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Twist springback characteristics of dual-phase steel sheet after non-axisymmetric deep drawing SCIE SCOPUS

Title
Twist springback characteristics of dual-phase steel sheet after non-axisymmetric deep drawing
Authors
Xue, X.Liao, J.Vincze, G.Barlat, F.
Date Issued
2017-04
Publisher
Springer-Verlag France
Abstract
This paper aims to investigate the twist springback characteristics of advanced high strength steel sheet subjected to deep drawing. A C-rail benchmark, which leads to a particularly pronounced twist springback characteristics, was developed. For an accurate numerical modeling of the process, a non-quadratic anisotropic yield criterion integrated with combined isotropic and kinematic hardening model was used to describe the strain-stress behavior including anisotropy and Bauschinger effects. The corresponding mechanical experiments, namely uniaxial tension and forward-reverse simple shear tests were performed to determine the material parameters. The digital image correlation technique was applied for component tests as well as the deformation and stress-strain analysis. The experimental validation of the elastic-plastic finite element model was assessed by comparing maximum in-plane strain, thickness reduction distribution and twist springback of the drawn rail. To explore the source of twist springback, the deformation associated with in-plane stress and bending moment was analyzed. The results indicate that the bending moment before springback caused by non-symmetric stress states play an important role in twist springback and control. Certain regions of the die radius were varied in a numerical analysis to control the bending moment for the minimization of twist springback as well as the preliminary results of the relationship between the ratio of variable die radius and twist springback. ? 2015, Springer-Verlag France.
Keywords
Anisotropy; Bending (deformation); Bending moments; Constitutive models; Deep drawing; Deformation; Elastoplasticity; High strength steel; Image analysis; Metal drawing; Steel sheet; Strain; Strain measurement; Advanced high strength steel; Digital image correlation technique; Digital image correlations; Dual phase; Elastic-plastic finite element model; Experimental validations; Kinematic hardening model; Twist springback; Finite element method
URI
https://oasis.postech.ac.kr/handle/2014.oak/50646
DOI
10.1007/s12289-015-1275-2
ISSN
1960-6206
Article Type
Article
Citation
International Journal of Material Forming, vol. 10, no. 2, page. 267 - 278, 2017-04
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BARLAT FREDERIC GERARDBARLAT, FREDERIC GERARD
Ferrous & Energy Materials Technology
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