Coal Geology & Exploration
Abstract
Objective The reutilization of solid waste such as coal gangue and steel slag is critical to green mining. Preparing solid waste-based carbon-sequestering backfill materials and then filling them into coal mine goaves emerge as an important approach to solid waste utilization, carbon emission reduction, and green coal mining.Methods Based on the designed mix proportions of a high-solid-waste system consisting of steel slag and coal gangue, in which steel slag was used to compensate for the insufficient carbonation reactivity of coal gangue, this study prepared solid waste-based backfill material samples composed of coal gangue, steel slag, and cement. Through mechanical and carbon-sequestration tests in the laboratory, along with a range of test methods including thermogravimetric analysis (TGA), X-ray diffraction (XRD) analysis, scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FTIR), and mercury intrusion porosimetry (MIP), this study explored the mechanical properties, carbon sequestration capacity, and carbonation reaction mechanisms of these solid waste-based backfill materials.Results and Conclusions Carbonation temperature significantly affected the mechanical properties of the backfill materials. As the carbonation temperature increased from 40 ℃ to 80 ℃, the compressive strength of the samples showed an increasing trend. Increasing the steel slag content can enhance the compressive strength of the samples during the later curing stage. With an increase in the carbonation temperature, the CO2 absorption capacity of the samples increased initially and then decreased. Notably, the sample comprising 35% calcined coal gangue and 50% steel slags yielded a CO2 absorption capacity reaching up to 6.9% at a carbonation temperature of 60 ℃. Carbonation reactions promoted the formation of CaCO3 to fill material pores, while the active silico-aluminous phase accelerated the formation of calcium-silicate-hydrate ( C-S-H ) gel. Both aspects enabled the stable bonding between CaCO3 and C-S-H and thus enhanced the material density, serving as the key mechanisms for improving the performance of solid waste-based backfill materials. The results of this study provide theoretical support for developing high-performance, multi-source solid waste-based, carbon-sequestering backfill materials, contributing to the development of carbon sequestration technology for green mine backfilling.
Keywords
carbon sequestration, solid waste backfilling, carbon sequestration capacity, green mining, carbonation mechanism, life cycle assessment (LCA)
DOI
10.12363/issn.1001-1986.25.07.0559
Recommended Citation
GUO Qingwen, LI Dongyin, WANG Shen,
et al.
(2026)
"Performance and carbonation mechanisms of multi-source solid waste-based carbon-sequestering backfill materials for coal mines,"
Coal Geology & Exploration: Vol. 54:
Iss.
1, Article 12.
DOI: 10.12363/issn.1001-1986.25.07.0559
Available at:
https://cge.researchcommons.org/journal/vol54/iss1/12
Reference
[1] 刘超群,朱泽文,张友华,等. 活化煤矸石水泥水化机理与性能研究[J]. 硅酸盐通报,2023,42(10):3660−3670
LIU Chaoqun,ZHU Zewen,ZHANG Youhua,et al. Hydration mechanism and properties of activated coal gangue cement[J]. Bulletin of the Chinese Ceramic Society,2023,42(10):3660−3670
[2] 奚弦,桑树勋,刘世奇. 煤矿区固废矿化固定封存CO2与减污降碳协同处置利用的研究进展[J]. 煤炭学报,2024,49(8):3619−3634
XI Xian,SANG Shuxun,LIU Shiqi. Progress in research of CO2 fixation and sequestration by coal mine solid waste mineralization and co–disposal of pollution and carbon reduction[J]. Journal of China Coal Society,2024,49(8):3619−3634
[3] 刘浪,夏磊,王双明,等. 多源固废基固碳矿用材料制备及多场景利用关键技术[J]. 煤炭学报,2025,50(2):1203−1222
LIU Lang,XIA Lei,WANG Shuangming,et al. Key technologies for preparation and multi scene utilization of multi–source solid waste based carbon fixation mining materials[J]. Journal of China Coal Society,2025,50(2):1203−1222
[4] 谢和平,张吉雄,高峰,等. 煤矿负碳高效充填开采理论与技术构想[J]. 煤炭学报,2024,49(1):36−46
XIE Heping,ZHANG Jixiong,GAO Feng,et al. Theory and technical conception of carbon–negative and high–efficient backfill mining in coal mines[J]. Journal of China Coal Society,2024,49(1):36−46
[5] MIAO Hengyang,WANG Zhiqing,SUN Haochen,et al. Gasification and activation behaviors of coal gangue with Na2CO3 in CO2 atmosphere[J]. Fuel Processing Technology,2022,228:107163.
