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辽宁朝阳低铁高钛高钒铁精矿成球及球团固结机制研究

郭宇峰 解焱钦 陈茅 王帅 张艺曦 夏鑫垚 陈凤

郭宇峰, 解焱钦, 陈茅, 王帅, 张艺曦, 夏鑫垚, 陈凤. 辽宁朝阳低铁高钛高钒铁精矿成球及球团固结机制研究[J]. 钢铁钒钛, 2026, 47(3): 141-148. doi: 10.7513/j.issn.1004-7638.2026.03.016
引用本文: 郭宇峰, 解焱钦, 陈茅, 王帅, 张艺曦, 夏鑫垚, 陈凤. 辽宁朝阳低铁高钛高钒铁精矿成球及球团固结机制研究[J]. 钢铁钒钛, 2026, 47(3): 141-148. doi: 10.7513/j.issn.1004-7638.2026.03.016
GUO Yufeng, XIE Yanqin, CHEN Mao, WANG Shuai, ZHANG Yixi, XIA Xinyao, CHEN Feng. Study on the pelletization and agglomeration mechanisms of low-iron, high-titanium, high-vanadium iron concentrate in Chaoyang, Liaoning[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 141-148. doi: 10.7513/j.issn.1004-7638.2026.03.016
Citation: GUO Yufeng, XIE Yanqin, CHEN Mao, WANG Shuai, ZHANG Yixi, XIA Xinyao, CHEN Feng. Study on the pelletization and agglomeration mechanisms of low-iron, high-titanium, high-vanadium iron concentrate in Chaoyang, Liaoning[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 141-148. doi: 10.7513/j.issn.1004-7638.2026.03.016

辽宁朝阳低铁高钛高钒铁精矿成球及球团固结机制研究

doi: 10.7513/j.issn.1004-7638.2026.03.016
基金项目: 钒钛联盟2023年度协同研发项目“低铁高钛高钒型铁精矿冶金应用基础研究”(PGWX2023028);2025年度中南大学研究生自主探索创新项目(2025ZZTS0473)。
详细信息
    作者简介:

    郭宇峰,1970年出生,男,内蒙古呼伦贝尔人,博士,教授;研究方向:复杂矿综合利用,E-mail:yfguo@csu.edu.cn

    通讯作者:

    王帅,1988年出生,男,山西祁县人,博士,副教授;研究方向:复杂矿综合利用,E-mail:s.wang@csu.edu.cn

  • 中图分类号: TF046.6;TF533

Study on the pelletization and agglomeration mechanisms of low-iron, high-titanium, high-vanadium iron concentrate in Chaoyang, Liaoning

  • 摘要: 辽宁朝阳地区钒钛磁铁矿资源储量超过200亿t,分选铁精矿具有高硅、高钛、高钒特征,矿物组成复杂,且尚无成熟球团制备工艺。开展该精矿成球及球团固结机制研究,对该地区特色钒钛资源高效综合利用具有重要意义。通过采用正交试验与单因素试验,研究混合料水分、造球时间、润磨和高压辊磨对生球性能的影响。结果表明,影响生球抗压强度的因素依次为高压辊磨、润磨、造球时间和混合料水分;影响落下强度的因素依次为高压辊磨、造球时间、混合料水分和润磨。适宜工艺参数为膨润土含量1.2%、混合料水分8%、造球时间12 min;生球经900 ℃预热8 min、1100 ℃焙烧10 min后,可获得抗压强度2641 N/球且冶金性能良好的氧化球团。
  • 图  1  辽西钒钛磁铁矿XRD物相分析

    Figure  1.  XRD phase analysis of Liaoxi vanadium-titanium magnetite

    图  2  辽西钒钛磁铁矿颗粒形貌

    (a) 钛磁铁矿与钛铁矿嵌布;(b) 钛磁铁矿与硅酸盐嵌布;(c) 钛铁矿与硅酸盐嵌布;(d) 榍石嵌布状态

    Figure  2.  Particle morphology micrographs of Liaoxi vanadium-titanium magnetite

    图  3  膨润土用量对生球性能的影响

    Figure  3.  Influence of bentonite dosage on green pellet properties

    图  4  造球时间对生球性能的影响

    Figure  4.  Influence of pelletizing time on green pellet properties

    图  5  混合料水分对生球性能的影响

    Figure  5.  Influence of mixture moisture content on green pellet properties

    图  6  润磨时间对生球性能的影响

    Figure  6.  Influence of conditioning-grinding time on green pellet properties

    图  7  高压辊磨对生球性能的影响

    Figure  7.  Influence of high-pressure roller grinding on green pellet properties

    图  8  辽西钒钛磁铁矿氧化球团SEM分析

    (a)氧化球团显微结构;(b)区域A局部放大

    Figure  8.  SEM analysis of Liaoxi vanadium-titanium magnetite oxidized pellets

    图  9  辽西钒钛磁铁矿高炉气氛还原球SEM分析

    (a)还原球团显微结构;(b)区域B局部放大

    Figure  9.  SEM analysis of Liaoxi vanadium-titanium magnetite pellets reduced under blast furnace Atmosphere

