Insights into the segregation in the blast furnace charging system: from the stockhouse to top hoppers

被引:0
|
作者
Hadi, A. [1 ]
Pang, Y. [1 ]
Adema, A. [2 ]
van der Stel, J. [2 ]
Schott, D. [1 ]
机构
[1] Delft Univ Technol, Delft, Netherlands
[2] Tata Steel Europe, Ijmuiden, Netherlands
来源
METALLURGIA ITALIANA | 2024年 / 11-12期
关键词
SEGREGATION; BLAST FURNACE; DEM; GRANULAR MATERIALS; DEM UPSCALING; PELLETS AND SINTER; ROLLING FRICTION; DEM SIMULATION;
D O I
暂无
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
Segregation in the blast furnace (BF) charging system is a significant challenge, as it can negatively affect the burden permeability and reduce BF efficiency. The discrete element method (DEM) is a valuable tool to gain insights into segregation dynamics in the BF. While previous DEM studies have extensively investigated segregation in the BF, the majority of them used the top hoppers as the starting point and assumed a pre-determined iron ore mixture composition (usually fully mixed state) within the top hopper. Considering the fact that the final segregation on the BF burden is significantly influenced by the degree of the segregation within the top hopper, it is crucial to precisely determine the degree of mixing of iron ore pellets and sinter within the hopper. In this study, we model the BF charging process from the stockhouse (i.e. weighing bunkers) until the top hopper at the industrial scale, aiming to elucidate how previous handling steps can affect the mixture composition within the hopper. Our findings reveal that the degree of mixing of pellets and sinter within the weighing bunkers (WBs) significantly influences the quality of mixing within the top hopper. Under the current practice where each materials are charged into separate WB, they are significantly segregated in the top hopper. We also demonstrated that mixing pellets and sinter before charging them into the WBs, can significantly reduce segregation within the hopper. The results of this study enhance our understanding of the segregation phenomenon in the BF charging system, providing insights that can be used for optimising the charging process.
引用
收藏
页数:84
相关论文
共 50 条
  • [31] Charge material distribution behaviour in blast furnace charging system
    Chibwe, Deside Kudzai
    Evans, Geoffrey Michael
    Doroodchi, Elham
    Monaghan, Brian Joseph
    Pinson, David John
    Chew, Sheng Jason
    POWDER TECHNOLOGY, 2020, 366 : 22 - 35
  • [32] A model for burden distribution and gas flow distribution of bell-less top blast furnace with parallel hoppers
    Shi, Lin
    Zhao, Guangsheng
    Li, Mingxin
    Ma, Xiang
    APPLIED MATHEMATICAL MODELLING, 2016, 40 (23-24) : 10254 - 10273
  • [33] Laser measurement and image analysis of blast furnace bell-less top charging
    Du, Peng-Yu
    Cheng, Shu-Sen
    Beijing Keji Daxue Xuebao/Journal of University of Science and Technology Beijing, 2010, 32 (01): : 20 - 26
  • [34] Simulation of charging in bell-less top blast furnace with distinct element method
    Lin, Chengcheng
    Du, Hegui
    Kang T'ieh/Iron and Steel (Peking), 1998, 33 (02): : 4 - 8
  • [35] MECHANIZED SINTER FEED SYSTEM TO HOPPERS OF A 5000-M3 BLAST-FURNACE
    GORODETSKII, AN
    ARIST, LM
    YAROVINSKII, EA
    KAGOLOVSKII, AE
    METALLURGIST, 1976, 20 (5-6) : 384 - 385
  • [36] Investigation of non-uniform material distribution of top charging system at Gary Works No. 13 blast furnace
    Zhao, YF
    Graves, HW
    Yaniga, SE
    Nosich, MA
    60TH IRONMAKING CONFERENCE PROCEEDINGS, 2001, 60 : 23 - 35
  • [38] BURDEN DISTRIBUTION IN THE BLAST-FURNACE WITH A ROTATING CHUTE AS CHARGING SYSTEM
    KREUTZ, L
    BERGMANN, B
    STAHL UND EISEN, 1988, 108 (19): : 874 - 880
  • [39] Pulverized-coal injection at a blast furnace with a conical charging system
    Filatov S.V.
    Basov V.I.
    Kurunov I.F.
    Steel in Translation, 2015, 45 (07) : 503 - 506
  • [40] ANALYSIS OF CHARGING-SYSTEM CAPACITY IN THE RECONSTRUCTION OF A BLAST-FURNACE
    BOLSHAKOV, VI
    METALLURGIST, 1986, 30 (1-2) : 47 - 49