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首页> 外文期刊>Journal of bridge engineering >Exploratory Study on Incorporating Glass FRP Reinforcement to Control Damage in Steel-Reinforced Concrete Bridge Pier Walls
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Exploratory Study on Incorporating Glass FRP Reinforcement to Control Damage in Steel-Reinforced Concrete Bridge Pier Walls

机译:将玻璃FRP加固对钢筋混凝土桥墩损坏控制玻璃FRP加固的探索性研究

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摘要

The need to demonstrate that a steel-reinforced concrete bridge pier wall resilient to strong earthquakes could be attained by the incorporation of glass fiber-reinforced polymer (GFRP) reinforcement has been brought to the fore by recent experimental results on GFRP-reinforced concrete bridge pier walls. The test results show that the GFRP bars assisted in crack recovery and the self-centering of walls between load reversals. Hence, GFRP bars could potentially be used to control the unrecoverable damage in steel-reinforced bridge pier walls after an earthquake. This study will use nonlinear finite element analysis (FEA) as a powerful tool to verify this expectation. A series of analyses will be implemented on concrete bridge pier walls reinforced with either steel or GFRP bars to demonstrate that the finite element (FE) procedure can provide quick and reliable simulation. The study is then extended to investigate the effect of using hybrid reinforcement through a comprehensive parametric study. Different configurations of GFRP bars are examined and compared with similar configurations of steel bars. The results show that hybrid reinforced bridge pier walls can undergo large displacements with minimal residual deformations. Nevertheless, a sensible selection of the GFRP bars location is necessary. The findings of this study could be considered as a fundamental step toward the development of code provisions for the use of hybrid GFRP/steel (GS) reinforcement in concrete bridge pier walls.
机译:需要证明一种钢筋混凝土桥墩壁弹性可以通过纳入玻璃纤维增​​强的聚合物(GFRP)增强来实现强化,最近在GFRP钢筋混凝土桥码头上的实验结果达到了增强墙壁。测试结果表明,GFRP条辅助裂缝回收和负载逆转之间的墙壁的自定心。因此,GFRP棒可能用于在地震发生后控制钢筋钢筋码头壁上的不可恢复损坏。本研究将使用非线性有限元分析(FEA)作为验证此期望的强大工具。一系列分析将在用钢或GFRP棒加固的混凝土桥墩壁上实现,以证明有限元(FE)程序可以提供快速可靠的模拟。然后扩展了该研究以调查使用杂交增强通过综合参数研究的影响。检查了GFRP棒的不同配置,并与钢筋类似的配置进行了相提并论。结果表明,混合钢筋桥墩壁可以经历大型位移,具有最小的残余变形。然而,需要选择GFRP条位置。该研究的结果可以被视为发展用于在混凝土桥墩墙上使用混合GFRP /钢(GS)加固的代码规定的基本步骤。

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