Simple and Precise Description of the Transformation Kinetics and Final Structure of Dual Phase Steels
Abstract
:1. Introduction
2. Experimental
3. Regression Using the JMAK Equation
4. Regression Using the Equation of Autoinhibition
5. Construction of Predictive Curves Using the Equation of Autoinhibition
6. Modification of the Arrhenius Equation Near Temperature Ac1
7. Discussion
8. Conclusions
- The JMAK equation, which is most frequently used to describe the kinetics of phase transformations, can be used to describe austenitisation, but separately for each temperature. In the case of partial transformation, additional parameters have to be introduced describing the equilibrium volume fraction at each temperature.
- The equation of autoinhibition was successfully used to describe austenitisation kinetics because the newly formed phase acts against the continuing conversion. This inhibition results from factors including the change in the specific volumes of the initial and final phases, and the chemical liquation of alloying additions.
- The kinetic equation of autoinhibition together with the Arrhenius equation describes the dependence of conversion of austenitisation on time and temperature with high precision, including for cases of partial conversion, despite the fact that it contains only four parameters (or five parameters if the region close to Ac1 temperature, i.e., with little martensite fraction, is considered).
- Successful application of the equation of autoinhibition to the simple description and modelling of the kinetics of austenite formation in dual steels and nodular cast irons leads to the presumption that this approach can be useful for the description of austenitisation in all iron-based alloys, and maybe also for other types of phase transformations. Generally, this approach should be able to achieve at least a rough description of many processes based on two counteracting driving forces with different temperature dependences. This approach describes not only the kinetics of those processes, but also the final equilibrium state (here, the equilibrium volume fraction of austenite), which is outside of the ability of the JMAK equation.
- A sufficiently extensive set of experimental austenitisation (several values of martensite volume fraction in dual steel for several dwells at a minimum of two or three temperatures), together with the application of the equation of autoinhibition and the Arrhenius equation allows for the construction of predictive curves determining the martensite volume fraction in this steel for arbitrary dwell and temperature combinations. Such construction of predictive curves is not directly possible if the JMAK equation is used for the description of kinetic curves.
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Temperature [°C] | 730 | 760 | 790 | 820 | 850 | |||||
Regression function | (4) | (5) | (4) | (5) | (4) | (5) | (4) | (5) | (4) | (5) |
Rate constant k [s−1] | 0.029 | 0.033 | 0.032 | 0.041 | 0.066 | 0.070 | 0.075 | 0.077 | 0.080 | 0.091 |
Exponent n [1] | 0.731 | 0.712 | 0.772 | 0.714 | 0.731 | 0.709 | 0.768 | 0.775 | 0.928 | 0.873 |
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Kohout, J. Simple and Precise Description of the Transformation Kinetics and Final Structure of Dual Phase Steels. Materials 2021, 14, 1781. https://doi.org/10.3390/ma14071781
Kohout J. Simple and Precise Description of the Transformation Kinetics and Final Structure of Dual Phase Steels. Materials. 2021; 14(7):1781. https://doi.org/10.3390/ma14071781
Chicago/Turabian StyleKohout, Jan. 2021. "Simple and Precise Description of the Transformation Kinetics and Final Structure of Dual Phase Steels" Materials 14, no. 7: 1781. https://doi.org/10.3390/ma14071781
APA StyleKohout, J. (2021). Simple and Precise Description of the Transformation Kinetics and Final Structure of Dual Phase Steels. Materials, 14(7), 1781. https://doi.org/10.3390/ma14071781