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Effect of Climate Change on Service Life of High Volume Fly Ash Concrete Subjected to Carbonation—A Korean Case Study

机译:气候变化对碳化碳化的大粉煤灰混凝土使用寿命的影响 - 韩国案例研究

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The increase in CO 2 concentrations and global warming will increase the carbonation depth of concrete. Furthermore, temperature rise will increase the rate of corrosion of steel rebar after carbonation. On the other hand, compared with normal concrete, high volume fly ash (HVFA) concrete is more vulnerable to carbonation-induced corrosion. Carbonation durability design with climate change is crucial to the rational use of HVFA concrete. This study presents a probabilistic approach that predicts the service life of HVFA concrete structures subjected to carbonation-induced corrosion resulting from increasing CO 2 concentrations and temperatures. First, in the corrosion initiation stage, a hydration-carbonation integration model is used to evaluate the contents of the carbonatable material, porosity, and carbonation depth of HVFA concrete. The Monte Carlo method is adopted to determine the probability of corrosion initiation. Second, in the corrosion propagation stage, an updated model is proposed to evaluate the rate of corrosion, degree of corrosion for cover cracking of concrete, and probability of corrosion cracking. Third, the whole service life is determined considering both corrosion initiation stage and corrosion propagation stage. The analysis results show that climate change creates a significant impact on the service life of durable concrete.
机译:CO 2浓度和全球变暖的增加将增加混凝土的碳酸化深度。此外,温度升高将增加碳化后钢钢筋的腐蚀速率。另一方面,与正常混凝土相比,大容量粉煤灰(HVFA)混凝土更容易受到碳化诱导的腐蚀。碳化耐用性设计气候变化对于合理使用HVFA混凝土至关重要。该研究呈现了一种概率方法,其预测由Co 2浓度和温度的增加而导致碳化诱导的腐蚀的HVFA混凝土结构的使用寿命。首先,在腐蚀启动阶段,水化 - 碳酸化积分模型用于评估HVFA混凝土碳酸化材料,孔隙率和碳化深度的含量。采用蒙特卡罗方法来确定腐蚀启动的可能性。其次,在腐蚀传播阶段,提出了一种更新的模型来评估腐蚀速度,混凝土覆盖裂缝的腐蚀程度,以及腐蚀裂缝的概率。第三,考虑腐蚀启动阶段和腐蚀传播阶段,确定整个使用寿命。分析结果表明,气候变化对耐用混凝土的使用寿命产生重大影响。

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