Effect of Heat Treatment on the Microstructural Heterogeneity and Abrasive Wear Behavior of ASTM A128 Grade C Steel
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
3.1. Microstructural Characterization
3.2. Mechanical Characterization
4. Conclusions
- The use of sand as a protection medium against the decarburization of an austenitic manganese steel during heat treatment was investigated. The results showed that the system used was not very efficient due to the presence of Martensite on the surfaces of the specimens. However, it is a good alternative if a controlled environment furnace is not available in the laboratory, because a significant reduction in martensitic layer thickness was found in the sand-protected material compared to the unprotected one, passing from layers of 40 µm to layers of more than 500 µm, respectively.
- The effect of holding time at austenitizing temperature on the microstructural and mechanical behavior of austenitic manganese steel was investigated. The results showed that holding times longer than 1 h produced a significant increase of more than 100% in the thickness of the martensitic layer for both the specimens protected and unprotected against decarburization. This may be due to the oversaturation of carbon and manganese favored by diffusive processes from the center of the piece to the surface. The abrasion wear behavior of ASTM A128 Grade C steel was investigated. However, it is a good alternative if a controlled environment furnace is not available in the laboratory, because good microstructural and mechanical results were obtained in specimens quenched in brine after austenitizing for 0.5 h and 1 h. The wear rate values obtained were 32.5% and 22.7% higher than those of the material in as-cast state, respectively.
- The effect of holding time on the hardness behavior from the center to the edge of the wear specimen was evaluated. The results showed that the hardness at the center of the wear specimen in both protected and unprotected specimens was uniform, with values around 220 HV0.5. While at the edge of the wear specimen, the hardness increased with holding time. However, a more significant increase was noted after 2 h of holding time, reaching surface values in the order of 343 HV0.5 and 419 HV0.5 in protected and unprotected specimens, respectively.
- The abrasive wear behavior of an austenitic manganese steel after thermal cycling with and without decarburization protection was evaluated. The wear rate values obtained on the brine-hardened specimens after austenitizing them with protection against decarburization for 0.5 h, 1 h, and 2 h were 32.5%, 22.7%, and 40% higher than those of the material in the cast state, respectively. As for the unprotected material, the wear rate values were much higher than those of the material protected against decarburization in the order of 9.4% (0.5 h), 12.6% (1 h), and 17.5% (2 h).
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Element | C | Mn | Cr | Mo | Ni | Si | P | Cu | Fe |
---|---|---|---|---|---|---|---|---|---|
Weight (%) | 1.02 | 13.56 | 1.79 | 0.007 | 0.1 | 0.26 | 0.035 | 0.008 | Bal. |
Sample | Heat Treatment | Decarburization Protection | Austenitizing Time (h) | Cooling Media |
---|---|---|---|---|
1 | As cast | -------- | -------- | -------- |
2 | Homogenization annealing | Yes | 2 | Furnace |
3 | Quenching | Yes | 0.5 | Brine |
4 | Water | |||
5 | 1 | Brine | ||
6 | Water | |||
7 | 2 | Brine | ||
8 | Water | |||
9 | Quenching | No | 0.5 | Brine |
10 | Water | |||
11 | 1 | Brine | ||
12 | Water | |||
13 | 2 | Brine | ||
14 | Water |
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Higuera-Cobos, O.-F.; Cely-Bautista, M.-M.; Muñoz-Bolaños, J.-A. Effect of Heat Treatment on the Microstructural Heterogeneity and Abrasive Wear Behavior of ASTM A128 Grade C Steel. Materials 2024, 17, 2884. https://doi.org/10.3390/ma17122884
Higuera-Cobos O-F, Cely-Bautista M-M, Muñoz-Bolaños J-A. Effect of Heat Treatment on the Microstructural Heterogeneity and Abrasive Wear Behavior of ASTM A128 Grade C Steel. Materials. 2024; 17(12):2884. https://doi.org/10.3390/ma17122884
Chicago/Turabian StyleHiguera-Cobos, Oscar-Fabián, María-Mercedes Cely-Bautista, and Jairo-Alberto Muñoz-Bolaños. 2024. "Effect of Heat Treatment on the Microstructural Heterogeneity and Abrasive Wear Behavior of ASTM A128 Grade C Steel" Materials 17, no. 12: 2884. https://doi.org/10.3390/ma17122884
APA StyleHiguera-Cobos, O. -F., Cely-Bautista, M. -M., & Muñoz-Bolaños, J. -A. (2024). Effect of Heat Treatment on the Microstructural Heterogeneity and Abrasive Wear Behavior of ASTM A128 Grade C Steel. Materials, 17(12), 2884. https://doi.org/10.3390/ma17122884