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June 10, 2026European Journal of Environmental and Civil engineering0 citations

Investigation of carbon sequestration and water–gas transport parameters of steel slag–bentonite mixture

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LHLiu HZWZhongpan WangSFSong Feng

Key Points

  • This study aims to explore the carbon sequestration capability and gas transport characteristics of a steel slag-bentonite mixture in landfill settings.
  • Conducted incubation tests to examine effects of constant and non-constant pressure on carbon sequestration.
  • Performed flexible-wall tests to measure gas permeability, diffusion coefficient, and hydraulic conductivity across varying bentonite and compaction levels.
  • Analyzed initial CO2 concentration, water content, and bentonite content as key variables.
  • Carbon sequestration capacity significantly increases with higher initial CO2 concentration.
  • Increasing degree of compaction from 85% to 95% and bentonite content from 5% to 15% decreased gas permeability, diffusion coefficient, and hydraulic conductivity by over 56%.
  • Post-carbonation, gas transport parameters further reduced by 20% or more, maintaining hydraulic conductivity below 1 × 10−7 cm/s.

Abstract

The utilisation of steel slag, as a final cover material for municipal landfills, has attracted growing interest. However, research on the patterns of carbon sequestration by steel slag in landfill environments and the impermeable barrier performance of the slag layer before and after sequestration (abbreviated as BC and AC, respectively) remains scarce. This study investigated the effects of constant pressure (CP) and non-constant pressure (NP) conditions, initial CO2 concentration (cin, vol%), water content (w, wt%) and bentonite content (wb, wt%) on the carbon sequestration capacity of steel slag through incubation tests. Concurrently, flexible-wall tests were conducted to evaluate bentonite content and the degree of compaction (DOC) on the gas permeability (kg), gas diffusion coefficient (Dg) and hydraulic conductivity (ks) before and after carbonation. Results demonstrated that cin significantly enhances the carbon sequestration capacity of steel slag. Increasing the DOC (i.e. from 85% to 95%) or wb (i.e. from 5% to 15%) reduced the kg,Dg and ks by over 56%. After carbonation, these parameters decreased by a further 20% or more, while ks remained consistently below 1 × 10−7 cm/s.

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Cite This Study

H et al. (2026) studied this question.

synapsesocial.com/papers/6a2900266f82f25be989cd2bhttps://doi.org/10.1080/19648189.2026.2681833
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