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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (2): 461-470.DOI: 10.16552/j.cnki.issn1001-1625.2025.0791

• 水泥混凝土 • 上一篇    下一篇

高性能微细钢纤维硫铝酸盐水泥混凝土收缩性能及预测模型

李小鹏(), 赵军(), 陈哲涵, 梁梦阳   

  1. 郑州大学土木工程学院,郑州 450001
  • 收稿日期:2025-08-05 修订日期:2025-09-26 出版日期:2026-02-20 发布日期:2026-03-09
  • 通信作者: 赵 军,博士,教授。E-mail:zhaoj@zzu.edu.cn
  • 作者简介:李小鹏(1993—),男,博士,副研究员。主要从事钢纤维混凝土材料与结构方面的研究。E-mail:lxpeng@zzu.edu.cn
  • 基金资助:
    国家自然科学基金(52408306);河南省科技攻关项目(242102321061);教育部创新团队发展计划(IRT_16R67)

Shrinkage and Prediction Model of High-Performance Micro-Fine Steel Fiber Reinforced Sulphoaluminate Cement Concrete

LI Xiaopeng(), ZHAO Jun(), CHEN Zhehan, LIANG Mengyang   

  1. School of Civil Engineering,Zhengzhou University,Zhengzhou 450001,China
  • Received:2025-08-05 Revised:2025-09-26 Published:2026-02-20 Online:2026-03-09

摘要:

硫铝酸盐水泥(SAC)具有微膨胀、低收缩的特性,将SAC基复合材料作为装配式结构节点连接材料有望降低节点的收缩开裂风险。本研究通过收缩测试、水化热测试和SEM测试揭示了钢纤维硫铝酸盐水泥混凝土(SFRSC)收缩的变化规律及机理。结果表明,降低胶骨比、砂率、粉煤灰掺量,或提高钢纤维体积分数可以减小SFRSC的收缩,但钢纤维体积分数超过3.0%时,继续增大钢纤维体积分数对自收缩的抑制效果不再显著。SFRSC的收缩显著低于钢纤维普通硅酸盐水泥混凝土。SFRSC微观结构表明钙矾石(AFt)转变为单硫型水化硫铝酸钙(AFm)的过程伴随大量结合水释放和固相体积减小,这共同导致了SFRSC收缩。SFRSC收缩是SAC水化反应、自干燥效应与钢纤维约束共同作用的结果,AFt、AFm和钢纤维协同作用构成了“膨胀补偿-收缩抑制-机械约束”的多级收缩抑制体系。最后,基于ACI规范和CEB-FIP规范,提出了SFRSC收缩计算模型。

关键词: 钢纤维混凝土, 硫铝酸盐水泥, 收缩, 水化热, 胶骨比, 砂率, 收缩模型

Abstract:

Sulphoaluminate cement (SAC) has the characteristics of micro-expansion and low shrinkage. Therefore, Using SAC-based composite materials as the connection material for precast structural joint, is expected to reduce the risk of shrinkage cracking. This study revealed the variation law and mechanism of the shrinkage of steel fiber reinforced sulphoaluminate cement concrete (SFRSC) through shrinkage tests, hydration heat tests and SEM tests. The results indicate that decreasing binder-aggregate ratio, sand ratio and fly ash content, or increasing steel fiber volume fraction, can restrain the shrinkage of SFRSC. The inhibitory effect of steel fiber plateaus when its volume exceeds 3.0%. The shrinkage of SFRSC is significantly lower than that of steel fiber reinforced ordinary Portland cement concrete. Micro-structural observations indicate that the transformation of ettringite (AFt) into calcium monosulfoaluminate hydrate (AFm) is accompanied by substantial bound-water release and a reduction in solid volume, jointly contributing to SFRSC shrinkage. The shrinkage of SFRSC arises from the combined effects of SAC hydration, self-desiccation, and steel fiber constraint. The synergistic action among AFt, AFm and steel fiber establish a multi-level shrinkage-suppression system in SFRSC, characterizing by expansion compensation-shrinkage inhibition-mechanical restraint. Finally, a predictive model for SFRSC shrinkage is proposed based on ACI code and CEB-FIP code.

Key words: steel fiber reinforced concrete, sulphoalumimate cement, shrinkage, hydration heat, binder-aggregate ratio, sand ratio, shrinkage model

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