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A temperature-dependent crystal plasticity model for predicting cyclic loading behaviors of a magnesium alloy

Authors
Bong, Hyuk Jong
Issue Date
Dec-2023
Publisher
Association of American Publishers
Keywords
Crystal Plasticity; Cyclic Loading; Magnesium Alloy; Twin-Detwin
Citation
Materials Research Proceedings, v.41, pp 1215 - 1223
Pages
9
Indexed
SCIE
SCOPUS
Journal Title
Materials Research Proceedings
Volume
41
Start Page
1215
End Page
1223
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/77550
DOI
10.21741/9781644903131-135
ISSN
2474-3941
2474-395X
Abstract
In this work, a crystal plasticity finite element (CPFE) model to predict cyclic loading behaviors at elevated temperatures of a wrought magnesium alloy, i.e., AZ31B sheet, is proposed. The temperature-dependent mechanical behavior is systematically modeled by modifying the strain-hardening model. The twinning-detwinning, a key deformation mechanism that occurs during the cyclic loadings in the magnesium sheet, is also modeled based on the well-known predominant twinning reorientation (PTR) scheme. Furthermore, to better predict the detwinning behavior, a concept of residual twin is also introduced and employed in the PTR scheme. The modified strain-hardening and enhanced-PTR model considering the twinning-detwinning are implemented in the CPFE framework. Using the developed model, mechanical responses of the AZ31B sheet under cyclic loading conditions at various testing temperatures up to 200°C are predicted and compared with the experimental data, and the prediction results are promising. © 2024, Association of American Publishers. All rights reserved.
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Bong, Hyuk Jong
대학원 (나노신소재융합공학과)
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