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A Micro-Mechanics Based Corrosion Model for the Prediction of Service Life in Reinforced Concrete Structures  

Song, Ha-Won (School of Civil and Environmental Engineering, Yonsei Univ.)
Kim, Ho-Jin (School of Civil and Environmental Engineering, Yonsei Univ.)
Kim, Tae-Hwan (School of Civil and Environmental Engineering, Yonsei Univ.)
Byun, Keun-Joo (School of Civil and Environmental Engineering, Yonsei Univ.)
Lee, Seung-Hoon (Inst. of Tech., Samsung Corperation)
Publication Information
Corrosion Science and Technology / v.4, no.3, 2005 , pp. 100-107 More about this Journal
Abstract
Reinforcing steel bars in reinforced concrete structures are protected from corrosion by passive film on the steel surface inside concrete with high alkalinity. However, when the passive film breaks down due to chloride ion ingressed into the RC structures, a corrosion initiates at the surface of steel bars. Then, internal pressure by volume expansion of corrosion products in reinforcing bars induces cracking and spalling of cover concrete, which reduces not only durability performance but also structural performance in RC structures. In this paper, a service life prediction of RC structures is carried out by using a micro-mechanics based corrosion model. The corrosion model is composed of a chloride penetration model to evaluate the initiation of corrosion and an electric corrosion cell model and an oxygen diffusion model to evaluate the rate and the accumulated amounts of corrosion. Then, a corrosion cracking model is combined to the models to evaluate critical amount of corrosion product for initiation cracking in cover concrete. By implementing the models into a finite element analysis program, a time and space dependent corrosion analysis and a service life prediction of RC structures due to chloride attack are simulated and the results of the analysis are compared with test results. The effect of crack width on the corrosion and the service life of the RC structures are analyzed and discussed.
Keywords
reinforced concrete structures; corrosion; chloride ions; crack; service life;
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