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Extra resources for Engineering plasticity and its applications from nanoscale to macroscale : proceedings of the 9th AEPA 2008, Daejeon, Korea, 20-24 October 2008
Sci. Eng. 1 (1992) 225. H. Lee, J. Appl. Mech. 36 (1969) 1. R. Rice, J. Mech. Phys. Solids 19 (1971) 433. D. J. Asaro, A. Needleman, Acta Metall. 30 (1982) 1087. F. Kocks, Metall. Trans. 1 (1972) 1121. B. H. Kim, L. Anand, Int. J. Plasticity 5 (1989) 95. E. Orowan, Philos. Trans. Roy. Soc. London A 53 (1940) 8. J. R. , Elementary dislocation theory (Oxford Univ. Press, 1992). P. Franciosi and A. Zaoui, Acta Metall. 30 (1982) 1627. U. Essmann and H. Mughrabi, Phil. Mag. A 40 (1979) 731. T. Takeuchi, Trans.
T. Takeuchi, Trans. Jpn. Inst. Metals 16 (1975), 629. Lee, H. Wagoner, in preparation. jp Received 15 June 2008 Revised 23 June 2008 This paper deals with plastic deformations of a high tensile strength steel sheet (HTSS sheet) under biaxial stress condition including strain path. Using a cruciform specimen of a HTSS sheet of 780MPa-TS, experiments under proportional and non-proportional loadings were investigated. Numerical simulations of stress-strain responses for several strain paths after biaxial stretching were conducted using a large-strain cyclic plasticity model (Yoshida-Uemori model).
The effects of the pore fluid and the heterogeneous density distribution to the deformation and energy absorption of the foams are considered. High deformation rate compression behaviors of metallic foams are discussed. † Corresponding Author. 9 10 Y. F. Zhang & L. M. Zhao 2. 1. The model consists of N M discrete lump masses connected by elastic-plastic nonlinear springs and dampers in parallel in loading direction and constrained by hinged extensible rods transverse to the loading direction. The dampers stand for the contribution of the cell fluid to the strength of foam block.