[6] 朱梦博,刘浪,王双明,等. 煤矿采空区间隔条带充填CO2矿化封存及其关键技术[J]. 煤田地质与勘探,2025,53(6):143−155
ZHU Mengbo,LIU Lang,WANG Shuangming,et al. Backfill–strip mining and CO2 mineralization sequestration in coal mine goaves:A synergetic method and its key technologies[J]. Coal Geology & Exploration,2025,53(6):143−155
[7] GU Xiaowei,WANG Shenyu,LIU Jianping,et al. Improving physical properties,microstructure and actual carbon sequestration of steel slag based autoclaved aerated concrete by accelerated carbonation[J]. Journal of Building Engineering,2024,94:110045.
[8] GAO Wenhao,ZHOU Wentao,LYU Xianjun,et al. Comprehensive utilization of steel slag:A review[J]. Powder Technology,2023,422:118449.
[9] LI Linshan,CHEN Tiefeng,GAO Xiaojian,et al. New insights into the effects of different CO2 mineralization conditions on steel slag as supplemental cementitious material[J]. Journal of Building Engineering,2024,84:108566.
[10] HAO Xiansheng,LIU Xiaoming,ZHANG Zengqi,et al. In–depth insight into the cementitious synergistic effect of steel slag and red mud on the properties of composite cementitious materials[J]. Journal of Building Engineering,2022,52:104449.
[11] CHEN Fengge,MENG Wenqing,DENG Bingyang,et al. Mechanical properties and durability of steel slag–mineral powder–coal gangue mixture by uniform design for pavement base[J]. Materials Science,2024,30(3):388−395.
[12] CHANG Ning,LI Hui,LIU Wenhuan,et al. Improved macro–microscopic characteristic of gypsum–slag based cementitious materials by incorporating red mud/carbide slag binary alkaline waste–derived activator[J]. Construction and Building Materials,2024,428:136425.
[13] 王翰文,张力为,孔佳,等. CO2–粉煤灰–煤矸石充填膏体力学性能改善机理与固碳性能研究[J]. 东南大学学报(自然科学版),2025,55(3):707−715
WANG Hanwen,ZHANG Liwei,KONG Jia,et al. Research on the mechanism of improving the mechanical properties of CO2–fly ash–coal gangue backfill paste and the study of carbon sequestration performance[J]. Journal of Southeast University (Natural Science Edition),2025,55(3):707−715
[14] ZHAO Yingliang,ZHENG Yong,CUI Kai,et al. An innovative ternary carbon–fixing cementitious system of cement–fly ash–carbonated steel slag[J]. Cement and Concrete Composites,2025,160:106042.
[15] MIAO Zekai,HAN Xinran,GE Hao,et al. Insight into the synergism of residual carbon and slag particles in coal gasification fine slag on porous composites preparation for CO2 capture[J]. Separation and Purification Technology,2024,339:126540.
[16] HU Yue,HUAN Qun,LAI Jiahao,et al. Modification of multi–source industrial solid waste with porous materials to produce highly polymerizeosilica gel:Microstructure optimization and CO2 mineralization enhancement mechanism[J]. Separation and Purification Technology,2024,336:126225.
[17] FANG Zhiyu,LIU Lang,ZHANG Xiaoyan,et al. Carbonation curing of modified magnesium–coal based solid waste backfill material for CO2 sequestration[J]. Process Safety and Environmental Protection,2023,180:778−788.
[18] 马立强,翟江涛,ICHHUY N. CO2矿化煤基固废制备保水开采负碳充填材料试验研究[J]. 煤炭学报,2022,47(12):4228−4236
MA Liqiang,ZHAI Jiangtao,ICHHUY N. Experimental study on preparation of negative carbon filling material forwater protection mining by CO2 mineralization of coal–based solid waste[J]. Journal of China Coal Society,2022,47(12):4228−4236
[19] ZHANG Jixiong,LI Baiyi,XIE Yachen,et al. Carbon negative backfill mining in coal mines for carbon neutralization:Chemical carbon fixation performances with mineralized gangue[J]. International Journal of Rock Mechanics and Mining Sciences,2025,186:106016.
[20] BEN GHACHAM A,PASQUIER L C,CECCHI E,et al. CO2 sequestration by mineral carbonation of steel slags under ambient temperature:Parameters influence,and optimization[J]. Environmental Science and Pollution Research,2016,23(17):17635−17646.
[21] YAN Ziwei,LI Hui,ZHANG Lu,et al. Preparation of aragonite–rich whisker materials from magnesium slag and salt lake bischofite and its effects on cement properties[J]. Chemical Engineering Journal,2024,500:156966.
[22] LU Bao,DRISSI S,LIU Jianhui,et al. Effect of temperature on CO2 curing,compressive strength and microstructure of cement paste[J]. Cement and Concrete Research,2022,157:106827.
[23] YE Junhao,LIU Songhui,FANG Jingrui,et al. Unveiling the carbonation behavior and microstructural changes of magnesium slag at 0 ℃[J]. Journal of Building Material Science,2023,5(2):37−50.
