Numerical analysis of carbon saving potential in a top gas recycling oxygen blast furnace

被引:2
|
作者
Xue-feng She [1 ]
Xiu-wei An [2 ]
Jing-song Wang [1 ]
Qing-guo Xue [1 ]
Ling-tan Kong [1 ]
机构
[1] State Key Laboratory of Advanced Metallurgy,University of Science and Technology Beijing
[2] Qingdao Special Steel Company Limited
关键词
Blast furnace process; Direct reduction degree; Carbon consumption; Direct reduction; Carbon saving potential; Oxygen blast furnace;
D O I
暂无
中图分类号
TF53 [高炉熔冶过程];
学科分类号
摘要
Aiming at the current characteristics of blast furnace(BF)process,carbon saving potential of blast furnace was investigated from the perspective of the relationship between degree of direct reduction and carbon consumption.A new relationship chart between carbon consumption and degree of direct reduction,which can reflect more real situation of blast furnace operation,was established.Furthermore,the carbon saving potential of hydrogen-rich oxygen blast furnace(OBF)process was analyzed.Then,the policy implications based on this relationship chart established were suggested.On this basis,the method of improving the carbon saving potential of blast furnace was recycling the top gas with removal of CO;and H;O or increasing hydrogen in BF gas and full oxygen blast.The results show that the carbon saving potential in traditional blast furnace(TBF)is only 38-56kg·t;while that in OBF is 138kg·t;.Theoretically,the lowest carbon consumption of OBF is 261kg·t;and the corresponding degree of direct reduction is 0.04.In addition,the theoretical lowest carbon consumption of hydrogen-rich OBF is 257kg·t;.The modeling analysis can be used to estimate the carbon savings potential in new ironmaking process and its related CO;emissions.
引用
收藏
页码:608 / 616
页数:9
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