Abstract
AbstractCrystalline metals can have large theoretical elastic strain limits. However, a macroscopic block of conventional crystalline metals practically suffers a very limited elastic deformation of <0.5% with a linear stress–strain relationship obeying Hooke’s law. Here, we report on the experimental observation of a large tensile elastic deformation with an elastic strain of >4.3% in a Cu-based single crystalline alloy at its bulk scale at room temperature. The large macroscopic elastic strain that originates from the reversible lattice strain of a single phase is demonstrated by in situ microstructure and neutron diffraction observations. Furthermore, the elastic reversible deformation, which is nonhysteretic and quasilinear, is associated with a pronounced elastic softening phenomenon. The increase in the stress gives rise to a reduced Young’s modulus, unlike the traditional Hooke’s law behaviour. The experimental discovery of a non-Hookean large elastic deformation offers the potential for the development of bulk crystalline metals as high-performance mechanical springs or for new applications via “elastic strain engineering.”
Funder
MEXT | Japan Society for the Promotion of Science
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
Reference56 articles.
1. Meyers, M. & Chawla, K. Mechanical Behavior of Materials (Cambridge University Press, 2008).
2. Landau, L. D. & Lifshitz, E. M. Theory of Elasticity (Pergamon Press, 1959).
3. Milstein, F. Theoretical strength of a perfect crystal. Phys. Rev. B 3, 1130–1141 (1971).
4. Krenn, C. R., Roundy, D., Morris, J. W. Jr & Cohen, M. L. Ideal strengths of bcc metals. Mater. Sci. Eng. A 319, 111–114 (2001).
5. Ogata, S., Li, J. & Yip, S. Ideal pure shear strength of aluminum and copper. Science 298, 807–811 (2002).
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