Details

Title

Characteristics of Retained Austenite in Cast GX70CrMnSiNiMo2 Alloy Tool Steel

Journal title

Archives of Foundry Engineering

Yearbook

Accepted articles

Authors

Affiliation

Tęcza, G. : AGH University of Krakow, Poland ; Garbacz-Klempka, A. : AGH University of Krakow, Poland

Keywords

Retained austenite ; Martensite ; Microstructure ; Microhardness ; Phase volume fraction ; Heat treatment ; Quenching ; Cast tool steel

Divisions of PAS

Nauki Techniczne

Publisher

The Katowice Branch of the Polish Academy of Sciences

Bibliography

  • Przybyłowicz, K. (1997). Metal science. Warszawa: WNT. (in Polish).
  • Głownia, J. (2002). Alloy steel castings-applications. Kraków: Fotobit. (in Polish).
  • Dobrzański, L. (2006). Engineering materials and material design. Warszawa: WNT. (in Polish).
  • Metals Handbook. (1990). 10-th Ed., vol. 1. ASM International.
  • Głownia, J., Tęcza, G., Sobula, S., Kalandyk, B., Dzieja, A. (2007). Determination of the content and effect of residual austenite on the properties of cast L70H2GNM steel. Research done for Metalodlew S.A., unpublished. (in Polish).
  • Głownia, J. (2017). Metallurgy and technology of steel castings. Sharjah: Bentham Science Publishers.
  • Stradomski, Z. (2010). The role of microstructure in the wear behavior of abrasion-resistant cast steels. Częstochowa: Wydawnictwo Politechniki Częstochowskiej. (in Polish).
  • Wingens, T. (2021). Retained austenite benefits or avoidance requires dependable determination. In the 31st Heat Treating Society Conference and Exposition, 14-16 September 2021 (pp. 212-219). Louis, Missouri, USA. DOI: 10.31399/asm.cp.ht2021p0212.
  • Kobasko, N.I., Aronov, M.A., Powell, J.A., Vanas J.H. (2009). Intensive quenching of steel parts: equipment and method. In the 7th IASME/WSEAS International Conference on Heat Transfer, Thermal Engineering and Environment (HTE '09), 20-22 August 2009 (pp. 153–158). Moscow, Russia. DOI: 10.13140/RG.2.2.17040.56328.
  • Tęcza, G. (2023). Changes in the microstructure and abrasion resistance of tool cast steel after the formation of titanium carbides in the alloy matrix. Archives of Foundry Engineering. 23(4), 173-180. DOI: 10.24425/afe.2023.148961.
  • Głownia, J., Tęcza, G., Sobula, S., Kalandyk, B. & Dzieja A. Determination of the content and effect of residual austenite on the properties of cast L70H2GNM steel. Research done for Metalodlew S.A., unpublished. (in Polish).
  • Rothleutner, L. (2019, March 11). Retained austenite significant for strength, toughness. Retrieved September 15, 2024, from https://thermalprocessing.com/retained-austenite-significant-for-strength-toughness/.
  • Xiong, X.C., Chen, B., Huang, M.X., Wang, J.F. & Wang, L. (2013). The effect of morphology on the stability of retained austenite in a quenched and partitioned steel. Scripta Materialia. 68(5), 321-324. DOI: 10.1016/j.scriptamat.2012.11.003.
  • Sugimoto, K., Usui, N., Kobayashi, M. & Hashimoto, S. (1992). Effects of volume fraction and stability of retained austenite on ductility of TRIP-aided dual-phase steels. ISIJ International. 32(12), 1311-1318. DOI: 10.2355/isijinternational.32.1311.
  • Tkachev, E., Borisov, S., Borisova, Y., Kniaziuk, T., Belyakov, A. & Kaibyshev, R. (2024). Austenite stabilization and precipitation of carbides during quenching and partitioning (Q&P) of low-alloyed Si–Mn steels with different carbon content. Materials Science and Engineering A. 895, 146212, 1-15. DOI: 146212. 10.1016/j.msea.2024.146212.
  • Ma, T., Fu, B., Guan, W., Guo, Y., Fu, L. & Shan, A. (2024). Dissolution behavior of carbide in 4cr13 martensitic stainless steel during austenitizing. Journal of Materials Engineering and Performance. 34(6), 5394-5401. DOI: 10.1007/s11665-024-09509-0.
  • Chen, X. & Li, Y.X. (2006). Investigation of the influence of austempering processing on retained austenite amount of austempered high silicon cast steel. 55, 284-287.
  • Gu, J., Li, D., Liu, S. & Liu, Z. (2024). Microstructure and properties of Mn–Si–Cr alloy steel modified by quenching and partitioning. Materials Testing. 66(3), 305-315. DOI: 10.1515/mt-2023-0341.

Date

23.07.2025

Type

Article

Identifier

DOI: 10.24425/afe.2025.155358
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