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配加褐铁矿改善钒钛氧化球团性能研究

令新科 胡鹏 林文康 谢洪恩 蒲水强 朱凤湘 胡猛

令新科, 胡鹏, 林文康, 谢洪恩, 蒲水强, 朱凤湘, 胡猛. 配加褐铁矿改善钒钛氧化球团性能研究[J]. 钢铁钒钛, 2026, 47(1): 140-148. doi: 10.7513/j.issn.1004-7638.2026.01.016
引用本文: 令新科, 胡鹏, 林文康, 谢洪恩, 蒲水强, 朱凤湘, 胡猛. 配加褐铁矿改善钒钛氧化球团性能研究[J]. 钢铁钒钛, 2026, 47(1): 140-148. doi: 10.7513/j.issn.1004-7638.2026.01.016
LING Xinke, HU Peng, LIN Wenkang, XIE Hongen, PU Shuiqiang, ZHU Fengxiang, HU Meng. Study on improving the performance of vanadium-titanium magnetite oxidized pellets with limonite[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(1): 140-148. doi: 10.7513/j.issn.1004-7638.2026.01.016
Citation: LING Xinke, HU Peng, LIN Wenkang, XIE Hongen, PU Shuiqiang, ZHU Fengxiang, HU Meng. Study on improving the performance of vanadium-titanium magnetite oxidized pellets with limonite[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(1): 140-148. doi: 10.7513/j.issn.1004-7638.2026.01.016

配加褐铁矿改善钒钛氧化球团性能研究

doi: 10.7513/j.issn.1004-7638.2026.01.016
详细信息
    作者简介:

    令新科,1996年出生,男,甘肃天水人,副研究员,主要从事钒钛磁铁矿烧结、球团造块技术工艺研究,E-mail:l390776128123@163.com

  • 中图分类号: TF046.6

Study on improving the performance of vanadium-titanium magnetite oxidized pellets with limonite

  • 摘要: 为了提高钒钛矿氧化球团抗压强度,通过相关球团试验,研究了配加褐铁矿对钒钛矿球团生球质量、成品球团强度、冶金性能和膨润土配比的影响,并通过对球团焙烧过程体积变化、物相组成等分析,阐述了褐铁矿提高钒钛矿氧化球团抗压强度的作用机理。研究结果表明,褐铁矿对强化钒钛矿生球和成品球团质量有显著的作用,随着褐铁矿配比的增加,生球抗压强度、落下次数和成品球抗压强度呈增加趋势,当褐铁矿配比为9%时,成品球团抗压强度为3514 N/个。随着褐铁矿配比增加,T10(软化开始温度)、T40(软化终了温度)和软化区间减小,熔化区间增加,RSI变化不明显。随着褐铁矿替代膨润土比例增加,生球质量呈降低趋势,成品球团抗压强度先增大后减小,但均高于基准。配加适量的褐铁矿可以增加球团的低熔点相和孔隙率,磁铁矿氧化速率更快、氧化程度更均匀,球团孔隙分布更均匀且裂纹减少,成品球团抗压强度更高。
  • 图  1  含铁原料的XRD分析

    Figure  1.  XRD analysis of iron-bearing materials

    图  2  铁精矿微观形貌

    (a)白马精矿;(b)褐铁矿

    Figure  2.  Mineral phase structure of iron concentrate

    图  3  褐铁矿热重曲线

    Figure  3.  Thermogravimetric analysis (TGA) of limonite

    图  4  褐铁矿配比对钒钛磁铁矿生球质量的影响

    Figure  4.  Effect of limonite proportion on quality of green pellets of vanadium-titanium magnetite

    图  5  褐铁矿配比对钒钛磁铁矿成品球团抗压强度的影响

    Figure  5.  Effect of limonite proportion on compressive strength of sintered pellets of vanadium-titanium magnetite

    图  6  不同褐铁矿配比钒钛磁铁矿球团内部形貌

    Figure  6.  Internal morphology of vanadium-titanium magnetite pellets with different limonite proportions

