A Geometry-Dependent Void Closure Model Considering Void Deformation and Orientation Changes during Hot Metal Formation
Abstract
:1. Introduction
2. Description of the Meso-Scale Approach
2.1. Representative Volume Element
2.2. Boundary Conditions
2.3. Equivalent Ellipsoid
3. Void Closure Model
4. Results and Discussion
4.1. Void Closure Model Coefficients from RVE Analyses
4.2. Experimental Verification of the Void Closure Model
4.3. Void Closure Behaviour in an Upsetting Process
4.4. Void Closure Behaviour in Multi-Stage Compression of a Rectangular Bar
4.5. Void Closure Behaviour of Randomly Shaped Voids
4.6. Application to the Cogging Process
5. Conclusions
- Through RVE analysis, it was observed that void closure behaviour differed depending on the Lode angle when considering the same void shape and orientation. Additionally, in most cases, it was observed that voids tended to close more effectively as the triaxiality decreases.
- In some cases, there was a lack of significant correlation between the closure behaviour of the voids and the triaxiality. In these cases, it was observed that the compression displacement of the ellipsoidal voids had a more considerable influence compared to the triaxiality.
- It was observed that, when the compression amount was significant along the major axis of the void while minimal deformation occurred along the minor axis, an increase in the initial void volume was observed. Additionally, in the case of multi-stage compression of a rectangular bar, an increase in void volume was observed when the compression direction was changed.
- When the proposed void closure model was applied to the compression of cylindrical billets, forging of rectangular billets, and cogging processes, it successfully predicted the void volume changes during the processes. In particular, it was able to predict complex behaviours, such as an increase in void volume. Furthermore, the model was able to predict the void closure behaviour of voids with random shapes.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A
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Initial | Pass 1 | Pass 2 | Pass 3 | Pass 4 | Pass 5 | Pass 6 | Pass 7 | |
---|---|---|---|---|---|---|---|---|
Cross-section size [mm] | ∅90 | |||||||
Angle of rotation [°] | - | 90 | 90 | 90 | 90 | 90 | 90 | 90 |
Area reduction ratio | 0 | 0.16 | 0.42 | 0.54 | 0.65 | 0.77 | 0.84 | 0.86 |
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Kim, J.; Park, J.; Kim, Y.; Kwon, H.; Kim, N. A Geometry-Dependent Void Closure Model Considering Void Deformation and Orientation Changes during Hot Metal Formation. J. Manuf. Mater. Process. 2023, 7, 117. https://doi.org/10.3390/jmmp7030117
Kim J, Park J, Kim Y, Kwon H, Kim N. A Geometry-Dependent Void Closure Model Considering Void Deformation and Orientation Changes during Hot Metal Formation. Journal of Manufacturing and Materials Processing. 2023; 7(3):117. https://doi.org/10.3390/jmmp7030117
Chicago/Turabian StyleKim, Jihyun, Joonhee Park, Yosep Kim, Hyukjoon Kwon, and Naksoo Kim. 2023. "A Geometry-Dependent Void Closure Model Considering Void Deformation and Orientation Changes during Hot Metal Formation" Journal of Manufacturing and Materials Processing 7, no. 3: 117. https://doi.org/10.3390/jmmp7030117
APA StyleKim, J., Park, J., Kim, Y., Kwon, H., & Kim, N. (2023). A Geometry-Dependent Void Closure Model Considering Void Deformation and Orientation Changes during Hot Metal Formation. Journal of Manufacturing and Materials Processing, 7(3), 117. https://doi.org/10.3390/jmmp7030117