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Cited 27 time in webofscience Cited 27 time in scopus
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Identification of mechanical responses of steel sheets under non-proportional loadings using dislocation-density based crystal plasticity model

Authors
Bong, Hyuk JongLee, JinwooLee, Myoung-GyuKim, Daeyong
Issue Date
May-2019
Publisher
Pergamon Press Ltd.
Keywords
Crystal plasticity; Finite element; Dislocation density; Ultra-thin sheet; Non-proportional loading
Citation
International Journal of Mechanical Sciences, v.155, pp 461 - 474
Pages
14
Indexed
SCI
SCIE
SCOPUS
Journal Title
International Journal of Mechanical Sciences
Volume
155
Start Page
461
End Page
474
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/77518
DOI
10.1016/j.ijmecsci.2019.03.025
ISSN
0020-7403
1879-2162
Abstract
A crystal-plasticity approach based on three-component dislocation density model is proposed, as a virtual experimental model, to accurately predict non-proportional anisotropic hardening behavior of ultra-thin sheet metals, a potential candidate for PEMFC (proton-exchange membrane fuel cell) bipolar plate. The model introduces three different populations of dislocations named forward, reverse and latent, which are selectively activated depending on load path changes. To validate the predictive capability as a tool for the virtual experiment, the model is validated by predicting flow behaviors of 1.2 mm thick extra-deep drawing quality steel sheet under compression- tension and two-step tension test. The model is then applied to the 0.1 mm thick ultra-thin ferritic stainless steel sheet. The model parameters are identified by the two-step tension test. The proposed model with the identified parameters can predict the tension-compression stress-strain curves, which are difficult to measure experimentally due to premature buckling for such thin sheet metals. The potential application of the crystal plasticity based virtual modeling to the springback prediction in the thin sheet metal parts is discussed in this study.
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Bong, Hyuk Jong
대학원 (나노신소재융합공학과)
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