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Fatigue Behavior And Statistical Evaluation Of The Stress Category For A Steel-concrete Composite Bridge Deck

机译:钢-混凝土组合桥面板的疲劳行为及受力类别的统计评估

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摘要

The maintenance cost of bridges is rapidly increasing since many existing bridges are deteriorating or reaching their design life all over the world. Moreover, as many long-span bridges are under construction and planning in Korea, research and development on bridge decks with high load-resistance capacity as well as high fatigue strength has become a growing concern. This research gives experimental results of the fatigue behavior of a new-type of steel-concrete composite bridge deck being developed under such circumstances. The proposed composite bridge deck consists of corrugated steel plate, welded steel ribs, stud shear connectors, and reinforced concrete filler. Fatigue tests were conducted under a four-point bending test with four different stress ranges in constant amplitude. In order to determine the influence of the concrete filling, fatigue tests on partial steel specimens containing only plain corrugated steel plates were performed in advance. The partial steel specimens and the steel-concrete composite deck specimens both showed fatigue failure in the tension part concerning the fillet welding part between the corrugated steel plate and steel rib. Finally, the stress category of the fillet welding part of each specimen is evaluated based on a statistical approach of Albrecht's probability model. The research concludes that the fatigue behavior of such steel-concrete composite decks under sagging moment can be estimated based on the classical S-N approach, focusing on steel components.
机译:由于世界各地许多现有的桥梁正在恶化或达到其设计寿命,桥梁的维护成本正在迅速增加。此外,由于韩国正在建设和计划中的许多大跨度桥梁,对具有高承载能力和高疲劳强度的桥面板的研究和开发已成为日益关注的问题。这项研究给出了在这种情况下正在开发的新型钢-混凝土复合桥面板疲劳性能的实验结果。拟议的复合桥面板由波纹钢板,焊接钢肋,螺柱剪切连接器和钢筋混凝土填料组成。疲劳试验是在四点弯曲试验下以恒定振幅对四个不同应力范围进行的。为了确定混凝土填充的影响,预先对仅包含波纹钢板的部分钢试样进行了疲劳试验。部分钢试样和钢-混凝土组合甲板试样在与波纹钢板和钢肋之间的角焊缝有关的拉伸部分都显示出疲劳破坏。最后,基于Albrecht概率模型的统计方法,评估每个试样的角焊缝部分的应力类别。研究得出的结论是,可以基于经典的S-N方法,着重于钢构件,来估计这种钢-混凝土复合材料甲板在下垂力矩下的疲劳行为。

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