Название |
Effect of the method of estimating the mass of ferriferrous residue in EAF
on the course and performance of smelting of stainless steel |
Информация об авторе |
National University of Science and Technology MISIS, Moscow, Russia
E. V. Muratov, Postgraduate Student, Dept. of Steel Metallurgy, New Production Technologies and Metal Protection S. V. Podkur, Postgraduate Student, Dept. of Steel Metallurgy, New Production Technologies and Metal Protection, e-mail: sergeypodkur@gmail.com
G. I. Kotelnikov, Cand. Eng., Associate Professor, Dept. of Steel Metallurgy, New Production Technologies and Metal Protection, e-mail: gikotelnikov@yandex.ru
Starooskolsky Technological Institute named after A. A. Ugarov (branch) of the National University of Science and Technology MISIS, Stary Oskol, Russia. A. E. Semin, Dr. Eng., Prof., Dept. of Metallurgy and Metal Science named after S. P. Ugarova, e-mail: asemin2007@yandex.ru |
Реферат |
The article calculates the end-to-end mass balance for smelting 08Х18Н10Т steel in an arc steelsmelting furnace. The influence of ferrous residue (swamp) from the previous smelting of low-alloy metal on the performance of smelting high-alloy stainless steel (consumption of ferroalloys and master alloys, specific gravity of waste at the casting stage) is considered. A comparative analysis of methods for estimating the mass of ferrous residue in EAF from the previous smelting of low-alloy steel during the smelting of stainless steel was carried out. It is shown that a simplified method for estimating the mass of ferrous “swamp” in an EAF, based on a fixed level of loss of metal components during the smelting of the semi-product in a furnace, gives unreliable results in which the mass balance is upset. The method for estimating the mass of the “ferrous” residue in the furnace from the previous smelting of low-alloy steel, using the assumption of a constant mass of nickel in the metal during smelting, gives reliable results that correspond to the practice of stainless steel production. It has been established that one ton of ferrous “swamp” leads to dilution of the charge components and a decrease in the concentration of nickel by 0.066% and chromium by 0.125% in the intermediate product. This causes an increase in the consumption of additional materials at the stage of out-of-furnace processing: ferrochrome by 2.9 kg/t and metallic nickel by 1 kg/t of semi-product released from an electric arc furnace. This also leads to an increase in waste at the casting stage in the form of overflows and under-oils by 0.85 kg/t of semi-product chipboard. |
Библиографический список |
1. Muratov E. V., Podkur S. V., Semin A. E., Kotelnikov G. I. et al. Technological and economic trends in the development of corrosion-resistant steel production in Russia. Tyazheloe mashinostroenie. 2023. No. 4. pp. 24–28. 2. Dubovskaya S., Ogorodnikov E., Remizov M. Beneficiaries of the crisis. Ekspert. 2019. No. 43. pp. 74–82. 3. Yarmak S., Zayakin S. Half of the economy by name. Ekspert. 2018. No. 43. Available at: https://expert.ekiosk.pro/681841 (accessed: 02.04.2020). 4. Nalcha G. I., Sablin D. V. Technical and economic aspects of the development of ferrous metallurgy in Russia and the CIS. Moscow : Intel-universal, 2003. 280 p. 5. Volkova A. V. Stainless steel market-2021. Available at: https://dcenter.hse.ru/data/2022/02/13/1748371511/Рынок_нержавеющего_металлопроката-2021.pdf (accessed: 24.07.2022). 6. Kho T. S., Swinbourne D. R., Blanpain B., Arnout S. et al. Understanding stainless steelmaking through computational thermodynamics Part 1: electric arc furnace melting. Mineral Processing and Extractive Metallurgy. 2010. Vol. 119, Iss. 1. DOI: 10.1179/174328509X431454 7. Swinbourne D. R., Kho T. S., Langberg D., Blanpain B. et al. Understanding stainless steelmaking through computational thermodynamics Part 2 – VOD converting. Mineral Processing and Extractive Metallurgy. 2010. Vol. 119, Iss. 2. DOI: 10.1179/174328509X481909 8. Swinbourne D. R., Kho T. S., Blanpain B., Arnout S. et al. Understanding stainless steelmaking through computational thermodynamics: Part 3 – AOD converting. Mineral Processing and Extractive Metallurgy. 2012. Vol. 121, Iss. 1. DOI: 10.1179/1743285511Y.0000000031 9. Kirschen M., Jung In-Ho, Hackl Gernot. Phase equilibrium diagram for electric arc furnace slag optimization in high alloyed chromium stainless steelmaking. Metals. 2020. Vol. 10. 826. DOI: 10.3390/met10060826 10. Korousic B., Triplat J., Rozman A. Evaluation of the role of slag chemistry and chemical interaction in EAF for stainless steel production. Conference contribution “Molten slags, fluxes and salts“. 2000. Available at: https://pyrometallurgy.co.za/MoltenSlags2000/pdfs/112.pdf (accessed: 04.06.2024). 11. Smirnov A. N., Safonov V. M., Dorokhova L. V., Tsuprun A. Yu. Metallurgical mini-mills. Donetsk: Nord-Press, 2005. 469 p. 12. Zhuravlev A. A., Mysik V. F., Zhdanov A. V. Calculations of material and energy balances in steel smelting in arc steel-making furnaces: study guide. Yekaterinburg : Izdatelstvo Uralskogo universiteta, 2016. 128 p. 13. Martynova E. S. Automated control of the thermal state of electrode furnaces when regulating the electric arc power. Dissertation … of Candidate of Engineering Sciences. Saint Petersburg, 2019. 132 p. 14. Steblov A. B. Operation of an electric arc steel-making furnace with liquid metal residue. Lityo i metallurgiya. 2016. No. 1 (82). pp. 66–71. 15. Ivanov I. A. et al. Digital system for monitoring and controlling the process of metallurgical production of large steel billets for the mechanical engineering industry. Clean steel: from ore to rolled products - 2020: collection of articles of the I International Conference. Moscow, 2020. pp. 269–275. 16. Podkur S. V., Kotelnikov G. I., Aksenova V. V., Somov S. A. et al. Ways to reduce hydrogen content in steel by improving the technology of smelting semi-finished product in modern EAF. Tyazheloe mashinostroenie. 2021. No. 4. pp. 5–9. 17. Muratov E. V., Semin A. E., Kotelnikov G. I., Durynin V. A. Influence of the mass of ferrous hot heel on the efficiency of smelting 08Kh18N10 steel in EAF. Tyazheloe mashinostroenie. 2023. No. 1-2. pp. 39–47. 18. Edneral F. P., Filippov A. F. Calculations on electrometallurgy of steel and ferroalloys. Moscow : Metallurgiya, 1962. 230 p. |