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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (7): 2478-2490.DOI: 10.16552/j.cnki.issn1001-1625.2025.1258

• Solid Waste and Eco-Materials • Previous Articles     Next Articles

Durability and Microstructure of Phosphogypsum-Slag-Based All-Solid-Waste Cementitious Material Regulated by Red Mud and Recycled Cement Powder

LIU Xin1(), LI Mingyang1, ZHANG Xihe1(), LAN Shaoding2, GAO Xu2   

  1. 1.Power China Guiyang Engineering Co.,Ltd.,Guiyang,550081,China
    2.School of Civil Engineering and Architecture,Wuhan University of Technology,Wuhan 430070,China
  • Received:2025-12-15 Revised:2026-01-29 Online:2026-07-15 Published:2026-08-13
  • Contact: ZHANG Xihe

Abstract:

In this paper, phosphogypsum-slag-based all-solid-waste cementitious material was developed using phosphogypsum (PG), slag, recycled cement powder (RCP), red mud (RM), and quicklime. The individual and synergistic effects of RCP and RM on mechanical properties, durability, and microstructure were characterized. The results indicate that the incorporation of RCP and RM significantly enhances the mechanical properties and durability of the cementitious material. The specimen with 10% (mass fraction) RCP and 10% (mass fraction) RM exhibits relatively superior performance. In comparison to the PG-slag-based system, the 28 d compressive strength and flexural strength increase by 57.1% and 57.4%, reaching 43.2 and 7.4 MPa, respectively. Simultaneously, the non-steady-state chloride migration coefficient and drying shrinkage decrease by 42.5% and 43.6%, while the sulfate corrosion resistance coefficient is elevated from 73.6% to 85.6%. RCP serves as a physical filler and provides chemical activity, offering nucleation site and active component for the hydration reaction. Additionally, RM raises the alkalinity of the system and introduces extra aluminosilicate minerals, which accelerates the dissolution and polymerization of precursors, and stimulates the potential pozzolanic activity of RCP. RCP and RM synergistically promote the formation of calcium aluminosilicate hydrate gel and maintain a considerable amount of ettringite, consequently optimizing the composition of hydration products, ultimately achieving a comprehensive improvement in pore structure densification and macroscopic performance. This study is expected to provide a technical reference for the development of green cementitious materials and the resource utilization of solid waste.

Key words: phosphogypsum, all-solid-waste cementitious material, red mud, recycled cement powder, durability, microstructure

CLC Number: