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Rapid repair of severely earthquake-damaged bridge piers with flexural-shear failure mode

机译:弯曲剪切破坏模式快速修复受地震严重破坏的桥墩

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摘要

An experimental study was conducted to investigate the feasibility of a proposed rapid repair technique for severely earthquake-damaged bridge piers with flexural-shear failure mode. Six circular pier specimens were first tested to severe damage in flexural-shear mode and repaired using early-strength concrete with high-fluidity and carbon fiber reinforced polymers (CFRP). After about four days, the repaired specimens were tested to failure again. The seismic behavior of the repaired specimens was evaluated and compared to the original specimens. Test results indicate that the proposed repair technique is highly effective. Both shear strength and lateral displacement of the repaired piers increased when compared to the original specimens, and the failure mechanism of the piers shifted from flexural-shear failure to ductile flexural failure. Finally, a simple design model based on the Seible formulation for post-earthquake repair design was compared to the experimental results. It is concluded that the design equation for bridge pier strengthening before an earthquake could be applicable to seismic repairs after an earthquake if the shear strength contribution of the spiral bars in the repaired piers is disregarded and 1.5 times more FRP sheets is provided.
机译:进行了一项实验研究,以研究拟议的快速修复技术对受地震剪切破坏模式严重破坏的桥墩的可行性。首先以弯曲剪切模式对六个圆形墩试样进行了严重破坏测试,并使用高流动性的早期强度混凝土和碳纤维增强聚合物(CFRP)对其进行了修复。约四天后,再次测试修复后的样品是否失效。对修复后的标本的抗震性能进行了评估,并与原始标本进行了比较。测试结果表明,提出的修复技术非常有效。与原始样本相比,修复后的墩的抗剪强度和侧向位移均增加,墩的破坏机理从弯曲剪切破坏转变为韧性弯曲破坏。最后,将基于Seible公式的简单设计模型与地震结果进行了比较。得出的结论是,如果忽略了修复墩中螺旋杆的抗剪强度贡献,并且提供了1.5倍以上的FRP板,则地震前桥梁墩加固的设计方程可适用于地震后的地震修复。

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