Investigation into the Preparation Process and Properties of High-Ferrite Cement-Composite Cementitious Materials

In this study, ordinary Portland cement (OPC) clinker, high-ferrite cement (HFC) clinker, desulfurization gypsum, and limestone powder were utilized as raw materials. The effects of two processes, separate grinding followed by blending and co-grinding, on the particle size distribution, water requirement for normal consistency, and setting time of the OPC-HFC composite cementitious system were compared. On this basis, a strengthening agent was introduced to systematically investigate the rheological properties, early hydration heat evolution, and mortar strength development of the co-ground cementitious system. The results indicate that compared to separate grinding, the co-grinding process exploits the difference in the grindability of the two clinkers to produce a “self-widening” effect, thereby effectively optimizing the particle size distribution of the composite system. Among the three compositions examined, the co-ground CG2 system exhibited the lowest water requirement for normal consistency and relatively low yield stress, particularly at low w/b ratios. Furthermore, a relationship can be observed between the time-dependent rheological behavior of the paste and the staged characteristics of the early-age hydration heat evolution. The addition of the strengthening agent improved the 28 d compressive strength of the co-ground cementitious systems. These findings provide laboratory-scale experimental evidence regarding the performance feasibility of OPC–HFC composite cementitious materials and a reference for further composition and process optimization.

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Publication Details

Journal
Applied Sciences
Published
2026-09-14
DOI
https://doi.org/10.3390/app16189112
Primary Topic
Concrete and Cement Materials Research
Type
article
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article

Investigation into the Preparation Process and Properties of High-Ferrite Cement-Composite Cementitious Materials

Qiang Ren, Xianqing Xia, Luchuan Ding, Xiaodi Dai et al.
Applied Sciences
Concrete and Cement Materials Research
article

Investigation into the Preparation Process and Properties of High-Ferrite Cement-Composite Cementitious Materials

Qiang Ren, Xianqing Xia, Luchuan Ding, Xiaodi Dai, Fanyuan Mu, Lu Yang, Zhiyuan Liu, Qiyi Wu, Ming Ma
article en

Abstract

In this study, ordinary Portland cement (OPC) clinker, high-ferrite cement (HFC) clinker, desulfurization gypsum, and limestone powder were utilized as raw materials. The effects of two processes, separate grinding followed by blending and co-grinding, on the particle size distribution, water requirement for normal consistency, and setting time of the OPC-HFC composite cementitious system were compared. On this basis, a strengthening agent was introduced to systematically investigate the rheological properties, early hydration heat evolution, and mortar strength development of the co-ground cementitious system. The results indicate that compared to separate grinding, the co-grinding process exploits the difference in the grindability of the two clinkers to produce a “self-widening” effect, thereby effectively optimizing the particle size distribution of the composite system. Among the three compositions examined, the co-ground CG2 system exhibited the lowest water requirement for normal consistency and relatively low yield stress, particularly at low w/b ratios. Furthermore, a relationship can be observed between the time-dependent rheological behavior of the paste and the staged characteristics of the early-age hydration heat evolution. The addition of the strengthening agent improved the 28 d compressive strength of the co-ground cementitious systems. These findings provide laboratory-scale experimental evidence regarding the performance feasibility of OPC–HFC composite cementitious materials and a reference for further composition and process optimization.

Applied SciencesVol. 16(18)
Tongji University (CN), Wuhan University of Technology (CN), Anhui Conch Design and Research Institute of Building Materials (China) (CN)
Openalex Percentile: Top 16%
Concrete and Cement Materials Research
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