Validation of CFD-DEM model for iron ore reduction at particle level and parametric study

被引:23
作者
E, Dianyu [1 ,2 ]
机构
[1] Jiangxi Univ Sci & Technol, Int Res Inst Minerals Met & Mat, Nanchang 330013, Jiangxi, Peoples R China
[2] Monash Univ, Dept Chem Engn, Clayton, Vic 3800, Australia
来源
PARTICUOLOGY | 2020年 / 51卷
基金
中国国家自然科学基金;
关键词
Iron ore reduction; Chemical reaction; Blast furnace; Discrete element method; Computational fluid dynamics; CO2 EMISSION TECHNOLOGIES; GAS-SOLID FLOW; CARBON-MONOXIDE; BLAST-FURNACE; HEAT-TRANSFER; PARTICULATE SYSTEMS; MASS-TRANSFER; PACKED-BED; SIMULATION; HYDROGEN;
D O I
10.1016/j.partic.2019.10.008
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Iron ore reduction is a primary unit operation in current metallurgy processes and dominates the energy consumption and greenhouse gas (GHG) emissions of the iron-making process. Therefore, even a slight improvement of the energy efficiency or GHG emissions of iron ore reduction would yield considerable benefits to the cost of pig iron and, more importantly, to mitigation of the associated carbon footprint. The current study presents a discrete model that describes the iron ore reduction process for a single pellet. The transient reaction progress can be predicted and is validated against experimental measurements under various operating conditions, including different reducing gases and temperatures. The effects of pressure, isothermality, gas composition, and flow rate on reduction are investigated. The reduction rate increases significantly with increasing pressure until 5 atm, and the entire reduction process occurs more slowly under non-isothermal conditions than under isothermal conditions. This work provides a solid foundation for the development of a comprehensive particulate system model that considers both heat and mass transfer. (C) 2019 Chinese Society of Particuology and Institute of Process Engineering, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:163 / 172
页数:10
相关论文
共 45 条
[11]   Effect of particle shape and size on effective thermal conductivity of packed beds [J].
Gan, Jieqing ;
Zhou, Zongyan ;
Yu, Aibing .
POWDER TECHNOLOGY, 2017, 311 :157-166
[12]   Gas-solid flow and heat transfer in fluidized beds with tubes: Effects of material properties and tube array settings [J].
Hou, Q. F. ;
Zhou, Z. Y. ;
Yu, A. B. .
POWDER TECHNOLOGY, 2016, 296 :59-71
[13]   Computational Study of the Effects of Material Properties on Heat Transfer in Gas Fluidization [J].
Hou, Qin-Fu ;
Zhou, Zong-Yan ;
Yu, Ai-Bing .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2012, 51 (35) :11572-11586
[14]   DEM-based virtual experimental blast furnace: A quasi-steady state model [J].
Hou, Qinfu ;
E, Dianyu ;
Kuang, Shibo ;
Li, Zhaoyang ;
Yu, A. B. .
POWDER TECHNOLOGY, 2017, 314 :557-566
[15]  
Incropera F.P., 1996, Fundamentals of heat and mass transfer, V6
[16]   Numerical study of hot charge operation in ironmaking blast furnace [J].
Kuang, S. B. ;
Li, Z. Y. ;
Yan, D. L. ;
Qi, Y. H. ;
Yu, A. B. .
MINERALS ENGINEERING, 2014, 63 :45-56
[17]   CFD-DEM modelling and simulation of pneumatic conveying: A review [J].
Kuang, Shibo ;
Zhou, Mengmeng ;
Yu, Aibing .
POWDER TECHNOLOGY, 2020, 365 :186-207
[18]   Review on Modeling and Simulation of Blast Furnace [J].
Kuang, Shibo ;
Li, Zhaoyang ;
Yu, Aibing .
STEEL RESEARCH INTERNATIONAL, 2018, 89 (01)
[19]   Development of DEM-CFD Simulation of Combustion Flow in Incinerator with the Representative Particle Model [J].
Kuwagi, Kenya ;
Takami, Toshihiro ;
Bin Alias, Azri ;
Rong, Degang ;
Takeda, Hiroshi ;
Yanase, Shinichiro ;
Kouchi, Toshinori ;
Hyakutake, Toru ;
Yokoyama, Kaoru ;
Ohara, Yoshiyuki ;
Takahashi, Nobuo ;
Sugitsue, Noritake .
JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 2016, 49 (05) :425-434
[20]  
MCKEWAN WM, 1960, T AM I MIN MET ENG, V218, P2