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首页> 外文期刊>Polymers >Finite Element Analysis for Fatigue Damage Reduction in Metallic Riveted Bridges Using Pre-Stressed CFRP Plates
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Finite Element Analysis for Fatigue Damage Reduction in Metallic Riveted Bridges Using Pre-Stressed CFRP Plates

机译:使用预应力CFRP板减少金属铆钉桥梁疲劳损伤的有限元分析

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Many old riveted steel bridges remain operational and require retrofit to accommodate ever increasing demands. Complicating retrofit efforts, riveted steel bridges are often considered historical structures where structural modifications that affect the original construction are to be avoided. The presence of rivets along with preservation requirements often prevent the use of traditional retrofit methods, such as bonding of fiber reinforced composites, or the addition of supplementary steel elements. In this paper, an un-bonded post-tensioning retrofit method is numerically investigated using existing railway riveted bridge geometry in Switzerland. The finite element (FE) model consists of a global dynamic model for the whole bridge and a more refined sub-model for a riveted joint. The FE model results include dynamic effects from axle loads and are compared with field measurements. Pre-stressed un-bonded carbon fiber reinforced plastic (CFRP) plates will be considered for the strengthening elements. Fatigue critical regions of the bridge are identified, and the effects of the un-bonded post-tensioning method with different pre-stress levels on fatigue susceptibility are explored. With an applied 40% CFRP pre-stress, fatigue damage reductions of more than 87% and 85% are achieved at the longitudinal-to-cross beam connections and cross-beam bottom flanges, respectively.
机译:许多旧的铆接钢桥仍可使用,需要进行翻新以适应不断增长的需求。复杂的改造工作使铆钉钢桥经常被视为历史建筑,应避免影响原始结构的结构变更。铆钉的存在以及保存要求通常会阻止使用传统的改造方法,例如纤维增强复合材料的粘结或添加钢元素。本文利用瑞士现有的铁路铆接桥梁几何形状,对无粘结后张法改造方法进行了数值研究。有限元(FE)模型由整个桥的整体动力学模型和铆接接头的更精细子模型组成。有限元模型的结果包括车轴载荷的动态影响,并与现场测量结果进行了比较。预应力无粘结碳纤维增强塑料(CFRP)板将被视为增强元件。确定桥梁的疲劳关键区域,并探讨了不同预应力水平的无粘结后张法对疲劳敏感性的影响。施加40%的CFRP预应力后,纵向至横梁连接和横梁底部法兰的疲劳损伤降低分别超过87%和85%。

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