    表  1  试验用铁精矿与膨润土化学成分

    Table  1.   Chemical compositions of iron ore concentrate and bentonite %

    SamplesTFeTiO2V2O5FeOSiO2CaOMgOAl2O3K2ONa2OSLOI
    Iron concentrate45.6818.551.6115.356.484.060.682.170.081.260.051.2
    Bentonite3.2357.813.922.8113.781.3016.7815.4
    下载: 导出CSV

    表  2  辽西钒钛磁铁矿粒度组成

    Table  2.   Particle size distribution of Liaoxi vanadium-titanium magnetite

    Particle size/mmw/%
    +0.850.17
    0.85~0.4250.30
    0.425~0.1801.01
    0.180~0.1257.00
    0.125~0.0872.43
    0.087~0.0756.18
    0.075~0.04516.10
    -0.04566.81
    下载: 导出CSV

    表  3  辽西钒钛磁铁矿静态成球性指数及比表面积

    Table  3.   Static pelletizability index and specific surface area of Liaoxi vanadium-titanium magnetite

    Maximum
    molecular
    water/%
    Maximum
    capillary
    water/%
    Sphericity
    Index(K
    Bulk density/
    (g·cm−3
    True density/
    (g·cm−3
    Specific
    surface area/
    (g·cm−3
    4.80 18.60 0.348 1.76 4.25 558
    下载: 导出CSV

    表  4  正交试验的因素与水平

    Table  4.   Factors and levels of the orthogonal experiment

    FactorA/%B/minC/minD/times
    Level 17800
    Level 281011
    Level 391222
    下载: 导出CSV

    表  5  正交试验结果

    Table  5.   Results of orthogonal experiment

    Test
    serial
    number
    Horizontal
    combination
    A/% B/min C/min D/time Compressive
    strength/
    (N·pellet−1
    Falling
    strength /
    times
    1 A1B1C1D1 7 8 0 0 11.3 3.0
    2 A1B2C2D2 7 10 1 1 11.9 4.1
    3 A1B3C3D3 7 12 2 2 18.3 9.8
    4 A2B1C2D3 8 8 1 2 14.4 4.95
    5 A2B2C3D1 8 10 2 0 13.3 3.45
    6 A2B3C1D2 8 12 0 1 11.1 4.0
    7 A3B1C3D2 9 8 2 1 14 3.8
    8 A3B2C1D3 9 10 0 2 10.8 2.65
    9 A3B3C2D1 9 12 1 0 13.5 4.45
    下载: 导出CSV

    表  6  各因素对抗压强度的影响分析

    Table  6.   Analysis of the influence of various factors on pellet compressive strength N/pellet

    Project K1 K2 K3 R
    A 41.5 38.8 38.3 3.2
    B 39.7 36 42.9 3.2
    C 38.1 37 43.5 6.5
    D 33.2 39.8 45.6 12.4
    下载: 导出CSV

    表  7  各因素对落下强度的影响分析

    Table  7.   Analysis of the influence of various factors on pellet drop strength times

    Project K1 K2 K3 R
    A 16.9 12.4 10.9 6
    B 11.75 10.2 18.25 6.5
    C 10.9 11.9 17.4 5.5
    D 9.65 13.5 17.05 7.4
    下载: 导出CSV

    表  8  辽西钒钛磁铁矿球团氧化球强度及冶金性能

    Table  8.   Oxidized pellet strength and metallurgical properties of Liaoxi vanadium-titanium magnetite pellets

    Oxidation sphere performance Metallurgical properties
    Compressive strength /(N.pellet−1) Drum strength
    (+6.3 mm)/%
    Abrasion index
    (−0.5 mm)/%
    Reduction degradation
    index (RDI+3.15)/%
    Degree of
    reduction (RI) /%
    Reduction swelling
    index (RSI) /%
    Preheated pellet Roasted pellet
    552 2641 93.25 2.18 98.60 62.35 6.33
    下载: 导出CSV

    表  9  辽西钒钛磁铁矿氧化球各点位元素原子含量

    Table  9.   Elemental content at various points in Liaoxi vanadium-titanium magnetite oxidized pellets %

    PointFeTiVSiCaMgAlO
    123.220.80.40.40.30.30.853.8
    224.220.00.20.00.00.20.054.8
    329.016.00.50.40.10.11.052.9
    49.70.50.122.34.96.73.052.8
    下载: 导出CSV

    表  10  辽西钒钛磁铁矿氧化球各点位元素原子含量

    Table  10.   Elemental content at various points in Liaoxi vanadium-titanium magnetite oxidized pellets %

    PointFeTiVSiCaMgAlO
    581.83.50.32.81.800.89.0
    617.80.2016.52.29.60.453.3
    75.30.30.122.910.06.21.154.2
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-10-30
  • 录用日期:  2026-02-09
  • 修回日期:  2025-12-23
  • 刊出日期:  2026-06-29

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