Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction
Siderite is one of the significant iron ore resources in China and yet is difficult to upgrade by traditional beneficiation processes. A process of coal-based direct reduction–magnetic separation was successfully developed for the beneficiation of siderite. However, few studies have thoroughly inves...
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Online Access: | https://doi.org/10.1515/htmp-2014-0176 |
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doaj-53040ae8662f4d93ae52b70e88b0ddf82021-09-06T19:19:54ZengDe GruyterHigh Temperature Materials and Processes0334-64552191-03242016-02-0135218519410.1515/htmp-2014-0176Reaction Mechanism of Siderite Lump in Coal-Based Direct ReductionZhu Deqing0Luo Yanhong1Pan Jian2Zhou Xianlin3School of Mineral Processing and Bioengineering, Central South University, Changsha, ChinaSchool of Mineral Processing and Bioengineering, Central South University, Changsha, ChinaSchool of Mineral Processing and Bioengineering, Central South University, Changsha, ChinaSchool of Mineral Processing and Bioengineering, Central South University, Changsha, ChinaSiderite is one of the significant iron ore resources in China and yet is difficult to upgrade by traditional beneficiation processes. A process of coal-based direct reduction–magnetic separation was successfully developed for the beneficiation of siderite. However, few studies have thoroughly investigated the mechanism of the direct reduction of siderite. In order to reveal the reaction mechanism of coal-based direct reduction of siderite lump, thermodynamics of direct reduction was investigated with coal as the reductant. The thermodynamics results indicate that coal-based direct reduction process of siderite lump at 1,050°C follows the steps as FeCO3→ Fe3O4→ FeO → Fe, which is verified by chemical titration analysis, X-ray diffraction and scanning electron microscope. The microstructure of siderite sample varies with different reduction stages and some 45% porosity induced by thermal decomposition of siderite is conductive to subsequent reduction. The conversion of FeO to Fe is the main reduction rate-controlling step. The reduced product with the metallic iron size over 30 μm can be effectively beneficiated by wet magnetic separation after grinding. The obvious layered structure of reduced product is due to different heat transfer resistance, CO and CO2 concentration.https://doi.org/10.1515/htmp-2014-0176siderite lumpcoal-based direct reductionreduction reaction mechanismthermal decompositionthermodynamics |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhu Deqing Luo Yanhong Pan Jian Zhou Xianlin |
spellingShingle |
Zhu Deqing Luo Yanhong Pan Jian Zhou Xianlin Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction High Temperature Materials and Processes siderite lump coal-based direct reduction reduction reaction mechanism thermal decomposition thermodynamics |
author_facet |
Zhu Deqing Luo Yanhong Pan Jian Zhou Xianlin |
author_sort |
Zhu Deqing |
title |
Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction |
title_short |
Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction |
title_full |
Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction |
title_fullStr |
Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction |
title_full_unstemmed |
Reaction Mechanism of Siderite Lump in Coal-Based Direct Reduction |
title_sort |
reaction mechanism of siderite lump in coal-based direct reduction |
publisher |
De Gruyter |
series |
High Temperature Materials and Processes |
issn |
0334-6455 2191-0324 |
publishDate |
2016-02-01 |
description |
Siderite is one of the significant iron ore resources in China and yet is difficult to upgrade by traditional beneficiation processes. A process of coal-based direct reduction–magnetic separation was successfully developed for the beneficiation of siderite. However, few studies have thoroughly investigated the mechanism of the direct reduction of siderite. In order to reveal the reaction mechanism of coal-based direct reduction of siderite lump, thermodynamics of direct reduction was investigated with coal as the reductant. The thermodynamics results indicate that coal-based direct reduction process of siderite lump at 1,050°C follows the steps as FeCO3→ Fe3O4→ FeO → Fe, which is verified by chemical titration analysis, X-ray diffraction and scanning electron microscope. The microstructure of siderite sample varies with different reduction stages and some 45% porosity induced by thermal decomposition of siderite is conductive to subsequent reduction. The conversion of FeO to Fe is the main reduction rate-controlling step. The reduced product with the metallic iron size over 30 μm can be effectively beneficiated by wet magnetic separation after grinding. The obvious layered structure of reduced product is due to different heat transfer resistance, CO and CO2 concentration. |
topic |
siderite lump coal-based direct reduction reduction reaction mechanism thermal decomposition thermodynamics |
url |
https://doi.org/10.1515/htmp-2014-0176 |
work_keys_str_mv |
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