欢迎登录材料期刊网

材料期刊网

高级检索

用单边缺口拉伸试样研究了TiNi形状记忆合金在恒载荷下动态充氢时的滞后断裂过程,以及原子氢、氢致马氏体和氢化物在氢致滞后断裂中所起的作用结果表明,TiNi合金能发生氢致滞后断裂,归一化门槛应力强度因子随总氢浓度对数的增加而线性下降,即KIH/KIC=2.01-0.25lnCT.在恒载荷动态充氢时氢化物含量不断升高,材料的断裂韧性不断下降,这是氢致滞后断裂的主要原因;而原子氢和氢致马氏体在氢致滞后断裂中所起的作用则极小.

参考文献

[1] Buchner H, Gutjahr M A, Beccu K D, Saufferer H. Z Metall, 1972; 63:497
[2] Soubeyroux J L, Fruchart D. J Alloys Compds, 1993; 196:127
[3] Adachi Y, Wade N, Hosoi Y. J Jpn Inst Metal, 1990; 54:525
[4] Rotini A, Biscarini A, Campanella R, Coluzzi B, Mazzolai G, Mazzolai F M. Scr Mater, 2001; 44:719
[5] Shorshorov M Kh, Stepanov I A, Flomenblit Yun, Travkin V V. Phys Met Metall, 1985; 60:109
[6] Yokoyama K, Hamada K, Asaoka K. Mater Trans, 2001;42:141
[7] Asaoka K, Yokoyama K, Nagumo M. Metall Mater Trans,2002; 32A: 495
[8] Yokoyama K, Watabe S, Hamada K, Sqkai J, Asaoka K,Nagumo M. Mater Sci Eng, 2003; 741A: 91
[9] Chu W Y, Qiao L J, Chen Q Z, Gao K W. Fracture and Delayed Fracture, Beijing: Science Press, 2001:126(褚武扬,乔利杰,陈奇志,高克玮.断裂与滞后断裂,北京:科学出版社,2001:126)
[10] Pan C, Su Y J, Chu W Y, Li Z B, Qiao L J. Corrosion Sci, 2002; 44:1983
[11] PanC, ChuWY, LiZB, SuYJ, QiaoLJ. Sci in China,2002; 45E: 175
[12] Gao K W, Wang Y B, Chu W Y. Sci in China, 1999; 42E:511
[13] He J Y, Gao K W, Qiao L J, Chu W Y. Acta Metall Sin,2004; 40:291(何健英,高克玮,乔利杰,褚武扬,金属学报,2004;40:291)
[14] Zhang T, Chu W Y, Gao K W, Qiao L J. Mater Sci Eng,2003; A347:291
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%