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Cited 38 time in webofscience Cited 47 time in scopus
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Piecewise linear approximation of nonlinear unloading-reloading behaviors using a multi-surface approach SCIE SCOPUS

Title
Piecewise linear approximation of nonlinear unloading-reloading behaviors using a multi-surface approach
Authors
Lee, J.-Y.Lee, M.-G.Barlat, F.Bae, G.
Date Issued
2017-06
Publisher
Elsevier Ltd
Abstract
A multi-surface approach is suggested to describe nonlinear and hysteretic unloading-reloading behaviors of sheet metals, adopting the concept of multiple yield surfaces in the Mr?z model. This approach divides the elastic domain into many fields that have different values of elastic modulus, resulting in a piecewise linear, hysteretic unloading-reloading stress-strain curve. Because this approach simply divides the elastic domain, it can be used in conjunction with any phenomenological plasticity models. The proposed model was implemented into a commercial finite element code and applied to springback simulations and stiffness analyses, demonstrating that its computational efficiency is comparable (1.66 times) to that required for linear elasticity and its accuracy is as good as the nonlinear elasticity model. It was further verified that the proposed model provides a stable solution even when the numerical simulation involves small stress oscillations during unloading or reloading. ? 2017 Elsevier Ltd.
Keywords
Computational efficiency; Elastic moduli; Elasticity; High strength steel; Hysteresis; Piecewise linear techniques; Stiffness; Stress-strain curves; Unloading; Advanced high strength steel; Commercial finite element codes; Modulus reduction; Nonlinear elasticity; Phenomenological plasticity; Piecewise linear approximations; Springback prediction; Springback simulations; Finite element method
URI
https://oasis.postech.ac.kr/handle/2014.oak/50644
DOI
10.1016/j.ijplas.2017.02.004
ISSN
0749-6419
Article Type
Article
Citation
International Journal of Plasticity, vol. 93, page. 112 - 136, 2017-06
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BARLAT FREDERIC GERARDBARLAT, FREDERIC GERARD
Ferrous & Energy Materials Technology
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