Hydrogen Reduction of Pre-oxidized New Zealand Titanomagnetite Ironsand in a Fluidized Bed Reactor

被引:4
作者
Prabowo, Sigit W. [1 ,2 ]
Longbottom, Raymond J. [2 ]
Monaghan, Brian J. [2 ]
del Puerto, Diego [3 ]
Ryan, Martin J. [3 ]
Bumby, Chris W. [1 ,4 ]
机构
[1] Victoria Univ Wellington, Fac Engn, Robinson Res Inst, Lower Hutt 5046, New Zealand
[2] Univ Wollongong, Sch Mech Mechatron & Biomed Engn, Pyromet Grp, Wollongong, NSW 2522, Australia
[3] Callaghan Innovat, Lower Hutt 5040, New Zealand
[4] Victoria Univ Wellington, MacDiarmid Inst Adv Mat & Nanotechnol, Wellington, New Zealand
关键词
TITANIA-FERROUS ORE; PREOXIDATION; CONCENTRATE; MAGNETITE; STICKING; BEHAVIORS; MIGRATION; MECHANISM; KINETICS; PHASE;
D O I
10.1007/s11837-021-05095-x
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Hydrogen gas is a potential alternative reducing agent that could substantially decrease CO2 emissions from the ironmaking process in New Zealand (NZ). This paper investigates the reduction of pre-oxidized NZ titanomagnetite ironsand using hydrogen gas in a laboratory scale fluidized bed (FB) reactor, at temperatures ranging from 800 degrees C to 1000 degrees C. The results show that pre-oxidation can accelerate the reduction rate at temperatures <= 900 degrees C compared to unoxidized ironsand, with no sticking of particles observed at any temperature investigated. The initial reduction of titanohematite proceeds swiftly, resulting in very high initial PH2O levels (similar to 0.9 atm), which then plateau through the reaction's middle stages as the reduction of wustite to iron is thermodynamically limited. Multiple sub-micron voids are formed within each particle, which appears to enable rapid diffusion of hydrogen gas to the inner regions of the particle, thus enhancing the reduction rate in the latter stages of the reaction.
引用
收藏
页码:885 / 898
页数:14
相关论文
共 50 条
  • [21] Effect of pre-oxidation degree on gaseous reduction of pre-oxidized ilmenite concentrate by CO
    Shi-qing Zhao
    Xiao-dong Lv
    Zhi-ming Yan
    Xue-wei Lv
    Wei Lv
    Chen-guang Bai
    Journal of Iron and Steel Research International, 2022, 29 : 881 - 890
  • [22] Synergistic reduction of hematite by coconut shell charcoal and hydrogen in a fluidized bed
    Zhang, Jiehan
    Li, Shiyuan
    Wang, Linwei
    RENEWABLE ENERGY, 2025, 241
  • [23] Reduction of iron oxides by carbon in a circulating fluidized bed reactor
    Srinivasan, NS
    POWDER TECHNOLOGY, 2002, 124 (1-2) : 28 - 39
  • [24] KINETICS OF NO REDUCTION BY ANTHRACITE CHAR IN A FLUIDIZED-BED REACTOR
    MATOS, MAA
    PEREIRA, JMA
    VENTURA, JMP
    FUEL, 1990, 69 (11) : 1435 - 1439
  • [25] HYDROGEN REDUCTION OF NATURAL ILMENITE IN A FLUIDIZED-BED
    SUN, K
    AKIYAMA, T
    TAKAHASHI, R
    YAGI, J
    ISIJ INTERNATIONAL, 1995, 35 (04) : 360 - 366
  • [26] Hydrogen Reduction of NiO Particles in a Single-Stage Fluidized-Bed Reactor without Sticking
    Oh, Chang-Sup
    Kim, Hang Goo
    Kim, Yong Ha
    KOREAN JOURNAL OF MATERIALS RESEARCH, 2016, 26 (02): : 79 - 83
  • [27] Kinetics and Mathematical Modeling of Hydrogen Reduction of NiO-WO3 Precursors in Fluidized Bed Reactor
    Ahmed, Hesham M.
    El-Geassy, Abdel-Hady A.
    Viswanathan, Nurni Neelakantan
    Seetharaman, Seshadri
    ISIJ INTERNATIONAL, 2011, 51 (09) : 1383 - 1391
  • [28] Investigation of Direct Reduction Mechanism of Attepe Iron Ore by Hydrogen in a Fluidized Bed
    Dilmac, Nesibe
    Yoruk, Sedat
    Gulaboglu, Sahin M.
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2015, 46 (05): : 2278 - 2287
  • [29] Photocatalytic hydrogen production in a UV-irradiated fluidized bed reactor
    Reilly, Kevin
    Taghipour, Fariborz
    Wilkinson, David P.
    WHEC 2012 CONFERENCE PROCEEDINGS - 19TH WORLD HYDROGEN ENERGY CONFERENCE, 2012, 29 : 513 - 521
  • [30] Effects of H2, CO, and a gas mixture on the reduction process of raw and pre-oxidized ilmenite concentrate powders
    Chen, Furong
    Lv, Wei
    Zhou, Gangwei
    Liu, Zhuoliang
    Chu, Mansheng
    Lv, Xuewei
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 55 : 502 - 511