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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (6): 1979-1987.DOI: 10.16552/j.cnki.issn1001-1625.2025.1116

• 资源综合利用 • 上一篇    下一篇

活化工艺对高岭土基低碳水泥性能的影响

廖云天1,2(), 彭文洁3, 李博2, 陈伟1(), 郑旭航3   

  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.中国建筑设计研究院有限公司,北京 100044
  • 收稿日期:2025-11-13 修订日期:2026-01-25 出版日期:2026-06-15 发布日期:2026-07-14
  • 通信作者: 陈 伟,博士,教授。E-mail:chen.wei@whut.edu.cn
  • 作者简介:廖云天(2001—),男,硕士研究生。主要从事生态建筑材料的研究。E-mail:18871454529@163.com
  • 基金资助:
    国家自然科学基金联合基金项目(U22A20122);中国建筑设计研究院有限公司科技创新项目(1100C080250250)

Effect of Activation Process on Properties of Kaolin-Based Low-Carbon Cement

LIAO Yuntian1,2(), PENG Wenjie3, LI Bo2, CHEN Wei1(), ZHENG Xuhang3   

  1. 1.State Key Laboratory of Silicate Materials for Architectures,Wuhan University of Technology,Wuhan 430070,China
    2.School of Material Science and Engineering,Wuhan University of Technology,Wuhan 430070,China
    3.China Architecture Design & Research Group,Beijing 100044,China
  • Received:2025-11-13 Revised:2026-01-25 Published:2026-06-15 Online:2026-07-14

摘要:

本文利用活化高岭土、石灰石粉和少量水泥熟料制备低碳水泥,系统研究了机械化学法活化和热活化两种工艺对高岭土微观结构、低碳水泥性能及其水化产物组成与结构的影响规律。结果表明,经活化处理后,高岭土转变为无定形态。机械化学法活化对高岭土活性的提升效果优于热活化。当掺入质量分数为40%的机械化学法活化高岭土和质量分数20%的石灰石粉,并外掺质量分数5%的氢氧化钙时,所制备的低碳水泥3和28 d抗压强度分别为14.8和39.4 MPa,主要水化产物是水化硅酸钙(C-S-H)凝胶、钙矾石(AFt)和水化硫铝酸钙(AFm)。外掺氢氧化钙可进一步激发高岭土的火山灰反应,促进更多水化产物的生成,优化浆体的孔隙结构并提升力学性能。本研究探索了基于活化高岭土制备低碳水泥的技术路径,在60%熟料质量替代率下实现良好的性能发展,为低碳水泥的开发提供了有效路径。

关键词: 高岭土, 低碳水泥, 机械化学法活化, 热活化, 水化机理

Abstract:

This study utilized activated kaolin, limestone powder, and a small amount of cement clinker to prepare low-carbon cement. The effects of two activation methods, mechanochemical activation and thermal activation on the microstructure of kaolin, the properties of the low-carbon cement, and the composition and structure of its hydration products were systematically examined. The results indicate that kaolin transforms into an amorphous state after activation treatment. Mechanochemical activation is more effective in enhancing the reactivity of kaolin than thermal activation. When 40% (mass fraction) mechanochemically activated kaolin and 20% (mass fraction) limestone powder are incorporated, together with an external addition of 5% by mass of calcium hydroxide, the prepared low-carbon cement achieves compressive strengths of 14.8 MPa at 3 d and 39.4 MPa at 28 d. The main hydration products are calcium silicate hydrate (C-S-H) gel, ettringite (AFt) , and calcium sulfoaluminate hydrate (AFm). Furthermore, the external addition of calcium hydroxide enhances the pozzolanic reaction of kaolin, increases the formation of hydration products, and improves pore structure of the paste and enhances its mechanical properties. This study explores a technical pathway for producing low-carbon cement with activated kaolin, achieving favorable performance development at a 60% clinker replacement rate by mass, thereby providing an effective approach for the development of low-carbon cement.

Key words: kaolin, low-carbon cement, mechanochemical activation, thermal activation, hydration mechanism

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