Characterization of Microstructural Damage and Failure Mechanisms in C45E Structural Steel under Compressive Load
Abstract
:1. Introduction
2. Experimental Work
3. Results and Discussion
3.1. Overview of the Microstructures
3.2. Mechanisms of Microstructural Damage
3.3. Quantification of Microcracks in Pearlite Colonies
3.4. Effect of Stress Triaxiality Ratio on the Distribution of Microcracks
4. Conclusions
- The detected microcracks in C45E steel were the result of different mechanisms of the nucleation and growth of microcavities. The dominant mechanism was the fracture of cementite lamellae. On the other hand, no fracturing of non-metallic inclusions was observed. A significant amount of microstructural damage was also generated by the mechanism of decohesion at the boundary surfaces between ferrite grains and pearlite colonies. Microcavities generated at the boundary surfaces between non-metallic inclusions and ferrite or pearlite colonies did not have a significant impact on the overall level of accumulated damages, due to the small quantity of non-metallic inclusions in the steel matrix.
- Pearlite colonies played the most important role in the development of microstructural damage. The first microcavities were the result of fractures of cementite lamellae that did not have a parallel orientation with the compression axis. Coalescence of microcavities and further microcrack propagation occurred mainly at an angle of 45° with respect to the position of the cementite lamellae. With an increase in the strain level, there was an intensive propagation of microcracks in the radial direction of the sample. At the limiting strain, the fracture of cementite lamellae was clearly visible, and the growth and propagation of microcracks occurred in a plane perpendicular to the upsetting direction.
- Damage of ferrite grains for lower degrees of deformation was not observed. However, when the deformation became significant, the nucleation and growth of microvoids at the junction of three ferrite grains occurred. In addition, at the limiting strain, growth and coalescence of microcracks along the ferrite grain boundaries were detected.
- The quantitative analysis of the density of microcracks in pearlite colonies showed that the distribution of microcracks along the equatorial plane was not uniform. At lower degrees of deformation, the number of microcracks detected in the central part of the specimen was higher compared to the outside region and the free surface. For larger deformation, the distribution was the opposite. The critical level of accumulated microcracks was identified at the equatorial free surface of the sample when deformation reached the limiting strain.
- The stress state, i.e., the stress triaxiality, greatly affected the microstructural damage evolution during the upsetting process. The stress triaxiality increased with an increase in strain level and it changed with the equatorial radius. At the beginning of upsetting, the axial compressive stress had a major influence on the value of this factor and on the mechanism of microcrack nucleation. As the degree of deformation increased, the effect of the circumferential tensile stress on the stress triaxiality increased, and hence it changed from negative to positive (β < 0 → β> 0). The result of this was an increase in the density of microcracks in pearlite colonies, especially at the free surface. This confirms that tensile stresses have a dominant influence on microcrack accumulation and material deformability.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Chemical Element | C | Si | Mn | S | Cr | P | Cu | Ni | Mo | V | Al | Sn |
---|---|---|---|---|---|---|---|---|---|---|---|---|
Content (wt.%) | 0.46 | 0.23 | 0.668 | 0.026 | 0.121 | 0.021 | 0.17 | 0.054 | 0.011 | 0.006 | 0.018 | 0.005 |
Property | Rm [MPa] | Rp0.2 [MPa] | εm [%] | Ψ [%] | HB |
---|---|---|---|---|---|
Mean ± SD | 709.1 ± 3.77 | 462.8 ± 3.26 | 8.1 ± 0.46 | 38.6 ± 1.87 | 179 ± 3.74 |
Strain Level | The Mean Density of Microcracks in Pearlite Colonies per 100 µm2 | |||||
---|---|---|---|---|---|---|
Zone I | Zone II | Zone III | Zone IV | Zone M | Zone S | |
εz0 = 0 | 7 | 6 | 8 | 7 | 8 | 6 |
εz1 = 0.38 | 35 | 37 | 49 | 48 | 50 | 60 |
εz2 = 0.75 | 79 | 77 | 84 | 83 | 82 | 75 |
εz3 = 1.10 | 102 | 95 | 92 | 96 | 93 | 90 |
εz4 = 1.59 | 161 | 156 | 149 | 145 | 128 | 124 |
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Kraišnik, M.; Čep, R.; Kouřil, K.; Baloš, S.; Antić, A.; Milutinović, M. Characterization of Microstructural Damage and Failure Mechanisms in C45E Structural Steel under Compressive Load. Crystals 2022, 12, 426. https://doi.org/10.3390/cryst12030426
Kraišnik M, Čep R, Kouřil K, Baloš S, Antić A, Milutinović M. Characterization of Microstructural Damage and Failure Mechanisms in C45E Structural Steel under Compressive Load. Crystals. 2022; 12(3):426. https://doi.org/10.3390/cryst12030426
Chicago/Turabian StyleKraišnik, Milija, Robert Čep, Karel Kouřil, Sebastian Baloš, Aco Antić, and Mladomir Milutinović. 2022. "Characterization of Microstructural Damage and Failure Mechanisms in C45E Structural Steel under Compressive Load" Crystals 12, no. 3: 426. https://doi.org/10.3390/cryst12030426
APA StyleKraišnik, M., Čep, R., Kouřil, K., Baloš, S., Antić, A., & Milutinović, M. (2022). Characterization of Microstructural Damage and Failure Mechanisms in C45E Structural Steel under Compressive Load. Crystals, 12(3), 426. https://doi.org/10.3390/cryst12030426