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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (6): 1892-1902.DOI: 10.16552/j.cnki.issn1001-1625.2025.1148

• 水泥混凝土 • 上一篇    下一篇

低浓度CO2条件40 ℃环境对水泥胶砂早期碳化与水化反应进程影响研究

胡庆浩1(), 李绍纯1(), 陈旭2, 张书畅1   

  1. 1.青岛理工大学土木工程学院,青岛 266520
    2.新疆大学建筑工程学院,乌鲁木齐 830047
  • 收稿日期:2025-11-18 修订日期:2026-02-09 出版日期:2026-06-15 发布日期:2026-07-14
  • 通信作者: 李绍纯,博士,教授。E-mail:lishaochun@qut.edu.cn
  • 作者简介:胡庆浩(1999—),男,硕士研究生。主要从事水泥基材料碳化的研究。E-mail:hutmnet@163.com
  • 基金资助:
    国家自然科学基金(52479125);丝绸之路经济带创新驱动发展试验区、乌昌石国家自主创新示范区科技发展计划(2022LQ03010)

Influence of Low-Concentration CO2 Environment at 40 ℃ on Early Carbonation and Hydration Reaction Process of Cement Mortar

HU Qinghao1(), LI Shaochun1(), CHEN Xu2, ZHANG Shuchang1   

  1. 1.School of Civil Engineering,Qingdao University of Technology,Qingdao 266520,China
    2.College of Civil Engineering and Architecture,Xinjiang University,Urumqi 830047,China
  • Received:2025-11-18 Revised:2026-02-09 Published:2026-06-15 Online:2026-07-14

摘要:

为响应建筑材料低碳发展战略,探索低浓度CO2条件下水泥基材料早期性能的优化路径,本研究在3%(体积分数)CO2浓度、40 ℃的环境中,设置2、6、12 h三个早期碳化时间节点,研究了碳化-水化协同作用对水泥胶砂力学性能及微观结构演化的影响。结果表明,碳化6 h时水泥基材料的综合性能最优,28 d抗压强度提升至58.6 MPa,较纯水化样品提高15.1%。此时,体系中CaCO3生成量及结晶度均达到较高水平,方解石占比显著增加。压汞分析结果显示,碳化6 h能有效改善试件表层孔隙结构,使孔隙率降低至21.8%,从而提高材料的致密性与稳定性。而随着碳化时间延长,试件表层孔隙结构劣化,强度下降,出现过度碳化现象。

关键词: 水泥基材料, 低浓度CO2, 早期碳化, 温度调控, 微观结构演化

Abstract:

In response to the low-carbon development strategy for building materials, this study explores the optimization path for early-age performance of cement-based materials under low-concentration CO2 conditions. Cement mortars were subjected to CO2 curing at 3% (volume fraction) concentration and 40 ℃ for 2, 6, and 12 h to investigate the effects of the carbonation-hydration synergy on mechanical properties, microstructure evolution. The results show that the comprehensive performance of cement-based materials is optimal after 6 h of carbonation, with a 28 d compressive strength of 58.6 MPa—approximately 15.1% higher than that of the purely hydrated sample. At this stage, the amount and crystallinity of CaCO3 reach their maximum, and the proportion of calcite increases significantly. Mercury intrusion porosimetry results reveal that 6 h carbonation effectively refines the pore structure of the specimen surface layer, reducing porosity to 21.8% and enhancing compactness and stability of the material. However, extending the carbonation time causes deterioration of the surface pore structure, leading to reduce strength due to over-carbonation.

Key words: cement-based material, low-concentration CO2, early-age carbonation, temperature regulation, microstructural evolution

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