    (a)0;(b)9%;(c)98%

    图  7  不同褐铁矿配比对钒钛磁铁矿球团熔滴性能的影响

    Figure  7.  Effect of different limonite proportions on melting and dripping properties of vanadium-titanium magnetite pellets

    图  8  褐铁矿替代膨润土对球团生球质量的影响

    Figure  8.  Effect of limonite substitution for bentonite on green pellet quality

    图  9  褐铁矿降低膨润土配比对成品球团抗压强度的影响

    Figure  9.  Effect of reducing bentonite proportion with limonite on compressive strength of sintered pellets

    图  10  球团焙烧过程体积变化

    (a)球团体积随温度的变化;(b)球团体积变化率随焙烧时间的变化

    Figure  10.  Volume change during pellet induration process

    图  11  球团矿物相组成及孔隙度分析

    Figure  11.  Phase compositions and porosity analysis of pellets

    物相组成:(a)JZ-BM,(b)LM-5,(c)JZ-LM;孔隙形貌:(d)JZ-BM,(e)LM-5,(f)JZ-LM

    表  1  含铁原料主要化学成分和烧损

    Table  1.   Main chemical compositions and losses on ignition of iron-bearing materials %

    Iron ore
    concentrate
    TFe FeO SiO2 CaO MgO Al2O3 TiO2 V2O5 Ig
    VTM 57.03 33.45 2.76 0.45 3.03 3.31 10.05 0.71 -1.88
    LM 30.75 <0.5 37.99 1.02 0.59 4.24 0.24 <0.1 7.24
    下载: 导出CSV

    表  2  含铁原料粒度组成

    Table  2.   Size distribution of iron-bearing materials %

    Iron ore
    concentrate
    >0.074 mm 0.074~
    0.047 mm
    0.047~
    0.038 mm
    <0.038 mm <0.074 mm
    VTM 9.09 16.26 8.61 66.04 90.91
    LM 12.14 20.62 6.68 60.56 87.86
    下载: 导出CSV

    表  3  含铁原料物理性能

    Table  3.   Physical properties of iron-bearing materials

    Iron ore
    concentrate
    Specific surface
    area /(cm2·g−1
    True density /(g·cm−3 Maximum capillary
    water capacity/%
    Maximum molecular
    water capacity/%
    K
    VTM 1876 4.06 33.73 7.23 0.273
    LM 2362 2.98 37.95 8.57 0.292
    下载: 导出CSV

    表  4  不同褐铁矿配比对钒钛磁铁矿球团熔滴性能和还原膨胀率的影响

    Table  4.   Effects of different limonite ratios on melting-dripping behavior and reduction swelling rate of vanadium-titanium magnetite pellets

    SchemeT10/℃T40/℃T40-T10/℃Ts/℃Td/℃Td-Ts /℃ΔPmax/kPaH/mmRSI/%
    JZ116112651041299150320417.5836.056.26
    LM-311581248901280148820822.3336.546.77
    LM-511451225801259150524632.0740.256.71
    下载: 导出CSV

    表  5  褐铁矿降低球团膨润土配比试验方案

    Table  5.   Experimental scheme for reducing bentonite proportion in pellets by adding limonite %

    SchemeLM-3LM-3-1LM-3-2LM-5LM-5-1LM-5-2
    VTM959595939393
    LM345567
    BT210210
    下载: 导出CSV

    表  6  褐铁矿降低膨润土配比钒钛磁铁矿球团化学成分

    Table  6.   Chemical compositions of vanadium-titanium magnetite pellets with reduced bentonite proportion by adding limonite %

    SchemeTFeFeOSiO2CaOMgOAl2O3TiO2V2O5
    JZ55.370.5153.570.372.903.3610.020.708
    LM-354.38<0.54.850.333.063.589.610.682
    LM-3-154.880.7244.620.292.993.459.580.687
    LM-3-255.00<0.54.490.242.923.559.480.504
    LM-554.250.6435.520.373.013.569.400.668
    LM-5-154.12<0.55.400.322.943.499.690.678
    LM-5-254.750.6435.080.282.873.369.370.539
    下载: 导出CSV
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  • 收稿日期:  2025-06-12
  • 修回日期:  2025-06-12
  • 网络出版日期:  2026-02-25
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