CO2 sequestration performance and microstructural response of a novel modified magnesium-coal-based all-solid waste backfill material
Hua Tao , Shuangming Wang , Junping Cui , Qifeng Jia , Wei Guo , Hehu Zheng
International Journal of Minerals, Metallurgy and Materials ›› 2026, Vol. 33 ›› Issue (7) : 2271 -2283.
The synergistic CO2 sequestration via solid waste backfilling in goafs can simultaneously address the issues of CO2 emissions, accumulation of coal-based solid wastes, and safety hazards in goafs under China’s coal-dominated energy structure. In this study, a modified magnesium-coal-based all-solid-waste carbon-sequestering backfill material (MFCC, prepared from modified magnesium slag (MMS), fly ash (FA), coal gangue (CG), and coal gasification slag (CGS)) was fabricated. The fluidity of the fresh slurry was characterized using the mini slump test, and its carbonation curing performance was investigated via uniaxial compressive strength (UCS), carbonation depth (CD), X-ray diffraction (XRD), scanning electron microscopy (SEM), thermogravimetry-differential thermogravimetry (TG-DTG), and computed tomography (CT) tests, aiming to achieve the synergistic goals of high-value utilization of solid wastes and CO2 sequestration. The results indicate that the fresh MFCC slurry exhibits excellent fluidity with a mini slump ranging from 121.5 to 135 mm. The fluidity increases with the rise in CGS content, which fully meets the requirements for industrial pipeline pumping. During the carbonation curing process, the UCS of the material increases continuously with the extension of curing age, with the 28-d UCS ranging from 7.36 to 8.71 MPa, which fully meets the strength design requirements for coal mine backfilling engineering. Microscopic analyses reveal that the filling and cementation effects of hydration and carbonation products on pores render the material’s microstructure denser, significantly reducing pore volume and connectivity, which is the key reason for the strength improvement. After 28 d of carbonation curing, when the CGS content is 20wt%, the UCS reaches a maximum value of 8.71 MPa, and the CO2 uptake also attains a peak of 13.94%. In summary, after carbonation curing, the MFCC material not only exhibits excellent mechanical properties but also enables the simultaneous realization of resource utilization of solid wastes and efficient CO2 sequestration, thus holding broad application prospects in backfilling engineering.
solid waste backfill material / carbonation curing / compressive strength / microstructure / CO2 sequestration
| [1] |
|
| [2] |
|
| [3] |
|
| [4] |
|
| [5] |
J. Godin, W.Z. Liu, S. Ren, and C.C. Xu, Advances in recovery and utilization of carbon dioxide: A brief review, J. Environ. Chem. Eng., 9(2021), No. 4, art. No. 105644. |
| [6] |
Q.S. Chen, S.Y. Sun, Y.M. Wang, Q.L. Zhang, L.M. Zhu, and Y.K. Liu, In-situ remediation of phosphogypsum in a cement-free pathway: Utilization of ground granulated blast furnace slag and NaOH pretreatment, Chemosphere, 313(2023), art. No. 137412. |
| [7] |
|
| [8] |
|
| [9] |
|
| [10] |
|
| [11] |
|
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
|
| [19] |
|
| [20] |
C.C. Qi and A. Fourie, Cemented paste backfill for mineral tailings management: Review and future perspectives, Miner. Eng., 144(2019), art. No. 106025. |
| [21] |
|
| [22] |
X. Wang, X.Y. Lu, C.C. Turvey, G.M. Dipple, and W. Ni, Evaluation of the carbon sequestration potential of steel slag in China based on theoretical and experimental labile Ca, Resour. Conserv. Recycl., 186(2022), art. No. 106590. |
| [23] |
X. Lin, Y.S. Zhang, H.W. Liu, G. Boczkaj, Y.J. Cao, and C.Q. Wang, Carbon dioxide sequestration by industrial wastes through mineral carbonation: Current status and perspectives, J. Cleaner Prod., 434(2024), art. No. 140258. |
| [24] |
|
| [25] |
G.W. Wu, J.W. Bai, E. Yilmaz, G.R. Feng, Y.N. Han, and J. Li, Strength evolution and carbonation behavior of red mud–fly ash geopolymers under varying pre-curing conditions, Constr. Build. Mater., 504(2025), art. No. 144575. |
| [26] |
|
| [27] |
|
| [28] |
|
| [29] |
B.C. Cheng, R.T. Liu, X.H. Li, E. del Rey Castillo, M.J. Chen, and S.C. Li, Effects of fly and coal bottom ash ratio on backfill material performance, Constr. Build. Mater., 319(2022), art. No. 125831. |
| [30] |
|
| [31] |
M. Lei, S.M. Deng, K.Y. Huang, Z.C. Liu, F.Z. Wang, and S.G. Hu, Preparation and characterization of a CO2 activated aerated concrete with magnesium slag as carbonatable binder, Constr. Build. Mater., 353(2022), art. No. 129112. |
| [32] |
