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Ironmaking & Steelmaking
Processes, Products and Applications
Volume 50, 2023 - Issue 8
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Articles

Sulphide capacity of CaO-SiO2-Al2O3-MgO-TiO2-FetO slag with high titanium and high FeO content based on HIsmelt process

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Pages 991-998 | Received 27 Oct 2022, Accepted 12 Jan 2023, Published online: 05 Feb 2023

References

  • Fincham CJB, Richardson FD. The behaviour of sulphur in silicate and aluminate melts. Proc R Soc London, Ser A. 1954;223:40–62. doi:10.1098/rspa.1954.0099
  • Huang XG. Principles on ferrous metallurgy. Beijing: The Metallurgy Industyr Press; 2003, 193.
  • Condo AFT, Allertz C, Du SC. Experimental determination of sulphide capacities of blast furnace slags with higher MgO contents. Ironmak Steelmak. 2019;46(3):207–210. doi:10.1080/03019233.2017.1366089.
  • Xin ZC, Zhang JS, Lin WH, et al. Sulphide capacity prediction of CaO-SiO2-MgO-Al2O3 slag system by using regularized extreme learning machine. Ironmak Steelmak. 2020;48(3):275–283. doi:10.1080/03019233.2020.1771892.
  • Zheng HY, Zhou XR, Hu XG, et al. Desulphurisation behaviour of blast furnace slag with high Al2O3 content at 1823K. Ironmak Steelmak. 2022;49(6):596–603. doi:10.1080/03019233.2022.2036082.
  • Allertz C, Selleby M, Sichen D. The effect of oxygen potential on the sulfide capacity for slags containing multivalent species. Metall Mater Trans B. 2016;47(5):3039–3045. doi:10.1007/s11663-016-0725-7.
  • Ling JW, Pang ZD, Jiang YY, et al. Blast furnace ironmaking process with super-high TiO2 in the slag: sulfide capacity. Metall Mater Trans B. 2021;52(4):2786–2795. doi:10.1007/s11663-021-02192-9.
  • Taniguchi Y, Wang L, Sano N, et al. Sulfide capacities of CaO-Al2O3-SiO2 slags in the temperature range 1673 K to 1773K(1400°C to 1500°C). Metall Mater Trans B. 2012;43(3):477–484. doi:10.1007/s11663-011-9621-3.
  • Shankar A, Görnerup M, Seetharaman S, et al. Sulfide capacity of high alumina blast furnace slags. Metall Mater Trans B. 2006;37(6):941–947. doi:10.1007/bf02735016.
  • Wang LJ, Wang YX, Chou K-C, et al. Sulfide capacities of CaO-MgO-Al2O3-SiO2-CrOx slags. Metall Mater Trans B. 2016;47(4):2558–2563. doi:10.1007/s11663-016-0692-z.
  • Wang LJ, Wang YX, Wang Q, et al. Raman structure investigations of CaO-MgO-Al2O3-SiO2-CrOx and Its correlation with sulfide capacity. Metall Mater Trans B. 2015;47(1):10–15. doi:10.1007/s11663-015-0469-9.
  • Condo AFTO, Qifeng S, Sichen D. Sulfide capacities in the Al2O3-CaO-MgO-SiO2 system. Steel Res Int 2018;89(8):1800061. doi:10.1002/srin.201800061
  • Liu WG, Xing XD, Zuo HB. Effect of TiO2 on viscosity and sulfide capacity of blast furnace slag containing barium. ISIJ Int 2020;60(9):1886–1891. doi:10.2355/isijinternational.ISIJINT-2019-627.
  • Ma X, Chen M, Xu H, et al. Sulphide capacity of CaO-SiO2-Al2O3-MgO system relevant to low MgO blast furnace slags. ISIJ Int 2016;56(12):2126–2131. doi:10.2355/isijinternational.ISIJINT-2016-274.
  • Schrama FNH, Beunder EM, Panda SK, et al. Optimal hot metal desulphurisation slag considering iron loss and sulphur removal capacity part II: evaluation. Ironmak Steelmak. 2021;48(1):14–24. doi:10.1080/03019233.2021.1882648.
