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Damage and sensitivity analysis of a reinforced concrete wall building during the 2010, Chile earthquake

机译:智利地震期间钢筋混凝土墙建设的损伤及敏感性分析

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Buildings with Reinforced Concrete (RC) walls are commonly used to resist lateral forces in seismic countries because they provide high lateral stiffness and strength. In recent earthquakes, shear wall buildings have shown good behavior in general; however, a small percentage underwent severe damage localized typically in lower stories. Several numerical models have been developed and proposed to simulate the failure mechanism and behavior of RC walls. From the existing models, only those denoted as micro-models can accurately simulate the stress and strain distributions. The aim of this research is double: (i) to validate a nonlinear finite element wall model and the associated material stress-strain constitutive relationship using the behavior of a real building during the 2010 Chile earthquake; and (ii) to analyze the uncertainty of the response of the building due to changes in model parameters. To validate the response of the wall model, four experimental benchmark RC wall specimens were studied, and model accuracy was evaluated using five parameters: initial stiffness, peak baseshear, ultimate base-shear, maximum displacement, and dissipated energy. A sensitivity analysis was carried out to study the influence of material parameters in the wall response and its damage. The case-study is a 18story building with 1 basement, which suffered severe damage during the 2010 Chile earthquake, which has been studied by non-linear response-history analysis. Uncertainty in the building response due to three important modeling assumptions was considered: Rayleigh's damping model parameters; effective elastic bending stiffness of the structural elements; and effect of the vertical ground motion component. Results showed that the proposed model can predict the seismic response of the building with reasonable accuracy by identifying correctly the damage location. This case-study enabled us to assess also the effect of damping in non-ductile structures, the important influence of the slab stiffness in the response, and the effect of the vertical ground motion component in the sequence of damaged walls.
机译:具有钢筋混凝土(RC)墙壁的建筑通常用于抵抗地震国家的横向力,因为它们提供高侧刚度和强度。在最近的地震中,剪力墙建筑物一般表现出良好的行为;然而,较小的百分比造成严重损害,通常在较低的故事中。已经开发出了几种数值模型,并提出了模拟RC墙壁的故障机制和行为。从现有模型中,只有那些表示为微型型号的那些可以准确地模拟应力和应变分布。本研究的目的是双重:(i),以使用2010年智利地震期间真实建筑的行为验证非线性有限元壁模型和相关的材料应力 - 应变本构关系; (ii)以分析建筑物响应的不确定性因模型参数的变化而导致的建筑物的响应。为了验证墙面模型的响应,研究了四个实验基准RC壁样标本,使用五个参数评估了模型精度:初始刚度,峰值底座,极限剪切,最大位移和消散能量。进行了敏感性分析,以研究材料参数在墙壁反应中的影响及其损伤。案例研究是一个18楼,18个地下室,在2010年智利地震期间遭受严重损害,这是由非线性反应历史分析研究的。由于三个重要的建模假设,建筑物反应的不确定性被认为是:Rayleigh的阻尼模型参数;结构元件的有效弹性弯曲刚度;垂直地运动成分的影响。结果表明,该模型可以通过正确识别损坏位置来预测建筑物的地震响应,精度合理。这种情况研究使我们也能够评估阻尼在非延展结构中的影响,响应中的板坯刚度的重要影响,以及垂直地运动成分在损坏壁的序列中的影响。

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