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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (8): 2829-2838.DOI: 10.16552/j.cnki.issn1001-1625.2026.0086

• 资源综合利用 • 上一篇    下一篇

热活化煤矸石及其在磷石膏矿渣水泥中的应用研究

唐佩1(), 刘佳心2, 曲波3,4, 肜鹏杰1, 陈伟1   

  1. 1.武汉理工大学硅酸盐科学与先进建材全国重点实验室,武汉 430070
    2.武汉理工大学材料科学与工程学院,武汉 430070
    3.中煤科工生态环境科技有限公司,北京 100013
    4.露天煤矿灾害防治与生态保护全国重点实验室,北京 100013
  • 收稿日期:2026-01-21 修订日期:2026-02-13 出版日期:2026-08-15 发布日期:2026-09-01
  • 作者简介:唐佩(1987—),女,博士,研究员。主要从事生态建筑材料方面的研究。E-mail:pei-tang@whut.edu.cn
  • 基金资助:
    国家重点研发计划项目(2022YFC3902705);湖北省技术创新计划项目(2024BCB084)

Thermally Activated Coal Gangue and Its Application in Phosphogypsum Slag Cement

TANG Pei1(), LIU Jiaxin2, QU Bo3,4, RONG Pengjie1, CHEN Wei1   

  1. 1.State Key Laboratory of Silicate Materials for Architectures,Wuhan University of Technology,Wuhan 430070,China
    2.School of Materials Science and Engineering,Wuhan University of Technology,Wuhan 430070,China
    3.China Coal Science Technology Ecological Environment Technology Co. ,Ltd. ,Beijing 100013,China
    4.State Key Laboratory of Disaster Prevention and Ecology Protection in Open-Pit Coal Mines,Beijing 100013,China
  • Received:2026-01-21 Revised:2026-02-13 Published:2026-08-15 Online:2026-09-01

摘要:

针对磷石膏大规模消纳与磷石膏矿渣水泥中矿粉供应短缺的双重难题,本文系统研究了热活化煤矸石作为矿粉替代材料的可行性及其对水泥性能的影响机制,以推动工业固废资源化利用。将煤矸石在600~800 ℃下煅烧活化,并以不同质量分数(10%~100%)替代矿粉,系统评价了材料的力学性能、水化进程与微观结构演变规律。结果表明:在早期龄期(7 d),700 ℃活化煤矸石在20%替代率下表现出最佳增强效果,抗压强度较对照组提升12.38%;在后期龄期(28 d),600 ℃活化煤矸石在20%替代率下力学性能最优,抗压强度提升达53.62%。物相分析表明,热活化促使煤矸石中高岭土相转变为偏高岭土,显著提高了活性硅铝的溶出率与火山灰反应活性,进而促进了更多钙矾石(AFt)和C-(A)-S-H凝胶的生成。水化热分析证实,热活化材料能够加速早期水化进程,缩短诱导期。本研究证实热活化煤矸石是磷石膏矿渣水泥体系中矿粉的有效替代材料,为大宗固废高值化利用和低碳胶凝材料开发提供了重要的技术支撑。

关键词: 磷石膏矿渣水泥, 煤矸石, 热活化, 力学性能, 物相分析, 水化机理

Abstract:

To address the dual challenges of large-scale phosphogypsum disposal and mineral powder shortage in phosphogypsum slag cement, this study systematically investigated the feasibility of thermally activated coal gangue as a substitute for mineral powder and its influence mechanism on cement performance, while promoting the resource utilization of industrial solid waste. Coal gangue was calcined at 600 ℃ to 800 ℃ for activation and was used to replace mineral powder at various mass fractions (10% to 100%). The mechanical properties, hydration process, and microstructural evolution of the materials were comprehensively evaluated. The results demonstrate that at early age (7 d), coal gangue activated at 700 ℃ exhibits optimal enhancement at a 20% replacement rate, with compressive strength increasing by 12.38% compared to the control group. At later age (28 d), coal gangue activated at 600 ℃ demonstrates superior mechanical performance at a 20% replacement rate, achieving a compressive strength increase of 53.62%. Phase analysis reveals that thermal activation transforms kaolinite in coal gangue into metakaolinite, significantly enhancing the leaching rate of reactive silica and alumina and thereby promoting pozzolanic reactivity, which facilitates increased formation of ettringite (AFt) and C-(A)-S-H gel. Hydration heat analysis confirms that thermally activated materials accelerate the early-stage hydration process and shorten the induction period. This study demonstrates that thermally activated coal gangue can serve as an effective substitute for mineral powder in phosphogypsum slag cement systems, providing crucial technical support for the high-value utilization of bulk solid waste and the development of low-carbon cementitious materials.

Key words: phosphogypsum slag cement, coal gangue, thermal activation, mechanical property, phase analysis, hydration mechanism

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