Fundamentals of Silico-Ferrite of Calcium and Aluminum (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of CaO:SiO2 Ratio

被引:74
|
作者
Webster, Nathan A. S. [1 ,2 ]
Pownceby, Mark I. [1 ]
Madsen, Ian C. [1 ]
Studer, Andrew J. [2 ]
Manuel, James R. [3 ]
Kimpton, Justin A. [4 ]
机构
[1] CSIRO Mineral Resources Flagship, Clayton, Vic 3169, Australia
[2] Australian Nucl Sci & Technol Org, Kirrawee Dc, NSW 2232, Australia
[3] CSIRO Mineral Resources Flagship, Kenmore, Qld 4069, Australia
[4] Australian Synchrotron, Clayton, Vic 3168, Australia
关键词
CRYSTAL-STRUCTURE; X-RAY; MINERAL PHASES; TEMPERATURE-DEPENDENCE; FORMATION MECHANISMS; NEUTRON-DIFFRACTION; QUARTZ; REFINEMENT;
D O I
10.1007/s11663-014-0137-5
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Effects of basicity, B (CaO:SiO2 ratio) on the thermal range, concentration, and formation mechanisms of silico-ferrite of calcium and aluminum (SFCA) and SFCA-I iron ore sinter bonding phases have been investigated using an in situ synchrotron X-ray diffraction-based methodology with subsequent Rietveld refinement-based quantitative phase analysis. SFCA and SFCA-I phases are the key bonding materials in iron ore sinter, and improved understanding of the effects of processing parameters such as basicity on their formation and decomposition may assist in improving efficiency of industrial iron ore sintering operations. Increasing basicity significantly increased the thermal range of SFCA-I, from 1363 K to 1533 K (1090 A degrees C to 1260 A degrees C) for a mixture with B = 2.48, to similar to 1339 K to 1535 K (1066 A degrees C to 1262 A degrees C) for a mixture with B = 3.96, and to similar to 1323 K to 1593 K (1050 A degrees C to 1320 A degrees C) at B = 4.94. Increasing basicity also increased the amount of SFCA-I formed, from 18 wt pct for the mixture with B = 2.48 to 25 wt pct for the B = 4.94 mixture. Higher basicity of the starting sinter mixture will, therefore, increase the amount of SFCA-I, considered to be more desirable of the two phases. Basicity did not appear to significantly influence the formation mechanism of SFCA-I. It did, however, affect the formation mechanism of SFCA, with the decomposition of SFCA-I coinciding with the formation of a significant amount of additional SFCA in the B = 2.48 and 3.96 mixtures but only a minor amount in the highest basicity mixture. In situ neutron diffraction enabled characterization of the behavior of magnetite after melting of SFCA produced a magnetite plus melt phase assemblage.
引用
收藏
页码:2097 / 2105
页数:9
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  • [1] Fundamentals of Silico-Ferrite of Calcium and Aluminum (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of CaO:SiO2 Ratio
    Nathan A. S. Webster
    Mark I. Pownceby
    Ian C. Madsen
    Andrew J. Studer
    James R. Manuel
    Justin A. Kimpton
    [J]. Metallurgical and Materials Transactions B, 2014, 45 : 2097 - 2105
  • [2] Fundamentals of Silico-Ferrite of Calcium and Aluminum (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of MgO on Phase Formation During Heating
    Nathan A. S. Webster
    Mark I. Pownceby
    James R. Manuel
    Rachel Pattel
    Justin A. Kimpton
    [J]. JOM, 2021, 73 : 299 - 305
  • [3] Fundamentals of Silico-Ferrite of Calcium and Aluminum (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of MgO on Phase Formation During Heating
    Webster, Nathan A. S.
    Pownceby, Mark, I
    Manuel, James R.
    Pattel, Rachel
    Kimpton, Justin A.
    [J]. JOM, 2021, 73 (01) : 299 - 305
  • [4] Fundamentals of silico-ferrite of calcium and aluminium (SFCA) and SFCA-I iron ore sinter bonding phase formation: effects of mill scale addition
    Webster, Nathan A. S.
    Pownceby, Mark I.
    Pattel, Rachel
    [J]. POWDER DIFFRACTION, 2017, 32 : S85 - S89
  • [5] Fundamentals of Silico-Ferrite of Calcium and Aluminium (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of MgO Source on Phase Formation during Heating
    Webster, Nathan A. S.
    Pownceby, Mark, I
    Fan, Rong
    Brand, Helen E. A.
    [J]. ISIJ INTERNATIONAL, 2022, 62 (04) : 652 - 657
  • [6] Fundamentals of Silico-Ferrite of Calcium and Aluminium (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation: Effects of Titanomagnetite-based Ironsand and Titanium Addition
    Webster, Nathan A. S.
    Churchill, Jack G.
    Tufaile, Felipe
    Pownceby, Mark I.
    Manuel, James R.
    Kimpton, Justin A.
    [J]. ISIJ INTERNATIONAL, 2016, 56 (10) : 1715 - 1722
  • [7] Effects of Gibbsite, Kaolinite and Al-rich Goethite as Alumina Sources on Silico-Ferrite of Calcium and Aluminium (SFCA) and SFCA-I Iron Ore Sinter Bonding Phase Formation
    Webster, Nathan A. S.
    O'Dea, Damien P.
    Ellis, Ben G.
    Pownceby, Mark I.
    [J]. ISIJ INTERNATIONAL, 2017, 57 (01) : 41 - 47
  • [8] Thermodynamic stability of SFCA (silico-ferrite of calcium and aluminum) and SFCA-I phases
    Koryttseva, Anastasia
    Webster, Nathan A. S.
    Pownceby, Mark I.
    Navrotsky, Alexandra
    [J]. JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 2017, 100 (08) : 3646 - 3651
  • [9] Fundamentals of Silico-Ferrite of Calcium and Aluminium (SFCA) Iron Ore Sinter Bonding Phase Formation: Effects of Titanium on Crystallisation during Cooling
    Webster, Nathan A. S.
    Pownceby, Mark I.
    Pattel, Rachel
    Manuel, James R.
    Kimpton, Justin A.
    [J]. ISIJ INTERNATIONAL, 2019, 59 (06) : 1007 - 1010
  • [10] Fundamentals of Silico-Ferrite of Calcium and Aluminium (SFCA) Iron Ore Sinter Bonding Phase Formation: Effects of Basicity and Magnesium on Crystallisation during Cooling
    Webster, Nathan A. S.
    Pownceby, Mark I.
    Pattel, Rachel
    Manuel, James R.
    Kimpton, Justin A.
    [J]. ISIJ INTERNATIONAL, 2019, 59 (02) : 263 - 267