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Combined anisotropic and distortion hardening to describe directional response with Bauschinger effect
journal contribution
posted on 2019-11-01, 00:00 authored by E H Lee, H Choi, T B Stoughton, Jeong YoonJeong Yoon© 2019 Elsevier Ltd. Directional anisotropic hardening under non-proportional loading is modeled. A recently proposed coupled quadratic-nonquadratic (CQN) yield function (Lee et al., 2017b) successfully captured the directional hardening behavior under the proportional loadings. This paper shows a constitutive equation to capture both directional hardening response and Bauschinger effect through an extended model of the CQN yield function with the homogeneous anisotropic hardening (HAH) model (Barlat et al., 2011). In the present study, the role of the CQN yield model is to capture the directional hardening behavior, and the HAH model is to follow non-proportional loading including the Bauschinger effect. The validation, with some material data, shows that the present model can follow the directional hardening under non-proportional loading in the stress-strain data. It is also shown that the present model can describe the yield surface distortion with Bauschinger and anisotropic hardening response. Finally, it is compared with other pre-existing models in order to analyze the utility of the proposed model.
History
Journal
International journal of plasticityVolume
122Pagination
73 - 88Publisher
ElsevierLocation
Amsterdam, The NetherlandsPublisher DOI
ISSN
0749-6419Language
engPublication classification
C Journal article; C1 Refereed article in a scholarly journalCopyright notice
2019, ElsevierUsage metrics
Keywords
Science & TechnologyTechnologyEngineering, MechanicalMaterials Science, MultidisciplinaryMechanicsEngineeringMaterials ScienceCoupled quadratic-nonquadratic yield functionHomogeneous anisotropic hardening modelDirectional hardeningBauschinger effectNon-proportional loadingFINITE-ELEMENT SIMULATIONSTRAIN CYCLIC PLASTICITYFORMING LIMIT DIAGRAMSALUMINUM-ALLOY SHEETSYIELD FUNCTIONNONASSOCIATED FLOWCONSTITUTIVE MODELTENSION-COMPRESSIONMETALPREDICTIONMechanical Engineering
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