MICROSTRUCTURE EVOLUTION AND PHASE TRANSFORMATIONS IN MICROALLOYED ARMOX 500T STEEL DURING A DILATATION PROCESS

  • Mervat Youssef Egypt-Japan University of Science and Technology (E-JUST), Alexandria, Egypt
  • Eman El-Shenawy Central Metallurgical Research and Development Institute (CMRDI), Cairo, Egypt
  • Wael Khair-Eldeen Egypt-Japan University of Science and Technology (E-JUST), Alexandria, Egypt
  • Tadaharu Adachi Toyohashi University of Technology (TUT), Aichi, Japan
  • Adel Nofal Central Metallurgical Research and Development Institute (CMRDI), Cairo, Egypt
  • Mohsen A. Hassan Egypt-Japan University of Science and Technology (E-JUST), Alexandria, Egypt
Keywords: Armox 500T steel, niobium microalloying, heat treatment, grain refinement

Abstract

With this work we successfully developed two modified Armox 500T alloys using microalloying with different amounts of niobium (Nb) and boron (B) to obtain a finer grain size, which in return enhances the remnant properties. Furthermore, different heat-treatment cycles were designed and performed using a quenching dilatometer to study the combined effect of thermal cycling and microalloying with Nb and B on the microstructure and transformation temperatures including the start and finish temperature of the austenite transformation (Ac1, Ac3) and the martensite start and finish temperature (Ms, Mf) of the investigated alloys. Dilatometry results show that increasing the content of Nb from 0.07 w/% to 0.13 w/% and B from 0.0035 to 0.0046 w/% increases the temperature range between Ac1 and Ac3 by 55 °C, indicating a broader range for changing heat-treatment temperatures. In addition, the Ms temperature is reduced by 13 °C due to austenite refinement caused by the microalloying of Nb and B. The effect of the annealing temperature at a constant heating rate showed a significant impact on the austenite grain size and hardness. Furthermore, the kinetics of phase transformations were theoretically studied using Thermo-Calc, and the numerical predictions were confirmed experimentally with dilatometry results. Metallography investigations using a scanning electron microscope (SEM) and an optical microscope (OM) were conducted to evaluate the microstructure evolution of the developed alloys. Hardness tests were performed to evaluate the effect of the grain refinement of martensite lathes caused by microalloying with Nb, B, and heat-treatment thermal cycling. It is found that the hardness of the modified Armox alloys in this research was improved by 14 % in comparison with the conventional Armox 500T.

References

[1] C. N. Dyar, Effects of Nb Additions and Accompanying Heat Treatments on Material and Mechanical Properties of Armor Steels Manufactured in Small Scale. Mississippi State University  (2018), 10787024.‏
[2] W. L. Gao, Y. Leng, D. F. Fu, J. Teng, Effects of niobium and heat treatment on microstructure and mechanical properties of low carbon cast steels, Materials & Design, 105 (2016), 114-123, doi:10.1016/j.matdes.2016.05.057.
[3] P. K. Jena, B. Mishra, M. RameshBabu, A. Babu, A. K. Singh, K. SivaKumar, T. B. Bhat, Effect of heat treatment on mechanical and ballistic properties of a high strength armour steel, International journal of impact engineering, 37(3) (2010), 242-249, doi:10.1016/j.ijimpeng.2009.09.003.
[4] C. Celada-Casero, J. Sietsma, M. J. Santofimia, The role of the austenite grain size in the martensitic transformation in low carbon steels, Materials & Design, 167 (2019), 107625, doi:10.1016/j.matdes.2019.107625.
[5] Y. Wang, A. Karasev, J. H. Park, P. G. Jӧnsson, Non-metallic Inclusions in Different Ferroalloys and Their Effect on the Steel Quality: A Review, Metall Mater Trans B 52, (2021), 2892–2925, doi:10.1007/s11663-021-02259-7.
[6] J. Hidalgo, M. J. Santofimia, Effect of Prior Austenite Grain Size Refinement by Thermal Cycling on the Microstructural Features of As-Quenched Lath Martensite, Metall Mater Trans A 47, (2016), 5288–5301, doi: 10.1007/s11661-016-3525-4.
[7] V. Javaheri, N. Khodaie, A. Kaijalainen, D. Porter, Effect of niobium and phase transformation temperature on the microstructure and texture of a novel 0.40% C thermomechanically processed steel, Materials Characterization, 142 (2018), 295-308, doi:10.1016/j.matchar.2018.05.056.
[8] A. J. DeArdo, Niobium in modern steels, International Materials Reviews, 48(6) (2003), 371-402, doi:10.1179/095066003225008833.
[9] A. J. DeArdo, M. J. Hua, K. G. Cho, C. I. Garcia, On strength of microalloyed steels: an interpretive review, Materials Science and Technology, 25(9) (2009), 1074-1082, doi:10.1179/174328409X455233.
Published
2023-10-03
How to Cite
1.
Youssef M, El-ShenawyE, Khair-EldeenW, Adachi T, Nofal A, Hassan MA. MICROSTRUCTURE EVOLUTION AND PHASE TRANSFORMATIONS IN MICROALLOYED ARMOX 500T STEEL DURING A DILATATION PROCESS. MatTech [Internet]. 2023Oct.3 [cited 2026Aug.14];57(5):433–440. Available from: https://www.mater-tehnol.si/index.php/MatTech/article/view/804