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Probabilistic Fatigue Life Updating for Railway Bridges Based on Local Inspection and Repair

机译:基于局部检查与修复的铁路桥梁概率疲劳寿命更新

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摘要

Railway bridges are exposed to repeated train loads, which may cause fatigue failure. As critical links in a transportation network, railway bridges are expected to survive for a target period of time, but sometimes they fail earlier than expected. To guarantee the target bridge life, bridge maintenance activities such as local inspection and repair should be undertaken properly. However, this is a challenging task because there are various sources of uncertainty associated with aging bridges, train loads, environmental conditions, and maintenance work. Therefore, to perform optimal risk-based maintenance of railway bridges, it is essential to estimate the probabilistic fatigue life of a railway bridge and update the life information based on the results of local inspections and repair. Recently, a system reliability approach was proposed to evaluate the fatigue failure risk of structural systems and update the prior risk information in various inspection scenarios. However, this approach can handle only a constant-amplitude load and has limitations in considering a cyclic load with varying amplitude levels, which is the major loading pattern generated by train traffic. In addition, it is not feasible to update the prior risk information after bridges are repaired. In this research, the system reliability approach is further developed so that it can handle a varying-amplitude load and update the system-level risk of fatigue failure for railway bridges after inspection and repair. The proposed method is applied to a numerical example of an in-service railway bridge, and the effects of inspection and repair on the probabilistic fatigue life are discussed.
机译:铁路桥梁承受反复的火车载荷,这可能会导致疲劳失效。作为交通网络中的关键环节,铁路桥梁有望在目标时间内存活,但有时它们会比预期更早失效。为了保证目标桥梁寿命,应适当进行桥梁维护活动,例如当地检查和维修。但是,这是一项具有挑战性的任务,因为桥梁老化,列车载荷,环境条件和维护工作存在多种不确定性来源。因此,为了对铁路桥梁进行最佳的基于风险的维护,必须估算铁路桥梁的概率疲劳寿命,并根据当地检查和维修的结果更新寿命信息。最近,提出了一种系统可靠性方法来评估结构系统的疲劳失效风险并更新各种检查场景中的先验风险信息。但是,这种方法只能处理恒定振幅的负载,并且在考虑具有可变振幅水平的循环负载方面存在局限性,这是火车交通产生的主要负载模式。另外,在修复桥梁之后更新先前的风险信息是不可行的。在这项研究中,系统可靠性方法得到了进一步发展,使其可以处理振幅变化的载荷并在检查和维修后更新铁路桥梁疲劳破坏的系统级风险。将该方法应用于某在役铁路桥梁的数值实例,并讨论了检查和维修对概率疲劳寿命的影响。

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