4.7 Article

Modeling crystal plasticity with an enhanced twinning-detwinning model to simulate cyclic behavior of AZ31B magnesium alloy at various temperatures

Journal

INTERNATIONAL JOURNAL OF PLASTICITY
Volume 150, Issue -, Pages -

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijplas.2021.103190

Keywords

Multiscale Modeling; Crystal plasticity; Finite elements; Twinning-detwinning; Cyclic loading

Funding

  1. Fundamental Research Program of the Korea Institute of Materials Science (KIMS) [PNK7760]
  2. National Research Council of Science & Technology (NST), Republic of Korea [PNK7760] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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In this study, a multiscale model was developed to predict the cyclic loading behaviors of a wrought magnesium alloy. The model accounted for temperature dependency and introduced the concept of variable residual twin fraction. The accuracy of the model was validated by comparing with experimental data.
In this study, a multiscale model within crystal plasticity finite element (CPFE) framework was developed to predict the cyclic loading behaviors of a wrought magnesium alloy, AZ31B, at various testing temperatures. The temperature dependency was systematically modeled by employing a modified strain-hardening model, implemented in the CPFE. The developed model was further extended to cyclic loading scenarios, under which abnormal mechanical responses were observed, using an enhanced twinning-detwinning model based on the well-known predominant twinning reorientation scheme. For the first time, the concept of variable residual twin fraction was introduced in the twinning-detwinning model as a criterion for the inactivation of detwinning. The newly developed model was employed to predict the mechanical responses under monotonic in-plane tension and compression at testing temperatures ranging from room temperature to 200 degrees C . In addition, the mechanical behaviors of the alloy under cyclic loadings at these testing temperatures were also predicted using the CPFE model. These predictions were then compared with the experimentally measured data. The micromechanical responses, such as the evolution of twin volume fraction and activation of slip/twin/detwin systems, under various loading and temperature conditions were also predicted and compared with the reported data.

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