[24] 刘浪,方治余,王双明,等. 煤矿充填固碳理论基础与技术构想[J]. 煤炭科学技术,2024,52(2):292−308
LIU Lang,FANG Zhiyu,WANG Shuangming,et al. Theoretical basis and technical conception of backfill carbon fixation in coal mine[J]. Coal Science and Technology,2024,52(2):292−308
[25] 刘志飞,陈庆庭,李宏杰,等. 固废基充填材料CO2矿化与胶凝性能退化关联机制[J]. 煤田地质与勘探,2025,53(12):78−87
LIU Zhifei,CHEN Qingting,LI Hongjie,et al. Mechanisms governing CO2 mineral trapping and cementitious activity degradation of solid waste–based backfill materials[J]. Coal Geology & Exploration,2025,53(12):78−87
[26] LIU Qian,LIU Jiaxiang,QI Liqian. Effects of temperature and carbonation curing on the mechanical properties of steel slag–cement binding materials[J]. Construction and Building Materials,2016,124:999−1006.
[27] QIN Ling,GAO Xiaojian. Properties of coal gangue–Portland cement mixture with carbonation[J]. Fuel,2019,245:1−12.
[28] WANG Lei,CHEN Liang,PROVIS J L,et al. Accelerated carbonation of reactive MgO and Portland cement blends under flowing CO2 gas[J]. Cement and Concrete Composites,2020,106:103489.
[29] 刘宇轩. 偏高岭土基煅烧煤矸石复合水泥的性能及水化研究[D]. 长沙:湖南大学,2022.
LIU Yuxuan. The performance and hydration of cement composites with thermally activated kaolinitic coal gangue[D]. Changsha:Hunan University,2022.
[30] YUAN Xianli,WU Hong,WANG Ping,et al. Thermal activation of coal gangue with low Al/Si ratio as supplementary cementitious materials[J]. Molecules,2022,27(21):7268.
[31] QIAN Chunxiang,HU Yishun,FAN Yijin,et al. Synergistic effects and mechanisms of composite supplementary cementitious materials with carbon–fixing steel slag powder and aluminum–containing mineral admixtures[J]. Construction and Building Materials,2024,441:137507.
[32] SRIVASTAVA S,CERUTTI M,NGUYEN H,et al. Carbonated steel slags as supplementary cementitious materials:Reaction kinetics and phase evolution[J]. Cement and Concrete Composites,2023,142:105213.
[33] GHOULEH Z,GUTHRIE R I L,SHAO Yixin. High–strength KOBM steel slag binder activated by carbonation[J]. Construction and Building Materials,2015,99:175−183.
[34] ZHAO Xiaozhi,WANG Liang,WANG Chenglong,et al. Study on hydration and hardening performance of coal gangue–steel slag–cement composite cementitious material[J]. KSCE Journal of Civil Engineering,2024,28(5):1992−2004.
[35] MYERS R J,L’HÔPITAL E,PROVIS J L,et al. Effect of temperature and aluminium on calcium (alumino) silicate hydrate chemistry under equilibrium conditions[J]. Cement and Concrete Research,2015,68:83−93.
[36] HALL C,BARNES P,BILLIMORE A D,et al. Thermal decomposition of ettringite Ca6 [Al(OH)6]2 (SO4)3·26H2O[J]. Journal of the Chemical Society,Faraday Transactions,1996,92(12):2125−2129.
[37] EL–HASSAN H,SHAO Yixin. Early carbonation curing of concrete masonry units with Portland limestone cement[J]. Cement and Concrete Composites,2015,62:168−177.
[38] LI Yong,LIU Xiaoming,LI Zepeng,et al. Preparation,characterization and application of red mud,fly ash and desulfurized gypsum based eco–friendly road base materials[J]. Journal of Cleaner Production,2021,284:124777.
[39] ZHANG Yongpeng,YING Yimei,XING Lei,et al. Carbon dioxide reduction through mineral carbonation by steel slag[J]. Journal of Environmental Sciences,2025,152:664−684.
[40] WANG Xue,NI Wen,LI Jiajie,et al. Carbonation of steel slag and gypsum for building materials and associated reaction mechanisms[J]. Cement and Concrete Research,2019,125:105893.
[41] ZHANG Zedi,XIONG Yuanliang,JIA Zijian,et al. In– situ wet carbonation of steel slag powder paste made with carbonated water:Interaction mechanism between carbonation and hydration[J]. Cement and Concrete Composites,2024,152:105677.
[42] JIANG Zishuai,WANG Xin,ZHAO Hao,et al. Micro/nano–plastic removal from wastewater using cellulose membrane:Performance and life cycle assessment[J]. Separation and Purification Technology,2023,317:123925.
Included in
Earth Sciences Commons, Mining Engineering Commons, Oil, Gas, and Energy Commons, Sustainability Commons