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Stress integration schemes for novel homogeneous anisotropic hardening model SCIE SCOPUS

Title
Stress integration schemes for novel homogeneous anisotropic hardening model
Authors
Jin Woo LeeLee, MGBarlat, FJi Hoon Kim
Date Issued
2012-11
Publisher
Elsevier
Abstract
Numerical formulations and implementation of stress integration algorithms in the elasto-plastic finite element method are provided for the homogeneous yield function-based anisotropic hardening (HAH) model. This model is able to describe complex material behavior under non-monotonic loading conditions. Two numerical algorithms based on the semi-explicit and fully implicit schemes are compared in terms of accuracy. To efficiently treat the yield locus distortion when the strain path changes, a multi-step Newton-Raphson method is proposed to calculate the first and second derivatives of the HAH yield surface. For the validation of the developed numerical algorithms, the r-value anisotropy is compared for the conventional yield model with classical isotropic hardening and for the HAH model. Moreover, detailed error analysis is presented using iso-error maps. The results show that the fully implicit stress integration algorithm based on the closet point projection method leads to better accuracy in general. However, the semi-explicit algorithm also provides comparable accuracy if an appropriate time increment is chosen. Furthermore in spite of the yield surface distortion, the developed numerical algorithms can successfully update stress with the equivalent level of the error for the conventional yield model. (C) 2012 Elsevier B.V. All rights reserved.
Keywords
Elasto-plasticity; Stress integration algorithm; Anisotropic hardening; Iso-error map; Closest point projection method; Cutting plane algorithm; SPRING-BACK EVALUATION; ELASTOPLASTIC CONSTITUTIVE RELATIONS; INCREMENTAL DEFORMATION-THEORY; YIELD FUNCTIONS; STRAIN-PATH; METAL PLASTICITY; FORMING SIMULATIONS; CYCLIC PLASTICITY; SHEETS; ELEMENT
URI
https://oasis.postech.ac.kr/handle/2014.oak/16198
DOI
10.1016/J.CMA.2012.07.013
ISSN
0045-7825
Article Type
Article
Citation
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, vol. 247-248, page. 73 - 92, 2012-11
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BARLAT FREDERIC GERARDBARLAT, FREDERIC GERARD
Ferrous & Energy Materials Technology
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