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Название Features of the distribution non-metallic inclusions in the structural zones of a 24.2 ton ingot of 38ХН3МФА steel
DOI 10.17580/cisisr.2016.01.07
Автор S. B. Gamanyuk, N. A. Zyuban, D. V. Rutskii, L. V. Palatkina
Информация об авторе

Volgograd State Technical University, Volgograd, Russia:

S. B. Gamanyuk, Cand. Eng., Associate Professor, Department “Technology of materials”, e-mail: gamanuk@mail.ru
N. A. Zyuban, Dr. Eng., Professor, Head of Department “Technology of materials”, e-mail: tecmat49@vstu.ru
D. V. Rutskii, Cand. Eng., Associate Professor, Department “Technology of materials”, e-mail: rutskiy79@mail.ru
L. V. Palatkina, Cand. Eng., Associate Professor, Department “Technology of materials”, tecmat@vstu.ru

Реферат

The paper reports findings on the distribution of non-metallic inclusions in the structural zones as well as throughout the mass of a 24.2 ton ingot of 38ХН3МФА steel. It is shown that the distribution of non-metallic inclusions in steel varies throughout the height and cross-section of the ingot. The amount of sulfide and oxysulfide inclusions exceeds that of oxides. It is discovered that the inclusions are presented by compound oxides of manganese, silicon, vanadium, chromium and aluminum; besides, there are sulfide and oxysulfide inclusions as well. The findings prove that there exists a correlation between the contamination index of sulfides and oxysulfides on the one hand, and the ingot height, on the other hand. In the upper part of the ingot, below its hot top, the distribution of the inclusions and their numbers almost fully coincide due to extended heat exposure. In the middle and bottom parts of the ingot in the zone of columnar and large randomly oriented crystals there is a pronounced inverse relation between the distribution of sulfides and oxysulfides. The investigation of inclusions reveals the major role of oxysulfides in the formation of sulfides which are generally located at grain boundaries and reduce metal ductility. This is particularly important for vacuum cast steel since oxygen shortage reduces the amount of oxysulfides and leads to the escape of sulfides and an undesired form.

The reported study was partially supported by RFBR, research project No. 16-38-60007 mol_а_dk.

Ключевые слова Non-metallic inclusions, strength and ductile properties, large ingots, solidification, oxides, sulfides, oxysulfides
Библиографический список

1. Ya. N. Malinochka, L. A. Bagnyuk, S. A. Zdorovec, Mekhanism obrazovaniya ogranennykh sulfidov margantsa (Mechanism of formation of faceted manganese sulfides). Izvestiya AN SSSR. Seriya “Metally” = The USSR Academy of Sciences News. Series “Metals”. 1989. № 1. pp. 76–84.
2. Wang Q., Zhang L., Seetharaman S., Yang S., Yang W., Wang Y. Detection of Non-metallic Inclusions in Centrifugal Continuous Casting Steel Billets. Metallurgical and Materials Transactions B: Process Metallurgy and Materials Processing Science. 2016. Vol. 47. Issue 3. June 1 . pp. 1594–1612.
3. Chervyakov A. N., Kiselev S. A. Metallograficheskoe opredelenie vklyucheniy v stali (Metallographic detection of inclusions in steel). Moscow : Metallurgizdat, 1962. 201 p.
4. Vinograd M. I. Vklyucheniya v stali I ee svoistva (Inclusions in Steel and Its Properties). Moscow : Metallurgizdat, 1963. 252 p.
5. Krewerth D., Lippmann T., Weidner A., Biermann H. Influence of non-metallic inclusions on fatigue life in the very high cycle fatigue regime. International Journal of Fatigue. 2016. Vol. 84. pp. 40–52.
6. Zhao W. L., Ma Q. X., Zha S. L. Mechanism for development of faults originating from compound inclusions in the forging process of 30Cr2Ni4MoV heavy ingots. Materials Transactions. 2014. Vol. 55. Issue 8. pp. 1324–1331.
7. Yamauchi T., Kudo H., Kishi Y., Ueda S., Yoshida H., Kimura K., Kajikawa K., Suzuki S. Development and production of monoblock low-pressure turbine rotor shaft made from 670 ton ingot (Conference Paper). Advances in Materials Technology for Fossil Power Plants - Proceedings from the 7th International Conference. Waikoloa, HI. United States. 2014, pp. 333–343.
8. Shevtsova O. A., Zyuban N. A., Rutskii D. V. Aspects of the formation of sulfide inclusions and their effect on the quality of low-alloy structural steels. Metallurgist. 2011. Vol. 54. Issue 11–12. pp. 839–844.
9. Shevtsova O. A., Zyuban N. A., Pegisheva S. A., Rutskii D. V., Ti tov K. E., Klyachina N. V. Osobennosti obrazovaniya sulfidnylh vklyu cheniy I ikh raspolozhenie vnutri zerna v zavisimosti ot usloviy raskisleniya stali 20 (Features of formation of sulfide inclusions and their distribution inside the grain depending upon 20 steel deoxidation conditions). Metallurg = Metallurgist. 2014. No. 5. pp. 60–63.
10. Lunev V. V., Pirozhkova V. P. O prirode I diagnostike nemetallicheskikh vklyucheniy v stali (On nature and diagnostics of nonmetallic inclusions in steel). Elektrometallurgiya = Electric metallurgy. 2011. No. 7. pp. 26–30.
11. Shevtsova O. A., Zyuban N. A., Letnikov M. N., Rutskii D. V. Issledovanie osobennostey formirovaniya tipa I vida sulfidnykh vklyucheniy v zavisimosti ot stepeni okislennosti metalla I ikh vliyanie na svoistva nizkolegirovannykh konstruktsionnykh staley (A study of the features of formation of sulfide inclusion types depending on metal deoxidation condition and their influence on the properties of low-alloyed structural steels). Problemy chernoy metallurgii i materialovedeniya = Problems of ferrous metallurgy and material study. 2010. No. 2, pp. 56–60.
12. Zyuban N. A., Kryuchkov O. B. Vliyanie vakuumirovaniya na osobennosti formirovaniya sulfidnykh vklyucheniy I svoistva izdeliy iz nizkolegirovannykh konstruktsionnykh staley (Effect of degassing on features of sulfide inclusion formation and properties of low-alloyed structural steel components). Izvestiya VUZov. Chernaya Metallurgiya. 2008. No. 5. pp. 15–18.

Полный текст статьи Features of the distribution non-metallic inclusions in the structural zones of a 24.2 ton ingot of 38ХН3МФА steel
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