Mechanics of very fine-grained nanocrystalline materials with contributions from grain interior, GB zone, and grain-boundary sliding

被引:85
|
作者
Barai, Pallab [1 ]
Weng, George J. [1 ]
机构
[1] Rutgers State Univ, Dept Mech & Aerosp Engn, New Brunswick, NJ 08903 USA
关键词
Nanocrystalline materials; Grain-boundary sliding; Inverse Hall-Petch effect; Strain-rate sensitivity; Viscoplastic response; STRAIN-RATE SENSITIVITY; SELF-CONSISTENT; SIZE DEPENDENCE; YIELD-STRESS; PLASTIC-DEFORMATION; ELASTIC PROPERTIES; VISCOELASTIC BEHAVIOR; NONLINEAR COMPOSITES; AFFINE FORMULATION; STRENGTH;
D O I
10.1016/j.ijplas.2009.04.001
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
In this paper, we formulated an atomically-equivalent continuum model to study the viscoplastic behavior of nanocrystalline materials with special reference to the low end of grain size that is typically examined by molecular dynamic (MD) simulations. Based on the morphology disclosed in MID simulations, a two-phase composite model is construed, in which three distinct inelastic deformation mechanisms disclosed from MD simulations are incorporated to build a general micromechanics-based homogenization scheme. These three mechanisms include the dislocation-related plastic flow inside the grain interior, the uncorrelated atomic motions inside the grain-boundary region (the GB zone), and the grain-boundary sliding at the interface between the grain and GB zone. The viscoplastic behavior of the grain interior is modeled by a grain-size dependent unified constitutive equation whereas the GB zone is modeled by a size-independent unified law. The GB sliding at the interface is represented by the Newtonian flow. The development of the rate-dependent, work-hardening homogenization scheme is based on a unified approach starting from elasticity to viscoelasticity through the correspondence principle, and then from viscoelasticity to viscoplasticity through replacement of the Maxwell viscosity of the constituent phases by their respective secant viscosity. The developed theory is then applied to examine the grain size- and strain rate-dependent behavior of nanocrystalline Cu over a wide range of grain size. Within the grain-size range from 5.21 to 3.28 nm, and the strain rate range from 2.5 x 10(8) to 1.0 x 10(9)/s, the calculated results show significant grain-size softening as well as strain-rate hardening that are in quantitative accord with MD simulations [Schiotz, I., Vegge, T., Di Tolla, F.D., Jacobsen, K.W., 1999. Atomicscale simulations of the mechanical deformation of nanocrystalline metals. Phys. Rev. B 60, 11971-11983]. We have also applied the theory to investigate the flow stress, strain-rate sensitivity, and activation volume over the wider grain size range from 40 nm to as low as 2 nm under these high strain rate loading, and found that the flow stress initially displays a positive slope and then a negative one in the Hall-Petch plot, that the strain-rate sensitivity first increases and then decreases, and that the activation volume first decreases and then increases. This suggests that the maximum strain rate sensitivity and the lowest activation volume do not occur at the smallest grain size but, like the maximum yield strength (or hardness), they occur at a finite grain size. These calculated results also confirm the theoretical prediction of Rodriguez and Armstrong [Rodriguez, P., Armstrong, R.W., 2006. Strength and strain rate sensitivity for hcp and fcc nanopolycrystal metals. Bull. Mater. Sci. 29, 717-720] on the basis of grain boundary weakening and the report of Trelewicz and Schuh [Trelewicz, J.R., Schuh, C.A_ 2007. The Hall-Petch breakdown in nanocrystalline metals: a crossover to glass-like deformation. Acta Mater. 55, 5948-5958] on the basis of hardness tests. In general the higher yield strength, higher strain rate sensitivity, and lower activation volume on the positive side of the Hall-Petch plotare associated with the improved yield strength of the grain interior, but the opposite trends displayed on the negative side of the plot are associated with the characteristics of the GB zone which is close to the amorphous state. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2410 / 2434
页数:25
相关论文
共 41 条
  • [1] Coupled model for grain rotation, dislocation plasticity and grain boundary sliding in fine-grained solids
    Borodin, E. N.
    Mayer, A. E.
    Gutkin, M. Yu
    INTERNATIONAL JOURNAL OF PLASTICITY, 2020, 134
  • [2] Deformation of fine-grained alumina by grain boundary sliding accommodated by slip
    Ruano, OA
    Wadsworth, J
    Sherby, OD
    ACTA MATERIALIA, 2003, 51 (12) : 3617 - 3634
  • [3] Grain-boundary sliding in a TiAl alloy with fine-grained duplex microstructure during 750 °C creep
    Peter, D.
    Viswanathan, G. B.
    Wagner, M. F. -X.
    Eggeler, G.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2009, 510-11 : 359 - 363
  • [4] Investigation of slip systems activity and grain boundary sliding in fine-grained superplastic zinc alloy
    Bednarczyk, Wiktor
    Kawalko, Jakub
    Watroba, Maria
    Szuwarzynski, Michal
    Bala, Piotr
    ARCHIVES OF CIVIL AND MECHANICAL ENGINEERING, 2023, 23 (04)
  • [5] Thermally activated dislocation depinning at a grain boundary in nanocrystalline and ultrafine-grained materials
    Kato, Masaharu
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2009, 516 (1-2): : 276 - 282
  • [6] Effects Effects of cooperative grain boundary sliding and migration on the particle cracking of fine-grained magnesium alloys
    Xie, C.
    Wang, Y. N.
    Fang, Q. H.
    Ma, T. F.
    Zhang, A. B.
    Peng, W. F.
    Shu, X. D.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 704 : 641 - 648
  • [7] Room temperature grain boundary sliding behavior of fine-grained Mg-Mn alloys
    Somekawa, Hidetoshi
    Basha, Dudekula Althaf
    Singh, Alok
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2018, 730 : 355 - 362
  • [8] Review on Grain Size- and Grain Boundary Phenomenon in Unusual Mechanical Behavior of Ultra fine-Grained Al Alloys
    Chinh, Nguyen Q.
    Olasz, Daniel
    Ahmed, Anwar Q.
    Bobruk, Elena, V
    Valiev, Ruslan Z.
    MATERIALS TRANSACTIONS, 2023, 64 (08) : 1844 - 1855
  • [9] Grain boundary relaxation in fine-grained magnesium solid solutions
    Watanabe, Hiroyuki
    Owashi, Akira
    Uesugi, Tokuteru
    Takigawa, Yorinobu
    Higashi, Kenji
    PHILOSOPHICAL MAGAZINE, 2011, 91 (32) : 4158 - 4171
  • [10] Synergy of grain boundary sliding and shear-coupled migration process in nanocrystalline materials
    Li, Jianjun
    Soh, A. K.
    ACTA MATERIALIA, 2013, 61 (14) : 5449 - 5457