Crystal Plasticity Simulation of Magnesium and Its Alloys: A Review of Recent Advances
Abstract
:1. Introduction
2. Crystal Plasticity Models
2.1. Overview
2.2. Twinning
2.3. Stress Relaxation
2.4. Detwinning
- Operations A: Twin nucleation and growth due to parent grain reduction.
- Operations B: Twin growth due to the twinned child propagation.
- Operations C: Twin shrinkage due to the parent propagation.
- Operations D: Detwinning in the twinned child.
3. In-situ Experiments
3.1. In-Situ DIC Experiments
3.1.1. Microscale Deformation Mechanisms
3.1.2. Effects of Heat Treatment
3.2. In-Situ Synchrotron X-ray Techniques
3.2.1. Micromechanics of Twinning
3.2.2. Detwinning
3.3. In-Situ Neutron Diffraction
Micromechanics of Twinning
4. Conclusions and Future Works
- Real-time crystal plasticity simulation coupled to in-situ experiments to guide identification of outliers that can in-turn improve crystal plasticity theories.
- A general map to include the effect of alloying for a variety of Mg alloys using crystal plasticity models along with synchrotron X-ray techniques in a consistent framework.
- Using machine learning techniques to learn the crystal plasticity models and generate surrogate models which can be used to design specific Mg alloy loading paths to achieve target properties.
- Developing a crystal plasticity model with a physically based twinning and detwinning model, which include the correct isotropic and kinematic hardenings to capture the appropriate cyclic response of Mg alloy. This is extremely important in the prediction of fatigue simulation using crystal plasticity simulation.
- Developing an integrated framework of crystal plasticity models and phase field simulation to better capture the twin morphology in Mg alloys.
- The interaction of slip modes and twinning and detwinning mechanisms, which is typically reflected as latent hardening in crystal plasticity models.
- Improved modeling of slip/twin and grain boundary interactions: Effects of grain size in different Mg alloys using crystal plasticity models, specifically via micro-Hall Petch models whose parameters can be inferred through experiments [98,102] and including the effect of grain boundary on twin nucleation and growth in crystal plasticity models.
- Integrating the crystal plasticity models of Mg and its alloys with the PRISMS-Fatigue framework [109] to investigate the effects of texture, grain morphology, sample size, multiaxial strain, and strain amplitude on their fatigue response.
- Coupling the crystal plasticity models with phase-field simulations to address the effect of deformation mechanisms such as plastic slip and twinning on the dynamic recrystallization of Mg alloys.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Yaghoobi, M.; Voyiadjis, G.Z.; Sundararaghavan, V. Crystal Plasticity Simulation of Magnesium and Its Alloys: A Review of Recent Advances. Crystals 2021, 11, 435. https://doi.org/10.3390/cryst11040435
Yaghoobi M, Voyiadjis GZ, Sundararaghavan V. Crystal Plasticity Simulation of Magnesium and Its Alloys: A Review of Recent Advances. Crystals. 2021; 11(4):435. https://doi.org/10.3390/cryst11040435
Chicago/Turabian StyleYaghoobi, Mohammadreza, George Z. Voyiadjis, and Veera Sundararaghavan. 2021. "Crystal Plasticity Simulation of Magnesium and Its Alloys: A Review of Recent Advances" Crystals 11, no. 4: 435. https://doi.org/10.3390/cryst11040435
APA StyleYaghoobi, M., Voyiadjis, G. Z., & Sundararaghavan, V. (2021). Crystal Plasticity Simulation of Magnesium and Its Alloys: A Review of Recent Advances. Crystals, 11(4), 435. https://doi.org/10.3390/cryst11040435