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Erschienen in: Journal of Iron and Steel Research International 3/2023

10.02.2023 | Original Paper

Kinetic study on microwave-enhanced direct reduction of titanomagnetite concentrate with coal

verfasst von: Peng Liu, Si-yu Gong, Yu-wen Chao, Bing-guo Liu, Li-bo Zhang, En-hui Wu

Erschienen in: Journal of Iron and Steel Research International | Ausgabe 3/2023

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Abstract

Titanomagnetite concentrate is one of the important titanium resources. The apparent activation energy (\({E}_{\mathrm{a}}\)) of the direct reduction of titanomagnetite concentrate was composed of two parts (average activation energy: \({\overline{E} }_{\mathrm{a}}={\overline{E} }_{\mathrm{a}-\mathrm{L}}+{E}_{\mathrm{a}-\mathrm{Step }1}\), where \({E}_{\mathrm{a}-\mathrm{L}}\) is the lattice energy of titanomagnetite concentrate, and \({E}_{\mathrm{a}-\mathrm{Step\ }1}\) is the activation energy of step 1 for the reduction of titanomagnetite concentrate in the route of Fe3+ \(\mathop{\longrightarrow}\limits^{\rm{Step}1}\) Fe2+ \(\mathop{\longrightarrow}\limits^{\rm{Step}2}\) Fe2O2+ \(\mathop{\longrightarrow}\limits^{\rm{Step}3}\) Fe0). \({\overline{E} }_{\mathrm{a}}\) (583.43 kJ/mol), \({\overline{E} }_{\mathrm{a}-\mathrm{L}}\) (426.4 kJ/mol), and \({E}_{\mathrm{a}-\mathrm{Step}1}\) (157.0 kJ/mol) were calculated by the model-free methods based on thermogravimetry and Dmol3 module. Combined with the analysis of activation energy fluctuation and the shifting trend of related mechanism functions, the reduction kinetic system with three main characteristics, namely nucleation, diffusion and concentration fluctuation, was established. In addition, the scanning electron microscopy comparison analysis of the samples from microwave reduction and conventional reduction shows that microwave heating could realize the microstructure Ti–Fe separation and reduce the lattice energy of the titanomagnetite concentrate, thus enhancing the reduction process by 7.68% from the perspective of activation energy.

Graphical abstract

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Metadaten
Titel
Kinetic study on microwave-enhanced direct reduction of titanomagnetite concentrate with coal
verfasst von
Peng Liu
Si-yu Gong
Yu-wen Chao
Bing-guo Liu
Li-bo Zhang
En-hui Wu
Publikationsdatum
10.02.2023
Verlag
Springer Nature Singapore
Erschienen in
Journal of Iron and Steel Research International / Ausgabe 3/2023
Print ISSN: 1006-706X
Elektronische ISSN: 2210-3988
DOI
https://doi.org/10.1007/s42243-022-00888-z

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