Features of structure formation in economy alloyed chromo-manganese iron-carbon alloys for metallurgical equipment parts

Authors

DOI:

https://doi.org/10.15407/mom2023.02.015

Keywords:

phase-concentration diagram, microstructure, Me7C3 carbide, impact-abrasive wear resistance, chromium-manganese alloys

Abstract

It was established that in cast chromium-manganese alloys of the transition class Fe–C–Mn–Cr system (carbon content no more than 2.2%) with a certain combination of Mn and Cr, the formation of crystals of highly hard carbide Me7C3 is possible. The relationship between the phase-concentration parameters and the structure formation of alloys of the Fe–C–Mn–Cr system was studied, the analysis of the relationship between the phase-concentration parameters, structure formation and properties was carried out on the compositions of the Fe–C–Mn and Fe–C– Mn–Cr with 1.5-2.1% C, with a variable content of Mn, Cr and additives of other alloying elements - Si and Ni at the level of impurities. A phase-concentration diagram of the crystallization of the alloys of this system was constructed, delimiting the regions of crystallization P → γ-Fe, P → γ-Fe + Me3C and P →(γ -Fe + Me7C3) + (γ-Fe + Me3C). It is shown that economically alloyed chromium-manganese alloys of the Fe–Mn–Cr–C system with eutectics based on Me7C3 carbide are characterized by a high level of shock-abrasive wear resistance, and the results of the conducted studies indicate the prospects of using economically alloyed chromium-manganese alloys and can be recommended for further research and use as wear-resistant materials for the manufacture of parts of replaceable metallurgical equipment, which are operated in severe conditions of abrasive and shock-abrasive wear.

References

Perov V. A., Andreev E. E., Bilenko L. F. Drobleniye, izmel'cheniye i grokhocheniye rud (Crushing, grinding and screening of ores), M.: Nedra, 1990, 301 p. [in Russian].

Bolshakov V. I., Vishnyakov V. I., Porubova T. P., Lavrik A. I., Fundamental'nyye i prikladnyye problemy chernoy metallurgii. Sb. nauch. Trudov, Issue. 10, 2005, pp. 275-286. [in Russian].

Tsypin I. I. Belyye iznosostoykiye chuguny, struktura i svoystva (White wear-resistant cast irons, structure and properties), M.: Metallurgia, 1983, 175 p. [in Russian].

Bobyr S. V., Nesterenko A. M., Repina N. I., Teoriya i praktika metallurgii, No. 4-5, 2006, pp. 96-98 [in Russian].

Cheylyakh A. P., Oleinik I. M. Vestnik PGTU, No. 13, 2003, pp. 103-108 [in Russian].

Kutsova V. Z., Nesterenko A. M., Kutsov A. Yu., Kovzel M. A., Perspektivní zadachí ínzhenernoí̈ nauki, 2002, Issue. 4, pp. 322−335 [in Russian].

Andrushchenko M. I., Kulikovskiy R. A., Brykov M. N. Metall i lit'ye Ukrainy, No. 6, 2006, pp. 42-46 [in Russian].

Silman G. I., Pamfilov E. A., Gryadunov S. S., Grouvman A. I., MiTOM, No. 8, 2007, pp. 32-36 [in Russian].

Petrakov O. V., Poddubny A. N., MiTOM, No. 8, 2007, pp. 36-38 [in Russian].

Garber M. E. Castings from white wear-resistant cast irons. M.: Mashinostroenie, 1972, 112 p. [in Russian].

Taran Yu. N., Mazur V. I. Struktura evtekticheskikh splavov (Structure of eutectic alloys), M.: Metallurgy, 1978, 312 p. [in Russian].

Published

2023-06-30

How to Cite

Pliuta В. Л., & Nesterenko А. (2023). Features of structure formation in economy alloyed chromo-manganese iron-carbon alloys for metallurgical equipment parts. Scientific Technical Journal ‘’Metal Science and Treatment of Metals’’, 29(2), 15–23. https://doi.org/10.15407/mom2023.02.015