The Effect of Bath Composition for Hot-Dip Aluminizing of AISI 4140 Steel
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The Effect of Bath Composition for Hot-Dip Aluminizing of AISI 4140 Steel

Authors: Aptullah Karakaş, Murat Baydoğan

Abstract:

In the HDA process, Al or Al-Si molten baths are mostly used. However, in this study, three different Al alloys such as Al4043 (Al-Mg), Al5356 (Al-Si) and Al7020 (Al-Zn) were used as the molten bath in order to see their effects on morphological and mechanical properties of the resulting aluminide layers. AISI 4140 low alloyed steel was used as the substrate. Parameters of the HDA process were bath composition, bath temperature, and dipping time. These parameters were considered within a Taguchi L9 orthogonal array. After the HDA process and subsequent diffusion annealing, coating thickness measurement, microstructural analysis and hardness measurement of the aluminide layers were conducted. The optimum process parameters were evaluated according to coating morphology such as cracks, Kirkendall porosity and hardness of the coatings. According to the results, smooth and clean aluminide layer with less Kirkendall porosity and cracks were observed on the sample, which was aluminized in the molten Al7020 bath at 700 C for 10 minutes, and subsequently diffusion annealed at 750 C. Hardness of the aluminide layer was in between 1100-1300 hardness of Vickers (HV) and the coating thickness was approximately 400 µm. The results were promising such that a hard and thick aluminide layer with less Kirkendall porosity and cracks could be formed. It is therefore, concluded that Al7020 bath may be used in the HDA process of AISI 4140 steel substrate.

Keywords: Aluminum alloys, coating, hot-dip aluminizing, microstructure.

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References:


[1] A. Bahadur, “Aluminum coatings for steel,” Materials and Manufacturing Processes, vol. 11, no. 2, pp. 225–232, 1996.
[2] R. Mola, T. Bucki, and K. Wcisło, “Characterization of Coatings on Grey Cast Iron Fabricated by Hot-dipping in Pure Al, AlSi11 and AlTi5 Alloys,” Archives of Foundry Engineering, vol. 14, no. 1, pp. 85–90, Mar. 2014.
[3] M. V. Akdeniz, A. Mekhrabov, and T. Yilmaz, “The role of Si addition on the interfacial interaction in fe-Al diffusion layer,” Scripta Metallurgica et Materialia, vol. 13, pp. 1723–1728, Jul. 1994.
[4] J. R. Davis, ASM Handbook Vol5, Surface Engineering of Carbon and Alloy Steels, 2nd ed., vol. 5. ASM International, 1994.
[5] P. P. Dey, S. Sahu, P. S. Banerjee, and M. Ghosh, “A review on metallurgical features of hot-dip aluminized steel,” Engineering Research Express, vol. 5, no. 1, Mar. 2023.
[6] R. Rajendran, P. Hariharan, N. Gowrishankar, U. Jaikrishna, and A. Rajadurai, “Surface Modification of EN 8 Steel by Aluminizing and Nitriding for,” 2009.
[7] Y. Yürektürk and M. Baydoğan, “Characterization of ferritic ductile iron subjected to successive aluminizing and austempering,” Surf Coat Technol, vol. 347, pp. 142–149, Aug. 2018.
[8] K. Kishore, S. Chhangani, M. J. N. V. Prasad, and K. Bhanumurthy, “Microstructure evolution and hardness of hot dip aluminized coating on pure iron and EUROFER 97 steel: Effect of substrate chemistry and heat treatment,” Surf Coat Technol, vol. 409, Mar. 2021.