Technology for the production of high-carbon ferrochromium using mono-briquettes
https://doi.org/10.17073/0368-0797-2019-9-702-707
Abstract
The article presents results of large-scale laboratory studies on the basis of Chemical-Metallurgical Institute named after Zh. Abishev on establishing the possibility of using a mono-charge for smelting standard carbon ferrochromium. Enlarged-laboratory studies were carried out in an ore-thermal furnace with transformer capacity of 200 kVA. Duration of the pilot campaign was 4 days. Three variants of briquettes containing various reducing agents were tested, including: traditional charge (coke PRC + special coke + Borolinsky coal); briquettes with coal from Shubarkol; briquettes with Borlinsky coal; briquettes with coke of China. As a comparative variant, traditional technology with charge materials without briquetting was used. In total, when conducted large-scale laboratory studies it was 41 smeltings. The tests began with a comparative version, which was chosen as technology closest to the technology at Aktobe ferroalloy plant. On the traditional charge, top worked without the uniformly gassing over entire surface of the top. Recovery rate of chromium in the alloy was 79.3 %. Change to briquettes with Shubarkol coal in general has led to the process intensification with more stable current load. The furnace productivity increased to 165.9 kg Cr/day due to increase in the contact surface of reacting phases in briquettes. When using briquettes with Borlinsky coal, satisfactory technological parameters of the smelting process for high-carbon ferrochrome were also obtained, extraction rate of chromium into the metal was 84.91 %. When using briquettes from 0 – 10 mm ore fraction ore and CPR coke in the charge, furnace operation and state of the top were not different from previous periods. The charge also went off evenly, without collapses, the briquettes on the top were not destroyed and current load was highly stable. The work also presents comparative technical and economic indicators for all technologies using mono-charge briquettes.
About the Authors
E. Zh. ShabanovKazakhstan
Ph.D, Head of the Laboratory of Ferroalloys and Reduction Processes.
Karaganda
D. D. Izbembetov
Kazakhstan
Cand. Sci. (Eng.), Professor, Deputy Director for Research.
Aktobe
S. O. Baisanov
Kazakhstan
Dr. Sci. (Eng.), Professor, Head of the Laboratory “Metallurgical Melts”.
Karaganda
M. F. Shadiev
Kazakhstan
Director.
Aktobe
References
1. Pietsch W. Agglomeration in Industry. Occurrence and Applications. Wiley-VCN, 2004, 834 p.
2. Bizhanov A.M., Kurunov I.F., Podgorodetskii G.S., Dashevskii V.Ya., Farnasov G.A. Experience with the use of extrusion briquettes (brex) to make ferrosilicomanganese. Metallurgist. 2013, vol. 57, no. 1-2, p. 105–112.
3. Bizhanov A.M., Kurunov I.F., Dashevskii V.Ya. Mechanical strength of extrusion briquettes (brex) for blast-furnace and ferroalloy production: I. Dependence of the strength properties of extrusion briquettes on the binder. Russian Metallurgy (Metally). 2015, no. 3, p.185–190.
4. Kurunov I.F., Bizhanov A.M., Tikhonov D.N., Mansurova N.R. Metallurgical properties of brex. Metallurgist. 2012, vol. 56, no. 5-6, pp. 430–437.
5. Steele R.B., Bizhanov A.M. Stiff extrusion agglomeration of arc furnace dust and ore fines for recovery at a ferroalloy smelter. In: Proc. 32nd Biennial Conf. (New Orleans, Louisiana. September, 2011). Institute for Briquetting and Agglomeration. Vol. 32, pp. 41–53.
6. Voskoboinikov V.G., Kudrin V.A., Yakushev A.M. Obshchaya metal lurgiya [General metallurgy]. Moscow: Metallurgiya, 2000, 768 p. (In Russ.).
7. Abdulabekov E.E., Kaskin K.K., Nurumgaliev A.Kh. Teoriya i tekhnologiya proizvodstva khromistykh splavov [Theory and technology of production of chromium alloys]. Aktobe, 2010, 280 p. (In Russ.).
