Toward a quantitative understanding of mechanical behavior of nanocrystalline metals
Creators
- 1. Department of Materials Science and Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139 (United States)
- 2. Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016 (China)
- 3. Department of Structural Engineering, University of California, San Diego, CA 92093 (United States)
- 4. Department of Applied Physics, Netherlands Institute for Metals Research and Materials Science Center, University of Groningen, 9747 AG, Groningen (Netherlands)
- 5. Department of Materials Science and Engineering, John Hopkins University, Baltimore, MD 21218 (United States)
Description
Focusing on nanocrystalline (nc) pure face-centered cubic metals, where systematic experimental data are available, this paper presents a brief overview of the recent progress made in improving mechanical properties of nc materials, and in quantitatively and mechanistically understanding the underlying mechanisms. The mechanical properties reviewed include strength, ductility, strain rate and temperature dependence, fatigue and tribological properties. The highlighted examples include recent experimental studies in obtaining both high strength and considerable ductility, the compromise between enhanced fatigue limit and reduced crack growth resistance, the stress-assisted dynamic grain growth during deformation, and the relation between rate sensitivity and possible deformation mechanisms. The recent advances in obtaining quantitative and mechanics-based models, developed in line with the related transmission electron microscopy and relevant molecular dynamics observations, are discussed with particular attention to mechanistic models of partial/perfect-dislocation or deformation-twin-mediated deformation processes interacting with grain boundaries, constitutive modeling and simulations of grain size distribution and dynamic grain growth, and physically motivated crystal plasticity modeling of pure Cu with nanoscale growth twins. Sustained research efforts have established a group of nanocrystalline and nanostructured metals that exhibit a combination of high strength and considerable ductility in tension. Accompanying the gradually deepening understanding of the deformation mechanisms and their relative importance, quantitative and mechanisms-based constitutive models that can realistically capture experimentally measured and grain-size-dependent stress-strain behavior, strain-rate sensitivity and even ductility limit are becoming available. Some outstanding issues and future opportunities are listed and discussed
Additional details
Identifiers
- DOI
- 10.1016/j.actamat.2007.01.038;
- PII
- S1359-6454(07)00107-3;
Publishing Information
- Journal Title
- Acta Materialia
- Journal Volume
- 55
- Journal Issue
- 12
- Journal Page Range
- p. 4041-4065
- ISSN
- 1359-6454
- CODEN
- ACMAFD
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 39034633
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- CRACK PROPAGATION; CRYSTALS; DEFORMATION; DISLOCATIONS; DUCTILITY; FATIGUE; FCC LATTICES; GRAIN BOUNDARIES; GRAIN GROWTH; GRAIN SIZE; METALS; MOLECULAR DYNAMICS METHOD; NANOSTRUCTURES; PLASTICITY; SIMULATION; STRAIN RATE; STRESSES; TEMPERATURE DEPENDENCE; TRANSMISSION ELECTRON MICROSCOPY
- Descriptors DEC
- CALCULATION METHODS; CRYSTAL DEFECTS; CRYSTAL LATTICES; CRYSTAL STRUCTURE; CUBIC LATTICES; ELECTRON MICROSCOPY; ELEMENTS; LINE DEFECTS; MECHANICAL PROPERTIES; MICROSCOPY; MICROSTRUCTURE; SIZE; TENSILE PROPERTIES
Optional Information
- Copyright
- Copyright (c) 2007 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.