|
| [33] |
P. Yang, L. Liu, Y.L. Suo, et al., Basic characteristics of magnesium-coal slag solid waste backfill material: Part I. preliminary study on flow, mechanics, hydration and leaching characteristics, J. Environ. Manage., 329(2023), art. No. 117016. |
| [34] |
X.W. Zhai, Z. Cheng, K.Y. Ai, and B. Shang, Research on environmental sustainability of coal cities: A case study of Yulin, China, Energies, 13(2020), No. 10, art. No. 2470. |
| [35] |
|
| [36] |
L. Liu, S.S. Ruan, C.C. Qi, et al., Co-disposal of magnesium slag and high-calcium fly ash as cementitious materials in backfill, J. Cleaner Prod., 279(2021), art. No. 123684. |
| [37] |
|
| [38] |
R. Soria, N. Rodríguez-Berbel, R. Ortega, M.E. Lucas-Borja, and I. Miralles, Soil amendments from recycled waste differently affect CO2 soil emissions in restored mining soils under semiarid conditions, J. Environ. Manage., 294(2021), art. No. 112894. |
| [39] |
B. Lu, P.P. He, J.H. Liu, Z.Y. Peng, B.X. Song, and X. Hu, Microstructure of Portland cement paste subjected to different CO2 concentrations and further water curing, J. CO2Util., 53(2021), art. No. 101714. |
| [40] |
Z. Liu and W.N. Meng, Fundamental understanding of carbonation curing and durability of carbonation-cured cement-based composites: A review, J. CO2Util., 44(2021), art. No. 101428. |
| [41] |
J. Chang, T. Jiang, and K. Cui, Influence on compressive strength and CO2 capture after accelerated carbonation of combination β-C2S with γ-C2S, Constr. Build. Mater., 312(2021), art. No. 125359. |
| [42] |
S.S. Ruan, L. Liu, M.B. Zhu, C.C. Shao, and L. Xie, Development and field application of a modified magnesium slag-based mine filling cementitious material, J. Cleaner Prod., 419(2023), art. No. 138269. |
| [43] |
|
| [44] |
|
| [45] |
S.S. Ruan, L. Liu, L. Xie, et al., Mechanical properties and leaching behavior of modified magnesium slag cemented aeolian sand paste backfill materials, Constr. Build. Mater., 387(2023), art. No. 131641. |
| [46] |
|
| [47] |
|
| [48] |
|
| [49] |
L. Xia, L. Liu, Z.Y. Fang, Q.F. Jia, W. He, and Y.H. Gao, The effect of different process parameters on the flowability of modified magnesium-coal based solid waste carbon fixation backfill slurry rich in dicalcium silicate, Environ. Earth Sci., 83(2024), art. No. 460. |
| [50] |
|
| [51] |
|
| [52] |
|
| [53] |
|
| [54] |
|
| [55] |
|
| [56] |
|
| [57] |
|
| [58] |
|
| [59] |
|
| [60] |
M. Liu, S.X. Hong, Y.S. Wang, J.R. Zhang, D.S. Hou, and B.Q. Dong, Compositions and microstructures of hardened cement paste with carbonation curing and further water curing, Constr. Build. Mater., 267(2021), art. No. 121724. |
| [61] |
|
| [62] |
|
| [63] |
|
| [64] |
|
| [65] |
|
| [66] |
P. Yang, L. Liu, Y.L. Suo, et al., Investigating the synergistic effects of magnesia-coal slag based solid waste cementitious materials and its basic characteristics as a backfill material, Sci. Total Environ., 880(2023), art. No. 163209. |
| [67] |
|
| [68] |
J.C. Xiang, J.P. Qiu, Y.Q. Zhao, P.K. Zheng, H.N. Peng, and X.C. Fei, Rheology, mechanical properties, and hydration of synergistically activated coal gasification slag with three typical solid wastes, Cem. Concr. Compos., 147(2024), art. No. 105418. |
| [69] |
K.Z. Fang, D.J. Zhang, D.M. Wang, Z. Liu, M. Zhang, and S. Zhang, The impact of coal gasification slag powder on fluidity, rheology and viscoelasticity properties of fresh cement paste, J. Build. Eng., 69(2023), art. No. 106237. |
| [70] |
Y.J. Zhao, L. Liu, D. Wen, et al., Recycling waste material for backfill coupled heat exchanger systems in underground stopes of mines, Energy Build., 256(2022), art. No. 111703. |
| [71] |
F. Luo, Y.S. Jiang, and C.D. Wei, Potential of decarbonized coal gasification residues as the mineral admixture of cement-based material, Constr. Build. Mater., 269(2021), art. No. 121259. |
| [72] |
X.P. Xian, D. Zhang, and Y.X. Shao, Flue gas carbonation curing of cement paste and concrete at ambient pressure, J. Cleaner Prod., 313(2021), art. No. 127943. |
| [73] |
|
| [74] |
|
| [75] |
W.Z. Liu, L.M. Teng, S. Rohani, et al., CO2 mineral carbonation using industrial solid wastes: A review of recent developments, Chem. Eng. J., 416(2021), art. No. 129093. |
| [76] |
X.Y. Zhao, K. Yang, Z. Wei, and Y.Q. Hou, Extensive evaluation for potential of coal gasification slag for mine cemented backfilling: Performance, environment, and techno-economic, Process Saf. Environ. Prot., 202(2025), art. No. 107837. |
| [77] |
|
University of Science and Technology Beijing
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