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Seismic behavior of precast segmental UHPC bridge columns with replaceable external cover plates and internal dissipaters

机译:带有可更换外部盖板和内部耗散器的预制分段UHPC桥柱的抗震性能

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A new earthquake resilient ultra-high-performance concrete (UHPC) bridge column was proposed and fabricated with precast segmental construction. The bottom segment was divided into two parts: core zone and four replaceable surrounding UHPC plates, between which replaceable dissipaters were employed. Rapid repair was completed with substitutions of damaged replaceable components, including UHPC plates and dissipaters, after an earthquake. Cyclic loading tests were conducted on three 1:3 scaled specimens and their corresponding repaired specimens. The research parameters included post-tensioning (PT) force level and usage of replaceable dissipaters. The test results showed that both the construction and repair times could be decreased owing to the use of proposed bridge column. The damage to replaceable dissipaters and cover plates was significant, but the damage to core concrete was minimal. The original repaired specimens presented displacement capacities of at least 5% and 4% drift, respectively. All specimens showed excellent self-centering and had less than 0.8% residual drift until failure. Two different failure modes were found: cover plate failure in lateral bending failure, which significantly reduced the lateral load, and dissipater coupler failure, which caused dissipaters to work inefficiently and decreased energy dissipation. Compared with the original specimens, which failed in the same failure mode, the repaired specimen had similar lateral load and displacement capacities, but a lower initial stiffness. All PT tendons were elastic and no yield or rupturing was found, but the stress loss was significant. The rotation of the bottom joint dominated the lateral deformation, and the contribution of joint sliding can be neglected.
机译:提出了一种新型的抗震超高性能混凝土(UHPC)桥柱,并采用预制分段结构进行了制作。底部分为两部分:核心区域和四个可更换的周围UHPC板,在这两个板之间采用了可更换的耗散器。地震后,通过修复损坏的可更换部件(包括UHPC板和耗材),完成了快速维修。对三个1:3比例缩放的标本及其相应的修复标本进行了循环载荷测试。研究参数包括后张紧(PT)力水平和可替换耗散物的使用。测试结果表明,由于使用了建议的桥柱,因此可以减少施工和维修时间。对可更换耗水器和盖板的损坏很大,但对核心混凝土的损坏很小。原始修复的标本的位移能力分别为至少5%和4%的漂移。所有样品均表现出优异的自定心性能,并且直至失效为止的残留漂移均小于0.8%。发现了两种不同的失效模式:侧向弯曲失效中的盖板失效(这大大降低了横向载荷)和耗散耦合器失效,这导致耗散器工作效率低下并降低了能量耗散。与以相同破坏模式破坏的原始样本相比,修复后的样本具有相似的侧向载荷和位移能力,但初始刚度较低。所有PT肌腱均具有弹性,未发现屈服或破裂,但应力损失显着。底部关节的旋转主导了横向变形,而关节滑动的贡献可忽略不计。

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