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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (2): 562-572.DOI: 10.16552/j.cnki.issn1001-1625.2025.0810

• 资源综合利用 • 上一篇    下一篇

低热水泥钢渣砂浆碳化-水化协同机制与微观结构演化

温和1(), 张晓翔2(), 顾磊2, 邓加鑫2   

  1. 1.重庆工商职业学院城市建设工程学院,重庆 400052
    2.联检(江苏)科技股份有限公司,常州 213015
  • 收稿日期:2025-08-11 修订日期:2025-09-08 出版日期:2026-02-20 发布日期:2026-03-09
  • 通信作者: 张晓翔,工程师。E-mail:zhangxiaoxiang@czjky.com
  • 作者简介:温和(1980—),男,副教授。主要从事水泥基材料、绿色高性能混凝土方面的研究。E-mail:dawenhe@foxmail.com
  • 基金资助:
    重庆市教育委员会科学技术研究项目(KJQN202404009)

Synergistic Carbonation-Hydration Mechanisms and Microstructural Evolution in Low-Heat Cement and Steel Slag Mortars

WEN He1(), ZHANG Xiaoxiang2(), GU Lei2, DENG Jiaxin2   

  1. 1. School of Urban Construction Engineering,Chongqing Technology and Business Institute,Chongqing 400052,China
    2. United Testing Inspection & Certification Technology Co. ,Ltd. ,Changzhou 213015,China
  • Received:2025-08-11 Revised:2025-09-08 Published:2026-02-20 Online:2026-03-09

摘要:

普通胶凝材料的碳化已有广泛研究,但低热水泥与钢渣的协同碳化行为仍缺乏系统探索。钢渣中富含游离CaO和潜在水化活性,可促进低热水泥体系碳化反应。本研究通过调控胶砂比、水灰比和钢渣掺量,考察不同碳化时间及养护条件下的抗压强度、孔结构和矿物相演变。结果表明,适当预养护能调节剩余水灰比,促进CO2扩散并提高碳化效率。在胶砂比为3∶5、低水灰比条件下,试样在48 h内基本完成碳化,主要碳化产物为方解石,文石的形成与碳化速率相关。抗压强度与碳化程度呈良好相关性,碳化48 h后抗压强度最高达68.8 MPa。孔结构分析显示,碳化及后续水化可显著细化孔径并提高试样致密性。XRD、TG-DTG、FT-IR和SEM-EDS揭示碳化生成的CaCO3与水化产物形成三维交联结构,显著改善试样的微观密实性与力学性能。

关键词: 低热水泥, 钢渣, 碳化养护, 水化养护, 碳化深度, 抗压强度, 微观结构

Abstract:

The carbonation of ordinary cementitious material has been extensively studied, whereas the carbonation behavior of low-heat Portland cement combined with steel slag remains insufficiently explored. Steel slag, rich in free CaO and latent hydraulic activity, can promote carbonation reactions when incorporated into low-heat cement systems. In this study, the effects of binder-sand ratio, water-binder ratio, and steel slag dosage on compressive strength, pore structure, and phase evolution under different carbonation durations and curing regimes were investigated. Results show that appropriate pre-curing regulates the residual water-binder ratio, enhances CO2 diffusion, and improves carbonation efficiency. At a binder-sand ratio of 3∶5 with a low water-binder ratio, specimens nearly completely carbonized within 48 h, with calcite as the main carbonation product. The formation of aragonite depending on the carbonation rate. Compressive strength correlates well with carbonation degree, reaching up to 68.8 MPa after 48 h of carbonation. Pore structure analysis indicate that carbonation and subsequent hydration can significantly refine the pore size and improve the density of samples. XRD, TG-DTG, FT-IR, and SEM-EDS reveal that CaCO3 generated by carbonation interacted with hydration products to form a three-dimensional cross-linked structure, markedly enhancing microstructural compactness and mechanical performance.

Key words: low-heat cement, steel slag, carbonation curing, hydration curing, carbonation depth, compressive strength, microstructure

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