [9] Cui J P, Hao Y L, Li S J, Sui M L, Li D X, Yang R. Phys Rev Lett, 2009; 102: 045503 [10] Li S J, Cui T C, Hao Y L, Yang R. Acta Biomater, 2008; 4: 305 [11] Bendersky L A, Roytburd A, Boettinger W J. Acta Metall Mater, 1994; 42: 2323 [12] Obbard E G, Hao Y L, Akahori T, Talling R J, Niinomi M, Dye D, Yang R. Acta Mater, 2010; 58: 3557 [13] Obbard E G. PhD Thesis, Institute of Metal Research, Chinese Academy of Sciences, Shenyang, 2010 [14] Obbard E G, Hao Y L, Talling R J, Li S J, Zhang Y W, Dye D, Yang R. Acta Mater, in press [15] Gao X, Huang M, Brinson L C. Int J Plast, 2000; 16: 1345 [16] Heinen R, Hackl K, Windl W, Wagner M F. Acta Mater, 2009; 57: 3856 [17] Afonso C R, Ferrandini P L, Ramirez A J, Caram R. Acta Biomater, 2010; 6: 1625 [18] Hao Y L, Li S J, Sun S Y, Yang R. Mater Sci Eng, 2006; A441: 112 [19] Petry W, Heiming A, Trampenau J. Alba M, Herzig C, Schober H R, Vogl G. Phys Rev, 1991; 43B: 10933 [20] Li S J, Yang R, Niinomi M, Hao Y L, Cui Y Y, Guo Z X. Mater Sci Technol, 2005; 21: 678 [21] Hu Q M, Yang R, Xu D S, Hao Y L, Li D. Phys Rev, 2003; 68B: 054102
文章导航

/