Herrera Daniel, Tolentino Dante
Departamento de Materiales, Universidad Autónoma Metropolitana, 420 San Pablo Avenue, Nueva el Rosario, Azcapotzalco, Mexico City 02128, Mexico.
Materials (Basel). 2023 Jan 27;16(3):1100. doi: 10.3390/ma16031100.
A methodology to estimate the structural fragility of RC bridges, considering the effects of seismic loadings and corrosion over time, is presented. Two scenarios are considered: (a) The structure is exposed only to seismic loads, (b) Both the effect of corrosion and seismic loads are present in the system. The uncertainties related to material properties, structural geometry, seismic occurrences, corrosion initiation time, cracking and corrosion evolution are considered. Different time stages, such as 0, 50, 75, 100, and 125 years are selected to evaluate the effect of both seismic loads and seismic loads plus corrosion. The calculation of fragility curves implies a structural design, nonlinear modeling of structures with simulated properties, estimation of both corrosion times and seismic occurrences, and evaluation of structural demand over time considering the effect of seismic loads and corrosion. An illustrative example is provided on an RC continuous bridge with AASHTO beams, cap beams and circular columns located in Acapulco, Guerrero, Mexico. A performance level equal to 0.002 is chosen for the design of the structure. Results show that the probability of exceeding the design performance levels for both cases (seismic and seismic plus corrosion) are similar at the stage of time equal to zero (a newly built bridge). However, such probabilities, after 150 years, are equal to 0.61 and 0.85 due to the cumulative damage caused by seismic and seismic plus corrosion, respectively. The estimation of the probability of exceeding a certain performance level, considering the effect of corrosion together with seismic loads, highlights the importance of considering more than one type of solicitation for these kinds of structural systems. Lastly, recommendations about design are given.
本文提出了一种考虑地震荷载和长期腐蚀影响来估算钢筋混凝土桥梁结构易损性的方法。考虑了两种情况:(a) 结构仅承受地震荷载;(b) 系统中同时存在腐蚀和地震荷载的影响。考虑了与材料特性、结构几何形状、地震发生情况、腐蚀起始时间、开裂和腐蚀发展相关的不确定性。选择了不同的时间阶段,如0、50、75、100和125年,以评估地震荷载以及地震荷载与腐蚀共同作用的影响。易损性曲线的计算需要进行结构设计、对具有模拟特性的结构进行非线性建模、估算腐蚀时间和地震发生情况,以及考虑地震荷载和腐蚀影响随时间评估结构需求。文中给出了一个位于墨西哥格雷罗州阿卡普尔科的采用美国公路与运输协会(AASHTO)梁、帽梁和圆柱的钢筋混凝土连续桥的示例。为该结构设计选择了等于0.002的性能水平。结果表明,在时间等于零的阶段(新建桥梁),两种情况(地震和地震加腐蚀)超过设计性能水平的概率相似。然而,150年后,由于地震和地震加腐蚀分别造成的累积损伤,这些概率分别等于0.61和0.85。考虑腐蚀与地震荷载共同作用时超过特定性能水平概率的估算,突出了对于这类结构系统考虑多种作用类型的重要性。最后给出了关于设计的建议。