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Prediction of Concrete Crack Width under Combined Reinforcement Corrosion and Applied Load

机译:钢筋锈蚀与外加载荷作用下混凝土裂缝宽度的预测

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摘要

As a global problem for reinforced concrete structures located in a chloride and/or carbon dioxide–laden environment, reinforcing steel corrosion in concrete costs approximately $100 billion per annum worldwide for maintenance and repairs. The continual demands for greater load for infrastructure exacerbate the problem. This paper attempts to examine the whole process of longitudinal cracking in concrete structures under the combined effect of reinforcement corrosion and applied load. A model for residual stiffness of cracked concrete is derived using the concept of fracture energy. It is found that the corrosion rate is the most important single factor that affects both the time-to-surface cracking and crack width growth. The paper concludes that the developed model is one of very few theoretical models that can predict with reasonable accuracy the crack width on the surface of reinforced concrete structures under such a combined effect. The developed model can be used as a tool to assess the serviceability of corrosion-affected concrete infrastructure. Timely repairs have the potential to prolong the service life of reinforced concrete structures.
机译:作为位于充满氯化物和/或二氧化碳的环境中的钢筋混凝土结构的全球性问题,钢筋在混凝土中的腐蚀每年在全球范围内的维护和修理费用约为1000亿美元。对基础设施的更大负载的持续需求加剧了该问题。本文试图研究钢筋腐蚀和外加载荷共同作用下混凝土结构纵向裂缝的全过程。利用断裂能的概念推导了开裂混凝土残余刚度的模型。发现腐蚀速率是影响表面裂纹时间和裂纹宽度增长的最重要的单一因素。本文得出的结论是,开发的模型是极少数可以在合理的精度下预测钢筋混凝土结构在这种综合作用下的裂缝宽度的理论模型之一。所开发的模型可以用作评估受腐蚀的混凝土基础设施使用寿命的工具。及时维修有可能延长钢筋混凝土结构的使用寿命。

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