8. Grinenko V.I., Petlyukh P.S., Takenov T.D., Zhakibekov T.B., Tolymbekov M.Zh.. Mastering the technology of smelting high-carbon ferrochromium using briquetted chrome ore trifle. Stal’. 2001, no. 12, pp. 28–30. (In Russ.).
9. Magdziarz A., Kuźnia M., Bembenek M., Gara P., Hryniewicz M. Briquetting of EAF dust for its utilization in metallurgical processes. Chemical and Process Engineering. 2015, vol. 36, no. 2, pp. 263–271(9).
10. Ryvkin I.Yu., Eremin A.Ya., Litvin E.M., Babanin V.I. Briquetting of fine-grained and finely dispersed materials with a binder. Koks i khimiya. 2000, no. 10, pp. 36–43. (In Russ.).
11. Eremin A.Ya., Babanin V.I. Physical-mechanical properties of dispersed materials during briquetting. Koks i khimiya. 2003, no. 4, pp. 17–26. (In Russ.).
12. Khoroshavin L. Metallurgical briquettes of the new generation reduce the duration of metals smelting. Ural’skii rynok metallov. 2006, no. 7, pp. 39–42. (In Russ.).
13. Ozhogin V.V., Tomash A.A., Kovalevskii I.A. Briquetting as a fullfledged method of agglomeration of metallurgical raw materials. Metallurgicheskie protsessy i oborudovanie. 2005, no. 2, pp. 54–58. (In Russ.).
14. Kotenev V.I., Barsukova E.Yu. Technology and economics of production of briquettes from fine-dispersed wastes of metallurgical and coke-chemical industries for economically advantageous replacement of the traditional burden of steelmaking, blast-furnace and ferroalloy processing and the method of its production. In: 7i Mezhdunarodnyi Kongress staleplavil’shchikov. 14 noyabrya 2002. Moskva [7th International Congress of Steel Makers. November 14, 2002, Moscow]. (In Russ.).
15. Babanin V.I., Eremin A.Ya., Bezdezhskii G.N. Development and introduction of a new technology for briquetting finely divided materials with sodium silicate. Metallurgist. 2007, vol. 51, no. 1-2, pp. 131–135.
16. Bezdezhskii G.N., Smolyakov V.P., Babanin V.I., Eremin A.Ya., Til’ V.V., Shashkin V.N. Mastering the briquetting of chromite concentrate at the Don Mining and Processing Combine. Tsvetnaya metallurgiya. 2002, no. 8-9, pp. 7–10. (In Russ.).
17. Ozerov S.S., Portov A.B., Tsemekhman L.Sh. Briquetting of finegrained materials. Tsvetnye metally. 2014, no. 7, pp. 26–31. (In Russ.).
18. Ozhogin V.V. Osnovy teorii i tekhnologii briketirovaniya izmel’chennogo metallurgicheskogo syr’ya: monografiya [The fundamentals of the theory and technology of briquetting of crushed metallurgical raw materials: monograph]. Mariupol: PGTU, 2010, 442 p. (In Russ.).
19. Ray C.R., Sahoo P.K., Rao S.S. Strength of chromite briquettes and its effect on smelting of charge chrome / ferro chrome. Innovations in Ferro Alloys industry. INFACON XI. 2007, pp. 63–66.
20. Tolymbekov M.Zh., Baisanov S.O., Izbembetov D.D., Abdulabekov E.E., Akuov A.M. Smelting high-carbon ferrochrome with uniform briquetted batch. Steel in Translation. 2010, vol. 40, no. 6, pp. 556–557.
Review
For citations:
Shabanov E.Zh., Izbembetov D.D., Baisanov S.O., Shadiev M.F. Technology for the production of high-carbon ferrochromium using mono-briquettes. Izvestiya. Ferrous Metallurgy. 2018;61(9):702-707. (In Russ.) https://doi.org/10.17073/0368-0797-2019-9-702-707