硅酸盐通报 ›› 2023, Vol. 42 ›› Issue (9): 3059-3074.
• 水泥混凝土 • 下一篇
刘玉美1,2, 杨浪1,2, 饶峰1,2, 张凯铭1,2, 孙传琳1,2
收稿日期:
2023-04-10
修订日期:
2023-06-06
出版日期:
2023-09-15
发布日期:
2023-09-14
通信作者:
杨 浪,副教授。E-mail:siryanglang@fzu.edu.cn
作者简介:
刘玉美(1997—),女,硕士研究生。主要从事固废资源利用方面的研究。E-mail:1394608657@qq.com
基金资助:
LIU Yumei1,2, YANG Lang1,2, RAO Feng1,2, ZHANG Kaiming1,2, SUN Chuanlin1,2
Received:
2023-04-10
Revised:
2023-06-06
Online:
2023-09-15
Published:
2023-09-14
摘要: 海洋环境下,海工混凝土大多达不到设计使用年限就遭到腐蚀破坏,造成严重的国家海洋工程安全隐患和海洋环境污染。氯离子引起的钢筋腐蚀是造成海工混凝土结构性能劣化的主要原因。本文基于海洋环境多氯盐的特点,从氯离子侵蚀海工混凝土的过程出发,对氯离子的腐蚀路径和腐蚀机理进行梳理和总结,着重论述了氯离子通过渗透、扩散、电化学迁移进入混凝土的路径和破坏钝化膜、形成腐蚀电池、去极化作用、导电作用的腐蚀机理。在此基础上,文章针对国内外海工混凝土抗氯离子腐蚀的最新研究,介绍了氯离子固化机理,重点阐述了提高海工混凝土密实度、减少海工混凝土中裂缝、增加海工混凝土厚度的根本措施,同时归纳了混凝土表面保护、钢筋防护,以及加入阻锈剂的补充措施、裂缝修复的方法,以提高海工混凝土抗氯离子腐蚀性能,文章最后指出当前研究中,实验得到的单一氯离子腐蚀过程与实际海水中混凝土的氯离子腐蚀过程存在较大差距,低碳环保的抗氯离子腐蚀混凝土材料和技术有待深入研发。
中图分类号:
刘玉美, 杨浪, 饶峰, 张凯铭, 孙传琳. 氯离子对海工混凝土钢筋腐蚀的研究进展[J]. 硅酸盐通报, 2023, 42(9): 3059-3074.
LIU Yumei, YANG Lang, RAO Feng, ZHANG Kaiming, SUN Chuanlin. Research Progress of Chloride Ions on Corrosion of Marine Concrete Reinforcement[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2023, 42(9): 3059-3074.
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