Effects of CO2 Concentration During Curing on Carbon Sequestration and Strength of Coal-Based Solid Waste Backfill

Coal development produces large amounts of coal-based solid wastes (coal gangue, slag, fly ash) and substantial CO2 emissions, posing severe ecological burdens on mining areas. This study integrated coal-based solid-waste cemented backfilling with CO2 mineral sequestration to co-dispose of coal-based solid wastes and CO2, experimentally investigating the CO2 sequestration performance and uniaxial compressive strength (UCS) of coal-based solid-waste cemented backfill (CSCB) under mineralization curing with different CO2 concentrations. TG-DTG, SEM-EDS, and XRD were adopted to investigate the CO2 mineral sequestration process and the strength reduction of CSCB. The TG-DTG-based calculated CO2 uptake of CSCB was positively correlated with the CO2 concentration, rising by 86.9% from 2.52% to 4.71% as the concentration increased from 1.5% to 10%. In contrast, CSCB UCS decreased drastically by 88.1% from 6.05 MPa to 0.72 MPa when concentration increased from 0 to 10%. The combined microcharacterization results suggest that CO2 reacted with alkaline substances and hydration products (CH, C-(A)-S-H gel, AFt) in CSCB to form carbonates. The UCS reduction is interpreted as arising mainly from a weakened alkaline environment (according to results and speculation), degradation of the C-(A)-S-H gel, and the AFt–CO2 substitution reaction. Within the investigated conditions (a single mix proportion and a 14-day curing age), this study provides a reference for coal-based solid-waste backfilling coupled with CO2 mineral sequestration; extrapolation to other mix proportions, longer curing ages, or field-scale applications requires further verification.

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Publication Details

Journal
Applied Sciences
Published
2026-09-15
DOI
https://doi.org/10.3390/app16189155
Primary Topic
Tailings Management and Properties
Type
article
Field-Weighted Citation Impact
0.00

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article

Effects of CO2 Concentration During Curing on Carbon Sequestration and Strength of Coal-Based Solid Waste Backfill

D. S. Zhang, Yunkai Zhang, Wenchang Feng, Binbin Huo et al.
Applied Sciences
Tailings Management and Properties
article

Effects of CO2 Concentration During Curing on Carbon Sequestration and Strength of Coal-Based Solid Waste Backfill

D. S. Zhang, Yunkai Zhang, Wenchang Feng, Binbin Huo, Zhangyu Li, Yazhou Shi, Meng Li, Yuyin Guo
article en

Abstract

Coal development produces large amounts of coal-based solid wastes (coal gangue, slag, fly ash) and substantial CO2 emissions, posing severe ecological burdens on mining areas. This study integrated coal-based solid-waste cemented backfilling with CO2 mineral sequestration to co-dispose of coal-based solid wastes and CO2, experimentally investigating the CO2 sequestration performance and uniaxial compressive strength (UCS) of coal-based solid-waste cemented backfill (CSCB) under mineralization curing with different CO2 concentrations. TG-DTG, SEM-EDS, and XRD were adopted to investigate the CO2 mineral sequestration process and the strength reduction of CSCB. The TG-DTG-based calculated CO2 uptake of CSCB was positively correlated with the CO2 concentration, rising by 86.9% from 2.52% to 4.71% as the concentration increased from 1.5% to 10%. In contrast, CSCB UCS decreased drastically by 88.1% from 6.05 MPa to 0.72 MPa when concentration increased from 0 to 10%. The combined microcharacterization results suggest that CO2 reacted with alkaline substances and hydration products (CH, C-(A)-S-H gel, AFt) in CSCB to form carbonates. The UCS reduction is interpreted as arising mainly from a weakened alkaline environment (according to results and speculation), degradation of the C-(A)-S-H gel, and the AFt–CO2 substitution reaction. Within the investigated conditions (a single mix proportion and a 14-day curing age), this study provides a reference for coal-based solid-waste backfilling coupled with CO2 mineral sequestration; extrapolation to other mix proportions, longer curing ages, or field-scale applications requires further verification.

Applied SciencesVol. 16(18)
China University of Mining and Technology (CN), Shanxi Jincheng Anthracite Mining Group (China) (CN)
National Natural Science Foundation of China
Industry, innovation and infrastructure
Openalex Percentile: Top 17%
Tailings Management and Properties
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