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Numerical modeling of time to corrosion induced cover cracking in reinforced concrete using soft-computing based methods

机译:基于软计算的方法对钢筋混凝土中腐蚀引起的覆盖层开裂时间的数值模拟

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Reinforced concrete (RC) is one of the most commonly used composite materials in construction industry. Corrosion of reinforcing steel embedded in concrete is a crucial issue leading deterioration of RC structure. In this study, mathematical formulations that predict the time from corrosion initiation to corrosion cracking in RC elements subjected to accelerated corrosion test are presented. For this, the time to corrosion cracking t(cr) in RC elements is evaluated and developed using soft-computing techniques, namely, genetic algorithms and artificial neural networks. In the models, nine critical estimation parameters were considered. The experimental inputs are mix design properties of the concretes, curing conditions, testing age, mechanical properties of concrete, and cover thickness of RC elements. The dataset was formed by collecting 126 experimental data samples reported in the technical literature. The dataset was randomly separated into three parts for training, testing, and validating the models. Through the numerical study, the influences of various experimental factors on the duration and extent of RC corrosion-induced cracking were shown. It was found that the soft-computing based models gave reasonable predictions of t(cr) in RC elements. However, the neural network model performed better and the highest correlation coefficient (R) between predicted and experimental t(cr) values was computed as 0.998.
机译:钢筋混凝土(RC)是建筑行业中最常用的复合材料之一。埋在混凝土中的钢筋腐蚀是导致RC结构劣化的关键问题。在这项研究中,提出了数学公式,这些数学公式预测了经受加速腐蚀试验的RC元件从腐蚀发生到腐蚀破裂的时间。为此,使用软计算技术(即遗传算法和人工神经网络)评估和开发了RC元件中腐蚀开裂时间t(cr)。在模型中,考虑了九个关键估计参数。实验输入是混凝土的混合设计特性,固化条件,测试年龄,混凝土的机械特性以及RC元素的覆盖厚度。该数据集是通过收集技术文献中报告的126个实验数据样本形成的。数据集被随机分为三个部分,用于训练,测试和验证模型。通过数值研究,表明了各种实验因素对钢筋混凝土腐蚀诱导开裂的持续时间和程度的影响。发现基于软计算的模型给出了RC单元中t(cr)的合理预测。但是,神经网络模型的性能更好,预测和实验t(cr)值之间的最高相关系数(R)计算为0.998。

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