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Constitutive modeling for anisotropic/asymmetric hardening behavior of magnesium alloy sheets
Authors:Myoung-Gyu Lee  R.H. Wagoner  J.K. Lee  K. Chung  H.Y. Kim
Affiliation:1. Eco-Materials Research Center, 66 Sangnam, Korea Institute of Machinery and Materials, Changwon, Kyungnam 641-010, Republic of Korea;2. Department of Materials Science and Engineering, 2041 College Road, Ohio State University, Columbus, OH 43210, USA;3. Department of Mechanical Engineering, Scott Laboratory, 201 West 19th Avenue, Ohio State University, Columbus, OH 43210, USA;4. School of Material Science and Engineering, Seoul National University, 56-1, Shinlim-Dong, Kwanak-Ku, Seoul 151-742, Republic of Korea;5. Division of Mechanical Engineering and Mechatronics, Kangwon National University, 192-1 Hyoja 2-Dong, Chunchon, Gangwon-Do 200-701, Republic of Korea
Abstract:Magnesium alloy sheets have been extending their field of applications to automotive and electronic industries taking advantage of their excellent light weight property. In addition to well-known lower formability, magnesium alloys have unique mechanical properties which have not been thoroughly studied: high in-plane anisotropy/asymmetry of yield stress and hardening response. The reason of the unusual mechanical behavior of magnesium alloys has been understood by the limited symmetry crystal structure of HCP metals and thus by deformation twinning. In this paper, the phenomenological continuum plasticity models considering the unusual plastic behavior of magnesium alloy sheet were developed for a finite element analysis. A hardening law based on two-surface model was further extended to consider the general stress–strain response of metal sheets including Bauschinger effect, transient behavior and the unusual asymmetry. Three deformation modes observed during the continuous in-plane tension/compression tests were mathematically formulated with simplified relations between the state of deformation and their histories. In terms of the anisotropy and asymmetry of the initial yield stress, the Drucker–Prager’s pressure dependent yield surface was modified to include the anisotropy of magnesium alloy. The numerical formulations and characterization procedures were also presented and finally the correlation of simulation with measurements was performed to validate the proposed theory.
Keywords:Magnesium alloy sheet   Asymmetry   Two-surface model   Bauschinger effect   Modified Drucker&ndash  Prager model
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