  • Schrama FNH, Beunder EM, Panda SK, et al. Optimal hot metal desulphurisation slag considering iron loss and sulphur removal capacity part I: fundamentals. Ironmak Steelmak. 2022;49(6):658–659. doi:10.1080/03019233.2021.1882647.
  • Shatokha V. Slag parameters and sulphur partition in blast furnace hearth: Ukrainian case and international comparison. Ironmak Steelmak. 2022;49(1):60–69. doi:10.1080/03019233.2021.1966265.
  • Zhou Y, Gao YM, Ma XJ, et al. Preparatioon of FeO and its stability at room temperature. J Wuhan Univ Sci Technol. 2013;36(5):383–386.
  • Carles V, Alphonse P, Tailhades P, et al. Study of thermal decomposition of FeC2O4·2H2O under hydrogen. Thermochim Acta. 1999;334:107–113.
  • Boyanov B, Xhadzhie D. Study of thermal decomposition of FeC2O4·2H2O. Thermochim Acta. 1985;93:89–92.
  • Zhao LS. Study on thermodynamic properties of CaO-SiO2-Al2O3-MgO-FetO slags. Shenyang: Northeast University; 2013.
  • Wang CL, Lv Q, Zhang SH, et al. Study on sulphide capacity of CaO-SiO2-Al2O3-MgO-FetO slags. J Univ Sci Technol Beijing. 2006;13(3):213–217. doi:10.1016/s1005-8850(06)60045-5.
  • Chen GY, Kang JL, Wu SJ, et al. The effect of TiO2 on the viscosity of furnace slag. J Inn Mong Univ Sci Technol. 2018;37(4):338–342.
  • Zhao MX, Li M, Ma JF, et al. Effect of TiO2 on the viscosity of blast furnace slag. Res Iron Steel. 2015;43:1–4.
  • Park H, Park J-Y, Kim GH, et al. Effect of TiO2 on the viscosity and slag structure in blast furnace type slags. Steel Res Int 2012;83(2):150–156. doi:10.1002/srin.201100249.
  • Gao YH, Liang ZY, Liu QC, et al. Effect of TiO2 on the slag properties for CaO-SiO2-MgO-Al2O3-TiO2 system. Asian J Chem 2012;24(11):5337–5340.
  • Yu JL. Optimum composition of CaO-SiO2-MgO-Al2O3-CaF2 refining slag for removing inclusions and sulphur from steel. Iron Steel. 1989;24(1):17–21.
  • Hao N, Wang XH, Liu JG, et al. Effect of MgO content on desulphurization of CaO-Al2O3-SiO2-MgO slag. Steelmaking. 2009;25(4):16–19.
  • Qu Y. Principles of steelmaking. Beijing: The Metallurgy Industry Press; 1980, 135.
  • Lee YS, Min DJ, Jung SM, et al. Influence of basicity and FeO content on viscosity of blast furnace type slags containing FeO. ISIJ Int 2004;44(8):1283–1290. doi:10.2355/isijinternational.44.1283nzo
  • Nzotta MM, Du S, Seetharaman S. A study of the sulfide capacities of iron-oxide containing slags. Metall Mater Trans B. 1999;30B:909–920. doi:10.1007/s11663-999-0096-4.
  • Duffy JA, Ingram MD. Establishment of an optical scale for Lewis basicity in inorganic oxyacids, Molten salts, and glasses. J Am Chem Soc 1971;93(24):6448–6454. doi:10.1021/ja00753a019.
  • Sosinsky DJ, Sommerville ID. The composition and temperature dependence of the sulfide capacity of metallurgical slags. Metall Mater Trans B. 1983;17B:331–337. doi:10.1007/bf02655080.
  • Young RW, Duffy JA, Hassall GJ. Use of the optical basicity concept for determining phosphorus and sulphur slag metal partitions. Ironmak Steelmak. 1992;19(3):201–219.
  • Zhang GH, Chou KC, Pal U. Estimation of sulfide capacities of multicomponent slags using optical basicity. ISIJ Int 2013;53(5):761–767. doi:10.2355/isijinternational.53.761.
  • Tsao T, Katayama HG. Sulphur distribution between liquid iron and CaO-MgO- Al2O3-SiO2 slags used for ladle refining. Transactions ISIJ. 1986;26(8):717–723. doi:10.2355/isijinternational1966.26.717.

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