Three-Dimensional Finite Element Modelling for Prediction Corrosion Induced Cracking Damaged in Reinforced Concrete Beam

Tommy Fong @ Ramzi Bin Rimmy, Thevaneyan Krishta David, Zainal Ab. Rahman
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Abstract

The quality and condition of the reinforced concrete structure is critical, particularly in high-rise buildings where the danger of service life failure is extremely high. Usually, certain structures collapse as a result of cracks and spreading caused by corrosion. Due to this reason, there is a requirement for software program that can promptly measure and evaluate the strength, growth, and longevity of the structure. Researchers use Finite Element Modelling (FEM), a reliable approach to foresee the deterioration and fracturing of structures. The application of finite element modelling in determining the remaining strength of damaged components can provide crucial data, which is particularly relevant for engineers in real-world scenarios. Moreover, it has the ability to replicate the cracking caused by corrosion in reinforced concrete elements. A corrosion-induced cracking model is suggested to be included into a three-dimensional plane-stress finite element model. The cracking model provides an indication of the extent of corrosion-induced damage in the concrete, allowing for the study of strength and behavioural changes. The effect of corrosion-induced cracking in a thick wall cylinder model will be simulated by the finite element model in order to identify and analyse the cracks caused by corrosion in the concrete cover. A corrosion-induced cracking experiment will be conducted with two different cover thicknesses and reinforcement using the Midas FEA commercial software to create a three-dimensional model. There is a slight discrepancy between the numerical analysis modelling and the analytical approach in terms of the crack's initiation and propagation, mostly resulting from variations in modelling assumptions, methods, and parameters. This disagreement arises when comparing the numerical analysis model with the previously published work. Nevertheless, the numerical model may be used to simulate both crack propagation and the critical pressure needed to produce corrosion-induced concrete cover cracking.
用于预测钢筋混凝土梁腐蚀诱发裂缝破坏的三维有限元模型
钢筋混凝土结构的质量和状况至关重要,特别是在高层建筑中,使用寿命失效的危险性极高。通常,某些结构会因腐蚀造成的裂缝和扩展而倒塌。因此,需要一种能及时测量和评估结构强度、生长和寿命的软件程序。研究人员使用有限元建模(FEM)这种可靠的方法来预测结构的劣化和断裂。应用有限元建模来确定受损部件的剩余强度,可以提供关键数据,这对现实世界中的工程师尤为重要。此外,它还能复制钢筋混凝土构件中由腐蚀引起的开裂。建议在三维平面应力有限元模型中加入腐蚀引起的开裂模型。该开裂模型可显示混凝土中由腐蚀引起的损坏程度,从而对强度和行为变化进行研究。有限元模型将模拟厚壁圆柱体模型中腐蚀诱发裂缝的影响,以识别和分析混凝土覆盖层中腐蚀引起的裂缝。我们将使用 Midas 有限元分析商业软件创建一个三维模型,对两种不同的盖板厚度和配筋进行腐蚀诱发开裂实验。数值分析模型与分析方法在裂缝的产生和扩展方面存在细微差别,这主要是由于建模假设、方法和参数的不同造成的。在将数值分析模型与之前发表的研究成果进行比较时,就会出现这种分歧。尽管如此,该数值模型仍可用于模拟裂缝扩展和产生腐蚀诱发混凝土覆盖层开裂所需的临界压力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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