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Published in: Journal of Iron and Steel Research International 11/2023

15-05-2023 | Original Paper

Effect of oxygen enrichment on sintering behavior of high proportion vanadium–titanium magnesite concentrates

Authors: Shi-hong Peng, Hao Liu, Ze-zheng Sun, Chang-wei Li, Yue-lin Qin, Wei-qiang Liu, Guang Wang

Published in: Journal of Iron and Steel Research International | Issue 11/2023

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Abstract

To achieve high-efficiency utilization of complex and unmanageable iron-containing minerals, the effects of oxygen enrichment on productivity, yield, flame front speed, exhaust gas peak temperature, and desulphurization reaction of the vanadium–titanium magnetite sintering process as well as sinter tumble index and mineralogy were clarified, with oxygen enrichment concentrations ranging from 21 to 29 vol.%. Results indicated that with increasing the oxygen enrichment concentration from 21 to 27 vol.%, the flame front speed increased from 30.3 to 40.0 mm min−1, the yield enhanced from 72% to 77%, and the productivity augmented from 1.83 to 2.67 t m−2 h−1; in the meantime, the tumble index was improved from 73.7% to 77.9%, and the exhaust gas peak temperature rose from 376.4 to 484.8 °C. The main reason for the improvement in sintering properties was the increased combustibility of fuels and the generation of proper liquid phase that improved the permeability of the packed bed. The improved sinter strength is mainly due to the increase in the phase fraction of silico-ferrites of calcium and aluminium. In addition, oxygen enrichment sintering could significantly increase the desulphurization level of vanadium–titanium magnetite sinter and the rate of desulphurization reaction during sintering process.
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Metadata
Title
Effect of oxygen enrichment on sintering behavior of high proportion vanadium–titanium magnesite concentrates
Authors
Shi-hong Peng
Hao Liu
Ze-zheng Sun
Chang-wei Li
Yue-lin Qin
Wei-qiang Liu
Guang Wang
Publication date
15-05-2023
Publisher
Springer Nature Singapore
Published in
Journal of Iron and Steel Research International / Issue 11/2023
Print ISSN: 1006-706X
Electronic ISSN: 2210-3988
DOI
https://doi.org/10.1007/s42243-023-00980-y

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