Tailoring the Silicon Cementation Applied to P265GH Grade Steel

Author:

Branzei Mihai1ORCID,Cojocaru Mihai Ovidiu12,Morariu Mircea Dan1,Druga Leontin Nicolae2

Affiliation:

1. Department of Metallic Materials Science, Physical Metallurgy, Faculty of Materials Science and Engineering, University POLITEHNICA of Bucharest, 060042 Bucharest, Romania

2. Section IX-Materials Science and Engineering, Technical Sciences Academy of Romania, 030167 Bucharest, Romania

Abstract

Increasing the serviceability of industrial components intended for the petrochemical industry is possible through their superficial saturation with silicon (silicon cementation). Obtaining a silicon-rich surface coating results in a considerable increase in corrosion resistance, refractoriness, and wear resistance. One of the most economically convenient options for silicon cementation is pack siliconizing in powdery solid media. This paper presents the possibility of pack siliconizing that contains ferrosilicon (FeSi75C) and a thermite mixture (SiO2 + Al) as active, silicon-providing components, in P265GH grade steel, which is frequently used in the petrochemical industry. The aim of the study was to determine the most suitable active component of the two that were analyzed and at the same time identify the processing conditions in which the siliconized coating has the greatest thickness, is free of porosity, and is in direct contact with the support. The use of experimental programming methods allowed the optimization of the operation to obtain the optimal solution. It was concluded that the thermite mixture is not compatible with pack siliconizing because it results in a superficial saturation predominantly composed of aluminum. When ferrosilicon is used as the active component, it determines the particularly intense formation kinetics of the non-porous siliconized coating with its maximum thickness being reached at high processing temperature values (over 1100 °C) with a proportion of 60% FeSi75 and, simultaneously, with the lowest possible proportion of ammonium chloride (max. 3%), which is the surface activation/cleaning component.

Publisher

MDPI AG

Subject

Materials Chemistry,Surfaces, Coatings and Films,Surfaces and Interfaces

Reference22 articles.

1. Garverick, L., Scott, D.H., and Scott, W.W. (1999). Corrosion in the Petrochemical Industry, 3rd printing, ASM International.

2. Tehnica, N.I. (1972). Siliconization of Metals and Alloys, Scientific and Technical Publishing House. (In Russian).

3. Lahtin, I.M., and Arzamasov, B.N. (1985). Thermochemical Treatments of Steels, Metallurghia (Metallurgy Publishing House). (In Russian).

4. Kubachewski von Goldbeck, O. (1982). IRON-Binary Phase Diagrams, Springer.

5. Sen, U., Ozdemir, O., Yilmaz, S., and Sen, S. (2013, January 15–17). Kinetics of Iron Silicide Deposited on AISI D2 Steel by Pack Method. Proceedings of the 22nd International Conference on Metallurgy and Materials (METAL 2013), Brno, Czech Republic.

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