The Effect of the Forming Mode on Twinning and Springback in the Bending-Dominated Forming of Magnesium AZ31 Sheet
Abstract
:1. Introduction
2. Materials and Methods
2.1. Material
2.2. Bending Deformation Analysis
2.2.1. The Pure Bend Test
2.2.2. The V-Bending Test
2.2.3. The Channel Bending Test
2.2.4. Roll Forming
2.2.5. The Critical Forming Zones
2.3. Microstructure Analysis
3. Results
3.1. Microstructure
3.2. Mechanical Properties
3.3. The Springback Ratio (SBR) and Twinning Area Fraction (TAF)
3.4. Twinning Behaviour—Twin Type and Area Fraction
4. Discussion
4.1. Twinning Inhomogeneity throughout the Sheet Thickness
4.2. The Effect of the Grain Size
4.3. The Effect of Strain
4.4. The Effect of the Bend Forming Mode
4.4.1. The Twinning Area Fraction (TAF)
4.4.2. The Springback Ratio
4.4.3. The Side Wall Curl in Drawing
4.4.4. The Twinning Type
5. Conclusions
- The TAF in bending magnesium sheet increased with the grain size and the maximum outer fibre strain. In contrast to previous work which suggests that the increase in TAF mostly occurs below a limit of 5% strain, this study has shown that even at strain levels that exceed 11%, the TAF keeps increasing with material deformation.
- The springback ratio in bending magnesium reduced with increasing outer fibre strain and an increasing TAF. However, the results of this work also suggest that for similar levels of TAF, the springback ratio can be significantly different. Overall, it can be concluded that springback in bending magnesium sheet is mostly affected by the forming strain level and to a lesser extent by the TAF.
- There is a clear effect of the forming mode on the TAF and springback. Especially in roll forming, the TAF level was significantly higher compared to that in simple V-bending even when the grain size, the bend radius and the maximum outer fibre strain were the same. There was also a clear effect of the incremental bending sequence on the TAF in roll forming. The higher TAF in roll forming might be due to the bending–restraightening action that occurs in a longitudinal direction, i.e., perpendicular to the transverse bending direction, when material enters the forming rolls. The increased TAF in roll forming leads to a reduced springback ratio compared to the simple V-bending case.
- In contrast to roll forming, in channel bending, the bending and restraightening of the material over the die corner radius in the transverse bending direction leads to near zero TAF in the channel wall. This suggests that for some condition, the forming and reverse forming of material can cause twinning and detwinning, as was observed in some previous studies.
- Side wall curl in channel drawing increased with the grain size and was related to an increased shift in neutral layer position during bending leading to higher stress inhomogeneity through the material thickness.
- The type of the developed twins in the tension and the compression bending zones was not significantly affected by the bend forming mode, i.e., the same types of twins were identified in V-die and channel bending as well as in the roll forming process. In the tension region, some extension twins were observed, which suggests that springback in bending magnesium can lead to detwinning and/or the generation of new twins.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Abbreviations: | Definition: |
---|---|
Springback Ratio | |
Roll Forming Sequences 1 and 2 | |
True Outer Fibre Strain | |
TAF | Twinning Area Fraction |
PR | Punch Radius |
DR | Die Radius |
SW | Side Wall |
PB | Pure Bend |
VB | V-Bend |
CB | Channel Bend |
RF | Roll Forming |
Forming Mode | 3D View | Section A-A | Mapping Region |
---|---|---|---|
Pure bend | |||
V bend Roll Forming | |||
Channel bend |
|
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Weiss, M.; Desinghe, S.G.; Hodgson, P.; Beladi, H. The Effect of the Forming Mode on Twinning and Springback in the Bending-Dominated Forming of Magnesium AZ31 Sheet. Metals 2024, 14, 983. https://doi.org/10.3390/met14090983
Weiss M, Desinghe SG, Hodgson P, Beladi H. The Effect of the Forming Mode on Twinning and Springback in the Bending-Dominated Forming of Magnesium AZ31 Sheet. Metals. 2024; 14(9):983. https://doi.org/10.3390/met14090983
Chicago/Turabian StyleWeiss, Matthias, Shiromani Gangoda Desinghe, Peter Hodgson, and Hossein Beladi. 2024. "The Effect of the Forming Mode on Twinning and Springback in the Bending-Dominated Forming of Magnesium AZ31 Sheet" Metals 14, no. 9: 983. https://doi.org/10.3390/met14090983
APA StyleWeiss, M., Desinghe, S. G., Hodgson, P., & Beladi, H. (2024). The Effect of the Forming Mode on Twinning and Springback in the Bending-Dominated Forming of Magnesium AZ31 Sheet. Metals, 14(9), 983. https://doi.org/10.3390/met14090983