Bulletin of the Chinese Ceramic Society, Volume. 43, Issue 11, 3935(2024)

Research Progress on Chloride-Sulfate Coupling Erosion Mechanism, Model and Numerical Simulation of Concrete

LI Guoman1... LI Haoran2, QIU Guobin1, LI Junling2, and ZHANG Rui23,* |Show fewer author(s)
Author Affiliations
  • 1UHV Construction Branch, Central China Engineering and Construction Department, State Grid Co., Ltd., Wuhan 430000, China
  • 2College of Civil Engineering and Architecture, China Three Gorges University, Yichang 443000, China
  • 3Hubei Key Laboratory of Disaster Prevention and Mitigation (China Three Gorges University), Yichang 443000, China
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    In coastal and inland saline soil environments, reinforced concrete structures are susceptible to coupling erosion of chloride-sulfate, and face more prominent structural durability problems. While experimental and numerical model research is abundant on the erosion process of reinforced concrete caused by either chloride or sulfate alone. Studies on the coupling erosion by chloride-sulfate are relatively limited. Hence, this paper summarizes the research achievements from recent years both domestically and internationally, explores the differences in the mechanism of single salt erosion and chloride-sulfate erosion, and discusses the influence of sulfate ion on the diffusion rate and binding capacity of chloride ion. The existing coupling models for reinforced concrete subjected to chloride-sulfate composite environment are compared, and the construction process of erosion models are elaborated from three aspects: the ionic transport process, chemical reaction, and pore expansion. The currently applied numerical simulation methods are summarized. Finally, the current research on chloride-sulfate coupling erosion of reinforced concrete is reviewed, and an outlook for subsequent research is given.

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    LI Guoman, LI Haoran, QIU Guobin, LI Junling, ZHANG Rui. Research Progress on Chloride-Sulfate Coupling Erosion Mechanism, Model and Numerical Simulation of Concrete[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(11): 3935

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    Paper Information

    Category:

    Received: May. 17, 2024

    Accepted: Jan. 2, 2025

    Published Online: Jan. 2, 2025

    The Author Email: Rui ZHANG (r.zhangyc@ctgu.edu.cn)

    DOI:

    CSTR:32186.14.

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