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115th anniversary of St. Petersburg State Polytechnic University
Название Distribution pattern of nonmetallic inclusions in continuous-cast steel billets for rails and wheels
Автор A. A. Kazakov, A. I. Zhitenev, A. V. Kushnarev, Yu. P. Petrenko, E. A. Lavrova
Информация об авторе

St. Petersburg State Polytechnic University (St. Petersburg, Russia):

Kazakov A. A., Dr. Eng., Prof., Head of “Metallurgical technologies” Chair, e-mail: kazakov@thixomet.ru
Zhitenev A. I., Engineer, “Metallurgical technologies” Chair

 

EVRAZ Nizhniy Tagil Iron & Steel Works (EVRAZ NTMK) (Nizhniy Tagil, Russia):

Kushnarev A. V., Cand. Eng., Managing Director
Petrenko Yu. P., Head of the Central Works Laboratory
Lavrova E. A., Head of Metallograhic Laboratory

Реферат

The distribution pattern of nonmetallic inclusions on the cross section of continuous-cast steel billets for rails and wheels has been studied in consideration of dendritic parameters in all crystal structure zones. Maximum nonmetallic impurity rating has been detected at the boundary intersection of adjacent crystal structure zones. The secondary dendrite arm spacing λ2, which characterizes the size of dendritic cell, has been examined on the cross section of a billet. For wheel continuous-cast steel billet λ2 goes constantly up from a billet’s edge to it’s center, but for the rail continuous-cast steel billet there is λ2 increase only for the columnar crystal zone while for the equiaxial zone it is unaffected. The effects of secondary dendrite arm spacing upon the dimensions of tertiary nonmetallic inclusions appeared during solidifi cation have been determined. That is available for a wheel continuous-cast steel billet, that size of sulfides grows with λ2 increase both for a columnar crystal zone and for an equiaxial zone, but for rail continuous-cast steel billet such relationship has been found only for a columnar crystal zone, when in the region of equiaxial zone the size of sulfides varies stochastically. The method of sampling for the control of nonmetallic inclusions in continuouscast steel billets for rails and wheels has been developed based upon revealed relationships which correlates good with a sampling for end products: wheels and rails.

Ключевые слова Steel for rails, steel for wheels, nonmetallic inclusions, solidification, dendritic structure, continuous-cast steel billets, crystal structure zones
Библиографический список

1. Gubenko S. I., Parusov V. V., Derevyanchenko I. V. Nemetallicheskie vklyucheniya v stali (Non-metallic inclusions in steel). Dnepropetrovsk: ART-PRESS, 2005. 536 p.
2. Moema J. S., Semenya S. M., Jones C. Qualitative and quantitative determination of inclusions in high-carbon steel alloy (Class B) for rail wheel application by SEM/EDS analysis. The Journal of The Southern African Institute of Mining and Metallurgy, 2013.
3. Harris William J., Zakharov S. M., Lundgren James et al. Obobshchenie peredovogo opyta tyazhelovesnogo dvizheniya: voprosy vzaimodeystviya kolesa i relsa (Guidelines to best practices for heavy haul railway operations: wheel and rail interface issues). Translated from English. First Edition. Moscow : Intekst, 2002. 408 p. 4. GOST 10791-2004. Kolesa tselnokatannye. Tekhnicheskie usloviya (State Standard 10791-2004. All-rolled wheels. Technical requirements). Introduced: July 01, 2005.
5. GOST 398-96. Bandazhi iz uglerodistoy stali dlya podvizhnogo sostava zheleznykh dorog shirokoy kolei i metropolitena. Tekhnicheskie usloviya (State Standard 398-96. Carbon steel supports for rolling-stock of railways of broad gauge and underground. Technical requirements). Introduced: January 01, 1998.
6. GOST R 51685-2000T. Relsy zheleznodorozhnye. Obshchie tekhnicheskie usloviya (State Standard R 51685-2000T. Railway rails. General technical requirements). Introduced: November 01, 2010.
7. Golyshkov R., Lataev A., Kharlamov A. Optimizatsiya tekhnologicheskikh protsessov kolesoprokatnogo proizvodstva s pomoshchyu programmnogo kompleksa DEFORM (Optimization of technological processes of wheel-rolling production with the help of software system DEFORM). SAPR i grafika — SAPR and graphics. 2006. No. 7.
8. Kushnarev A. V., Petrenko Yu. P., Timofeev V. V. et al. Issledovanie techeniya metalla pri deformatsii zagotovok koles 957 mm na pressoprokatnoy linii kolesobandazhnogo tsekha Otkrytogo Aktsionernogo Obshchestva «NTMK» (Research of metal flow with deformation of 957 mm wheel blanks on press-rolling line of wheel-tire shop of “Nizhniy Tagil Iron and Steel Works” JSC). Materialy Tretey mezhdunarodnoy konferentsii “Transmet-2007” (Materials of the Third International Conference “Transmet-2007”). Ekaterinburg : Ural State Technical University — Ural Polytechnic Institute, 2008. 395 p.
9. Timofeev V. V., Khomenko D. Yu., Petrenko Yu. P. Issledovanie techeniya metalla pri proizvodstve lokomotivnykh bandazhey (Research of metal flow in the time of production of locomotive bandages). Byulleten nauchno-tekhnicheskoy i ekonomicheskoy informatsii “Chernaya metallurgiya” — Bulletin of scientific-technical and economic information “Ferrous metallurgy”. 2010. No. 4.
10. Nesterov D. K., Glav A. Ya. Proizvodstvo zheleznodorozhnykh relsov iz nepreryvnolitykh zagotovok (Production of railway rails from concast billets). Stal — Steel in Translation. 1995. No. 8.

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