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The high alkalinity of bauxite residue and its sustained release impose major limitation on its reuse and ecological disposal. It has been confirmed from sustained rehabilitation that gypsum can effectively reduce the alkalinity of bauxite residue by continuously releasing Ca to react with carbonate and hydroxide. However, the combined bauxite residue with high calcium content exhibits stubborn alkalinity for most alkaline reduction methods employing cations to consume carbonate. In this study, we have aimed to address this knowledge gap by investigating the dose-response relationship in the alkaline reduction induced by ferrous sulfate (FS) neutralization. The pH, exchangeable sodium percentage (ESP), and CO/HCO of bauxite residue decreased from 10.6, 44.1%, and 42.7/24.5 mg/kg to 8.1, 27.7%, and 0.7/18.0 mg/kg, respectively. Approximately 20-55 days were required for the neutralization reaction to reach equilibrium. The FS induced an increase in free iron oxide (Fe) and amorphous iron oxide (Fe), and partial dissolution of alkaline minerals including calcite, cancrinite, and kaolinite in bauxite residue. Further, addition of FS also affected the kinetic dissolution process of bauxite residue; the acid neutralization capacity of bauxite residue to pH 7 decreased from 0.21 mol H/kg solid to 0.02 mol H/kg solid. The results showed FS to be a potential candidate for improving the characteristics of the combined bauxite residue, and guide the FS application for the disposal of the combined bauxite residue.
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http://dx.doi.org/10.1007/s11356-021-16622-3 | DOI Listing |
J Comput Chem
September 2025
Laboratoire Lorrain de Chimie Moléculaire L2CM, Université de Lorraine CNRS, Nancy, France.
Significant amounts of effluents containing pharmaceuticals residues are released each year in the environment. These residues are responsible for the disruption of the metabolism of organisms. In this study, vermiculite, a low-cost and high specific area clay material, is a best and effective way to remove the micro-pollutants by adsorption.
View Article and Find Full Text PDFEnviron Sci Pollut Res Int
August 2025
School of Science and Technology, Federal University of Rio Grande Do Norte, Passeio dos Girassóis 300, Natal, RN, 59077-080, Brazil.
The generation of waste is inherent to production systems, necessitating proper management to mitigate environmental and economic impacts. In the mining sector, bauxite residue (BR), a byproduct from alumina production, presents significant environmental challenges due to its contaminant potential but also offers opportunities for reuse. This study evaluates the incorporation of BR in asphalt mixtures as a partial replacement for fine aggregates, assessing mechanical performance, environmental aspects, and economic impact.
View Article and Find Full Text PDFEnviron Sci Pollut Res Int
August 2025
Laboratory of Soil Science and Agricultural Chemistry, Department of Natural Resources Management & Agricultural Engineering, School of Environment & Agricultural Engineering, Agricultural University of Athens, 11855, Athens, Greece.
Materials (Basel)
July 2025
School of Metallurgy, Northeastern University, Shenyang 110819, China.
Iron-rich bauxite residue (red mud) is a hazardous alkaline solid waste produced during the production of alumina from high-iron bauxite, which poses severe environmental challenges due to its massive stockpiling and limited utilization. In this study, metallic iron was recovered from high-iron red mud using the smelting reduction process. Thermodynamic analysis results show that an increase in temperature and sodium oxide content, along with an appropriate mass ratio of AlO to SiO (A/S) and mass ratio of CaO to SiO (C/S), contribute to the enhancement of the liquid phase mass fraction of the slag.
View Article and Find Full Text PDFEnviron Sci Pollut Res Int
June 2025
Laboratory of Soil Science and Agricultural Chemistry, Department of Natural Resources Management & Agricultural Engineering, School of Environment & Agricultural Engineering, Agricultural University of Athens, 11855, Athens, Greece.
Bauxite residue (BR) or "red mud" is an industrial by-product that its cumulative total reached 4 billion tonnes by 2022. Developing alternative management strategies is a matter of crucial significance on a worldwide scale. According to many references, BR has been proven an efficient barrier of metal mobility in soil environments.
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