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首页> 外文期刊>Structure and Infrastructure Engineering: Maintenance, Management, Life-Cycle Design and Performance >Estimation of fatigue life for long span suspension bridge hangers under wind action and train transit
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Estimation of fatigue life for long span suspension bridge hangers under wind action and train transit

机译:大跨度悬索桥吊架在风和火车作用下的疲劳寿命估算

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摘要

The main causes of induced fatigue in the cables and hangers of suspension bridges are wind- and traffic-induced vibrations. Because of the high flexibility and reduced weight (in relation with the whole dimension of the structure), during their life-cycle, suspension cable systems of this type of bridge experience a large number of tension-cycles with significant amplitude. In this paper, the fatigue problem regarding hangers of bridges is treated: these members have been considered subjected to axial fatigue effect that can be faced with simplified damage laws and fatigue curves referring to experimental data. Diffusive stress regions at the end of the hangers are not considered here. The motivation for such a study is that it represents a typical framework for a preliminary bridge design or for a feasibility analysis for a proposed structural scheme: in all these cases, it is necessary to explore and to compare different solutions in an efficient and ordered way. A system approach is then suitable, as used in other structural engineering branches. Attention in this paper is focused on the hangers since they are considered as vulnerable components with respect to the fatigue effects. This point of view is also important for the maintenance strategy and for the consequently possible traffic disruptions. Another aspect of discussion, concerning the subject of this paper, is the interaction mechanism between train and wind actions. While fatigue analysis of hangers of suspension bridges is the specific topic of this research, the paper begins with a general formulation of the design of such complex structures. In the author's opinion this is important since in this way one can coherently frame all the aspects related to the structure, its parts and the appropriate safety and functional requirements. Consequent to this point of view is a system engineering technique that breakdowns all the aspects of the structural problem, with specific attention to the organisation of the structural modelling activity. In the whole paper, constant reference is made to the experience gained recently in the performance-based design of an extreme long span suspension bridge (Bontempi, F., 2006, Baois of design and expected performances for the Messina Strait Bridge. In: Proceedings of the international conference on bridge engineering - challenges in the 21st century, 1-3 November, Hong Kong, Civil Division, The Hong Kong Institute of Engineers [CD ROM]) with the skyline shown in Figure 1, with a main central span of 3300 metres, intended to support both highway (3 + 3 lanes) and railway traffic (1 + 1 track).
机译:吊桥的电缆和吊架中引起疲劳的主要原因是风和交通引起的振动。由于高度的柔韧性和减轻的重量(相对于结构的整体尺寸),此类桥架的悬索系统在其生命周期中会经历大量的振幅显着的拉伸循环。在本文中,研究了关于桥梁吊架的疲劳问题:已经考虑到这些构件受到轴向疲劳效应,可以参考简化的试验数据来面对简化的损伤定律和疲劳曲线。此处未考虑吊架末端的扩散应力区域。进行这项研究的动机是,它代表了初步桥梁设计或拟议结构方案可行性分析的典型框架:在所有这些情况下,有必要以有效而有序的方式探索和比较不同的解决方案。那么,就像在其他结构工程分支中使用的那样,系统方法就适用。本文关注的重点是衣架,因为考虑到疲劳效应,它们被认为是易损部件。这种观点对于维护策略以及因此可能的业务中断也很重要。讨论的另一个方面,涉及本文的主题,是火车与风作用之间的相互作用机制。尽管悬索桥吊架的疲劳分析是本研究的主题,但本文还是从这种复杂结构设计的一般表述开始。在作者看来,这很重要,因为通过这种方式,可以将与结构,其零件以及适当的安全性和功能要求有关的所有方面连贯地框架化。因此,采用了一种系统工程技术,可以分解结构问题的所有方面,并特别注意结构建模活动的组织。在整篇论文中,我们始终参考最近在超长跨度悬索桥基于性能的设计中获得的经验(Bontempi,F.,2006年,Bais设计和墨西拿海峡大桥的预期性能。 11月1-3日,国际桥梁工程会议-21世纪的挑战,香港,香港工程师学会土木科[CD ROM])的天际线如图1所示,主要跨度为3300米,旨在同时支持高速公路(3 + 3车道)和铁路交通(1 + 1轨道)。

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