Features of the phase transformation kinetics in ausferritic-carbidic cast irons of the CADI class
https://doi.org/10.29235/1561-8358-2026-71-3-212-220
Abstract
The paper provides an analysis of the terminology and structural features of high-strength cast irons of the ADI and CADI classes. A rationale is provided for the term “ausferrite” to describe the metallic matrix formed during isothermal quenching. It is noted that the key distinction of the two-phase (ferrite + austenite) bainite-like structure from martensite is the diffusional mechanism of carbon redistribution, which completely suppresses carbide precipitation. Experimental data confirming the mechanism of deformation-induced martensitic transformation (TRIP effect) in CADI alloys, which provides increased strength and wear resistance, are presented. The main focus is on investigating the kinetics of supercooled austenite decomposition in CADI. The influence of the carbide phase on the heterogeneous nucleation of pearlite and ausferrite has been experimentally established and theoretically substantiated, which is reflected in the need to increase the critical quenching rate compared to ADI in order to suppress diffusional decomposition and form an ausferritic structure. The obtained data can find wide application in industry (mechanical engineering, foundry production) in the manufacture of castings for components operating under impact-abrasive wear conditions.
Keywords
About the Authors
A. T. VolochkoBelarus
Alexander T. Volochko – Dr. Sci (Engineering), Professor, Head of the Department of Materials Science and Casting and Deformation Technologies – Head of the Laboratory of Microcrystalline and Amorphous Materials
10, Academician Kuprevich St., 220084, Minsk
M. S. Kovalko
Belarus
Mikhail S. Kovalko – Cand. Sci. (Engineering), Deputy Head of the Department of Materials Science and Casting and Deformation Technologies
10, Academician Kuprevich St., 220084, Minsk
References
1. Hayrynen K. L., Brandenberg K. R. Carbidic austempered ductile iron (CADI) – the new wear material. AFS Trans- actions, 2003, vol. 111, pp. 845–850.
2. Laino S., Sikora J., Dommarco R. Wear behavior of CADI operating under different tribosystems. ISIJ International, 2009, vol. 50, iss. 3, pp. 418–424. https://doi.org/10.2355/isijinternational.50.418
3. Aly H. A., Nofal A., Hussein A.-H., El-Banna E. M. Development of Carbidic Austempered Ductile Iron (CADI). Key Engineering Materials, 2020, vol. 835, pp. 163–170. https://doi.org/10.4028/www.scientific.net/KEM.835.163
4. Riebisch M., Pustal B., Bührig-Polaczek A. Influence of Carbide-Promoting Elements on the Microstructure of HighSilicon Ductile Iron. International Journal of Metalcasting, 2020, vol. 14, iss. 4, pp. 1152–1161.https://doi.org/10.1007/s40962020-00442-1
5. Jae Hoon Jang, H. K. D. H. Bhadeshia, Dong-Woo Suh. Solubility of carbon in tetragonal ferrite in equilibrium with austenite. Scripta Materialia, 2013, vol. 68, iss. 3–4, pp. 195–198. https://doi.org/10.1016/j.scriptamat.2012.10.017
6. Akça C., Luş H. M., Kuşkonmaz N. C. Austenite-Martensite Transformation in ADI by Plastic Deformation. Proceedings of 3th Balkan Metallurgy Conference, Ohrid, Macedonia, 24 September 2003, vol. 1, pp. 99–102. Available at: https://inis.iaea.org/records/vy36w-1nf31
7. Myszka D., Ahmed M., Nofal A., Skoіek E., Hussein A. H. High Strain Rate Dynamic Deformation of ADI. Materials Science Forum, 2018, vol. 925, pp. 210–217. https://doi.org/10.4028/www.scientific.net/MSF.925.210
8. Miller R. L. A Rapid X-Ray Method for the Determination of Retained Austenite. Transactions of the American Society for Metals, 1964, vol. 57, pp. 892–899.
9. Anisovich A. G. X-ray Diffraction Analysis in Practical Materials Science. Minsk, Belaruskaya navuka Publ., 2017. 207 p. (in Russian).
10. Christian J. W. The Theory of Transformations in Metals and Alloys. Part 1: Thermodynamics and General Kinetic Theory. 2nd ed. Oxford, Pergamon Press, 1975. 586 p.
11. Yang Penghui, Fu Hanguang, Li Guolu, Liu Jinhai, Zhao Xuebo. Microstructures and properties of carbidic austempered ductile Iron containing Fe3C particles and superfine ausferrite. Materials & Design, 2019, vol. 186, art. ID 108363. https://doi.org/10.1016/j.matdes.2019.108363
Review
JATS XML































