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February 2, 2026Sustainability0 citationsOpen Access

Sustainable Utilization of Modified Manganese Slag in Cemented Tailings Backfill: Mechanical and Microstructural Properties

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YYYu YinSYShijiao YangYHYan He

Key Points

  • This research aims to explore the potential of modified manganese slag as a supplementary material to enhance cemented tailings backfill.
  • Characterization of modified manganese slag through physicochemical analysis, XRD, and FTIR
  • Modification with sodium silicate and melt-water quenching to activate the pozzolanic reactivity
  • Evaluation of unconfined compressive strength of backfill samples at various curing ages
  • SEM-EDS analysis for microstructural examination
  • Modified manganese slag shows a significant increase in pozzolanic reactivity, enhancing strength
  • T-MMS10 sample achieves a compressive strength of 3.85 MPa, a 94.4% improvement over control
  • Improved fluidity with a slump of 26.40 cm suitable for backfill transport
  • Stable gel products formed enhance microstructure, leading to reduced porosity

Abstract

Cemented tailings backfill (CTB) is widely used in mining operations due to its operational simplicity, reliable performance, and environmental benefits. However, the poor consolidation of fine tailings with ordinary Portland cement (OPC) remains a critical challenge, leading to excessive backfill costs. This study addresses the utilization of modified manganese slag (MMS) as a supplementary cementitious material (SCM) for fine tailings from an iron mine in Anhui, China. Sodium silicate (Na2SiO3) modification coupled with melt-water quenching was implemented to activate the pozzolanic reactivity of manganese slag (MS) through glassy structure alteration. The MMS underwent comprehensive characterization via physicochemical analysis, X-ray diffraction (XRD), and Fourier-transform infrared spectroscopy (FTIR) to elucidate its physicochemical attributes, mineralogical composition, and glassy phase architecture. The unconfined compressive strength (UCS) of the CTB samples prepared with MMS, OPC, tailings, and water (T-MMS) was systematically evaluated at curing ages of 7, 28, and 60 days. The results demonstrate that MMS predominantly consists of SiO2, Al2O3, CaO, and MnO, exhibiting a high specific surface area and extensive vitrification. Na2SiO3 modification induced depolymerization of the highly polymerized Q4 network into less-polymerized Q2 chain structures, thereby enhancing the pozzolanic reactivity of MMS. This structural depolymerization facilitated formation of stable gel products with low calcium–silicon ratios, conferring upon the T-MMS10 sample a 60-day strength of 3.85 MPa, representing a 94.4% enhancement over the T-OPC. Scanning electron microscopy–energy dispersive spectroscopy (SEM-EDS) analysis revealed that Na2SiO3 modification precipitated extensive calcium silicate hydrate (C-S-H) gel formation and pore refinement, forming a dense networked framework that superseded the porous microstructure of the control sample. Additionally, the elevated zeta potential for T-MMS10 engendered electrostatic repulsion, while the aluminosilicate gel provided imparted lubrication, collectively improving the flowability of the composite slurry exhibiting a 26.40 cm slump, which satisfies the requirements for pipeline transportation in backfill operations.

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Cite This Study

Yin et al. (2026) studied this question.

synapsesocial.com/papers/6980fc73c1c9540dea80e354https://doi.org/10.3390/su18031336
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