Applications and Thermodynamic Analysis of Equilibrium Solution for Secondary Phases in Ti–N–C Gear Steel System with Nano-Particles
Abstract
:1. Introduction
2. Thermodynamic Analysis
3. Engineering Applications
4. Conclusions
- (1)
- Thermodynamic calculation results show that the complete dissolution temperature increases with higher levels of either C, N, or Ti, and the effects of Ti and N are more significant compared with C. At a given temperature, the amount of dissolved Ti increases naturally as the content of Ti microalloyed element increases, while it decreases obviously with more N. It will decline rapidly in the complete dissolution temperature range, until 1100 °C in steels. The coefficient k1 increases as the temperature decreases, and increases with the higher content of Ti or C, but decreases with the higher N content under the same temperature.
- (2)
- For the 20CrMnTi gear steels produced by Fangda Special Steel Technology Co., Ltd., the heat treatment shows that when the temperature is above 950 °C, the grains begin to coarsen in this steel. When the temperature is 1000 °C, the grains coarsen sharply, the grain size is No. 5.0 grade, and the phases are ferrite and bainite, containing a small amount of pearlite.
- (3)
- Thermodynamic analysis shows that the nitrogen has been precipitated largely as TiN micron-particles above 1400 °C in the gear steels, and then the titanium is precipitated mainly as TiC nano-particles, so this secondary phase hinders grain growth during heat treatment, consistent with experimental results.
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Variation of C (0.0065N-0.02Ti) | Variation of N (0.20C-0.02Ti) | Variation of Ti (0.20C-0.0065N) | |||
---|---|---|---|---|---|
C (wt. %) | TAS (°C) | N (wt. %) | TAS (°C) | Ti (wt. %) | TAS (°C) |
0.05C | 1630.69 | 0.0025N | 1470.73 | 0.01Ti | 1507.28 |
0.10C | 1632.35 | 0.005N | 1586.74 | 0.03Ti | 1719.72 |
0.20C | 1635.65 | 0.01N | 1722.56 | 0.045Ti | 1811.57 |
0.35C | 1640.54 | 0.015N | 1812.61 | 0.08 Ti | 1957.49 |
Steel | C | Si | Mn | Cr | Ti | N | P | S |
---|---|---|---|---|---|---|---|---|
Standard | 0.17–0.23 | 0.17–0.37 | 0.80–1.15 | 1.00–1.35 | 0.04–0.10 | ≤0.01 | ≤0.035 | ≤0.035 |
Sample | 0.22 | 0.22 | 0.88 | 1.14 | 0.066 | 0.0067 | 0.023 | 0.003 |
Element | Weight % | Atomic % |
---|---|---|
C K1 | 0.22 | 0.60 |
N K1 | 21.27 | 48.36 |
Ti K1 | 65.22 | 43.35 |
Cr K1 | 2.85 | 1.75 |
Fe K1 | 10.43 | 5.95 |
Material | Heat Treatment Temperature | Phases | Grain Size | Hardness, (HBW) |
---|---|---|---|---|
20CrMnTi | 850 °C | Ferrite, Pearlite | No. 11.5–12.0 grade | 172 |
900 °C | Ferrite, Pearlite | No. 11.5–12.0 grade | 170 | |
950 °C | Ferrite, Pearlite and Bainite | No. 8.5–10.0 grade | 217 | |
1000 °C | Ferrite, Bainite and a small amount of Pearlite | No. 5.0 grade | 234 |
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Wang, Y.; Zhou, M.; Pang, X.; Volinsky, A.A.; Chen, M.; Gao, K. Applications and Thermodynamic Analysis of Equilibrium Solution for Secondary Phases in Ti–N–C Gear Steel System with Nano-Particles. Metals 2017, 7, 110. https://doi.org/10.3390/met7040110
Wang Y, Zhou M, Pang X, Volinsky AA, Chen M, Gao K. Applications and Thermodynamic Analysis of Equilibrium Solution for Secondary Phases in Ti–N–C Gear Steel System with Nano-Particles. Metals. 2017; 7(4):110. https://doi.org/10.3390/met7040110
Chicago/Turabian StyleWang, Yanlin, Meng Zhou, Xiaolu Pang, Alex A. Volinsky, Mingwen Chen, and Kewei Gao. 2017. "Applications and Thermodynamic Analysis of Equilibrium Solution for Secondary Phases in Ti–N–C Gear Steel System with Nano-Particles" Metals 7, no. 4: 110. https://doi.org/10.3390/met7040110
APA StyleWang, Y., Zhou, M., Pang, X., Volinsky, A. A., Chen, M., & Gao, K. (2017). Applications and Thermodynamic Analysis of Equilibrium Solution for Secondary Phases in Ti–N–C Gear Steel System with Nano-Particles. Metals, 7(4), 110. https://doi.org/10.3390/met7040110