Uniaxial tensile plastic deformation and grain growth of bulk nanocrystalline alloys

被引:140
作者
Fan, G. J. [1 ]
Fu, L. F.
Choo, H.
Liaw, P. K.
Browning, N. D.
机构
[1] Univ Tennessee, Dept Mat Sci & Engn, Knoxville, TN 37996 USA
[2] Univ Calif Davis, Dept Chem Engn & Mat Sci, Davis, CA 95616 USA
[3] Oak Ridge Natl Lab, Div Met & Ceram, Oak Ridge, TN 37831 USA
[4] Natl Ctr Electron Microscopy, Lawerence Berkeley Natl Lab, Berkeley, CA 94720 USA
基金
美国国家科学基金会;
关键词
nanocrystalline alloys; mechanical properties; grain growth; deformation mechanisms;
D O I
10.1016/j.actamat.2006.06.016
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The uniaxial tensile behavior of as-deposited bulk nanocrystalline (nc) Ni-Fe (average grain size d approximate to 23 nm) and Co-P (d approximate to 12 nm) alloys was investigated. Both alloys have a high strength of about 2 GPa. The nc Ni-Fe alloy exhibits a tensile elongation to failure, epsilon(f), in the ran e 4-7%. depending on the applied strain rate, L In contrast, the nc Co-P alloy shows rather constant epsilon(f) of about 2.2%, which is insensitive to epsilon Tensile plastic deformation causes a grain growth in both alloys. An abnormal grain growth was noticed in the nc Ni-Fe alloy, leading to a bimodal microstructure with large grain sizes up to about 250 nm. While deformation twinning and dislocation motion still play roles, our experimental results indicate that the plastic deformation of the nc alloys is influenced by the grain boundary activities. (c) 2006 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:4781 / 4792
页数:12
相关论文
共 70 条
[1]   Texture evolution of five wrought magnesium alloys during route A equal channel angular extrusion: Experiments and simulations [J].
Agnew, SR ;
Mehrotra, P ;
Lillo, TM ;
Stoica, GM ;
Liaw, PK .
ACTA MATERIALIA, 2005, 53 (11) :3135-3146
[2]   Mechanistic models for the activation volume and rate sensitivity in metals with nanocrystalline grains and nano-scale twins [J].
Asaro, RJ ;
Suresh, S .
ACTA MATERIALIA, 2005, 53 (12) :3369-3382
[3]   Plastic deformation with reversible peak broadening in nanocrystalline nickel [J].
Budrovic, Z ;
Van Swygenhoven, H ;
Derlet, PM ;
Van Petegem, S ;
Schmitt, B .
SCIENCE, 2004, 304 (5668) :273-276
[4]   Hardness and strain rate sensitivity of nanocrystalline Cu [J].
Chen, J ;
Lu, L ;
Lu, K .
SCRIPTA MATERIALIA, 2006, 54 (11) :1913-1918
[5]   Comment on "grain boundary-mediated plasticity in nanocrystalline nickel" [J].
Chen, MW ;
Yan, XQ .
SCIENCE, 2005, 308 (5720)
[6]   Deformation twinning in nanocrystalline aluminum [J].
Chen, MW ;
Ma, E ;
Hemker, KJ ;
Sheng, HW ;
Wang, YM ;
Cheng, XM .
SCIENCE, 2003, 300 (5623) :1275-1277
[7]   ELECTRODEPOSITION OF NANOCRYSTALLINE NI-FE ALLOYS [J].
CHEUNG, C ;
DJUANDA, F ;
ERB, U ;
PALUMBO, G .
NANOSTRUCTURED MATERIALS, 1995, 5 (05) :513-523
[8]   Thermal stability of electrodeposited nanocrystalline Co-1.1at.%P [J].
Choi, P ;
da Silva, M ;
Klement, U ;
Al-Kassab, T ;
Kirchheim, R .
ACTA MATERIALIA, 2005, 53 (16) :4473-4481
[9]   Nanocrystalline electrodeposited Ni: microstructure and tensile properties [J].
Dalla Torre, F ;
Van Swygenhoven, H ;
Victoria, M .
ACTA MATERIALIA, 2002, 50 (15) :3957-3970
[10]   Effect of stacking fault energy on plastic deformation of nanocrystalline face-centered cubic metals [J].
Ebrahimi, F ;
Ahmed, Z ;
Li, H .
APPLIED PHYSICS LETTERS, 2004, 85 (17) :3749-3751