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首页> 外文期刊>Journal of structural engineering >CFFT Bridge Columns for Multihazard Resilience
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CFFT Bridge Columns for Multihazard Resilience

机译:CFFT桥梁色谱柱,具有多重风险防御能力

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摘要

Bridges play a significant role in postevent recovery and disaster resiliency of communities. Recent megadisasters, such as the 2011 Great East Japan Earthquake, have prompted the technical community to understand the robustness of infrastructure when subjected to extreme events and the shortcomings of conventional structural systems under multiple hazards. Columns are the most critical load-carrying elements of bridge structures. Enhancing the robustness of bridge columns can improve the resiliency of the bridge itself and the surrounding community by reducing repair costs and downtime after an extreme event. In recent years, the concrete-filled fiber reinforced polymer (FRP) tube (CFFT) system has been widely investigated as a durable and cost-effective alternative design for more robust bridge columns. However, the current AASHTO guide specifications are limited to nonductile, unreinforced CFFT elements. This study summarizes the findings of blast, fire, and seismic experiments performed on CFFT specimens containing minimal longitudinal reinforcement. The residual axial load-carrying capacities of damaged reinforced concrete (RC) and CFFT columns are obtained as a measure of robustness, and estimated restoration times and repair costs are presented for each type of column and each hazard. Subsequently, a set of experimentally validated design equations are developed for the axial and flexural resistance of lightly reinforced CFFT columns in a compatible format with the AASHTO load resistance factor design (LRFD) Guide Specifications for the Design of CFFTs. A formulation for displacement-based seismic design of lightly reinforced CFFT columns is presented, and a provision for the fire protection of this column system is proposed. By presenting a set of experimentally validated design formulations, this study is expected to promote the application of lightly reinforced CFFT columns to enhance the multihazard resilience of bridge infrastructure.
机译:桥梁在事后恢复和社区的灾难恢复能力中发挥着重要作用。最近的特大灾难,例如2011年东日本大地震,已促使技术界了解在遭受极端事件和多种威胁下传统结构系统的缺点时基础设施的稳健性。柱是桥梁结构中最关键的承载元素。通过减少极端事件后的维修成本和停机时间,增强桥柱的坚固性可以提高桥本身和周围社区的弹性。近年来,混凝土填充纤维增强聚合物(FRP)管(CFFT)系统已被广泛研究,作为一种耐用且具有成本效益的替代设计,用于更坚固的桥柱。但是,当前的AASHTO指南规范仅限于非延性,未增强的CFFT元素。这项研究总结了对包含最小纵向钢筋的CFFT标本进行的爆炸,火灾和地震实验的发现。获得了受损钢筋混凝土(RC)和CFFT柱的剩余轴向承载能力,作为衡量其坚固性的手段,并给出了每种类型的柱和每种危害的估计恢复时间和维修费用。随后,根据AASHTO荷载抗力系数设计(LRFD)CFFT设计指南规范,以兼容的格式开发了一组经过实验验证的设计方程,用于轻型CFFT柱的轴向和抗弯强度。提出了基于位移的轻型CFFT柱抗震设计公式,并为该柱系统的防火措施提供了建议。通过提出一组经过实验验证的设计公式,这项研究有望促进轻度增强的CFFT柱的应用,以增强桥梁基础设施的多灾灾防御能力。

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