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Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery

The hydrogen reduction of bauxite residue lime pellets at elevated temperatures was carried out to recover iron and alumina from the bauxite residue in a new process route. Prior to the H(2) reduction, oxide pellets were initially prepared via the mixing of an industrial bauxite residue with fine ca...

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Autores principales: Skibelid, Olivia Bogen, Velle, Sander Ose, Vollan, Frida, Van der Eijk, Casper, Hoseinpur-Kermani, Arman, Safarian, Jafar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457071/
https://www.ncbi.nlm.nih.gov/pubmed/36079395
http://dx.doi.org/10.3390/ma15176012
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author Skibelid, Olivia Bogen
Velle, Sander Ose
Vollan, Frida
Van der Eijk, Casper
Hoseinpur-Kermani, Arman
Safarian, Jafar
author_facet Skibelid, Olivia Bogen
Velle, Sander Ose
Vollan, Frida
Van der Eijk, Casper
Hoseinpur-Kermani, Arman
Safarian, Jafar
author_sort Skibelid, Olivia Bogen
collection PubMed
description The hydrogen reduction of bauxite residue lime pellets at elevated temperatures was carried out to recover iron and alumina from the bauxite residue in a new process route. Prior to the H(2) reduction, oxide pellets were initially prepared via the mixing of an industrial bauxite residue with fine calcite powder followed by calcination and high-temperature sintering. The chemical, compositional, and microstructural properties of both oxide and reduced pellets were studied by advanced characterization techniques. It was found that iron in the oxide pellets is mainly in the form of brownmillerite, and calcium–iron–titanate phases, while upon reduction they are converted to wüstite and shulamitite intermediate phases and further to metallic iron. Moreover, it was found that the reduction at lower temperature of 1000 °C is faster than that at higher temperatures of 1100 °C and 1200 °C. The slower rate and extent of reduction at the higher temperatures is attributed to the porosity loss and reduction mechanism change to a diffusion-controlled process step. In addition, it was found that Al-containing phases in the raw materials are converted mainly to gehlenite in sintered pellets and further to the leachable mayenite phase. The alkaline leaching of selected reduced pellets by a sodium carbonate solution yielded up to 87% Al recovery into the solution, while the metallic iron was not affected.
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spelling pubmed-94570712022-09-09 Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery Skibelid, Olivia Bogen Velle, Sander Ose Vollan, Frida Van der Eijk, Casper Hoseinpur-Kermani, Arman Safarian, Jafar Materials (Basel) Article The hydrogen reduction of bauxite residue lime pellets at elevated temperatures was carried out to recover iron and alumina from the bauxite residue in a new process route. Prior to the H(2) reduction, oxide pellets were initially prepared via the mixing of an industrial bauxite residue with fine calcite powder followed by calcination and high-temperature sintering. The chemical, compositional, and microstructural properties of both oxide and reduced pellets were studied by advanced characterization techniques. It was found that iron in the oxide pellets is mainly in the form of brownmillerite, and calcium–iron–titanate phases, while upon reduction they are converted to wüstite and shulamitite intermediate phases and further to metallic iron. Moreover, it was found that the reduction at lower temperature of 1000 °C is faster than that at higher temperatures of 1100 °C and 1200 °C. The slower rate and extent of reduction at the higher temperatures is attributed to the porosity loss and reduction mechanism change to a diffusion-controlled process step. In addition, it was found that Al-containing phases in the raw materials are converted mainly to gehlenite in sintered pellets and further to the leachable mayenite phase. The alkaline leaching of selected reduced pellets by a sodium carbonate solution yielded up to 87% Al recovery into the solution, while the metallic iron was not affected. MDPI 2022-08-31 /pmc/articles/PMC9457071/ /pubmed/36079395 http://dx.doi.org/10.3390/ma15176012 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Skibelid, Olivia Bogen
Velle, Sander Ose
Vollan, Frida
Van der Eijk, Casper
Hoseinpur-Kermani, Arman
Safarian, Jafar
Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title_full Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title_fullStr Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title_full_unstemmed Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title_short Isothermal Hydrogen Reduction of a Lime-Added Bauxite Residue Agglomerate at Elevated Temperatures for Iron and Alumina Recovery
title_sort isothermal hydrogen reduction of a lime-added bauxite residue agglomerate at elevated temperatures for iron and alumina recovery
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457071/
https://www.ncbi.nlm.nih.gov/pubmed/36079395
http://dx.doi.org/10.3390/ma15176012
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